Supporting in situ conservation of the genetic diversity of crop wild relatives using genomic technologies

被引:22
作者
Wambugu, Peterson W. [1 ]
Henry, Robert [2 ,3 ]
机构
[1] Genet Resources Res Inst, Kenya Agr & Livestock Res Org, Nairobi, Kenya
[2] Univ Queensland, Queensland Alliance Agr & Food Innovat, Brisbane, Qld, Australia
[3] Univ Queensland, ARC Ctr Excellence Plant Success Nat & Agr, Brisbane, Qld, Australia
关键词
crop wild relatives; genetic diversity; genomics; in situ conservation; plant genetic resources; CHLOROPLAST GENOME; CLIMATE-CHANGE; SEQUENCE INFORMATION; LOCAL ADAPTATION; BIODIVERSITY; RICE; WHEAT; IDENTIFICATION; REVEALS; DNA;
D O I
10.1111/mec.16402
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The last decade has witnessed huge technological advances in genomics, particularly in DNA sequencing. Here, we review the actual and potential application of genomics in supporting in situ conservation of crop wild relatives (CWRs). In addition to helping in prioritization of protection of CWR taxa and in situ conservation sites, genome analysis is allowing the identification of novel alleles that need to be prioritized for conservation. Genomics is enabling the identification of potential sources of important adaptive traits that can guide the establishment or enrichment of in situ genetic reserves. Genomic tools also have the potential for developing a robust framework for monitoring and reporting genome-based indicators of genetic diversity changes associated with factors such as land use or climate change. These tools have been demonstrated to have an important role in managing the conservation of populations, supporting sustainable access and utilization of CWR diversity, enhancing accelerated domestication of new crops and forensic genomics thus preventing misappropriation of genetic resources. Despite this great potential, many policy makers and conservation managers have failed to recognize and appreciate the need to accelerate the application of genomics to support the conservation and management of biodiversity in CWRs to underpin global food security. Funding and inadequate genomic expertise among conservation practitioners also remain major hindrances to the widespread application of genomics in conservation.
引用
收藏
页码:2207 / 2222
页数:16
相关论文
共 156 条
[1]   Crop wild relatives range shifts and conservation in Europe under climate change [J].
Aguirre-Gutierrez, Jesus ;
van Treuren, Rob ;
Hoekstra, Roel ;
van Hintum, Theo J. L. .
DIVERSITY AND DISTRIBUTIONS, 2017, 23 (07) :739-750
[2]   The evolutionary genomics of species' responses to climate change [J].
Aguirre-Liguori, Jonas A. ;
Ramirez-Barahona, Santiago ;
Gaut, Brandon S. .
NATURE ECOLOGY & EVOLUTION, 2021, 5 (10) :1350-1360
[3]   Genomics and the future of conservation genetics [J].
Allendorf, Fred W. ;
Hohenlohe, Paul A. ;
Luikart, Gordon .
NATURE REVIEWS GENETICS, 2010, 11 (10) :697-709
[4]   Environmental Association Analyses Identify Candidates for Abiotic Stress Tolerance in Glycine soja, the Wild Progenitor of Cultivated Soybeans [J].
Anderson, Justin E. ;
Kono, Thomas J. Y. ;
Stupar, Robert M. ;
Kantar, Michael B. ;
Morrell, Peter L. .
G3-GENES GENOMES GENETICS, 2016, 6 (04) :835-843
[5]   DNA barcoding in a biodiversity hot spot: potential value for the identification of Malagasy Euphorbia L. listed in CITES Appendices I and II [J].
Aubriot, Xavier ;
Lowry, Porter P., II ;
Cruaud, Corinne ;
Couloux, Arnaud ;
Haevermans, Thomas .
MOLECULAR ECOLOGY RESOURCES, 2013, 13 (01) :57-65
[6]  
Awano T, 2009, P NATL ACAD SCI USA, V106, P2794, DOI [10.1073/pnas.0905845106, 10.1073/pnas.0812297106]
[7]   A geographic mosaic of genetic variation within a foundation tree species and its community-level consequences [J].
Barbour, Robert C. ;
O'Reilly-Wapstra, Julianne M. ;
De Little, David W. ;
Jordan, Gregory J. ;
Steane, Dorothy A. ;
Humphreys, Jonathon R. ;
Bailey, Joseph K. ;
Whitham, Thomas G. ;
Potts, Bradley M. .
ECOLOGY, 2009, 90 (07) :1762-1772
[8]   Focused identification of germplasm strategy (FIGS) detects wheat stem rust resistance linked to environmental variables [J].
Bari, Abdallah ;
Street, Kenneth ;
Mackay, Michael ;
Endresen, Dag Terje Filip ;
De Pauw, Eddy ;
Amri, Ahmed .
GENETIC RESOURCES AND CROP EVOLUTION, 2012, 59 (07) :1465-1481
[9]  
Baute GJ, 2015, GENOMICS SUNFLOWER I
[10]   Genome-wide genotyping-by-sequencing data provide a high-resolution view of wild Helianthus diversity, genetic structure, and interspecies gene flow [J].
Baute, Gregory J. ;
Owens, Gregory L. ;
Bock, Dan G. ;
Rieseberg, Loren H. .
AMERICAN JOURNAL OF BOTANY, 2016, 103 (12) :2170-2177