000 03626nab|a22003977a|4500
999 _c63632
_d63624
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008 200214s2021||||xxk|||p|op||||00||0|eng|d
022 _a1471-2164
024 8 _ahttps://doi.org/10.1186/s12864-021-07463-y
040 _aMX-TxCIM
041 _aeng
100 1 _aLongmei, N.
_918132
245 1 0 _aGenome wide association mapping for heat tolerance in sub-tropical maize
260 _aLondon (United Kingdom) :
_bBioMed Central,
_c2021.
500 _aPeer review
500 _aOpen Access
520 _aBackground: Heat tolerance is becoming increasingly important where maize is grown under spring season in India which coincide with grain filling stage of crop resulting in tassel blast, reduced pollen viability, pollination failure and barren ears that causes devastating yield losses. So, there is need to identify the genomic regions associated with heat tolerance component traits which could be further employed in maize breeding program. Results: An association mapping panel, consisting of 662 doubled haploid (DH) lines, was evaluated for yield contributing traits under normal and natural heat stress conditions. Genome wide association studies (GWAS) carried out using 187,000 SNPs and 130 SNPs significantly associated for grain yield (GY), days to 50% anthesis (AD), days to 50% silking (SD), anthesis-silking interval (ASI), plant height (PH), ear height (EH) and ear position (EPO) were identified under normal conditions. A total of 46 SNPs strongly associated with GY, ASI, EH and EPO were detected under heat stress conditions. Fifteen of the SNPs was found to have common association with more than one trait such as two SNPs viz. S10_1,905,273 and S10_1,905,274 showed colocalization with GY, PH and EH whereas S10_7,132,845 SNP associated with GY, AD and SD under normal conditions. No such colocalization of SNP markers with multiple traits was observed under heat stress conditions. Haplotypes trend regression analysis revealed 122 and 85 haplotype blocks, out of which, 20 and 6 haplotype blocks were associated with more than one trait under normal and heat stress conditions, respectively. Based on SNP association and haplotype mapping, nine and seven candidate genes were identified respectively, which belongs to different gene models having different biological functions in stress biology. Conclusions: The present study identified significant SNPs and haplotype blocks associated with yield contributing traits that help in selection of donor lines with favorable alleles for multiple traits. These results provided insights of genetics of heat stress tolerance. The genomic regions detected in the present study need further validation before being applied in the breeding pipelines.
546 _aText in English
591 _aHindu, V. : Not in IRS Staff list but CIMMYT Affiliation
650 7 _2AGROVOC
_91925
_aHaploidy
650 0 _2AGROVOC
_93563
_aGenes
650 7 _2AGROVOC
_91134
_aGenotypes
650 0 _aSingle nucleotide polymorphisms
_gAGROVOC
_910805
700 1 _aGill, G.K.
_918133
700 1 _aZaidi, P.H.
_9862
_8INT2823
_gGlobal Maize Program
700 1 _aKumar, R.
_918121
700 1 _aNair, S.K.
_91434
_8INT3232
_gGlobal Maize Program
700 1 _aHindu, V.
_96100
700 1 _aVinayan, M.T.
_9925
_8INT3341
_gGlobal Maize Program
700 1 _aVikal, Y.
_919618
773 0 _tBMC Genomics
_gv. 22, art. 154
_dLondon (United Kingdom) : BioMed Central, 2021.
_x1471-2164
_wu56896
856 4 _yOpen Access through DSpace
_uhttps://hdl.handle.net/10883/21492
942 _cJA
_n0
_2ddc