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Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future

Published online by Cambridge University Press:  05 September 2025

Robert Kenneth Browne*
Affiliation:
Sustainability America, Sarteneja, Belize
*
Corresponding author: Robert Kenneth Browne; Email: robert.browne@gmail.com
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Abstract

Intergenerational justice is the core principle supporting the legacy of benefit toward future generations, including the perpetuation of species and their genetic diversity, as a key component of biospheric sustainability. Thirty percent of Earth’s terrestrial habitats are now undergoing protection, biodiversity hotspots are being targeted, and there is increasing community awareness and engagement in conservation. However, the impending sixth mass extinction threatens to drive many species to extinction in the wild, irrespective of these interventions. Earth’s biosphere is now undergoing terraforming through ecosystem destruction and modification, urbanization, and agriculture. Therefore, transformative cultural, political, and economic incentives are needed to maximize the legacy of the Earth’s biodiversity and biospheric sustainability toward future generations. Reproduction and advanced biotechnologies can perpetuate species and their genetic diversity while also contributing to human and animal health and agricultural production. Advanced reproduction biotechnologies, including genetic engineering and synthetic biology, provide a new horizon for biospheric management, through the de-extinction of ancient species, restoring recently lost species, and maintaining the genetic diversity of extant species through wildlife biobanking. More extensive and inclusive conservation breeding programs and wildlife biobanking resources/facilities are desperately needed to perpetuate more than 3,000 Critically Endangered terrestrial/freshwater species; a goal fully attainable for amphibians and smaller fishes through global inclusion of stakeholders including private caregivers, plausible for freshwater mussels and crayfish, in development for reptiles and birds, and applicable for many mammals. As this capacity develops, many otherwise neglected species that are losing their natural habitat can be perpetuated solely in biobanks, thus enabling the more efficient utilization of resources toward meaningful field conservation primarily through habitat protection. The full potential of reproduction and advanced biotechnologies includes the development of artificial wombs to address the human population crisis and to avoid surrogacy mismatching during species restoration or de-extinction. The use of advanced reproduction biotechnologies for direct human benefit, for species management, and for biospheric sustainability, are subject to evolving ethical and legal frameworks, particularly regarding genetic engineering, transhumanism, and the de-extinction of ancient species.

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Review
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This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0), which permits unrestricted re-use, distribution and reproduction, provided the original article is properly cited.
Copyright
© The Author(s), 2025. Published by Cambridge University Press

Impact statement

This review is unique and impactful through integrating discourses concerning the synergy between intergenerational justice, reproduction and advanced biotechnologies and biobanking, the reduction of species loss from the impending sixth mass extinction, and maintaining biospheric sustainability, human health and reproduction. Intergenerational justice guides the obligations of current generations toward future generations to fulfill our legacy toward biospheric sustainability and species management. The impending sixth mass extinction is conceptualized as resulting from terraforming; the biospheric transformation of Earth to satisfy human desires, which now provides an existential threat to humanity, biospheric sustainability and biodiversity. Reproduction biotechnologies, supported by biobanking, already provide intergenerational justice through assisted reproduction and maintaining genetic diversity in conservation breeding programs. As natural ecosystems are modified beyond recognition advanced reproduction biotechnologies can perpetuate species through their timely restoration of species from wildlife biobanked somatic and germ cells, and through the de-extinction of species from ancient DNA. These developments and utilisation of these biotechnologies contribute to human well-being through enabling biosperic sustainability, and supporting human and animal health, agricultural production, and efficient resource use.

Introduction

This review is based on intergenerational justice providing the ethical imperative for the provision of biospheric sustainability to maximize utilitarian potential toward humanity’s well-being for the foreseeable future (Meyer, Reference Meyer and Zalta2021). This goal includes species perpetuation facilitated through reproduction and advanced biotechnologies, along with wildlife biobanking, to control reproduction and manage genetic resources for the benefit of wildlife, human health and well-being, agriculture and resource use.

Intergenerational justice recognises the responsibility of current generations to remediate their society’s past practices, and address current practices, that could substantially affect future generations; ie. intergenerational justice advances actions and policies to provide future generations access to benefits and the prevention and mitigation of harms [Meyer, Reference Meyer and Zalta2021]. Intergenerational justice is subject to philosophical and ethical discourses, particularly in respect to previous harms, balancing the rights and preferences of existing people in respect to those of future people, and therefore what the present generation should provide for the future.

Terraforming has traditionally been considered a domain of space colonization. However, this review introduces the concept that Earth’s biosphere is now undergoing terraforming through anthropogenic ecosystem destruction and modification, urbanization and agriculture (Khomiak et al., Reference Khomiak, Onyshchu and Vasylenko2024). Consequently, unless emphatic and realistic actions are undertaken, an imminent sixth mass extinction, defined by 75% species/genera extinction over 2 million years beginning with the extinction of a high percentage of Critically Endangered species, and many now Endangered species, is predicted over the next decades and centuries (Barnowsky et al., Reference Barnowsky, Matzke, Tomiya, Wogan, Swartz, Quental, Marshall, McGuire, Lindsey, Maguire, Mersey and Ferrer2011), irrespective of the protection of their populations, habitats and ecosystems (Fletcher et al., Reference FletcherR, Ferraz, Kiwango, Komi, Mabele, Marchini, Nygren, Sandroni, Alagona and McInturff2023; Willcock et al., Reference Willcock, Cooper, Addy and Dearing2023; Huggan et al., Reference Huggan, Dunn, Nelson, Wright, Jørgensen and Rigby2024; Johnson, Reference Johnson2025). Furthermore, many highly biodiversity habitats are unprotected, or already undergoing dramatic defaunation and loss of vegetation biodiversity, with a cascade of species extinctions through global heating alone, even without considering the devastating effects of pollutants, exotic species and pathogens (Bradshaw et al., Reference Bradshaw, Ehrlich, Beattie, Ceballos, Crist, Diamond, Dirzo, Ehrlich, Harte, Harte, Pyke, Raven, Ripple, Saltré, Turnbull, Wackernagel and Blumstein2021; IPCC, Reference Lee and Romero2023; Conradi et al., Reference Conradi, Eggli, Kreft, Schweiger, Weigelt and Higgins2024; IUCN, 2025a). No compelling evidence of the initiation of an impending mass extinction was demonstrated by the loss of only 0.45% of genera over the last 500 years (Wiens and Saban, Reference Wiens and Saban2025). However, even at the rate of 0.45% per 500 years, 75% of genera would be extinct in 83,500 years, a time period equivalent to only 4% of 2 million years (Wiens and Saban Reference Wiens and Saban2025). Higher taxonomy aside, at the species level, the World Wildlife Fund states that we are losing 0.01% to 0.1% species a year. ie. 75% of species 750-7,500 years (WWF, 2025). In either case, these amounts are gross underestimates as biospheric destruction has recently exponentially accelerated. Under these circumstances, the precautionary principle demands that humanity harness all available and potential biotechnologies to assure species perpetuation for the benefit of humanity.

Evidence-based predictions of massive and inevitable ecosystem modifications and species loss (Barnowsky et al., Reference Barnowsky, Matzke, Tomiya, Wogan, Swartz, Quental, Marshall, McGuire, Lindsey, Maguire, Mersey and Ferrer2011) limits the ability of field-based activities, including habitat protection, rewilding (repopulation), and targeted species conservation to save species and ecosystems (Simkins et al., Reference Simkins, Sutherland, Dicks, Hilton-Taylor, Grace, Butchart, Senior and Petrovan2025). The exponentially increasing number of Critically Endangered species is already overwhelming field program capacity to guarantee their survival. However, current biotechnologies along with conservation breeding programs (CBPs) and wildlife biobanking can already provide cost-efficient and reliable management of many otherwise neglected species. The integration of species management, from habitat protection to the use of biotechnologies, demands a reevaluation of environmental policies and the integration of all available options into an integrated whole (Zeigler, Reference Ziegler2023; Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a, Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb).

This review coins the term environmental intergenerational justice as the legacy that maximizes benefits for future generations through biospheric sustainability and species conservation/perpetuation in a rapidly changing biosphere (Barry, Reference Barry1997; Trevis et al., Reference Treves, Artelle, Darimont, Lynn, Paquet, Santiago-Ávila, Shaw and Wood2018; Spanning, Reference Spanning, Knapp and Krall2021; Pereira et al., Reference Pereira, Smith, Gifford, Newell, Smith, Villasante, Achieng, Castro, Constantino, Ghadiali, Vogel and Zimm2023; Gergis, Reference Gergis2024). Environmental intergenerational justice also provides an ethical framework to guide conservation investments in species or ecosystem targeting (Treves et al., Reference Treves, Artelle, Darimont, Lynn, Paquet, Santiago-Ávila, Shaw and Wood2018; Meyer, Reference Meyer and Zalta2021; Dielenberg et al., Reference Dielenberg, Bekessy, Cumming, Dean, Fitzsimons, Garnett, Goolmeer, Hughes, Kingsford, Legge, Lindenmayer, Lovelock, Lowry, Maron, Marsh, McDonald, Mitchell, Moggridge, Morgain, O’Connor, Pascoe, Pecl, Possingham, Ritchie, Smith, Spindler, Thompson, Trezise, Umbers, Woinarski and Wintle2023). To achieve environmental intergenerational justice, transformative environmental policies including cultural, political, and economic incentives are needed to maximize the legacy of the Earth’s biodiversity and biospheric sustainability toward future generations. However, current efforts to transform environmental policy and practice emphasize change within extant political-economic structures, rather than transcending these structures to accommodate a rapidly changing biosphere, multilateral geopolitics, and emerging cultural and ethical norms (Fletcher et al., Reference FletcherR, Ferraz, Kiwango, Komi, Mabele, Marchini, Nygren, Sandroni, Alagona and McInturff2023).

In contrast, the allocation of resources toward reproduction and advanced biotechnologies, along with wildlife biobanks, offers realistic support for environmental intergenerational justice through providing individuals for release during rewilding, repopulation or supplementation programs, through lowering the cost and increasing the reliability of conservation breeding programs (CBPs) and through perpetuating species as their genetic diversity (WAZA 2025; Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunce2024b; Fujihara and Inoue-Murayama, Reference Fujihara and Inoue-Murayama2024; Chen and Mastromonaco, Reference Chen and Mastromonaco2025). Reliable cryopreservation techniques for biobanking are scattered among invertebrates, well established for fish and amphibians, which include half of Critically Endangered species, are under current development for egg-laying reptiles and birds, and well established for many mammals with their naked eggs nurtured by a placenta until birth; artificial insemination with biobanked sperm is used industrially for mammals in aquaculture and for human fertility. Therefore, there are no technical reasons why wildlife biobanking cannot immediately perpetuate the genetic diversity of many species currently in need, and with ongoing development all species in an increasingly threatening and unpredictable future. Besides the current contribution of reproduction technologies to human wellbeing, artificial wombs under development along with genetic engineering, will provide healthy babies to address declining birth rates and reduce the burden and health risks of pregnancy (Gross, Reference Gross2024; Osmenda, Reference Osmenda2024).

Overall, these potentials pose intriguing ethical questions involving what defines humans and transhumans (Battle-Fisher, Reference Battle-Fisher2020; Filipova, Reference Filipova2024; Rueda, Reference Rueda2024), the selection and conservation status of species perpetuated solely in biobanks (Cardillo, Reference Cardillo2023; Turton-Hughes, Reference Turton-Hughes, Holmes and Hassall2024; Wienhues et al., Reference Wienhues, Baard, Donoso and Oksanen2023; Wilson, Reference Wilson2023; Biasetti et al., Reference Biasetti, Mercugliano, Schrade, Spiriti, Göritz, Holtze, Seet, Galli, Stejskal, Colleoni, Čižmár, Simone, Hildebrandt and de Mori2024), philosophical concepts regarding the transformation from pre-Neolithic pristine nature to Earth’s anthropogenic terraforming (Khomiak et al., Reference Khomiak, Onyshchu and Vasylenko2024), and the practicality and consequences of the de-extinction of ancient species, or to a lesser extent the restoration of recently extinct species (IUCN, 2016; Meyer, Reference Meyer and Zalta2021; Wienhues et al., Reference Wienhues, Baard, Donoso and Oksanen2023).

Historic, cultural, and geopolitical perspectives

From a historical context, this review supports environmental intergenerational justice through remedying species loss caused by our ancient ancestors, to the present, and in the imminent future. The relationship between modern humans, species loss and the environment began with overhunting of megafauna (species over 100 kg in weight) by Neolithic hunter-gatherers, with extinctions peaking in the late Pleistocene ~6,000–20,000 years ago and extends to the present. The pristine megafauna of Australia, the New World, and many islands, became largely extinct during human colonisation; however, much megafauna survived in Africa and Eurasia through coevolution with hominidae species and eventually modern humans (Svenning et al., Reference Svenning, Lemoine, Bergman, Buitenwerf, Le Roux, Lundgren, Mungi and Pedersen2024). However, hunting and human migrations alone do not fully account for ancient megafauna extinctions (Godfrey et al., Reference Godfrey, Klukkert, Crowley, Dawson, Faina, Freed, Hekkala, Borgerson, Rasolonjatovo, Wright and Burns2025).

Some megafaunal species still survive in the mid- to low latitudes of Eurasia and North America, for example the auroch (Bos primigenius; 1,500 kg) hybridized with domestic livestock, polar bears (Ursus maritimus, 800 kg), moose (Alces spp., 700 kg), musk ox (Ovibos moschatus; 400 kg), wapiti (Cervus elaphus; 330 kg), brown bears (Ursus arctos horribilis, 300 kg), bison (Bison, 920 kg) and Siberian tigers (Panthera tigris altaica, 320 kg). No Australian fauna over 90 kg survived Aboriginal occupation, except for the saltwater crocodile (Crocodylus porosus, 1,000 kg). Tapir (Tapirus bairdii, 250 kg) are the only survivors of the Central and South America megafauna (Svenning et al., Reference Svenning, Lemoine, Bergman, Buitenwerf, Le Roux, Lundgren, Mungi and Pedersen2024; IUCN, 2025b).

The more recent global destruction of biodiversity began as the early city states of Europe and the Middle East, resulted in the first major regional landscape modifications and excessive regional resource use through urbanization, agriculture and forestry, contributing to civilization collapse (Butzer, Reference Butzer2012; Turner and Sabloff, Reference Turner and Sabloff2012). In contrast, late pre-Columbian agricultural ecosystems of the Maya and Native Indian cultures in the Amazon basin and North America that did not industrialise were sustained for centuries or millenia (Ford, Reference Ford2024; Glaser et al., Reference Glaser, McKey, Giani, Teixeira, di Rauso, Schneeweiß, Hien, Homburg, Johannes and Stephen2024). Sustainable agriculture also supported high populations in China, India and Southeast Asia for millennium, with regional megafauna surviving in game parks, relict protected lowland habitats, forested highlands, freshwater wetlands, and mangroves (IUCN, 2025b).

A desperate quest for natural resource exploitation through European colonisation, was regionally driven in Europe by forest destruction, insufficient and degraded agricultural land, and overpopulation (Hughes, Reference Hughes2009; Kaplan et al., Reference Kaplan, Krumhardt and Zimmermann2009). European colonization drove many species to extinction, through resource exploitation, the introduction of exotic species, and targeted extermination. For instance, the transfer of plants and animals from the eighteenth century to the present has transformed the environments globally (Kirchberger, Reference Kirchberger2020). Colonialism was particularly destructive to biodiversity in the resource-rich bioregions of the New World and Caribbean Islands (Penados et al., Reference Penados, Gahman and Smith2023), Australia and New Zealand (Dielenberg et al., Reference Dielenberg, Bekessy, Cumming, Dean, Fitzsimons, Garnett, Goolmeer, Hughes, Kingsford, Legge, Lindenmayer, Lovelock, Lowry, Maron, Marsh, McDonald, Mitchell, Moggridge, Morgain, O’Connor, Pascoe, Pecl, Possingham, Ritchie, Smith, Spindler, Thompson, Trezise, Umbers, Woinarski and Wintle2023; Woinarski et al., Reference Woinarski, Braby, Gibb, Harvey, Legge, Marsh, Moir, New, Rix and Murphy2024) through the combination of colonial capitalistic agriculture, mining, indentured workers, slavery, genocide and the planned introduction of exotic species (Kirchberger, Reference Kirchberger2020). Rapidly increasing human populations in the highly biodiverse regions of Africa, Central and South America, Southeast Asia, and India are now resulting in environmental stress and habitat destruction along with rapid species loss (WWF, 2025; Turvey and Crees, Reference Turvey and Crees2019; IUCN, 2025a). From a historic perspective, recent species loss of mammals and birds through hunting and habitat destruction occurred from the mid-1500s, with reptiles from 1800, and then amphibians and fishes from 1900 (Johnson, Reference Johnson2025). Amphibians reached the highest extinction rates of all terrestrial/freshwater vertebrates during the second half of the twentieth century to the present, mainly due to habitat destruction and exotic species including pathogens (Earth.Org, 2025).

Global heating, ecosystem modification and species loss

Global heating and regional climate shifts threaten the biosphere, species and ecosystems, and provide an existential threat to humanity, as formally recognized as early as the 1970s by world governments (Wang and Mei, Reference Wang and Mei2024). However, global heating is now exponentially increasing due to increasing CO2 and other greenhouse gas emissions, fossil fuel lobbies and compliant governments, failures of renewable energy and carbon sequestration targets, and through reaching of irreversible climate tipping points (Hansen et al., Reference Hansen, Sato, Simons, Nazarenko, Sangha, Kharecha, Zachos, von Schuckmann, Loeb, Osman, Jin, Tselioudis, Jeong, Lacis, Ruedy, Russell, Cao and Li2023; Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb). Furthermore, ecosystems and species, when stressed through unnaturally high temperatures or precipitation, are more susceptible to exotic predators, competitors, pathogens, droughts, fires and floods (Fodham, Reference Fordham2024; Mathes et al., Reference Mathes, Pimiento, Kiessling, Svenning and Steinbauer2025; Zhang et al., Reference Zhang, Yuan, Zeng, Pan, Wu, Xiao and Keenan2025). Many highly biodiverse ecosystems are already undergoing irreversible change, and traditional conservation methods are widely failing (Albrich et al., Reference Albrich, Rammer and Seidl2020; Turner et al., Reference Turner, Calder, Cumming, Hughes, Jentsch, LaDeau, Lenton, Shuman, Turetsky, Ratajczak, Williams, Williams and Carpenter2020). For instance, the management of exotic species in the field that threaten whole ecosystems are increasingly expensive, technically difficult, and hard to scale up, especially in remote or low-resource areas (IUCN, 2025c). These threats synergize and are inevitably driving many species to extinction in the wild, even in otherwise pristine habitats, especially species with highly specialized microhabitats, or subject to epidemics by exotic pathogens (Fordham, Reference Fordham2024; Keck et al., Reference Keck, Peller, Alther, Barouillet, Blackman, Capo, Chonova, Couton, Fehlinger, Kirschner, Knüsel, Muneret, Oester, Tapolczai, Zhang and Altermatt2025).

Intergenerational justice, biospheric sustainability and species perpetuation

Intergenerational justice supports global initiatives for biospheric sustainability and species perpetuation, as humanity’s rights to a supportive environment in the constitutions of 74% of the world’s nations (Ladle et al., Reference Ladle, Alves-Martins, Malhado, Reyes-Garcia, Courchamp, Minin, Roil, Jaric and Correia2023). These initiatives include international and bioregional strategies for species conservation, habitat protection and wildlife management (Treves et al., Reference Treves, Artelle, Darimont, Lynn, Paquet, Santiago-Ávila, Shaw and Wood2018; Fletcher et al., Reference FletcherR, Ferraz, Kiwango, Komi, Mabele, Marchini, Nygren, Sandroni, Alagona and McInturff2023; Wilson, Reference Wilson2023; Seet and McLellan, Reference Seet and McLellan2024). The inherent value in protecting habitat to provide for species, recreation and other ecosystem services, is widely recognised as a baseline for environmental management (Penjor et al., Reference Penjor, Kaszta, Macdonald and Cushman2021). However, the ongoing modification of the biosphere and failure of programs to fully address the current biodiversity crisis demands novel and powerful initiatives.

Habitat protection, rewilding, enclosures and exotic species

Habitat protection, rewilding, exclosures and other field activities provide for species management as formalized in the IUCN One Plan Approach (Ziegler, Reference Ziegler2023). The protection of biodiversity hotspots included in 2.5% of Earth’s land surface can currently provide habitat for ~45% of bird, mammal, reptile and amphibian species as endemics (Conservation International, 2025), and the planned protection of 30% of terrestrial habitats will provide a haven for many species (COP 16, 2024). Habitat protection, rewilding and exclosures are currently the most reliable and cost-effective techniques for mass species conservation, to provide nature-based cultural and recreational opportunities, and to support biospheric sustainability (Gammon, Reference Gammon2018; Penjor et al., Reference Penjor, Kaszta, Macdonald and Cushman2021; COP 16, 2024; Roshier et al., Reference Roshier, Hotellier, Carter, Kemp, Potts, Hayward and Legge2020). Greater awareness, concern and conservation incentives, by the public and others in the conservation community, for traditionally less studied wildlife species, ‘shadow biodiversity’, are encouraged by rewilding projects (Turton-Hughes et al., Reference Turton-Hughes, Holmes and Hassall2024).

Rewilding is the restoration of habitats damaged through the effects of agriculture, forestry, mining and hydrological changes, such as channelization or wetland destruction (Gammon, Reference Gammon2018). Both habitat and keystone species rewilding can economically and efficiently restore ecosystem function, stabilization and diversification and provide public engagement and recreational opportunities (Gammon, Reference Gammon2018). Multispecies, multiscale habitat suitability models can be used to maximize effectiveness (Penjor et al., Reference Penjor, Kaszta, Macdonald and Cushman2021).

Ecological restoration is increasing the habitat quality and biodiversity of degraded ecosystems. In contrast, rewilding is often within rural landscapes and builds wild ecosystems as assets and infrastructure for biodiversity conservation, climate adaptation, nature-based enterprises, rural regeneration and more broadly the transition to ecological civilization (Mutillod et al., Reference Mutillod, Buisson, Mahy, Jaunatre, Bullock, Tatin and Dutoit2024). Habitat-based rewilding includes reducing or ceasing agriculture and forestry, and strategies like fencing to protect riverine or wetland habitats or remnant vegetation, dechannelizing and removing dams in riverine habitats, and controlling exotic species (Pettorelli et al., Reference Pettorelli, Durant and du Toit2019; Ramsey et al., Reference Ramsey, Anderson and Gormley2023). Exclosure of predators through fencing, or through eradication on islands, has proven effective for endangered species (Roshier et al., Reference Roshier, Hotellier, Carter, Kemp, Potts, Hayward and Legge2020). Community participation has also proven highly effective in supporting biodiversity conservation and biospheric sustainability through direct engagement in education-based initiatives (Gammon, Reference Gammon2018; Cloyd, Reference Cloyd2016).

Projects for rewilded keystone predators include wolves (Canis lupus), Californian condors (Gymnogyps californianus), Iberian lynx (Lynx pardinus), the Tasmanian devil (Sarcophilus harrisii) to mainland Australia, where it has been extinct for millennia, and the black-footed ferret (Mustela nigripes) restored through cloning, are exciting and popular and can only continue to gain momentum (Cowl et al. Reference Cowl, Comizzoli, Appeltant, Bolton, Brown, Holt, Penfold, Swegen, Walker and Williams2024). Rewilded keystone browsing species provide habitat engineers including beavers (Castor fiber) and bison (Bison spp.). Cattle and horses are ecosystem analogues of extinct aurochs and wild horses, and still fill important ecological niches in uncultivated land (Jepson, Reference Jepson2025). Rewilding of deextinct species and the restoration of recently extinct species, offers even more hope for ecosystem stability and biospheric sustainability along with public engagement and support.

Conservation breeding programs

CBPs in zoos have historically tended toward charismatic mammal and bird species. These initatives have now diversified to include a wide range of threatened mammals, birds, reptiles, amphibians, fishes, and both aquatic and terrestrial invertebrates (Conde et al., Reference Conde, Colchero, Gusset, Pearce-Kelly, Byers, Flesness, Browne and Jones2013). CBPs can also include any self-sustaining captive populations; exemplified by established private caregiver’s conservation programs for birds, reptiles and tortoises. Private caregiver’s CBPs can address the conservation needs of small invertebrates, amphibians, freshwater fishes, birds, reptiles, and mammals, as they are easily maintained in small areas. Private caregivers have proven willing, capable, and on their own initiative, are maintaining CBPs for an increasing number of species (Browne et al., Reference Browne, Janzen, Bagaturov and van Houte2018).

However, misinformed, outdated, or ‘official’ policies can restrict inclusive participation in species perpetuation. For example, ‘model’ CBPs for amphibians require a strategy for repopulation into the wild that excludes thousands of species in need and private caregivers (Bradfield et al., Reference Bradfield, Tapley and Johnson2023; IUCN Reference Wren, Borzée, Marcec-Greaves and Angulo2024; Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a,Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb). Furthermore, simple reproduction biotechnologies using cryopreserved sperm can, economically and reliably, maintain genetic diversity of most species if sufficient females are available to provide oocytes even from domestic varieties (morphs) (Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a,Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb).

Reproduction and advanced biotechnologies

Conservation can benefit from reproduction and advanced biotechnologies along with biobanks through:

  1. 1) Lowering costs and increasing the reliability of CBPs.

  2. 2) Fewer individuals needed for each species CBP – more species can be economically housed.

  3. 3) Providing genetic engineering for adaptation to:

    1. a. New environments where global heating strains the physiological limitations of thermoconformers and behavioral thermoregulators, in contrast to physiological thermoregulators.

    2. b. Pathogens.

  4. 4) Perpetuating otherwise neglected species whose habitat is permanently lost through CBPs and biobanks.

  5. 5) Managing genetic diversity for species health and survival.

  6. 6) Restoring species genetic diversity from private caregiver’s collections even from domestic varieties; only one gravid female needed.

  7. 7) Restoring species genetic diversity through biobanked sperm and by cloning cryopreserved nuclei.

Reproduction biotechnologies

The term ‘reproduction biotechnologies’ refers to biotechnologies that facilitate reproduction and the management of genetic diversity. The most basic reproduction biotechnology is habitat simulation to promote reproduction through temperature and lighting regimes, diet, and enclosure size and substrate. Hormonal stimulation can promote reproduction through injection or implants, through topical skin applications, nasal membrane absorption or oral ingestion. Hormones can also promote spermiation or ovulation for the collection of gametes (Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a,Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb). Sperm and oocytes can be sampled for external fertilisation with externally fertilizing amphibians, fishes and invertebrates, or artificial insemination can be used for internally fertilising amphibians (Browne et al., Reference Browne, Silla, Upton, Della-Togna, Marcec-Greaves, Shishova, Uteshev, Proano, Perez, Mansour, Kaurova, Gakhova, Cosson, Dzyuba, Kramarova, McGinnity, Gonzalez, Clulow and Clulow2019), reptiles (Sandfoss et al., Reference Sandfoss, Schwartz, Lindsey, Wigman, Mihalevich, Reichling and Roberts2024), birds (Assersohn et al., Reference Assersohn, Brekke and Hemmings2021; Almeida and Resende Reference Almeida and Resende2023) and mammals (Huijsmans et al., Reference Huijsmans, Hassan, Smits and Van Soom2023). A mammalian example is where the captive breeding of clouded leopards (Neofelis nebulosa) is challenging because of mating incompatibility due to mate fidelity, a high incidence of poor sperm, and unpredictable variability of ovulations in females (Tipkantha et al., Reference Tipkantha, Thuwanut, Maikeaw, Thongphakdee, Yapila, Kamolnorranath, Siriaroonrat, Comizzoli and Chatdarong2017). Artificial insemination with either fresh sperm or biobanked cryopreserved sperm has produced an increasing number of genetically diverse clouded leopard progeny (Tipkantha et al., Reference Tipkantha, Thuwanut, Maikeaw, Thongphakdee, Yapila, Kamolnorranath, Siriaroonrat, Comizzoli and Chatdarong2017; Nashville Zoo, Reference Zoo2019).

Advanced reproduction biotechnologies

Advanced reproduction biotechnologies include cloning, cell propagation, and genetic engineering (Shoop et al., Reference Shoop, Bacman, Barrera-Paez and Moraes2023; Cowl et al., Reference Cowl, Comizzoli, Appeltant, Bolton, Brown, Holt, Penfold, Swegen, Walker and Williams2024), and bioartificial organs including artificial wombs (Shanmugam et al., Reference Shanmugam, Anitha, Souresh, Madhavan, Sampath, Venugopal and Saravanan2023; Fox-Skelly, Reference Fox-Skelly2024). Dependent on the taxon, cloning can be achieved through twinning, embryo splitting, and nuclear transfer. Homocytoplasmic cloning is where the nucleus donor and surrogate female for eggs are from one species. Homocytoplasmic cloning provides wildlife conservation and perpetuation, human fertility, improved livestock and pet restoration. Homocytoplasmic cloning does not produce adults identical to the nucleus donor due to psychological and epigenetic effects (Cowl et al., Reference Cowl, Comizzoli, Appeltant, Bolton, Brown, Holt, Penfold, Swegen, Walker and Williams2024).

Homocytoplasmic cloning is generally accepted within the traditional conservation community, where cloning and biobanking are increasing the genetic diversity of the northern rhino (Ceratotherium simum cottoni) where no living males remain. Eggs from the two remaining females were fertilized using biobanked sperm. The resulting embryos are frozen and biobanked until surrogate mothers from the other subspecies, the southern white rhino (C. s. simum), are available. Males could also plausibly be cloned from biobanked tissue (Cowl et al., Reference Cowl, Comizzoli, Appeltant, Bolton, Brown, Holt, Penfold, Swegen, Walker and Williams2024; Wilder et al., Reference Wilder, Steiner, Hendricks, Haller, Kim, Korody and Ryder2024). In 1987, the imminent extinction of the black-footed ferret (M. nigripes) promoted a very successful CBP seeding many successful repopulations, resulting in an IUCN status downgrade from Critically Endangered (CR) to Endangered (EN). Black-footed ferrets are vulnerable to pathogens, however, cloning from the biobanked cells of a long-dead female and restoring her unique immune system will increase the species survival and the projects long-term viability (Sullivan, Reference Sullivan2024).

Biotechnologies for de-extinction and species restoration, where no males or females remain, can recover species through both homocytoplasmic cloning, and heterocytoplasmic cloning with closely related species, where a nucleocytoplasmic hybrid is created with the donor’s nucleus and the surrogate’s egg from different species. Heterocytoplasmic cloned frogs have reproduced to the second generation (Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a). Nuclei-cytoplasmic incompatibility can occur, but cell organelles such as mitochondria can be replaced or genetically engineered to match the donor nucleus (Caicedo et al., Reference Caicedo, Aponte, Cabrera, Hidalgo and Khoury2017). There are second generations in frogs and salamanders from heterocytoplasmic clones but not from other taxa (Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a).

Genetic engineering through CRISPR enables the precise, efficient, and relatively inexpensive editing of DNA to produce genetically modified organisms to develop new hybrid phenotypes with desirable traits. CRISPR has controversially produced functioning humans from eggs, and CRISPR by injection for disease management and human enhancement at any life stage is under development and application (He, Reference He2020). The first nascent de-extinct species is the ancient dire wolf from the merging of the grey wolf and dire wolf genetics. These first CRISPR puppies are being habituated for wildlife management, are semi-free ranging, and still growing beyond the size of grey wolves to provide a recovered keystone predator (Colossal Biosciences, 2025; Gedman et al., Reference Gedman, Pirovich, Oppenheimer, Hyseni, Cassatt-Johnstone, Alexandre, Troy, Chao, Fedrigo, Hoyt, Grady, Sacco, Seligmann, Dash, Chokshi, Knecht, Papizan, Miyawaki, Bocklandt, Kelher, Ord, Lin, Peecook, Perri, Sinding, Larson, Meachen, Dalén, von Holdt, Gilbert, Mason, O’Neill, Karlsson, Cantarel, George, Martin, Church, Lamm and Shapiro2025).

The application of these technologies in medicine and wildlife conservation is limited by the need for surrogate mothers, particularly with birds, because fertilisation is deep in the fallopian tubes and where the target cloned species’ egg volume is too different to those of the egg donor. Bioartificial wombs enable individuals to be restored, from fresh or cryopreserved eggs or embryos, without the need for a conventional surrogate mother. The use of humidicribs for advanced fetus survival is a medical convention (Fox-Skelly, Reference Fox-Skelly2024), and progress on artificial placenta and wombs is predicted to soon nurture early fetus development (Shanmugam et al., Reference Shanmugam, Anitha, Souresh, Madhavan, Sampath, Venugopal and Saravanan2023; Fox-Skelly, Reference Fox-Skelly2024). Artificial placenta could benefit population management in countries with unsustainably low birth rates with China a major developer of robotic artificial placenta for humans, and Colossal for wildlife. Biobanking would also enable the efficient transportation of biomaterials, such as sperm, oocytes, embryos or larvae, on long journeys through space.

Species restoration, de-extinction, and terraforming

Environmental intergenerational justice includes a moral responsibility, where practicable, to work toward de-extincting lost Pleistocene megafauna and restoring recently lost species. Species restoration is the production of living individuals of a recently extinct species from biobanked living biomaterials. De-extinction is the process of creating nucleocytoplasmic chimeras between extant and extinct species, using DNA and genetic engineering, that are morphological simulacrums, and ecological equivalents of the target species (Odenbaugh, Reference Odenbaugh2023).

Restoration programs for recently extinct species include the Australian thylacine (Thylacinus cynocephalus), where the last individuals surviving in zoos were killed by colonial government decree, passenger pigeons (Ectopistes migratorius), dodos (Raphus cucullatus) and moas (order Dinornithiformes). De-extinction is the production of living individuals of megafauna or iconic fauna from the late Pleistocene. The first late Pleistocene species on the path to full de-extinction is the dire wolf (Aenocyon dirus) in 2025, with the first steps toward baby woolly mammoths (Mammuthus primigenius) expected in 2027 (Colossal Biosciences, 2025). A range of other extinct fauna may also be de-extincted. As our knowledge of genetics increases, AI-assisted CRISPR promises novel combinations of species genetics to provide display or companion animals, or ecologically functional species in novel anthropogenic environments on Earth or in space. All genetically modified organisms are subject to patent under US laws, and the patenting of de-extinct species using CRISPR, or similar technologies, are apparently included under this patent but this legality has not been tested (Regalado, Reference Regalado2025).

There are a wide range of philosophical, ethical, and legal viewpoints concerning de-extinction and species restoration involve the cultural or ecological roles of de-extinct species in biospheric sustainability (Sandler, Reference Sandler2020; Odenbaugh, Reference Odenbaugh2023). The rewilding of de-extinct species, similarly to rewilding extant species, can support ecosystem restoration, complexity, and integrity.

Unfortunately, misinformation regarding de-extinction presents woolly mammoths and dire wolves as ‘ice age’ fauna whose habitat is long gone and cannot meaningfully contribute to biospheric sustainability. However, woolly mammoths are prioritized for de-extinction, because their rewilding into northern regions could reduce global heating and permafrost melt, a major threat to biodiversity and biospheric sustainability, through their browsing reducing shrub and tree cover (Revive and Restore, 2025). Dire wolves were generalists and ranged across North and South America in nearly every habitat. Dire wolves are perfect predators to maintain the ecological balance of refaunated northern latitude ecosystems. Dire wolves targeted woolly mammoths, and their predation would keep woolly mammoths wild populations healthy, along with the populations of other remaining northern latitude browsing species (IELC, 2025).

Biobanking and species perpetuation

Biobanking supports species in the wild and can perpetuate species whose habitat is irretrievably lost (Bolton et al., Reference Bolton, Mooney, Pettit, Bolton, Morgan, Drake, Appeltant, Walker, Gillis and Hvilsom2022). The sixth mass extinction has promoted an exponential increase in the number of wildlife biobanking publications since 2010. Biobanking is best conducted regionally to save international transportation costs of biomaterials, to avoid export regulations, and to encourage public support and participation (Chen and Mastromonaco, Reference Chen and Mastromonaco2025). Unfortunately, there has been slow progress on the internationalisation of wildlife biobanking (Mukanov et al., Reference Mukanov, Khapilina, Manabayeva, Kakimzhanova, Khassenova, Kubentayev, Zholdybayeva, Khassenov, Shevtsov, Tarlykov, Mukantayev and Ramankulov2024). Wildlife biobanking would benefit from: (1) more wildlife biobanks in high biodiversity but low-income countries, (2) focusing publicity on human demographies amenable to biobanking the target species, (3) avoiding research unless specifically targeted, (4) providing excellent biobanking facilities and management and (5) garnering financial support from sponsorship and from species projects (Chen and Mastromonaco, Reference Chen and Mastromonaco2025). A globally inclusive biobanking initiative could lobby for wildlife biobanking as a critical global facility deserving funding from major environmental fund managers (Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a,Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb; Mukanov et al., Reference Mukanov, Khapilina, Manabayeva, Kakimzhanova, Khassenova, Kubentayev, Zholdybayeva, Khassenov, Shevtsov, Tarlykov, Mukantayev and Ramankulov2024).

Cultural and bureaucratic are support is not always evident for the implementation of reproduction and advanced biotechnologies for the benefit of wildlife. International guidelines are not binding and sometimes contradictory, biased, or anachronistic. The IUCN One Plan approach to conserve wildlife supports the use of reproductive biotechnologies including biobanking (Ziegler, Reference Ziegler2023). However, the IUCN also favours CBPs only for ‘species that can be returned to the wild’. This mandate denies intergenerational justice through undermining support for the biobanking and conservation breeding of, for example, the 880 Critically Endangered amphibian species many of whose habitats will largely become unsupportive over the coming decades (Bradfield et al., Reference Bradfield, Tapley and Johnson2023). Neglecting these or any species is an unnecessary and tragic loss for future generations (Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a,Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb). European Association of Zoos and Aquariums mandates support using reproduction and advanced biotechnologies only to support their current programs, including research (EAZA 2024).

Bias against biotechnologies is evidenced when a 2024 conservation-based review on freshwater mussels’ conservation did not mention biobanking the 82 CR species, even though the larvae of other molluscs have been successfully biobanked (Aldridge et al., Reference Aldridge, Ollard, Bespalaya, Bolotov, Douda, Geist, Haag, Klunzinger, Lopes-Lima, Mlambo, Riccardi, Sousa, Strayer, Torres, Vaughn, Zając and Zieritz2020). Both anachronism and bias are shown in ‘Conservation Evidence’, in What Works in Conservation, Table 1.13.2, which categorized amphibian sperm biobanking as ‘Unlikely to be beneficial’ just above the lowest ‘Likely to be ineffective or harmful’. Their references ended in 2016 (Smith et al., Reference Smith, Meredith and Sutherland2021). In fact, the release of CR amphibians from eggs fertilized with biobanked sperm is already playing an important and increasing role in amphibian species management (Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a,Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb). Perhaps the most disingenuous argument against using reproduction and advanced biotechnologies to assure species perpetuation is that their financial or other support will hamper or obstruct field conservation, either by competing for funds or by reducing cultural support. This disingenuous mantra has been repeated over decades by various authors, but has always been unevidenced (EAZA, 2024; Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a,Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb). Furthermore, biobanking and deextinction projects are a major supporter of exemplary field projects through expanding community awareness and participation (Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a,Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb; Colossal Biosciences, 2025). In the case of amphibians, regional species assessments in Global South countries by local ecologist recommended biobanking for all Critically Endangered species (Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a,Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb).

Biobanking and restoration of Critically Endangered species

Critically Endangered species facing imminent extinction in the wild demand CBPs supported by biobanking to assure their survival (Dee and Spronk, Reference Dee and Spronk2025). Freshwater CR molluscs and crustaceans are major taxon in need of reproduction biotechnologies and biobankings. Vertebrates include freshwater fishes, amphibians, terrestrial reptiles, birds, and mammals (Table 1). Efficient wildlife biobanking is based on accurate information concerning the number of regional CR species most in need. This information can then be used to locate biobanking facilities to focus on regional species (Dee and Spronk, Reference Dee and Spronk2025).

Table 1. Taxa with substantial publications on the use of reproductive and advanced biotechnologies, biomaterials that survive cryopreservation, the enhancement of genetic diversity through CRISPR in addition to cloning

* The possibilities for freshwater mussels and freshwater crayfish are taken from their marine equivalents. Colossal Biosciences res = research by Colossal Biosciences (Colossal Biosciences, 2025).

Institutional support for species CBPs and biobanks also depends on regional emphasis, speciesism and public perception, available facilities and biotechnologies, and importantly, cost balanced against institutional, species, and environmental, benefits and species candidacy. Speciesism is the favouring of one species over another because of virtuous characteristics such as interesting behaviour, colourful or exotic appearance, or rarity, or with these combined. Speciesism in respect to appeal would be expected to be more common in private caregivers’ collections than in zoos, as zoos’ CBPs would generally favour species dependent on public policy and perception. Speciesism in respect to institutional investment is plausibly best illustrated by over US$20 milllon being invested in a rhinoceros sub-species, the northern white rhinoceros (Ceratotherium simum cottoni) in an ongoing project to clone, using the two remaining females from cryopreserved cells, as sperm was never cryopreserved.

This level of funding could have established many CBPs backed by establishing and supporting biobanks in biodiversity regions in the global south countries and plausibly perpetuated scores or hundreds of amphibian and fish species in high benefit projects. Taxonomic speciesism, without evidence, has also been recently published where lower vertebrates, mistakenly categorised as fish and amphibians, rather than correctly being only fish, in comparison to higher vertebrates (correctly being tetrapods, amphibians, reptiles, birds, and mammals), are presented as lacking public appeal (Holt and Comizzoli Reference Holt and Comizzoli2024). Holt and Comizzoli (Reference Holt and Comizzoli2024) also consider that spending resources on ‘vanishing small’ populations, i.e. CE populations, in third-world countries is unrealistic (The term third world refers to countries unaligned with the USA or the Soviet Union during the Cold-War from 1947 to 1991). Holt and Comizzoli (Reference Holt and Comizzoli2024) presumably refer to the Global South; a category that includes a spectrum of countries from economic and technical leaders like China and India to economically challenged countries.

The term ‘vanishing small populations’ presumably refers to Critically Endangered species such as the 825 amphibians or 805 fish, where, for example, more than 400 amphibian species are already included in in-range or out of range CBPs, and where CBPs supported by research and sperm biobanking already exist in Ecuador and Panama and possibly others. In any case, the advancement of CBPs with biobanks will be energised and informed by the participation of enthusiasts ranging from regional private CBPs, to international private caregivers, highly formalised programs in zoos, and their collaborations. The need for a balanced taxonomic approach, impartial to speciesism and geopolitical bias, can only be achieved through a global organisation representing all regional biopolities (Browne et al., Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a,Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb).

Data-deficient (DD) species, because of their rarity, have a greater average critical endangerment than other species categories (IUCN, 2025b). However, a low estimate of CR species within DD species, provides a more realistic estimate of the number of CR species than the IUCN assessment. Throughout this review the number of CR species includes an average estimate CR species among DD species. The total number of 2,750 CR terrestrial/freshwater species includes 82 freshwater mussels, 55 freshwater crayfish, 805 freshwater fish, 825 amphibians, 488 reptiles, 224 birds and 271 mammals. More inclusive wildlife conservation breeding programs and wildlife biobanking resources/facilities are needed to perpetuate these species; a goal fully attainable for amphibians and smaller fishes with the inclusion of private caregivers, plausible for mussels and crayfish with ongoing research and development, and applicable for many reptiles, birds, and mammals. However, generalisations based on mammals based on cloning (Holt and Comizzoli, Reference Holt and Comizzoli2024).

Invertebrates for terrestrial/freshwater wildlife biobanking include 82 (17%) CR freshwater mussels and 55 (10%) CR freshwater crayfish (Fluet-Chouinard et al., Reference Fluet-Chouinard, Stocker, Zhang, Malhotra, Melton, Poulter, Kaplan, Goldewijk, Siebert, Minayeva, Hugelius, Joosten, Barthelmes, Prigent, Aires, Hoyt, Davidson, Finlayson, Lehner, Jackson and McIntyre2023). No publications describe the use of biobanked material to recover freshwater mussels or freshwater crayfish. Nevertheless, biotechnologies that recover individuals from sperm, embryos, or larvae of commercial marine bivalves could provide for freshwater mussels, and those for marine shrimp larvae for freshwater crayfish are being trialed (Sandeman and Sandeman, Reference Sandeman and Sandeman1991; Haagen and Blackburn, Reference Haagen and Blackburn2024; Heres et al., Reference Heres, Troncoso and Paredes2022).

Freshwater fishes include 880 CR species and 6% of total species, and amphibians 889 CR species or 11% of total species. These high percentages reflect the destruction of stream and river benthic habitats through siltation, and with amphibians their general dependence on a biphasic aquatic and fully terrestrial life history (Fluet-Chouinard et al. Reference Fluet-Chouinard, Stocker, Zhang, Malhotra, Melton, Poulter, Kaplan, Goldewijk, Siebert, Minayeva, Hugelius, Joosten, Barthelmes, Prigent, Aires, Hoyt, Davidson, Finlayson, Lehner, Jackson and McIntyre2023; Luedtke et al., Reference Luedtke, Chanson, Neam, Hobin, Maciel, Catenazzi, Borzée, Hamidy, Aowphol, Jean, Sosa-Bartuano, Fong, de Silva, Fouquet, Angulo, Kidov, Saravia, Diesmos, Tominaga, Shrestha, Gratwicke, Tjaturadi, Rivera, Almazán, Señaris, Chandramouli, Strüssmann, CFC, Azat, Hoskin, Hilton-Taylor, Whyte, Gower, Olson, Cisneros-Heredia, Santana, Nagombi, Najafi-Majd, ESH, Bolaño, Xie, Brusquetti, Álvarez, Andreone, Glaw, Castañeda, Kraus, Parra-Olea, Chaves, Medina-RangelGF, Ortega-Andrade, Machado, Das, Dias, Urbina-Cardona, Crnobrnja-Isailović, Yang, Jianping, Wangyal, JJL, Measey, Vasudevan, Chan, Gururaja, Ovaska, Warr, Canseco-Márquez, Toledo, Díaz, MMH, Meegaskumbura, Acevedo, Napoli, Ponce, Vaira, Lampo, Yánez-Muñoz, Scherz, Rödel, Matsui, Fildor, Kusrini, Ahmed, Rais, Kouamé, García, Gonwouo, Burrowes, Imbun, Wagner, PJR, Joglar, Auguste, Brandão, Ibáñez, von May, Hedges, Biju, Ganesh, Wren, Das, Flechas, Ashpole, Robleto-Hernández, Loader, Incháustegui, Garg, Phimmachak, Richards, Slimani, Osborne-Naikatini, PTF, Condez, de Carvalho, Cutajar, Pierson, Nguyen, Kaya, Yuan, Long, Langhammer and Stuart2023). Most freshwater fishes and amphibians have a common reproduction mode of external fertilization, and the sperm and oocytes of most fishes and amphibians are easily collected, biobanked and individuals produced through external fertilization. Fishes and amphibians’ large fatty eggs and early larvae have resisted cryopreservation, and live females are needed to contribute fresh oocytes for fertilization or cloning (Browne et al., Reference Browne, Silla, Upton, Della-Togna, Marcec-Greaves, Shishova, Uteshev, Proano, Perez, Mansour, Kaurova, Gakhova, Cosson, Dzyuba, Kramarova, McGinnity, Gonzalez, Clulow and Clulow2019, Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Bagaturov, Vaissi, Heshmatzad, Janzen, Swegen, Strand and McGinnity2024a Reference Browne, Luo, Wang, Mansour, Kaurova, Gakhova, Shishova, Uteshev, Kramarova, Venu, Vaissi, Taheri-Khas, Heshmatzad, Bagaturov, Janzen, Naranjo, Swegen, Strand, McGinnity and Dunceb). This need is not an impediment and offers the opportunity to involve zoos, other institutions, and privates, to participate by providing oocytes from a few females.

Amniotes, reptiles, birds and mammals, comprise 983 CR species in total. The egg-laying amniotes comprise 712 CR species in total, including 488 (5%) CR reptile species and 224 (2%) CR bird species (number and percentage of total species, respectively). The higher percentage of CE reptile species compared to bird species reflects reptiles’ limited mobility and lower thermal homeostasis, particularly in an era of global heating. Both reptiles and birds have a common reproductive mode of internal fertilization and laying amniotic eggs, although some reptiles give birth to live young. Because egg formation begins high in the reproductive tract, the use of reproduction technologies is currently limited to artificial insemination with fresh or cryopreserved sperm (Castillo et al., Reference Castillo, Lenzi, Pirone, Baglini, Russo, Soglia, Schiavone and di Cossato2021). This technique is widely used commercially for poultry and experimentally in reptiles, including tortoises (Ravida et al., Reference Ravida, Young, Gokool and Durrant2016), snakes (Sandfoss et al., Reference Sandfoss, Schwartz, Lindsey, Wigman, Mihalevich, Reichling and Roberts2024), crocodilians for commercial production (Johnston et al., Reference Johnston, Qualischefski, Cooper, McLeod, Lever, Nixon, Anderson, Hobbs, Gosálvez, López-Fernández and Keeley2017) and lizards (Campbell et al., Reference Campbell, Café, Upton, Doody, Nixon, Clulow and Clulow2020). Colossal Biosciences is overcoming the challenges of CRISPR engineering, heterocytoplasmic cloning and development in surrogates, to de-extinct bird species from ancient DNA (Colossal Biosciences, 2025). A technique that would even more easily apply to species restoration from biobanked material.

Mammals include 271 (4%) CR species. Mammals internal development through a placenta make mammals the most amenable group for the cryopreservation of oocytes and embryos and for external fertilization (Bolton et al., Reference Bolton, Mooney, Pettit, Bolton, Morgan, Drake, Appeltant, Walker, Gillis and Hvilsom2022). The cryopreservation of mammalian sperm has not yet been achieved for all species (Bolton et al., Reference Bolton, Mooney, Pettit, Bolton, Morgan, Drake, Appeltant, Walker, Gillis and Hvilsom2022; Rodger and Clulow, Reference Rodger and Clulow2022) in external fertilization still being optimised (Oliveira Santos et al., Reference Oliveira Santos, Silva and Pereira2022). Mammals are amenable to CRISPR and cloning both for commercial and conservation purposes (Brand et al., Reference Brand, Phelan, Plichta, Ryder and Wiese2025). The biobanking of somatic cell lines from tissues is costly and involves animal welfare issues. However, research on establishing pluripotent cell lines from blood is advancing. When established this technique will enable somatic cells of many species to be biobanked economically and efficiently as taking blood is a standard veterinary procedure (Colossal Biosciences, 2025). The longevity of cryopreserved cells for cloning was demonstrated by the production of Endangered Przewalski’s Horse, Equus przewalskii, from historically cryopreserved cells (Novak et al., Reference Novak, Ryder, Houck, Walker, Russell, Russell, Walker, Arenivas, Aston, Veneklasen, Ivy, Koepfli, Rusnak, Simek, Zhuk, Putnam and Phelan2025).

In summary, sperm can generally be cryopreserved and perpetuate genetic diversity. However, only mammalian oocytes can be cryopreserved. Most species somatic cells can be cryopreserved, and the embryos and larvae of molluscs, crustaceans, and mammals. Genetic engineering through CRISPR has only been widely applied to mammals, but is under research and development for birds and reptiles. Homocytoplasmic cloning has succeeded with freshwater fishes, amphibians, and mammals Table 1. Amphibian and fish sperm are technically the most suitable for cryopreservation, as simple protocols cover most species irrespective of their reproductive biology with ongoing research continually improving efficacy (Howard et al., Reference Howard, Byrne, O’Brien, Hobbs and Silla2025; Taheri-Khas et al., Reference Taheri-Khas, Gharzi, Vaissi, Heshmatzad and Kalhori2025). They have also proven amenable to intracytoplasmic sperm injection (ICSI) even when using 20 year old cryopreserved sperm (Péricard et al., Reference Péricard, Le Mével, Marquis, Locatelli and Coen2025). Protocols for birds and reptiles are advanced with artificial insemination achieved in a few species. Some mammals are still challenging despite considerable research expenditure, sometimes over decades. Colossal Biocience’s research potential is predicted to solve many challenges with mammals, reptiles, or birds. These advances, along with current biobanking potentials, especially for freshwater fish and amphibians, cement the foundation of ‘species deextinction and restoration’ as a new scientific and technical field that challenges the present while providing for the future.

Ethics, advanced reproduction biotechnologies, and humanities future

The utilization of advanced reproduction technologies raises intriguing ethical issues as generational justice merges toward intergenerational justice. For instance, ethical issues involve the human long-term physical and social consequences of genetic engineering including transhumanism (Rueda, Reference Rueda2024). Other considerations are genetic inequality, social stratification and marginalization, unpredictable consequences of genetic modifications, the commodification of human life, theological concerns with natural processes and the sanctity of life, and a lack of global consensus on regulation to avoid harm (Anomaly and Johnson, Reference Anomaly, Johnson, Clarke, Savulescu, Coady, Giubilini and Sanyal2016).

Some conventional ethical perspectives could be irrelevant to future generations when supplanted by their novel cultural values. For instance, some countries with declining populations are embracing the use robotic bioartificial wombs, or adapting to population decline by using robots to replace humans. Genetic engineering for human enhancement is rapidly gaining traction. Designer babies could have improved health, happiness, and motivation along with high social skills, and fostering these or other virtues could become the ethical norm (Anomaly and Johnson, Reference Anomaly, Johnson, Clarke, Savulescu, Coady, Giubilini and Sanyal2016; Singh et al., Reference Singh, Kanth and Bishnoi2024). There is a wide range of ethical and legal viewpoints supporting or questioning the role of genetic engineering for the de-extinction of ancient species or the restoration of recently extinct species. The main current ethical issues are the cultural or ecological roles of de-extinct species and animal rights and welfare (Sandler, Reference Sandler2020; Odenbaugh, Reference Odenbaugh2023). In any case, the utilization of advanced reproduction biotechnologies will be driven by future human needs and opportunities rather than by conventional ethical considerations (Anomaly and Johnson, Reference Anomaly, Johnson, Clarke, Savulescu, Coady, Giubilini and Sanyal2016)

A tool to balance ethics, biotechnological research, media and communication is provided by the ETHical ASsessment Tool (Seet and McLellan, Reference Seet and McLellan2024).

Main findings

  • Intergenerational justice provides a judicial, ethical, and philosophical foundation for the utilisation of reproduction and advanced biotechnologies.

  • The sixth mass extinction will increase exponentially over the coming decades.

  • Reproduction technologies and wildlife biobanks are increasingly used for species management.

  • There are 82 freshwater mussel species, 55 freshwater crayfishes, 805 freshwater fishes, 825 amphibians, 488 reptiles, 224 birds and 271 mammals in immediate need of biobanking.

  • Greater wildlife biobanking resources/facilities are desperately needed for these species.

  • Reproduction and advanced biotechnologies provide for species management in wildlife biobanks.

  • Advanced reproduction biotechnologies also provide biospheric sustainability through de-extinction or species restoration.

  • Reproduction and advanced biotechnologies can also benefit human health, agriculture, and efficient resource utilization.

Conclusion

Earth’s ecosystems are undergoing irreversible anthropogenic changes resulting in terraforming and an impending a sixth mass extinction. However, although some species may be lost, many will survive in the vast network of protected habitats, and those that cannot can be perpetuated through the triad of conservation breeding programs, reproduction and advanced biotechnologies, and biobanks. These species now include invertebrates, freshwater fish and amphibians, and potentially many reptiles, birds, and mammals. Although rarely referred to in the conservation literature, intergenerational justice is a core ethical and legal principle that supports the legacy of benefit toward humanity’s future. A legacy that includes the perpetuation of species and their genetic diversity as a key component of biospheric sustainability. Many species can be conserved for the immediate future through habitat protection and rewilding alone. However, reproduction and advanced biotechnologies offer unprecedented opportunities for species management in the wild, for species perpetuation in conservation breeding programs and in biobanks, and for biospheric sustainability. Harnessing the full potentials of these biotechnologies requires a transformative realignment of conservation management based on efficiently and reliably achieving environmental intergenerational justice. Advanced reproduction biotechnologies for wildlife are focused on the de-extinction, restoration of keystone and iconic bird and mammal species, and the development of novel genotypes to provide resistance to environmental threats. A sufficient number of wildlife biobanks must be built and supported in species-diverse and underdeveloped regions. All wildlife biotechnologies contribute to the well-being of humanity through improving health, agricultural production and resource efficacy and, thus, a more sustainable biosphere.

Open peer review

To view the open peer review materials for this article, please visit http://doi.org/10.1017/ext.2025.10005.

Data availability statement

Data used in this review is publicly available from the IUCN Redlist, or through referenced articles.

Acknowledgments

This review acknowledges the countless hours of work by devoted researchers throughout the world who believe in providing for the future of humanity through biospheric sustainability and species perpetuation.

Author contribution

This review was written solely by Robert Browne with no external assistance.

Financial support

This review has had no financial support.

Competing interests

The author is not engaged in research, is semi-retired and has no possible conflict of interest, financial or career interests.

References

Albrich, K, Rammer, W and Seidl, R (2020) Climate change causes critical transitions and irreversible alterations of mountain forests. Global Change Biology 26 (7), 40134027. https://doi.org/10.1111/gcb.15118Google Scholar
Aldridge, DC, Ollard, IS, Bespalaya, YV, Bolotov, IN, Douda, K, Geist, J, Haag, WR, Klunzinger, MW, Lopes-Lima, M, Mlambo, MC, Riccardi, N, Sousa, R, Strayer, DL, Torres, SH, Vaughn, CC, Zając, T and Zieritz, A (2020) Freshwater mussel conservation: A global horizon scan of emerging threats and opportunities. Global Change Biology 29 (3), 575589. https://doi.org/10.1111/gcb.16510Google Scholar
Almeida, J and Resende, OA (2023) Artificial insemination in non-domestic birds: A review. Research, Society, and Development 12 (7), e10712742588 (in Portuguese). https://doi.org/10.33448/rsd-v12i7.42588Google Scholar
Anomaly, J and Johnson, T (2016) The ethics of genetic enhancement: Key concepts and future prospects. In Clarke, S, Savulescu, J, Coady, CAJ, Giubilini, A and Sanyal, S (eds), The Ethics of Human Enhancement: Understanding the Debate. Oxford, United Kingdom: Oxford University Press, pp. 143151.Google Scholar
Assersohn, K, Brekke, P and Hemmings, N (2021) Physiological factors influencing female fertility in birds. Royal Society Open Society 8 (7), 202274. https://doi.org/10.1098/rsos.202274Google Scholar
Barnowsky, AD, Matzke, N, Tomiya, S, Wogan, GOU, Swartz, B, Quental, TB, Marshall, C, McGuire, JL, Lindsey, EL, Maguire, KC, Mersey, B and Ferrer, EA (2011) Has the earth’s sixth mass extinction already arrived? Nature 471, 5157. https://doi.org/10.1038/nature09678Google Scholar
Barry, B (1997) Sustainability and intergenerational justice. Theoria 89, 4365Google Scholar
Battle-Fisher, M (2020) Transhuman, posthuman and complex humanness in the 21st century, ethics. Medicine and Public Health 13, 100400. https://doi.org/10.1016/j.jemep.2019.07.001Google Scholar
Biasetti, P, Mercugliano, E, Schrade, L, Spiriti, MM, Göritz, F, Holtze, S, Seet, S, Galli, C, Stejskal, J, Colleoni, S, Čižmár, D, Simone, R, Hildebrandt, TB and de Mori, B (2024) Ethical assessment of genome resource banking (GRB) in wildlife conservation. Cryobiology 117, 104956. https://doi.org/10.1016/j.cryobiol.2024.104956Google Scholar
Bolton, RL, Mooney, A, Pettit, MT, Bolton, AE, Morgan, L, Drake, GJ, Appeltant, R, Walker, SL, Gillis, JD and Hvilsom, C (2022) Resurrecting biodiversity: Advanced assisted reproductive technologies and biobanking. Reproduction and Fertility 3 (3), R121R146. https://doi.org/10.1530/RAF-22-0005Google Scholar
Bradfield, KS, Tapley, B and Johnson, B (2023) Amphibians and conservation breeding programmes: How do we determine who should be on the ark? Biodiversity and Conservation 32, 885898. https://doi.org/10.1007/s10531-022-02524-4Google Scholar
Bradshaw, CJA, Ehrlich, PR, Beattie, A, Ceballos, G, Crist, E, Diamond, J, Dirzo, R, Ehrlich, AH, Harte, J, Harte, ME, Pyke, G, Raven, PH, Ripple, WJ, Saltré, F, Turnbull, C, Wackernagel, M and Blumstein, DT (2021) Underestimating the challenges of avoiding a ghastly future. Frontiers in Conservation Science 2021 (1), e615419. https://doi.org/10.3389/fcosc.2020.615419Google Scholar
Brand, S, Phelan, R, Plichta, S, Ryder, OA and Wiese, RJ (2025) Towards practical conservation cloning: Understanding the dichotomy between the histories of commercial and conservation cloning. Animals 15(7), 989. https://doi.org/10.3390/ani15070989.Google Scholar
Browne, RK, Janzen, P, Bagaturov, M and van Houte, DK (2018) Amphibian keeper conservation breeding programs. Journal of Zoological Research 2 (1), 2946. https://doi.org/10.22259/2637-5575.0201005Google Scholar
Browne, RK, Luo, Q, Wang, P, Mansour, N, Kaurova, SA, Gakhova, EN, Shishova, NV, Uteshev, VK, Kramarova, LI, Venu, G, Bagaturov, MF, Vaissi, S, Heshmatzad, P, Janzen, P, Swegen, A, Strand, J and McGinnity, D (2024a) The sixth mass extinction and amphibian species sustainability through reproduction and advanced biotechnologies, biobanking of germplasm and somatic cells, and conservation breeding programs (RBCs). Animals 14, 3395. https://doi.org/10.3390/ani14233395Google Scholar
Browne, RK, Luo, Q, Wang, P, Mansour, N, Kaurova, SA, Gakhova, EN, Shishova, NV, Uteshev, VK, Kramarova, LI, Venu, G, Vaissi, S, Taheri-Khas, Z, Heshmatzad, P, Bagaturov, MF, Janzen, P, Naranjo, RE, Swegen, A, Strand, J, McGinnity, D and Dunce, I (2024b) Ecological civilisation and amphibian sustainability through reproduction biotechnologies, biobanking, and conservation breeding programs (RBCs). Animals 14, 1455, https://doi.org/10.3390/ani14101455Google Scholar
Browne, RK, Silla, AJ, Upton, R, Della-Togna, G, Marcec-Greaves, R, Shishova, NV, Uteshev, VK, Proano, B, Perez, OD, Mansour, N, Kaurova, SA, Gakhova, EN, Cosson, J, Dzyuba, B, Kramarova, LI, McGinnity, D, Gonzalez, M, Clulow, J and Clulow, S (2019) Sperm collection and storage for the sustainable management of amphibian biodiversity. Theriogenology 133, 187200. https://doi.org/10.1016/j.theriogenology.2019.03.035Google Scholar
Butzer, K (2012) Collapse, environment, and society. PNAS 109 (10), 36323639. https://doi.org/10.1073/pnas.1114845109Google Scholar
Caicedo, A, Aponte, PM, Cabrera, F, Hidalgo, C and Khoury, M (2017) Artificial mitochondria transfer: Current challenges, advances, and future applications. Stem Cells International 2017, 7610414. https://doi.org/10.1155/2017/7610414Google Scholar
Campbell, L, Café, SL, Upton, R, Doody, JS, Nixon, B, Clulow, J and Clulow, S (2020) A model protocol for the cryopreservation and recovery of motile lizard sperm using the phosphodiesterase inhibitor caffeine. Conservation Physiology 22, 8(1), coaa044. https://doi.org/10.1093/conphys/coaa044.Google Scholar
Cardillo, M (2023) Phylogenetic diversity in conservation: A brief history, critical overview, and challenges to progress. Cambridge Prisms: Extinction 1, e11. https://doi.org/10.1017/ext.2023.8Google Scholar
Castillo, A, Lenzi, C, Pirone, A, Baglini, A, Russo, C, Soglia, D, Schiavone, A and di Cossato, MMF (2021) From the semen collection method to the hatchlings: The use of cryopreserved sperm from pheasants fed an antioxidant-enriched diet. Animals 11, 2624. https://doi.org/10.3390/ani11092624Google Scholar
Chen, DM and Mastromonaco, DF (2025) The evolution of conservation biobanking: A literature review and analysis of terminology, taxa, location, and strategy of wildlife biobanks over time. Biopreservation and Biobanking 1, b11. https://doi.org/10.1089/bio.2024.0151.Google Scholar
Cloyd, AA (2016) Reimagining rewilding: A response to Jørgensen, Prior, and Ward. Geoforum 76, 5962. https://doi.org/10.1016/j.geoforum.2016.08.013Google Scholar
Colossal Biosciences (2025) https://colossal.com/ (accessed 3rd August 2025).Google Scholar
Conde, DA, Colchero, F, Gusset, M, Pearce-Kelly, P, Byers, O, Flesness, N, Browne, RK and Jones, OR (2013) Zoos through the lens of the IUCN red list: A global metapopulation approach to support conservation breeding programs. PLoS One 8 (12), e80311. https://doi.org/10.1371/journal.pone.0080311Google Scholar
Conradi, T, Eggli, U, Kreft, H, Schweiger, AH, Weigelt, P and Higgins, SI (2024) Reassessment of the risks of climate change for terrestrial ecosystems. Nature Ecology and Evolution 8, 888900. https://doi.org/10.1038/s41559-024-02333-8Google Scholar
Conservation International (2025) Biodiversity Hotspots. Targeted Investment in Nature’s most Important Places. https://www.conservation.org/priorities/biodiversity-hotspots (accessed 20th April 2025).Google Scholar
COP 16 (2024) United Nations Biodiversity Conference COP 16. https://www.cbd.int/conferences/2024. (accessed 25th April 2025).Google Scholar
Cowl, VB, Comizzoli, P, Appeltant, R, Bolton, RL, Brown, RK, Holt, WV, Penfold, LM, Swegen, A, Walker, SL and Williams, SA (2024) Cloning for the twenty-first century and its place in endangered species conservation. Annual Reviews of Animal Bioscience 12, 91112. https://doi.org/10.1146/annurev-animal-071423-093523Google Scholar
Dee, S and Spronk, G (2025) Biosecuring animal populations: The future is now. Animals 15, 1048. https://doi.org/10.3390/ani15071048Google Scholar
Dielenberg, J, Bekessy, S, Cumming, GS, Dean, AJ, Fitzsimons, JA, Garnett, S, Goolmeer, T, Hughes, L, Kingsford, RT, Legge, S, Lindenmayer, DB, Lovelock, CE, Lowry, R, Maron, M, Marsh, J, McDonald, J, Mitchell, NJ, Moggridge, BJ, Morgain, R, O’Connor, PJ, Pascoe, J, Pecl, GT, Possingham, HP, Ritchie, EG, Smith, LDG, Spindler, R, Thompson, RM, Trezise, J, Umbers, K, Woinarski, J and Wintle, BA (2023) Australia’s biodiversity crisis and the need for the biodiversity council. Ecological Management and Restoration 24 (2/3), 6974.Google Scholar
Earth.Org (2025) EO Indexes: Extinction. https://earth.org/data_visualization/eoindex-extinction/ (accessed 15th April 2025).Google Scholar
EAZA (2024) European Association of Zoos and Aquaria. Position Statement on the Use of Cryopreserved Materials and Biotechnology. https://strapi.eaza.net/uploads/2024_10_EAZA_PS_on_the_Use_of_Cryopreserved_Materials_and_Biotechnology_ad0bc26ec7.pdf (accessed 21st September 2025).Google Scholar
Filipova, IA (2024) Intelligent robots, cyborgs, genetically enhanced individuals, chimeras: The future and the challenges of law. Journal of Digital Technologies and Law 2 (4), 741781. https://doi.org/10.21202/jdtl.2024.38Google Scholar
FletcherR, MK, Ferraz, KMPMB, Kiwango, WA, Komi, S, Mabele, MB, Marchini, S, Nygren, A, Sandroni, LT, Alagona, PS and McInturff, A (2023) The production-protection nexus: How political-economic processes influence prospects for transformative change in human-wildlife interactions. Global Environmental Change 82, 102723. https://doi.org/10.1016/j.gloenvcha.2023.102723Google Scholar
Fluet-Chouinard, E, Stocker, BD, Zhang, Z, Malhotra, A, Melton, JR, Poulter, B, Kaplan, JO, Goldewijk, KK, Siebert, S, Minayeva, T, Hugelius, G, Joosten, H, Barthelmes, A, Prigent, C, Aires, F, Hoyt, AM, Davidson, N, Finlayson, CM, Lehner, B, Jackson, RB and McIntyre, PB (2023) Extensive global wetland loss over the past three centuries. Nature 614, 281286. https://doi.org/10.1038/s41586-022-05572-6Google Scholar
Ford, A (2024) The enduring forest gardens of the ancient maya. American Scientist 112 (5), 286293. https://doi.org/10.1511/2024.112.5.286Google Scholar
Fordham, DA (2024) Identifying species traits that predict vulnerability to climate change. Cambridge Prisms: Extinction 2, e21. https://doi.org/10.1017/ext.2024.24Google Scholar
Fox-Skelly, J (2024) BBC. Artificial Placenta: A New Lifeline for Premature Babies? https://www.bbc.com/future/article/20240717-artificial-placenta-a-new-lifeline-for-premature-babies. (accessed 24th April 2025).Google Scholar
Fujihara, M and Inoue-Murayama, M (2024) The wildlife biobanking of germ cells for in situ and ex situ conservation in Japan. Theriogenology Wild 4, 100086. https://doi.org/10.1016/j.therwi.2024.100086Google Scholar
Gammon, A (2018) The many meanings of rewilding: An introduction and the case for a broad conceptualisation. Environmental Values 27 (4), 331350. https://doi.org/10.3197/096327118X15251686827705Google Scholar
Gedman, GL, Pirovich, KM, Oppenheimer, J, Hyseni, C, Cassatt-Johnstone, M, Alexandre, N, Troy, W, Chao, C, Fedrigo, O, Hoyt, SJ, Grady, PGS, Sacco, S, Seligmann, W, Dash, A, Chokshi, M, Knecht, L, Papizan, JB, Miyawaki, T, Bocklandt, S, Kelher, J, Ord, S, Lin, AT, Peecook, BR, Perri, A, Sinding, MS, Larson, G, Meachen, J, Dalén, L, von Holdt, B, Gilbert, MTP, Mason, CE, O’Neill, RJ, Karlsson, EK, Cantarel, BL, George, RR, Martin, GRR, Church, G, Lamm, B and Shapiro, B (2025) On the ancestry and evolution of the extinct dire wolf. bioRxiv 2025.04.09.647074. https://doi.org/10.1101/2025.04.09.647074Google Scholar
Gergis, J (2024) An Intergenerational Crime against Humanity What Will it Take for Political Leaders to Start Taking Climate Change Seriously. https://theconversation.com/an-intergenerational-crime-against-humanity-what-will-it-take-forpolitical-leaders-to-start-taking-climate-change-seriously-231383 (accessed on 14 June 2024).Google Scholar
Glaser, B, McKey, D, Giani, L, Teixeira, W, di Rauso, SG, Schneeweiß, J, Hien, N and Homburg, J (2024) Historical accumulation of biochar as a soil amendment. In Biochar for Environmental Management, 3rd Edition (eds Johannes, L., Stephen, J.), pp. 1555. Routledge.Google Scholar
Godfrey, LR, Klukkert, ZS, Crowley, BE, Dawson, RR, Faina, P, Freed, BZ, Hekkala, E, Borgerson, C, Rasolonjatovo, HAM, Wright, PC and Burns, SJ (2025) Patterns of late Holocene and historical extinctions on Madagascar. Cambridge Prisms: Extinction 3, e9, 1e13. https://doi.org/10.1017/ext.2024.19Google Scholar
Gross, C (2024) Artificial wombs: Could they deliver an answer to the problem of frozen embryos? Christian bioethics: Non-ecumenical studies in medical morality 30 (2), 96105. https://doi.org/10.1093/cb/cbae004Google Scholar
Haagen, I and Blackburn, H (2024) Efforts to cryopreserve shrimp (penaeid) genetic resources and the potential for a shrimp germplasm bank in the United States. Aquaculture 580 (1), 740298. https://doi.org/10.1016/j.aquaculture.2023.740298Google Scholar
Hansen, JE, Sato, M, Simons, L, Nazarenko, LS, Sangha, I, Kharecha, P, Zachos, JC, von Schuckmann, K, Loeb, NG, Osman, MB, Jin, Q, Tselioudis, G, Jeong, E, Lacis, A, Ruedy, R, Russell, G, Cao, J and Li, J (2023) Global warming in the pipeline. Oxford Open Climate Change 3, kgad008. https://doi.org/10.1093/oxfclm/kgad008Google Scholar
He, S (2020) The first human trial of CRISPR-based cell therapy clears safety concerns as new treatment for late-stage lung cancer. Signal Transduction and Targeted Therapy 5, 168. https://doi.org/10.1038/s41392-020-00283-8Google Scholar
Heres, P, Troncoso, J and Paredes, E (2022) Long-term study on survival and development of successive generations of Mytilus galloprovincialis cryopreserved larvae. Science Reports 12 (1), 13632. https://doi.org/10.1038/s41598-022-17935-0Google Scholar
Holt, W and Comizzoli, P (2024) Cryobiology, wildlife conservation and reality; an ongoing dilemma! Cryobiology 117, 105009. https://doi.org/10.1016/j.cryobiol.2024.105009.Google Scholar
Howard, MS, Byrne, PG, O’Brien, JK, Hobbs, AJ and Silla, AJ (2025) Antioxidant supplementation of cryopreservation extenders improves post-thaw sperm viability in the red-crowned toadlet, Pseudophryne australis. Frontiers in Amphibian Reptile Science – Conservation 3, 1525965. https://doi.org/10.3389/famrs.2025.1525965.Google Scholar
Huggan, G, Dunn, AM, Nelson, D, Wright, K, Jørgensen, D and Rigby, K (2024) Extinction studies across the disciplines. Cambridge Prisms: Extinction 2, e22. https://doi.org/10.1017/ext.2024.23Google Scholar
Hughes, D 2009. An Environmental History of the World: Humankind’s Changing Role in the Community of Life. 2ndnd Edn. Routledge London. 320 p.Google Scholar
Huijsmans, TERG, Hassan, HA, Smits, K and Van Soom, A (2023) Postmortem collection of gametes for the conservation of endangered mammals: A review of the current state-of-the-art. Animals 13 (8), 1360. https://doi.org/10.3390/ani13081360Google Scholar
IELC (2025) Extinct Dire Wolf (Canus Dirus) Fact Sheet [Archived]: Diet & Feeding. https://ielc.libguides.com/sdzg/factsheets/extinctdirewolf/diet (accessed 3rd August 2025).Google Scholar
IPCC (2023) Summary for policymakers. In Climate Change 2023: Synthesis Report. Contribution of Working Groups I, II and III to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change; CoreWriting Team, Lee, H, Romero, J, Eds.; IPCC: Geneva, Switzerland, 2023; pp. 134.Google Scholar
IUCN (2024) IUCN SSC amphibian specialist group (2024). Amphibian conservation action plan: A status review and roadmap for global amphibian conservation. Wren, S, Borzée, A, Marcec-Greaves, R & Angulo, A (Eds.). IUCN SSC Occasional Paper, No 57. Gland, Switzerland: IUCN. https://doi.org/10.2305/QWVH2717.Google Scholar
IUCN (2025a) Population Growth, Environmental Degradation and Climate Change. Department of Economic and Social Affairs. https://www.un.org/en/desa/population-growth-environmental-degradation-and-climate-changeGoogle Scholar
IUCN (2025b) The IUCN Red List of Threatened Species. Version 2025–1. https://www.iucnredlist.org.Google Scholar
IUCN (2025c) IUCN SSC Invasive Species Specialist Group https://iucn.org/our-union/commissions/group/iucn-ssc-invasive-species-specialist-group (accessed 3rd August 2025).Google Scholar
IUCN SSC (2016) IUCN SSC guiding principles on creating proxies of extinct species for conservation benefit. Version 1.0. Gland, Switzerland: IUCN Species Survival Commission.Google Scholar
Jepson, PR (2025) De-extinction beyond species: Restoring ecosystem functionality through large herbivore rewilding. Cambridge Prisms: Extinction 3, e3. https://doi.org/10.1017/ext.2024.27Google Scholar
Johnson, CN (2025) Past and Future Decline and Extinction of Species. The Royal Society. https://royalsociety.org/news-resources/projects/biodiversity/decline-and-extinction/ (accessed 3rd August 2025).Google Scholar
Johnston, SD, Qualischefski, E, Cooper, J, McLeod, R, Lever, J, Nixon, B, Anderson, AL, Hobbs, R, Gosálvez, J, López-Fernández, C and Keeley, T (2017) Cryopreservation of saltwater crocodile (Crocodylus porosus) spermatozoa. Reproduction Fertility and Development 29 (11), 22352244. https://doi.org/10.1071/RD16511 PMID: 28356183Google Scholar
Kaplan, JO, Krumhardt, KM and Zimmermann, N (2009) The prehistoric and preindustrial deforestation of Europe. Quaternary Science Reviews 28 (27–28), 30163034. https://doi.org/10.1016/j.quascirev.2009.09.028Google Scholar
Keck, F, Peller, T, Alther, R, Barouillet, C, Blackman, R, Capo, E, Chonova, T, Couton, M, Fehlinger, L, Kirschner, D, Knüsel, M, Muneret, L, Oester, R, Tapolczai, K, Zhang, H and Altermatt, F (2025) The global human impact on biodiversity. Nature 641, 395400. https://doi.org/10.1038/s41586-025-08752-2Google Scholar
Khomiak, IV, Onyshchu, IP and Vasylenko, OM (2024) Theoretical basis of classification of terraforming methods. Environmental Sciences 55, 234237. https://doi.org/10.32846/2306-9716/2024.eco.4-55.38Google Scholar
Kirchberger, U (2020) Temporalising nature: Chronologies of colonial species transfer and ecological change across the Indian Ocean in the change of empire. International Review of Environmental History 6 (1), 101125. https://doi.org/10.22459/IREH.06.01.2020.05Google Scholar
Ladle, RJ, Alves-Martins, F, Malhado, ACM, Reyes-Garcia, V, Courchamp, F, Minin, ED, Roil, U, Jaric, I and Correia, RA (2023) Biocultural aspects of species extinctions. Cambridge Prisms: Extinction 1, e22. https://doi.org/10.1017/ext.2023.20Google Scholar
Luedtke, JA, Chanson, J, Neam, K, Hobin, L, Maciel, AO, Catenazzi, A, Borzée, A, Hamidy, A, Aowphol, A, Jean, A, Sosa-Bartuano, A, Fong, A, de Silva, A, Fouquet, A, Angulo, A, Kidov, AA, Saravia, AM, Diesmos, AC, Tominaga, A, Shrestha, B, Gratwicke, B, Tjaturadi, B, Rivera, CCM, Almazán, CRV, Señaris, C, Chandramouli, SR, Strüssmann, C, CFC, F, Azat, C, Hoskin, CJ, Hilton-Taylor, C, Whyte, DL, Gower, DJ, Olson, DH, Cisneros-Heredia, DF, Santana, JS, Nagombi, E, Najafi-Majd, E, ESH, Q, Bolaño, F, Xie, F, Brusquetti, F, Álvarez, FS, Andreone, F, Glaw, F, Castañeda, FE, Kraus, F, Parra-Olea, G, Chaves, G, Medina-RangelGF, G-DG, Ortega-Andrade, HM, Machado, IF, Das, I, Dias, IR, Urbina-Cardona, JN, Crnobrnja-Isailović, J, Yang, J, Jianping, J, Wangyal, JT, JJL, R, Measey, J, Vasudevan, K, Chan, KO, Gururaja, KV, Ovaska, K, Warr, LC, Canseco-Márquez, L, Toledo, LF, Díaz, LM, MMH, K, Meegaskumbura, M, Acevedo, ME, Napoli, MF, Ponce, MA, Vaira, M, Lampo, M, Yánez-Muñoz, MH, Scherz, MD, Rödel, M, Matsui, M, Fildor, M, Kusrini, MD, Ahmed, MF, Rais, M, Kouamé, NG, García, N, Gonwouo, NL, Burrowes, PA, Imbun, PY, Wagner, P, PJR, K, Joglar, RL, Auguste, RJ, Brandão, RA, Ibáñez, R, von May, R, Hedges, SB, Biju, SD, Ganesh, SR, Wren, S, Das, S, Flechas, SV, Ashpole, SL, Robleto-Hernández, SJ, Loader, SP, Incháustegui, SJ, Garg, S, Phimmachak, S, Richards, SJ, Slimani, T, Osborne-Naikatini, T, PTF, A-J, Condez, TH, de Carvalho, TR, Cutajar, TP, Pierson, TW, Nguyen, TQ, Kaya, U, Yuan, Z, Long, B, Langhammer, P and Stuart, SN (2023) Ongoing declines for the world’s amphibians in the face of emerging threats. Nature 622, 308314. https://doi.org/10.1038/s41586-023-06578-4Google Scholar
Mathes, GH, Pimiento, C, Kiessling, W, Svenning, JC and Steinbauer, MJ (2025) The effect of climate legacies on extinction dynamics: A systematic review. Cambridge Prisms: Extinction 3, e6. https://doi.org/10.1017/ext.2025.2Google Scholar
Meyer, L, “Intergenerational Justice”, the Stanford Encyclopedia of Philosophy (Summer 2021 Edition), Zalta, Edward N. (ed.), URL = <https://plato.stanford.edu/archives/sum2021/entries/justice-intergenerational/>..>Google Scholar
Mukanov, DA, Khapilina, O, Manabayeva, S, Kakimzhanova, A, Khassenova, A, Kubentayev, S, Zholdybayeva, E, Khassenov, B, Shevtsov, A, Tarlykov, P, Mukantayev, K and Ramankulov, Y (2024) Biobanks as a way to conserve biodiversity in the context of the continuing decline in the species diversity of wild flora and fauna. Eurasian Journal of Applied Biotechnology 1, 326. https://doi.org/10.11134/btp.1.2024.1Google Scholar
Mutillod, C, Buisson, E, Mahy, G, Jaunatre, R, Bullock, JM, Tatin, L and Dutoit, T (2024) Ecological restoration and rewilding: Two approaches with complementary goals? Biological Reviews 99 (3), 820836. https://doi.org/10.1111/brv.13046Google Scholar
Novak, BJ, Ryder, OA, Houck, ML, Walker, K, Russell, L, Russell, B, Walker, S, Arenivas, SS, Aston, L, Veneklasen, G, Ivy, JA, Koepfli, K, Rusnak, A, Simek, J, Zhuk, A, Putnam, AS and Phelan, R (2025) Endangered Przewalski’s horse, Equus przewalskii, cloned from historically cryopreserved cells. Animals 15(5), 613. https://doi.org/10.3390/ani15050613Google Scholar
Odenbaugh, J (2023) Philosophy and ethics of de-extinction. Cambridge Prisms: Extinction 1, e7. https://doi.org/10.1017/ext.2023.4Google Scholar
Oliveira Santos, MV, Silva, AR and Pereira, AF (2022) Embryo production by in vitro fertilization in wild ungulates: Progress and perspectives – A review. Annals of Animal Science 22 (4), 11511162. https://doi.org/10.2478/aoas-2022-0013Google Scholar
Osmenda, K (2024) Surrogacy versus artificial womb technology: The future of reproduction in the European Union. Teisės Apžvalga/Law Review 1 (29), 4163. https://doi.org/10.7220/2029-4239.29.3Google Scholar
Penados, F, Gahman, L and Smith, SJ (2023) Land, race, and (slow) violence: Indigenous resistance to racial capitalism and the coloniality of development in the Caribbean. Geoforum 145, 103602. https://doi.org/10.1016/j.geoforum.2022.07.004Google Scholar
Penjor, U, Kaszta, Ż, Macdonald, DW and Cushman, SA (2021) Prioritizing areas for conservation outside the existing protected area network in Bhutan: The use of multi-species, multi-scale habitat suitability models. Landscape Ecology 36, 12811309. https://doi.org/10.1007/s10980-021-01225-7Google Scholar
Pereira, LM, Smith, SR, Gifford, L, Newell, P, Smith, B, Villasante, S, Achieng, T, Castro, A, Constantino, SM, Ghadiali, A, Vogel, C and Zimm, C (2023) Risks, ethics and justice in the governance of positive tipping points. EGUsphere Preprint. https://doi.org/10.5194/egusphere-2023-1454Google Scholar
Péricard, L, Le Mével, S, Marquis, O, Locatelli, Y and Coen, L (2025) Intracytoplasmic sperm injection using 20-year-old cryopreserved sperm results in normal, viable, and reproductive offspring in Xenopus laevis: A major pioneering achievement for amphibian conservation. Animals 15(13), 1941. https://doi.org/10.3390/ani15131941Google Scholar
Pettorelli, N, Durant, SM and du Toit, JT (2019) Rewilding. Ecological Reviews. Cambridge University Press. https://doi.org/10.1017/9781108560962Google Scholar
Ramsey, DSL, Anderson, DP and Gormley, AM (2023) Invasive species eradication: How do we declare success? Cambridge Prisms: Extinction 1, e4. https://doi.org/10.1017/ext.2023.1Google Scholar
Ravida, N, Young, C, Gokool, L and Durrant, BS (2016) Developing a cryopreservation protocol for desert tortoise sperm (Gopherus agassizzii). Reproduction, Fertility and Development 29 (1), 165165. https://doi.org/10.1071/RDv29n1Ab113Google Scholar
Regalado, A (2025) Jurassic Patent: How Colossal Biosciences Is Attempting to Own the “Woolly Mammoth” https://www.technologyreview.com/2025/04/16/1115154/jurassic-patent-how-colossal-biosciences-is-attempting-to-own-the-woolly-mammoth/ (accessed 33rd August 2025).Google Scholar
Revive and Restore (2025) Woolly Mammoth Revival. Why Bring Back the Woolly Mammoth? https://reviverestore.org/projects/woolly-mammoth/why-bring-it-back/ (accessed 22nd April 2025).Google Scholar
Rodger, JC and Clulow, J (2022) Resetting the paradigm of reproductive science and conservation. Animal Reproduction Science 246, 106911. https://doi.org/10.1016/j.anireprosci.2021.106911Google Scholar
Roshier, DA, Hotellier, FL, Carter, A, Kemp, L, Potts, J, Hayward, MW and Legge, SM (2020) Long-term benefits and short-term costs: Small vertebrate responses to predator exclusion and native mammal reintroductions in South-Western New South Wales, Australia. Wildlife Research 47 (8), 570579. https://doi.org/10.1071/WR19153Google Scholar
Rueda, J (2024) Genetic enhancement, human extinction, and the best interests of posthumanity. Bioethics 38 (6), 529538. https://doi.org/10.1111/bioe.13085Google Scholar
Sandeman, R and Sandeman, D (1991) Stages in the development of the embryo of the fresh-water crayfish Cherax destructor. Roux’s Archives of Developmental Biology 200 (1), 2737. https://doi.org/10.1007/BF02457638 PMID: 28305915Google Scholar
Sandfoss, MR, Schwartz, TS, Lindsey, A, Wigman, G, Mihalevich, P, Reichling, S and Roberts, BM (2024) First successful artificial insemination of a reptile using frozen-thawed semen. Theriogenology Wild 5, 100112. https://doi.org/10.1016/j.therwi.2024.100112Google Scholar
Sandler, R (2020) The ethics of genetic engineering and gene drives in conservation. Conservation Biology 34, 378385. https://doi.org/10.1111/cobi.13407Google Scholar
Seet, S and McLellan, R (2024) Perspectives on technological, ethical, and media communication dimensions in conservation research projects applying ART to critically endangered wildlife species. Journal of Applied Animal Ethics Research 7 (1), 2855. https://doi.org/10.1163/25889567-bja10056Google Scholar
Shanmugam, DK, Anitha, SC, Souresh, V, Madhavan, Y, Sampath, S, Venugopal, DC and Saravanan, M (2023) Current advancements in the development of bionic organs using regenerative medicine and 3D tissue engineering. Materials Technology 38 (1), 2242732. https://doi.org/10.1080/10667857.2023.2242732Google Scholar
Shoop, WK, Bacman, SR, Barrera-Paez, JD and Moraes, CT (2023) Mitochondrial gene editing. Nature Reviews Methods Primers 3, 19. https://doi.org/10.1038/s43586-023-00200-7Google Scholar
Simkins, AT, Sutherland, WJ, Dicks, LV, Hilton-Taylor, C, Grace, MK, Butchart, SHM, Senior, RA and Petrovan, SO (2025) Past conservation efforts reveal which actions lead to positive outcomes for species. PLoS Biology 23 (3), e3003051. https://doi.org/10.1371/journal.pbio.3003051Google Scholar
Singh, SS, Kanth, DR and Bishnoi, S (2024) Harnessing CRISPR for the future: Innovations, applications, and challenges in genome editing. Journal of Advances in Biology & Biotechnology 27 (12), 29845. https://doi.org/10.9734/jabb/2024/v27i121830Google Scholar
Smith, RK, Meredith, M, Sutherland, WJ (2021) Amphibian Conservation, In What Works in Conservation William J. Sutherland; Lynn V. Dicks; Silviu O. Petrovan; Rebecca K. Smith Vol. 6. 2021, 12th July 2025; https://doi.org/10.11647/OBP.0267.01Google Scholar
Spanning, R (2021) Youth in the Anthropocene: Questions of intergenerational justice and learning in a more-than-human world. In Knapp, G and Krall, H (eds), Youth Cultures in a Globalized World. Cham, Switzerland: Springer, pp. 113133.Google Scholar
Sullivan, W (2024) Scientists Clone Two Black-Footed Ferrets from Frozen Tissues in Conservation Effort. https://www.smithsonianmag.com/smart-news/scientists-clone-two-black-footed-ferrets-from-frozen-tissues-in-conservation-effort-180984203/Google Scholar
Svenning, JC, Lemoine, RT, Bergman, J, Buitenwerf, R, Le Roux, E, Lundgren, E, Mungi, N and Pedersen, (2024) The late-quaternary megafauna extinctions: Patterns, causes, ecological consequences and implications for ecosystem management in the anthropocene. Cambridge Prisms: Extinction 2, e5. https://doi.org/10.1017/ext.2024.4Google Scholar
Taheri-Khas, Z, Gharzi, A, Vaissi, S, Heshmatzad, P and Kalhori, Z (2025) Advanced sperm preservation techniques in yellow spotted mountain newts Neurergus derjugini enhance genetic management and conservation efforts. Scientific Reports 15, 9334. https://doi.org/10.1038/s41598-025-93284-yGoogle Scholar
Tipkantha, W, Thuwanut, P, Maikeaw, U, Thongphakdee, A, Yapila, S, Kamolnorranath, S, Siriaroonrat, B, Comizzoli, P and Chatdarong, K (2017) Successful laparoscopic oviducal artificial insemination in the clouded leopard (Neofelis nebulosa) in Thailand. Journal of Zoo Wildlife Medicine 48 (3), 804812. https://doi.org/10.1638/2016-0287.1Google Scholar
Treves, A, Artelle, KA, Darimont, CT, Lynn, WS, Paquet, P, Santiago-Ávila, FJ, Shaw, R and Wood, MC (2018) Intergenerational equity can help to prevent climate change and extinction. Nature Ecology and Evolution 2, 204207. https://doi.org/10.1038/s41559-018-0465-yGoogle Scholar
Turner, MG, Calder, WJ, Cumming, GS, Hughes, TP, Jentsch, A, LaDeau, SL, Lenton, TM, Shuman, BN, Turetsky, MR, Ratajczak, Z, Williams, JW, Williams, AP and Carpenter, SR (2020) Climate change, ecosystems and abrupt change: Science priorities. Philosophical Transactions of the Royal Society B 375 (1794), 20190105. https://doi.org/10.1098/rstb.2019.0105Google Scholar
Turner, BL 2nd and Sabloff, JA (2012) Classic period collapse of the central Maya lowlands: Insights about human-environment relationships for sustainability. Proceeding of the National Academy of Science USA 109(35), 13908–14. https://doi.org/10.1073/pnas.1210106109.Google Scholar
Turton-Hughes, S, Holmes, G and Hassall, C (2024) The diversity of ignorance and the ignorance of diversity: Origins and implications of “shadow diversity” for conservation biology and extinction. Cambridge Prisms: Extinction 2, e18, 121 https://doi.org/10.1017/ext.2024.21.Google Scholar
Turvey, ST and Crees, JJ (2019) Extinction in the anthropocene. Current Biology 29 (19), R982R986. https://doi.org/10.1016/j.cub.2019.07.040Google Scholar
Wang, D and Mei, J (2024) An advanced review of climate change mitigation policies in the United States. Resources. Conservation and Recycling 208, 107718. https://doi.org/10.1016/j.resconrec.2024.107718Google Scholar
Wiens, J and Saban, KE (2025) Recent extinctions of plant and animal genera are rare, localized, and decelerated. PLoS Biology 23(9), e3003356. https://doi.org/10.1371/journal.pbio.3003356.Google Scholar
Wienhues, A, Baard, P, Donoso, A and Oksanen, M (2023) The ethics of species extinctions. Cambridge Prisms: Extinction 1, e23. https://doi.org/10.1017/ext.2023.21Google Scholar
Wilder, AP, Steiner, CC, Hendricks, S, Haller, BC, Kim, C, Korody, ML and Ryder, OA (2024) Genetic load and viability of a future restored northern white rhino population. Evolutionary Applications 17 (4), e13683. https://doi.org/10.1111/eva.13683Google Scholar
Willcock, S, Cooper, GS, Addy, J and Dearing, JA (2023) Earlier collapse of anthropocene ecosystems driven by multiple faster and noisier drivers. Nature Sustainability 6, 13311342. https://doi.org/10.1038/s41893-023-01157-xGoogle Scholar
Wilson, KA (2023) Prioritisation to prevent extinction. Cambridge Prisms: Extinction 1, e6. https://doi.org/10.1017/ext.2023.3Google Scholar
Woinarski, JCZ, Braby, MF, Gibb, H, Harvey, MS, Legge, SM, Marsh, JR, Moir, ML, New, TR, Rix, MG and Murphy, BP (2024) This is the way the world ends; not with a bang but a whimper: Estimating the number and ongoing rate of extinctions of Australian non-marine invertebrates. Cambridge Prisms: Extinction 2, e23Google Scholar
WWF (2025) World Wildlife Fund. How Many Species Are We Loosing. https://wwf.panda.org/discover/our_focus/biodiversity/biodiversity/ (accessed 21st September 2025).Google Scholar
Zhang, M, Yuan, X, Zeng, Z, Pan, M, Wu, P, Xiao, J and Keenan, TF (2025) A pronounced decline in northern vegetation resistance to flash droughts from 2001 to 2022. Nature Communications 16, 2984. https://doi.org/10.1038/s41467-025-58253-zGoogle Scholar
Ziegler, T (2023) The IUCN/SSC CPSG’S one plan approach and the role of progressive zoos in conservation: Case studies from herpetology. In Proceedings of the 14th National Congress of the Italian Society for Herpetology, Torino, Italy, 12–16 June 2023; pp. 195222.Google Scholar
Zoo, Nashville (2019) Significant Success in Clouded Leopard Breeding https://www.nashvillezoo.org/our-blog/posts/significant-success-in-clouded-leopard-breeding (accessed 3rd August 2025).Google Scholar
Figure 0

Table 1. Taxa with substantial publications on the use of reproductive and advanced biotechnologies, biomaterials that survive cryopreservation, the enhancement of genetic diversity through CRISPR in addition to cloning

Author comment: Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future — R0/PR1

Comments

In reference to this review submission “The Sixth Mass Extinction, Intergenerational Justice, and Humanity’s Future through Reproductive and Advanced Biotechnologies”

The review makes a significant impact in contributing to Intergenerational Justice through providing a historic summary to the sixth mass extinction, and how the development and application of reproduction and advanced biotechnologies within a cultural, political, and legalistic framework can provide for Intergenerational Justice. There is an emphasis on the benefits of rewilding both of habitats and of rewilding de-extinct species. The state of the art of reproduction and advanced biotechnologies are presented for the perpetuation of threatened vertebrate and invertebrate terrestrial and freshwater aquatic species, and potentials for the future including synthetic biology and space colonisation. These possibilities are framed within a framework of contemporary and potential future ethical considerations and the future of humanity. Consequently, the review has the potential to inform, galvanise, and guide discourses on these topics.

Artificial intelligence was used to generate images as Figure 1 and Figure 2 as simple visual representations of the conceptually complex ideas rather than complicated diagrams.

All material in this submission is unique and copyright free.

Sincerely, Robert Browne

Review: Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future — R0/PR2

Conflict of interest statement

Reviewer declares none.

Comments

I must admit to have struggled a little with this one. As a geneticist with an interest in assisted reproduction and conservation, this paper overlaps with my research interests but is not core to them. As such, I needed, for instance to Google the term “intergenerational justice” (which, to be fair, is fairly self-explanatory). I may therefore be not appreciating the “norm” is a slightly different academic area to myself and this I do acknowledge my potential shortcomings as a reviewer for this paper.

With all this said, I did find it difficult to establish what the purpose of the paper was, and how it adds to knowledge that we already know. I found it making, repeatedly, what I thought to be somewhat obvious statements. I also did not feel that it went either into great scientific depth, nor (and I am less qualified to judge here) any great depth in the field of the social sciences either. The title is quite grandiose and, as such, under this remit could fill several edited volumes. As it stands, it seems to me that the bulk of the paper is concerned with mammalian reproductive technologies, with a nod to other species such as corals, mussels and crayfish.

In the first figure, we learn about extinction rates but this largely focuses only on vertebrates, this would be fine if the authors had set out, from the outset, to focus on vertebrates alone but, as it is, the focus is either much narrower, i.e. on mammals or much broader (corals, mussels, crayfish etc) - I can’t really decide which.

The second figure is a little troubling. I can see the issues these days that no images are free to use and the need to get permission, or pay for the image. As such, the temptation to use AI to draw new images is high. These images do however appear somewhat “cartoon-esque” with the idealised sunny backgrounds. If the authors are going to go down this line, I would recommend re-drawing with a white background and asking a specialist zoologist to confirm the scientific accuracy.

The third figure, I’m sorry but really has to go. These strange idealistic versions of genetic modification, artificial wombs (in space!) and “people sitting around a table” - meant to represent the media really detract form the perceived integrity of the whole article.

Indeed, the article seems to “fall off a cliff” latterly with the discussion of space and cyborgs. These are undoubtedly interesting subjects (I have an interest in space reproduction myself) but they really get away from the core of the article, they dilute it and give the impression of loss of integrity.

As it stands, I think there may be value in this article if it were re-written with the concept of intergenerational justice in mind. A deep dive into the literature pertaining to this topic could then set the scene for how mammalian assisted reproduction strategies (including biobanking, cloning and CRISPR) might be relevant in this context. As such, species such as corals, mussels and crayfish might be mentioned for comparison purposes, but no more.

Similarly, this would then allow space and time to review some of the the success stories of germ cell biobanking such as white rhinos, clouded leopards and black footed ferrets (to name just a few of many examples), all of which need more “air-time” in a paper like this one.

Once fully re-written, a more focussed title, abstract and impact statement might make this paper worthy of publication.

Review: Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future — R0/PR3

Conflict of interest statement

Reviewer declares none.

Comments

This manuscript reviews the state of our planet’s sixth mass extinction in the context of past and current conservation efforts, and the wider toolbox of technological approaches including reproductive technologies and their place in supporting efforts to stem the loss of global biodiversity.

The manuscript places the concept of intergenerational justice at the heart of these efforts and adds the biotechnological approaches into this mix, to explore the likelihood of achieving biodiversity targets, and to consider the societal and ethical implications of what these technologies will mean in the near and medium-term future in a rapidly advancing world. The author champions further use of volunteer facilities for biobanking, in order to accomplish the biobanking of a greater number of species before they succumb to extinction.

Overall, this manuscript has value in that it draws together a large number of other referenced work, and in doing so encourages the reader to think about how interconnecting advances create challenges, dilemmas and opportunities.

A few additional points below;

It isn’t entirely clear at the start what the rationale is for searching the IUCN Red List to produce a list of species for biobanking. This needs to be clearer and more effectively integrated into the main introductory sections of the paper.

The points described in lines 465-469 regarding use of artificial wombs and cryopreserved human embryos in space for space colonisation, are, in my view, too off-topic to be sufficiently relevant to the main thrust of the rest of the manuscript that focuses on the sixth mass extinction. Similarly, the section on cyborgs (line 477-491). These sections could be removed and replaced by a clearer bullet-point summary of the manuscript’s main points that are being advocated.

Throughout the manuscript, there are grammatical errors that need attention, mostly involving missing words, see a non-exhaustive list as examples, below;

Examples of grammatical errors:

Line 88: Most megafauna in Africa ‘are’ still extant as ‘they have’ coadapted with the evolution of hominids

Line 115: ‘failures’ of renewable energy

Line 221: Genetic diversity can be perpetuated [???] many males fresh or cryopreserved sperm

Line 270: ‘approaches’

Line 399: ‘others the role of’

Line 451: We live ‘in an’ unstable

Recommendation: Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future — R0/PR4

Comments

Thank you for submitting a thought provoking manuscript. The subject is certainly of interest in this era of de-extinction. I have two constructive reviews that both see the benefit of the subject although more work is required to bring the manuscript together. While I do agree with the first reviewer, particularly around tightening up the narrative, I believe these changes can be easily made and therefore have suggested minor correction.

Decision: Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future — R0/PR5

Comments

No accompanying comment.

Author comment: Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future — R1/PR6

Comments

Dear Cambridge Extinctions,

In reference to the amended review submission, with a reordered title to reflect the emphasis on Intergenerational Justice as suggested by reviewer 1. "Intergenerational Justice, The Sixth Mass Extinction, Reproduction and Advanced Biotechnologies, and Humanity’s Future”

I have extensively rewritten the review as per the reviewer’s comments. Please excuse me as there may be some non-journal article references that are not fully referenced, as I found it challenging to find a style guide.

The review makes a significant impact in contributing to Intergenerational Justice through providing a historic summary to the sixth mass extinction, and how the development and application of reproduction and advanced biotechnologies within a cultural, political, and legalistic framework can provide for Intergenerational Justice. The state of the art of reproduction and advanced biotechnologies is presented for the perpetuation of threatened vertebrate and invertebrate terrestrial and freshwater aquatic species, and potential for the future, including synthetic biology. These possibilities are framed within a framework of contemporary and potential future ethical considerations and the future of humanity. Consequently, the review has the potential to inform, galvanise, and guide discourses on these topics.

Review: Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future — R1/PR7

Conflict of interest statement

Reviewer declares none.

Comments

No further comments.

Review: Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future — R1/PR8

Conflict of interest statement

Reviewer declares none.

Comments

I think that the authors have focused this down now, I am happy for it to go ahead

Recommendation: Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future — R1/PR9

Comments

Thank you for submitting your revised manuscript/ Myself and the the two previous reviewers have been through your responses to reviewer comments and the corrections made and are happy with the manuscript. I look forward to seeing it published.

Decision: Intergenerational justice, the impending sixth mass extinction, reproduction and advanced biotechnologies, and humanity’s future — R1/PR10

Comments

No accompanying comment.