Genome-Wide Association Studies Detect Multiple QTLs for Productivity in Mesoamerican Diversity Panel of Common Bean Under Drought Stress

被引:29
作者
Valdisser, Paula Arielle Mendes Ribeiro [1 ,2 ]
Mueller, Barbara S. F. [3 ]
de Almeida Filho, Janeo Eustaquio [4 ]
Morais Junior, Odilon Peixoto [5 ]
Guimaraes, Cleber Morais [6 ]
Borba, Tereza C. O. [1 ]
de Souza, Isabela Pavanelli [1 ,7 ]
Zucchi, Maria Imaculada [2 ,8 ]
Neves, Leandro G. [9 ]
Coelho, Alexandre S. G. [10 ]
Brondani, Claudio [1 ]
Vianello, Rosana Pereira [1 ]
机构
[1] EMBRAPA Arroz & Feijao, Biotechnol Lab, Santo Antonio Do Goias, Brazil
[2] Univ Estadual Campinas, Genet & Mol Biol Grad Program, Inst Biol, Campinas, Brazil
[3] Univ Florida, Dept Hort Sci, Gainesville, FL USA
[4] Bayer Brazil Crop Sci, Coxilha, Brazil
[5] Univ Fed Goias, Sch Agron, Dept Genet & Plant Breeding, Goiania, Go, Brazil
[6] EMBRAPA Arroz Feijao, Plant Physiol Lab, Goiania, Go, Brazil
[7] Univ Fed Goias, Inst Biol Sci, Postgrad Program Biol Sci, Goiania, Go, Brazil
[8] Agr & Food Supply Secretary Sao Paulo, Agribusiness Technol Agcy Sao Paulo State, Piracicaba, Brazil
[9] Rapid Genom, Gainesville, FL USA
[10] Univ Fed Goias, Sch Agron, Goiania, Go, Brazil
关键词
Phaseolus vulgaris; DArTseq markers; CaptureSeq; genetic diversity; seed-weight; yield; GWAS; candidate markers; PHASEOLUS-VULGARIS L; QUANTITATIVE TRAIT LOCI; YIELD-RELATED TRAITS; POPULATION-STRUCTURE; GENETIC DIVERSITY; TERMINAL DROUGHT; AGRONOMIC TRAITS; REPEAT PROTEINS; CLIMATE-CHANGE; RESISTANCE;
D O I
10.3389/fpls.2020.574674
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Drought stress is an important abiotic factor limiting common bean yield, with great impact on the production worldwide. Understanding the genetic basis regulating beans' yield and seed weight (SW) is a fundamental prerequisite for the development of superior cultivars. The main objectives of this work were to conduct genome-wide marker discovery by genotyping a Mesoamerican panel of common bean germplasm, containing cultivated and landrace accessions of broad origin, followed by the identification of genomic regions associated with productivity under two water regimes using different genome-wide association study (GWAS) approaches. A total of 11,870 markers were genotyped for the 339 genotypes, of which 3,213 were SilicoDArT and 8,657 SNPs derived from DArT and CaptureSeq. The estimated linkage disequilibrium extension, corrected for structure and relatedness (r(sv)(2)), was 98.63 and 124.18 kb for landraces and breeding lines, respectively. Germplasm was structured into landraces and lines/cultivars. We carried out GWASs for 100-SW and yield in field environments with and without water stress for 3 consecutive years, using single-, segment-, and gene-based models. Higher number of associations at high stringency was identified for the SW trait under irrigation, totaling similar to 185 QTLs for both single- and segment-based, whereas gene-based GWASs showed similar to 220 genomic regions containing similar to 650 genes. For SW under drought, 18 QTLs were identified for single- and segment-based and 35 genes by gene-based GWASs. For yield, under irrigation, 25 associations were identified, whereas under drought the total was 10 using both approaches. In addition to the consistent associations detected across experiments, these GWAS approaches provided important complementary QTL information (similar to 221 QTLs; 650 genes; r(2) from 0.01% to 32%). Several QTLs were mined within or near candidate genes playing significant role in productivity, providing better understanding of the genetic mechanisms underlying these traits and making available molecular tools to be used in marker-assisted breeding. The findings also allowed the identification of genetic material (germplasm) with better yield performance under drought, promising to a common bean breeding program. Finally, the availability of this highly diverse Mesoamerican panel is of great scientific value for the analysis of any relevant traits in common bean.
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页数:22
相关论文
共 160 条
[1]   Prebreeding in common bean and use of genetic diversity from wild germplasm [J].
Acosta-Gallegos, Jorge A. ;
Kelly, James D. ;
Gepts, Paul .
CROP SCIENCE, 2007, 47 :S44-S59
[2]   PHENOLOGICAL PLASTICITY AS AN ADAPTATION BY COMMON BEAN TO RAIN-FED ENVIRONMENTS [J].
ACOSTAGALLEGOS, JA ;
WHITE, JW .
CROP SCIENCE, 1995, 35 (01) :199-204
[3]   Gapped BLAST and PSI-BLAST: a new generation of protein database search programs [J].
Altschul, SF ;
Madden, TL ;
Schaffer, AA ;
Zhang, JH ;
Zhang, Z ;
Miller, W ;
Lipman, DJ .
NUCLEIC ACIDS RESEARCH, 1997, 25 (17) :3389-3402
[4]  
[Anonymous], 2016, FAOSTAT
[5]   Prunus genetics and applications after de novo genome sequencing: achievements and prospects [J].
Aranzana, Maria Jose ;
Decroocq, Veronique ;
Dirlewanger, Elisabeth ;
Eduardo, Iban ;
Gao, Zhong Shan ;
Gasic, Ksenija ;
Iezzoni, Amy ;
Jung, Sook ;
Peace, Cameron ;
Prieto, Humberto ;
Tao, Ryutaro ;
Verde, Ignazio ;
Abbott, Albert G. ;
Arus, Pere .
HORTICULTURE RESEARCH, 2019, 6
[6]   Genome-wide identification of SNPs and copy number variation in common bean (Phaseolus vulgaris L.) using genotyping-by-sequencing (GBS) [J].
Ariani, Andrea ;
Mier y Teran, Jorge Carlos Berny ;
Gepts, Paul .
MOLECULAR BREEDING, 2016, 36 (07)
[7]  
Azeez M. A., 2018, Rediscovery of Landraces as a Resource for the Future, DOI [10.5772/intechopen.75944, DOI 10.5772/INTECHOPEN.75944, 10.5772/INTECHOPEN.75944]
[8]   Fast set-based association analysis using summary data from GWAS identifies novel gene loci for human complex traits [J].
Bakshi, Andrew ;
Zhu, Zhihong ;
Vinkhuyzen, Anna A. E. ;
Hill, W. David ;
Mcrae, Allan F. ;
Visscher, Peter M. ;
Yang, Jian .
SCIENTIFIC REPORTS, 2016, 6
[9]  
Balcha A., 2015, ETHIOPIA ASIAN J CRO, V7, P295, DOI [10.3923/ajcs.2015.295.300, DOI 10.3923/AJCS.2015.295.300]
[10]   Haploview: analysis and visualization of LD and haplotype maps [J].
Barrett, JC ;
Fry, B ;
Maller, J ;
Daly, MJ .
BIOINFORMATICS, 2005, 21 (02) :263-265