Hostname: page-component-8448b6f56d-42gr6 Total loading time: 0 Render date: 2024-04-24T10:34:39.167Z Has data issue: false hasContentIssue false

Genomics of plant genetic resources: past, present and future

Published online by Cambridge University Press:  15 March 2011

Kyujung Van
Affiliation:
Department of Plant Science and Research Institute for Agriculture and Life Sciences, Seoul National University, Seoul151-921, Korea
Dong Hyun Kim
Affiliation:
Department of Plant Science and Research Institute for Agriculture and Life Sciences, Seoul National University, Seoul151-921, Korea
Jin Hee Shin
Affiliation:
Department of Plant Science and Research Institute for Agriculture and Life Sciences, Seoul National University, Seoul151-921, Korea
Suk-Ha Lee*
Affiliation:
Department of Plant Science and Research Institute for Agriculture and Life Sciences, Seoul National University, Seoul151-921, Korea Plant Genomics and Breeding Institute, Seoul National University, Seoul151-921, Korea
*
*Corresponding author. E-mail: sukhalee@snu.ac.kr

Abstract

Plant genetic resources (PGR) include cultivars, landraces, wild species closely related to cultivated varieties, breeder's elite lines and mutants. The loss of genetic diversity caused by the practice of agriculture and the availability of genetic information has resulted in a great effort dedicated to the collection of PGR. Prior to the advent of molecular profiling, accessions in germplasm collections were examined based on morphology. The development of molecular techniques now allows a more accurate analysis of large collections. Next-generation sequencing (NGS) with de novo assembly and resequencing has already provided a substantial amount of information, which warrants the coordination of existing databases and their integration into genebanks. Thus, the integration and coordination of genomic data into genebanks is very important and requires an international effort. From the determination of phenotypic traits to the application of NGS to whole genomes, every aspect of genomics will have a great impact not only on PGR conservation, but also on plant breeding programmes.

Type
Research Article
Copyright
Copyright © NIAB 2011

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.)

References

Akhunov, E, Nicolet, C and Dvorak, J (2009) Single nucleotide polymorphism genotyping in polyploid wheat with the Illumina GoldenGate assay. Theoretical and Applied Genetics 119: 507517.CrossRefGoogle ScholarPubMed
Andersen, JR and Lubberstedt, T (2003) Functional markers in plants. Trends in Plant Science 8: 554560.CrossRefGoogle ScholarPubMed
Brown, AHD (1989) The case for core sets. In: Brown, AHD, Frankel, OH, Marshall, DR and Williams, JT (eds) The Use of Plant Genetic Resources. Cambridge: Cambridge University Press, pp. 136155.Google Scholar
Clarke, J, Wu, H-C, Jayasinghe, L, Patel, A, Reid, S and Bayley, H (2009) Continuous base identification for single-molecule nanopore DNA sequencing. Nature Nanotechnology 4: 265270.CrossRefGoogle ScholarPubMed
Eid, J, Fehr, A, Gray, J, Luong, K, Lyle, J, Otto, G, Peluso, P, Rank, D, Baybayan, P, Bettman, B, Bibillo, A, Bjornson, K, Chaudhuri, B, Christians, F, Cicero, R, Clark, S, Dalal, R, deWinter, A, Dixon, J, Foquet, M, Gaertner, A, Hardenbol, P, Heiner, C, Hester, K, Holden, D, Kearns, G, Kong, X, Kuse, R, Lacroix, Y, Lin, S, Lundquist, P, Ma, C, Marks, P, Maxham, M, Murphy, D, Park, I, Pham, T, Phillips, M, Roy, J, Sebra, R, Shen, G, Sorenson, J, Tomaney, A, Travers, K, Trulson, M, Vieceli, J, Wegener, J, Wu, D, Yang, A, Zaccarin, D, Zhao, P, Zhong, F, Korlach, J and Turner, S (2009) Real-time DNA sequencing from single polymerase molecules. Science 323: 133138.CrossRefGoogle ScholarPubMed
Frankel, PH (1984) Genetic perspective of germplasm conservation. In: Arber, W, Llimensee, K, Peacock, WJ and Starlinger, P (eds) Genetic manipulations: Impact on Man and Society. Cambridge: Cambridge University Press, pp. 161170.Google Scholar
Gepts, P (2006) Plant genetic resources conservation and utilization: the accomplishments and future of a societal insurance policy. Crop Science 46: 22782292.Google Scholar
Gilbert, JE, Lewis, RV, Wilkinson, MJ and Caligari, PDS (1999) Developing an appropriate strategy to assess genetic variability in plant germplasm collections. Theoretical and Applied Genetics 98: 11251131.Google Scholar
Gupta, PK, Roy, JK and Prasad, M (2001) Single nucleotide polymorphisms: a new paradigm for molecular marker technology and DNA polymorphism detection with emphasis on their use in plants. Current Science India 80: 524535.Google Scholar
Gupta, PK, Rustgi, S and Mir, RR (2008) Array-based high-throughput DNA markers for crop improvement. Heredity 101: 518.CrossRefGoogle ScholarPubMed
Hamblin, MT, Warburton, ML and Buckler, ES (2007) Empirical comparison of simple sequence repeats and single nucleotide polymorphisms in assessment of maize diversity and relatedness. Public Library of Science ONE 2: e1367.Google ScholarPubMed
Hammer, K (2003) A paradigm shift in the discipline of plant genetic resources. Genetic Resources and Crop Evolution 50: 310.CrossRefGoogle Scholar
Harris, TD, Buzby, PR, Babcock, H, Beer, E, Bowers, J, Braslavsky, I, Causey, M, Colonell, J, DiMeo, J, Efcavitch, JW, Giladi, E, Gill, J, Healy, J, Jarosz, M, Lapen, D, Moulton, K, Quake, SR, Steinmann, K, Thayer, E, Tyurina, A, Ward, R, Weiss, H and Xie, Z (2008) Single-molecule DNA sequencing of a viral genome. Science 320: 106109.CrossRefGoogle ScholarPubMed
Hoisington, D, Khairallah, M, Reeves, T, Ribaut, J-M, Skovmand, B, Taba, S and Warburton, M (1999) Plant genetic resources: what can they contribute toward increased crop productivity? Proceeding of the National Academy of Sciences USA 96: 59375943.CrossRefGoogle ScholarPubMed
Huang, X, Feng, Q, Qian, Q, Zhao, Q, Wang, L, Wang, A, Guan, J, Fan, D, Weng, Q, Huang, T, Dong, G, Sang, T and Han, B (2009) High-throughput genotyping by whole-genome resequencing. Genome Research 19: 10681076.Google Scholar
Hyten, DL, Song, Q, Choi, IY, Yoon, MS, Specht, JE, Matukumalli, LK, Nelson, RL, Shoemaker, RC, Young, ND and Cregan, PB (2008) High-throughput genotyping with the GoldenGate assay in the complex genome of soybean. Theoretical and Applied Genetics 116: 945952.Google Scholar
Hyten, DL, Smith, JR, Frederick, RD, Tucker, ML, Song, Q and Cregan, PB (2009) Bulked segregant analysis using the GoldenGate assay to locate the Rpp3 locus that confers resistance to soybean rust in soybean. Crop Science 49: 265271.CrossRefGoogle Scholar
Moose, SP and Mumm, RH (2008) Molecular plant breeding as the foundation for 21st century crop improvement. Plant Physiology 147: 969977.CrossRefGoogle ScholarPubMed
Morozova, O and Marra, MA (2008) Applications of next-generation sequencing technologies in functional genomics. Genomics 92: 255264.CrossRefGoogle ScholarPubMed
Rostoks, N, Ramsay, L, MacKenzie, K, Cardle, L, Bhat, PR, Roose, ML, Svensson, JT, Stein, N, Varshney, RK, Marshall, DF, Graner, A, Close, TJ and Waugh, R (2006) Recent history of artificial outcrossing facilitates whole-genome association mapping in elite inbred crop varieties. Proceedings of the National Academy of Sciences USA 103: 1865618661.CrossRefGoogle ScholarPubMed
Rusk, N (2009) Cheap third-generation sequencing. Nature Methods 6: 244245.CrossRefGoogle Scholar
Short, P (2003) In Pursuit of Plants. Portland: Timber Press.Google Scholar
Tanksley, SD and McCouch, SR (1997) Seed banks and molecular maps: unlocking genetic potential from the wild. Science 277: 10631066.CrossRefGoogle ScholarPubMed
Toyoda, T and Wada, A (2004) Omic space: coordinate-based integration and analysis of genomic phenomic interactions. Bioinformatics 20: 17591765.Google Scholar
van Hintum, TJL (1999) The general methodology for creating a core collection. In: Johnsons, RC and Hodgkin, T (eds) Core Set for Today and Tomorrow. Rome: International Plant Genetic Resources Institute (IPGRI), pp. 1017.Google Scholar
Varshney, RK, Nayak, SN, May, GD and Jackson, SA (2009) Next-generation sequencing technologies and their implications for crop genetics and breeding. Trends in Biotechnology 27: 522530.CrossRefGoogle ScholarPubMed
Weber, APM, Weber, KL, Carr, K, Wilkerson, C and Ohlrogge, JB (2007) Sampling the Arabidopsis transcriptome with massively parallel pyrosequencing. Plant Physiology 144: 3242.CrossRefGoogle ScholarPubMed
Weigel, D and Mott, R (2009) The 1001 genomes project for Arabidopsis thaliana. Genome Biology 10: 107.CrossRefGoogle ScholarPubMed
Yan, JB, Yang, XH, Shah, T, Sanchez-Villeda, H, Li, JS, Warburton, M, Zhou, Y, Crouch, JH and Xu, YB (2010) High-throughput SNP genotyping with the GoldenGate assay in maize. Molecular Breeding 25: 441451.Google Scholar