Genome-wide association mapping of salinity tolerance in rice (Oryza sativa). 2015

Vinod Kumar, and Anshuman Singh, and S V Amitha Mithra, and S L Krishnamurthy, and Swarup K Parida, and Sourabh Jain, and Kapil K Tiwari, and Pankaj Kumar, and Atmakuri R Rao, and S K Sharma, and Jitendra P Khurana, and Nagendra K Singh, and Trilochan Mohapatra
National Research Centre on Plant Biotechnology, New Delhi 110012, India.

Salinity tolerance in rice is highly desirable to sustain production in areas rendered saline due to various reasons. It is a complex quantitative trait having different components, which can be dissected effectively by genome-wide association study (GWAS). Here, we implemented GWAS to identify loci controlling salinity tolerance in rice. A custom-designed array based on 6,000 single nucleotide polymorphisms (SNPs) in as many stress-responsive genes, distributed at an average physical interval of <100 kb on 12 rice chromosomes, was used to genotype 220 rice accessions using Infinium high-throughput assay. Genetic association was analysed with 12 different traits recorded on these accessions under field conditions at reproductive stage. We identified 20 SNPs (loci) significantly associated with Na(+)/K(+) ratio, and 44 SNPs with other traits observed under stress condition. The loci identified for various salinity indices through GWAS explained 5-18% of the phenotypic variance. The region harbouring Saltol, a major quantitative trait loci (QTLs) on chromosome 1 in rice, which is known to control salinity tolerance at seedling stage, was detected as a major association with Na(+)/K(+) ratio measured at reproductive stage in our study. In addition to Saltol, we also found GWAS peaks representing new QTLs on chromosomes 4, 6 and 7. The current association mapping panel contained mostly indica accessions that can serve as source of novel salt tolerance genes and alleles. The gene-based SNP array used in this study was found cost-effective and efficient in unveiling genomic regions/candidate genes regulating salinity stress tolerance in rice.

UI MeSH Term Description Entries
D012275 Oryza A genus of grass family (Poaceae) that include several rice species. Oryza sativa,Rice,Rices
D055049 Salt Tolerance The ability of organisms to sense and adapt to high concentrations of salt in their growth environment. Salt-Tolerance,Saline-Tolerance,Salinity Tolerance,Salt Adaptation,Salt Adaption,Salt-Adaption,Adaptation, Salt,Adaption, Salt,Saline Tolerance,Salinity Tolerances,Salt Adaptations,Salt Adaptions,Salt Tolerances,Tolerance, Salinity,Tolerance, Salt
D055106 Genome-Wide Association Study An analysis comparing the allele frequencies of all available (or a whole GENOME representative set of) polymorphic markers to identify gene candidates or quantitative trait loci associated with a specific organism trait or specific disease or condition. Genome Wide Association Analysis,Genome Wide Association Study,GWA Study,Genome Wide Association Scan,Genome Wide Association Studies,Whole Genome Association Analysis,Whole Genome Association Study,Association Studies, Genome-Wide,Association Study, Genome-Wide,GWA Studies,Genome-Wide Association Studies,Studies, GWA,Studies, Genome-Wide Association,Study, GWA,Study, Genome-Wide Association
D020412 Multifactorial Inheritance A pattern of inheritance of a trait that includes the contributions from more than one gene. Oligogenic Inheritance,Polygenic Inheritance,Polygenic Traits,Complex Inheritance,Complex Traits,Multigenic Inheritance,Multigenic Traits,Oligogenic Traits,Polygenic Characters,Character, Polygenic,Characters, Polygenic,Complex Trait,Inheritance, Complex,Inheritance, Multifactorial,Inheritance, Multigenic,Inheritance, Oligogenic,Inheritance, Polygenic,Multigenic Trait,Oligogenic Trait,Polygenic Character,Polygenic Trait,Trait, Complex,Trait, Multigenic,Trait, Oligogenic,Trait, Polygenic,Traits, Complex,Traits, Multigenic,Traits, Oligogenic,Traits, Polygenic
D020641 Polymorphism, Single Nucleotide A single nucleotide variation in a genetic sequence that occurs at appreciable frequency in the population. SNPs,Single Nucleotide Polymorphism,Nucleotide Polymorphism, Single,Nucleotide Polymorphisms, Single,Polymorphisms, Single Nucleotide,Single Nucleotide Polymorphisms
D032461 Chromosomes, Plant Complex nucleoprotein structures which contain the genomic DNA and are part of the CELL NUCLEUS of PLANTS. Chromosome, Plant,Plant Chromosome,Plant Chromosomes
D040641 Quantitative Trait Loci Genetic loci associated with a quantitative trait. Quantitative Trait Loci Genes,Loci, Quantitative Trait,Locus, Quantitative Trait,Quantitative Trait Locus,Trait Loci, Quantitative,Trait Locus, Quantitative

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