Hostname: page-component-77f85d65b8-8wtlm Total loading time: 0 Render date: 2026-04-12T07:31:59.365Z Has data issue: false hasContentIssue false

Stable isotope measurements reveal diverse agricultural management strategies in the Roman Iron Age (1–400 cal AD) southeast Baltic

Published online by Cambridge University Press:  27 August 2025

K. Minkevičius*
Affiliation:
Nature Research Centre, Laboratory of Quaternary Research, Akademijos st. 2, 08414 Vilnius, Lithuania
G. Piličiauskienė
Affiliation:
Vilnius University, Department of Archaeology, Universiteto st. 7, 01513 Vilnius, Lithuania
R. Vengalis
Affiliation:
Lithuanian Institute of History, Department of Archaeology, Tilto st. 17, 01101 Vilnius, Lithuania
G. Piličiauskas
Affiliation:
Lithuanian Institute of History, Department of Archaeology, Tilto st. 17, 01101 Vilnius, Lithuania
E. Pranckėnaitė
Affiliation:
Klaipėda University, Institute of Baltic Region History and Archaeology, H. Manto st. 84, 92294 Klaipėda, Lithuania
D. Kontrimas
Affiliation:
The Directorate of Vilnius Castles State Cultural Reserve, T. Kosčiuškos st. 30, 01100 Vilnius, Lithuania
D. Kisielienė
Affiliation:
Nature Research Centre, Laboratory of Quaternary Research, Akademijos st. 2, 08414 Vilnius, Lithuania
*
Corresponding author: K. Minkevičius; Email: karolis.minkevicius@gmail.com

Abstract

This study presents a series of new radiocarbon dates and the first stable carbon and nitrogen isotope measurements of C3 cereal grains from Roman Iron Age (1–400 AD) archaeobotanical assemblages in Lithuania, southeastern Baltic region. These data are complemented by stable isotope measurements of faunal remains to assess local environmental conditions and evaluate human impact on the landscape through agricultural practices. The δ15N and δ13C values indicate that agriculture during this period relied heavily on intensive manuring and cultivation in open, well-irrigated landscapes. The results also reveal diverse cultivation strategies across sites, with isotopic differences between rye and barley suggesting the possible use of an infield–outfield cultivation system. Radiocarbon dates indicate that these agricultural innovations may have started as early as the 1st to mid-2nd century AD with the introduction of rye, however the evidence points to a gradual and uneven adoption rather than a rapid uniform shift.

Information

Type
Research Article
Copyright
© The Author(s), 2025. Published by Cambridge University Press on behalf of University of Arizona

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

Article purchase

Temporarily unavailable

References

Ambrose, SH (1990) Preparation and characterization of bone and tooth collagen for isotopic analysis. Journal of Archaeological Science 17(4), 431451. doi: 10.1016/0305-4403(90)90007-R.CrossRefGoogle Scholar
Bliujienė, A (2013) Romėniškasis ir tautų kraustymosi laikotarpiai. Lietuvos archeologija, III tomas. Klaipėda: Klaipėdos universiteto leidykla.Google Scholar
Boardman, S and Jones, G (1990) Experiments on the effects of charring on cereal plant components. Journal of Archaeological Science 17, 111. doi: 10.1016/0305-4403(90)90012-T.Google Scholar
Bogaard, A, Fraser, R, Heaton, THE, Wallace, M, Vaiglova, P, Charles, M, Jones, G, Evershed, RP, Styrink, AK, Anderson, NH, Arbogast, RM, Bartosievicz, L, Gardeisen, A, Kanstrup, M, Maier, U, Marinova, K, Ninov, L, Schäfer, M and Stephan, E (2013) Crop manuring and intensive land management by Europe’s first farmers. Proceedings of the National Academy of Sciences 110, 1258912594. doi: 10.1073/pnas.1305918110.CrossRefGoogle ScholarPubMed
Bonafini, M, Pellegrini, M, Ditchfield, P and Pollard, AM (2013) Investigation of the ‘canopy effect’ in the isotope ecology of temperate woodlands. Journal of Archaeological Science 40(11), 39263935. doi: 10.1016/j.jas.2013.03.028.CrossRefGoogle Scholar
Bronk Ramsey, C (2009) Bayesian analysis of radiocarbon dates. Radiocarbon 51(1), 337360. doi: 10.1017/S0033822200033865.CrossRefGoogle Scholar
Christensen, S (1978) Infield–outfield systems—characteristics and development in different climatic environments. Geografisk Tidsskrift–Danish Journal of Geography 77, 15. doi: 10.1080/00167223.1978.10649086.CrossRefGoogle Scholar
Danielisová, A, Olševičová, K, Cimler, R and Machálek, T (2015) Understanding the Iron Age economy: Sustainability of agricultural practices under stable population growth. In Wurzer, G, Kowarik, K and Reschreiter, H (eds), Agent-based Modeling and Simulation in Archaeology. Advances in Geographic Information Science. Cham: Springer, 183216. doi: 10.1007/978-3-319-00008-4_9.CrossRefGoogle Scholar
Daugnora, L, Girininkas, L, Guobytė, R, Kisielienė, D, Simniškytė, A and Stančikaitė, M (2004) Juodonys ir Jaros apyežeris: gamta ir gyventojai. Lietuvos archeologija 26, 111134.Google Scholar
Daugudis, V (1962) Aukštadvario piliakalnio įtvirtinimai ir pastatai. Lietuvos TSR Mokslų akademijos darbai, serija A 1(12), 4369.Google Scholar
Daugudis, V (1998) The Aukštadvaris Hill-Fort. In Kuncevičius, A, Jovaiša, E and Šimėnas, V (eds), Lithuanian Archaeology: Investigations and Findings. Vilnius: Lietuvos archeologijos draugija, 20.Google Scholar
DeNiro, MJ (1985) Postmortem preservation and alteration of in vivo bone collagen isotope ratios in relation to palaeodietary reconstruction. Nature 317, 806809. doi: 10.1038/317806a0.CrossRefGoogle Scholar
Ežerinskis, Ž, Šapolaitė, J, Pabedinskas, A et al. (2018) Annual variations of 14C concentration in the tree rings in the vicinity of Ignalina Nuclear Power Plant. Radiocarbon 60(4), 12271236. doi: 10.1017/RDC.2018.44.CrossRefGoogle Scholar
Farquhar, GD, O’Leary, MH and Berry, JA (1982) On the relationship between carbon isotope discrimination and the intercellular carbon dioxide concentration in leaves. Australian Journal of Plant Physiology 9, 121137.Google Scholar
Ferrio, JP, Araus, JL, Buxó, R, Voltas, J and Bort, J (2005) Water management practices and climate in ancient agriculture: Inferences from the stable isotope composition of archaeobotanical remains. Vegetation History and Archaeobotany 14, 510517. doi: 10.1007/s00334-005-0062-2.CrossRefGoogle Scholar
Fiorentino, G, Ferrio, JP, Bogaard, A, Araus, JL and Riehl, S (2015) Stable isotopes in archaeobotanical research. Vegetation History and Archaeobotany 24, 215227. doi: 10.1007/s00334-014-0492-9.CrossRefGoogle Scholar
Fraser, RA, Bogaard, A, Heaton, T, Charles, M, Jones, G, Christensen, BT, Halstead, P, Merbach, I, Poulton, PR, Sparkes, D and Styring, AK (2011) Manuring and stable nitrogen isotope ratios in cereals and pulses: Towards a new archaeobotanical approach to the inference of land use and dietary practices. Journal of Archaeological Science 38, 27902804. doi: 10.1016/j.jas.2011.06.024.CrossRefGoogle Scholar
Grabowski, R (2011) Changes in cereal cultivation during the Iron Age in southern Sweden: A compilation and interpretation of the archaeobotanical material. Vegetation History and Archaeobotany 20, 479494. doi: 10.1007/s00334-011-0283-5.CrossRefGoogle Scholar
Heaton, THE, Jones, G, Halstead, P and Tsipropoulos, T (2009) Variations in the 13C/12C ratios of modern wheat grain, and implications for interpreting data from Bronze Age Assiros Toumba, Greece. Journal of Archaeological Science 36(10), 22242233. doi: 10.1016/j.jas.2009.06.007.CrossRefGoogle Scholar
Holubovičiai, E and V (1941) Gedimino kalno Vilniuje 1940 metų kasinėjimų pranešimas. Lietuvos praeitis 1(2), 649678.Google Scholar
Jacomet, S, Ebersbach, R, Akeret, Ö, Antolín, F, Baum, T, Bogaard, A, Brombacher, C, Bleicher, NK, Heitz-Weniger, A, Hüster-Plogmann, H, Gross, E, Kühn, M, Rentzel, P, Steiner, BL, Wick, L and Schibler, JM (2016) On-site data cast doubts on the hypothesis of shifting cultivation in the late Neolithic (c. 4300–2400 cal. BC): Landscape management as an alternative paradigm. The Holocene 26(11), 18581874. doi: 10.1177/0959683616645941.CrossRefGoogle Scholar
Kanstrup, M, Thomsen, IK, Andersen, AJ, Bogaard, A and Christensen, BT (2011) Abundance of 13C and 15N in emmer, spelt and naked barley grown on differently manured soils: Towards a method for identifying past manuring practice. Rapid Communications in Mass Spectrometry 25(19), 28792887. doi: 10.1002/rcm.5176.CrossRefGoogle ScholarPubMed
Kontrimas, D (2020) Vilniaus Pilies kalno tyrimai. Archeologiniai tyrinėjimai Lietuvoje 2019 metais, 157163.Google Scholar
Kulikauskas, P (1955) Kai kurie archeologiniai duomenys apie seniausiai Lietuvos TSR teritorijoje augintus javus. Lietuvos TSR Mokslų akademijos darbai, serija A, 7585.Google Scholar
Kulikauskas, P, Kulikauskienė, R and Tautavičius, A (1961) Lietuvos archeologijos bruožai. Vilnius: Valstybinė politinės ir mokslinės literatūros leidykla.Google Scholar
Lazauskas, J (1980) Žieminiai rugiai. Vilnius: Mokslas.Google Scholar
Lideikytė–Šopauskienė, A (1935) Javai iš Lietuvos piliakalnių. Vytauto Didžiojo universiteto Matematikos–gamtos fakulteto darbai 9(2), 133153.Google Scholar
Micelicaitė, V, Piličiauskienė, G, Podėnas, V, Minkevičius, K and Damušytė, A (2023) Zooarchaeology of the Late Bronze Age fortified settlements in Lithuania. Heritage 6(1), 333350. doi: 10.3390/heritage6010017.CrossRefGoogle Scholar
Michelbertas, M (1978) Lietuvos gyventojų prekybiniai ryšiai I–XIII a. Vilnius: Lietuvos TSR mokslų akademija, Istorijos institutas.Google Scholar
Michelbertas, M (1986) Senasis geležies amžius Lietuvoje. Vilnius: Mokslas.Google Scholar
Michelbertas, M (1995) Romėnų didiko ekspedicija gintarui pargabenti ir radiniai Lietuvoje. Baltų archeologija 2(5), 1719.Google Scholar
Minkevičius, K (2020) Žemdirbystės raida ir gyvenviečių dinamika Lietuvoje XI a. pr. Kr. – XII a. (archeobotaninių tyrimų duomenimis). Doctoral thesis, Vilnius University. doi: 10.15388/vu.thesis.62.Google Scholar
Minkevičius, K, Piličiauskienė, G, Podėnas, V, Micelicaitė, V, Kontrimas, D, Šapolaitė, J, Ežerinskis, Ž, Garbaras, A, Čivilytė, A, Luik, H and Tamulynas, L (2023) New insights into the subsistence economy of the Late Bronze Age (1100–400 cal BC) communities in the southeastern Baltic. Archaeologia Baltica 30, 5879. doi: 10.15181/ab.v30i0.2564.CrossRefGoogle Scholar
Minkevičius, K, Podėnas, V, Urbonaitė-Ubė, M, Ubis, E and Kisielienė, D (2020) New evidence on the southeast Baltic Late Bronze Age agrarian intensification and the earliest AMS dates of Lens culinaris and Vicia faba . Vegetation History and Archaeobotany 29(3), 327338. doi: 10.1007/s00334-019-00745-2.CrossRefGoogle Scholar
Minkevičius, K, Vengalis, R, Piličiauskienė, G, Poškienė, J, Pilkauskas, M and Vėlius, G (2024) Agricultural development in the southeastern Baltic region from the late Bronze Age to the medieval period: a case study of Kernavė, southeast Lithuania. Vegetation History and Archaeobotany 34, 349362. doi: 10.1007/s00334-024-01016-5.CrossRefGoogle Scholar
Minkevičius, K (2019) Bilionių piliakalnio archeobotaninė medžiaga. In Zabiela, G (ed), Bilionių piliakalnis—nauji Žemaitijos istorijos faktai. Klaipėda: Druka, 1827.Google Scholar
Molnár, M, Janovics, R, Major, I, et al. (2013) Status Report of the New AMS 14C Sample Preparation Lab of the Hertelendi Laboratory of Environmental Studies (Debrecen, Hungary). Radiocarbon 55(2), 665676. doi: 10.1017/S0033822200057829.CrossRefGoogle Scholar
Nitsch, EK, Charles, M and Bogaard, A (2015) Calculating a statistically robust δ13C and δ15N offset for charred cereal and pulse seeds. STAR: Science & Technology of Archaeological Research 1, 18. doi: 10.1179/2054892315Y.0000000001.CrossRefGoogle Scholar
Piličiauskas, G, Vengalis, R, Minkevičius, K, Kisielienė, D, Ežerinskis, Ž, Šapolaitė, J, Skipitytė, R and Robson, HK (2021) The earliest evidence for crop cultivation during the Early Bronze Age in the southeastern Baltic. Journal of Archaeological Science: Reports 36, 102881. doi: 10.1016/j.jasrep.2021.102881 Google Scholar
Podėnas, V (2024) Įtvirtintų gyvenviečių bendruomenės Rytų Baltijos regione 1100–400 cal BC. Vilnius: Lietuvos istorijos institutas CrossRefGoogle Scholar
Podėnas, V, Garbaras, A, Micelicaitė, V, Minkevičius, K, Šapolaitė, J, Ežerinskis, Ž and Čivilytė, A (2023) Diet of the fortified settlement communities in Lithuania from 1000 cal. BC to 200 cal. AD. Journal of Archaeological Science Reports 51, 104184. doi: 10.1016/j.jasrep.2023.104184.CrossRefGoogle Scholar
Pranckėnaitė, E, Masiulienė, I and Zabiela, G (2021) Vilūnų neįtvirtinta gyvenvietė ir kaimavietė. Skudenių neįtvirtinta gyvenvietė. Archeologiniai tyrinėjimai Lietuvoje 2000 metais: 96–102.Google Scholar
Reimer, PJ, Austin, WE, Bard, E, Bayliss, A, Blackwell, PG, Ramsey, CB, Butzin, M, Cheng, H, Edwards, RL, Friedrich, M and Grootes, PM (2020) The IntCal20 Northern Hemisphere radiocarbon age calibration curve (0–55 cal kBP). Radiocarbon 62(4), 725757. doi: 10.1017/RDC.2020.41.CrossRefGoogle Scholar
Riehl, S, Pustovoytov, KE, Weippert, H, Klett, S, Hole, F (2014) Drought stress variability in ancient Near Eastern agricultural systems evidenced by δ13C in barley grain. Proceedings of the National Academy of Sciences 111, 12,34812,353. doi: 10.1073/pnas.1409516111.CrossRefGoogle ScholarPubMed
Rowley-Conwy, P (1981) Slash and burn in the temperate European Neolithic. In Mercer, RJ (ed), Farming Practice in British Prehistory. Edinburgh: University Press, 8596.Google Scholar
Salatkienė, B (2009) Geležies metalurgija Lietuvoje. Archeologijos duomenys. Bibliotheca actorum humanitaricorum Universitatis Saulensis, 4. Šiauliai: Šiaulių universiteto leidykla.Google Scholar
Salatkienė, B and Grigas, T (2017) Lieporių neįtvirtinta gyvenvietė I. Archeologiniai tyrinėjimai Lietuvoje 2016 metais, 7889.Google Scholar
Stančikaitė, M (2004) Gamtinės apilinkos kaitos ypatumai vėlyvojo ledynmečio ir holoceno laikotarpiu. Lietuvos archeologija 26, 135148.Google Scholar
Stančikaitė, M, Simniškytė, A, Skuratovič, Ž, Gedminienė, L, Kazkauskas, V and Uogintas, K (2019) Reconstruction of the mid-to-late Holocene history of vegetation and land-use in Petrešiūnai, north-east Lithuania: Implications from palaeobotanical and archaeological data. Quaternary International 516, 520. doi: 10.1016/j.quaint.2018.09.029.CrossRefGoogle Scholar
Steponaitis, V (2000) Bakšių senovės gyvenvietės tyrinėjimai 1998 m. Archeologiniai tyrinėjimai Lietuvoje 1998 ir 1999 metais, 115116.Google Scholar
Styring, A, Rösch, M, Stephan, E, Stika, P-H, Fischer, E, Sillmann, M and Bogaard, A (2017) Centralisation and long- term change in farming regimes: Comparing agricultural practices in Neolithic and Iron Age south-west Germany. Proceedings of the Prehistoric Society 83, 357381. doi: 10.1017/ppr.2017.3.CrossRefGoogle Scholar
Szidat, S, Vogel, E, Gubler, R and Lösch, S (2017) Radiocarbon dating of bones at the LARA laboratory in Bern, Switzerland. Radiocarbon 59(3), 831842. doi: 10.1017/RDC.2016.90.CrossRefGoogle Scholar
Tautavičius, A (1996) Vidurinis geležies amžius Lietuvoje (V–IX a.). Vilnius: Lietuvos pilys.Google Scholar
Vaitkunskienė, L and Merkevičius, A (1978) Spalvotųjų metalų dirbiniai ir jų gamyba. In Volkaitė-Kulikauskienė, R (ed), Lietuvių materialinė kultūra IX–XII amžiuje, t. I. Vilnius: Mokslas, 89118.Google Scholar
Van Klinken, GJ (1999) Bone collagen quality indicators for palaeodietary and radiocarbon measurements. Journal of Archaeological Science 26, 687695. doi: 10.1006/jasc.1998.0385.CrossRefGoogle Scholar
Vengalis, R (2016) Old and Middle Iron Age settlements and hillforts. In Zabiela, G, Baubonis, Z and Marcinkevičiūtė, E (eds), A Hundred Years of Archaeological Discoveries in Lithuania. Vilnius: Lietuvos archeologijos draugija, 160181.Google Scholar
Vengalis, R, Piličiauskas, G, Minkevičius, K, Valančius, M, Stančikaitė, M, Vaikutienė, G and Piličiauskienė, G (2022) New data on the structure and economy of unenclosed settlements in the Late Striated Ware culture: The Skudeniai settlement site in southeastern Lithuania. Lietuvos archeologija 48, 119148. doi: 10.15181/ab.v29i0.2475.CrossRefGoogle Scholar
Vengalis, R and Vėlius, G (2019) Kernavės piliakalnių funkcinė raida geležies amžiuje: Naujos senų duomenų interpretacijos. Archaeologia Lituana 20, 75115.Google Scholar
Vengalis, R, Volungevičius, J, Vėlius, G, Kuncevičius, A, Poškienė, J and Prapiestienė, R (2020) Žmogus prieš gamtą: Reljefo transformavimas įrengiant XIII–XIV a. Kernavės pilį ir jo sukelti eroziniai procesai. Lietuvos archeologija 46, 207253.CrossRefGoogle Scholar
Vengalis, R (2007) Grublėtoji keramika Rytų Lietuvoje. Lietuvos archeologija 32, 105132.Google Scholar
Vodzinskas, E (1960) Vilniaus miesto Gedimino kalno geologiniai ir geomorfologiniai bruožai. Lietuvos TSR geografinė draugija. Geografinis metraštis 3, 111135.Google Scholar
Wallace, M, Jones, G, Charles, M, Fraser, R, Halstead, P, Heaton, THE and Bogaard, A (2013) Stable carbon isotope analysis as a direct means of inferring crop water status and water management practices. World Archaeology 45, 388409. doi: 10.1080/00438243.2013.821671.CrossRefGoogle Scholar
Zabiela, G (2018) Bilionių piliakalnis. Archeologiniai tyrinėjimai Lietuvoje 2017 metais, 123127.Google Scholar
Supplementary material: File

Minkevičius et al. supplementary material

Minkevičius et al. supplementary material
Download Minkevičius et al. supplementary material(File)
File 54.1 KB