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在小麦耐盐性的数量性状基因座上检测到的等位基因变异和差异表达。

Allelic variations and differential expressions detected at quantitative trait loci for salt stress tolerance in wheat.

机构信息

INRES Pflanzenzuchtung, Rheinische Friedrich-Wilhelms-Universitat, D-53115 Bonn, Germany.

Center for Development Research (ZEF), Rheinische Friedrich-Wilhelms-Universitat, D-53115 Bonn, Germany.

出版信息

Plant Cell Environ. 2018 May;41(5):919-935. doi: 10.1111/pce.12898. Epub 2017 Mar 7.

DOI:10.1111/pce.12898
PMID:28044314
Abstract

The increasing salinization of agricultural lands is a threat to global wheat production. Understanding of the mechanistic basis of salt tolerance (ST) is essential for developing breeding and selection strategies that would allow for increased wheat production under saline conditions to meet the increasing global demand. We used a set that consists of 150 internationally derived winter and facultative wheat cultivars genotyped with a 90K SNP chip and phenotyped for ST across three growth stages and for ionic (leaf K and Na  contents) traits to dissect the genetic architecture regulating ST in wheat. Genome-wide association mapping revealed 187 Single Nucleotide Polymorphism (SNPs) (R  = 3.00-30.67%), representing 37 quantitative trait loci (QTL), significantly associated with the ST traits. Of these, four QTL on 1BS, 2AL, 2BS and 3AL were associated with ST across the three growth stages and with the ionic traits. Novel QTL were also detected on 1BS and 1DL. Candidate genes linked to these polymorphisms were uncovered, and expression analyses were performed and validated on them under saline and non-saline conditions using transcriptomics and qRT-PCR data. Expressed sequence comparisons in contrasting ST wheat genotypes identified several non-synonymous/missense mutation sites that are contributory to the ST trait variations, indicating the biological relevance of these polymorphisms that can be exploited in breeding for ST in wheat.

摘要

农业土地的盐渍化不断加剧,对全球小麦生产构成了威胁。了解耐盐性(ST)的机制基础对于开发育种和选择策略至关重要,这些策略将允许在盐渍条件下增加小麦产量,以满足不断增长的全球需求。我们使用了一组由 150 种国际衍生的冬小麦和兼性小麦品种组成,这些品种使用 90K SNP 芯片进行了基因型分析,并在三个生长阶段和离子(叶片 K 和 Na 含量)性状上进行了耐盐性表型分析,以剖析调节小麦耐盐性的遗传结构。全基因组关联作图揭示了 187 个单核苷酸多态性(SNPs)(R  = 3.00-30.67%),代表 37 个数量性状位点(QTL),与耐盐性性状显著相关。其中,4 个 QTL 位于 1BS、2AL、2BS 和 3AL 上,与三个生长阶段的耐盐性和离子性状相关。还在 1BS 和 1DL 上检测到新的 QTL。发现与这些多态性相关的候选基因,并使用转录组学和 qRT-PCR 数据在盐胁迫和非盐胁迫条件下对它们进行了表达分析和验证。在具有不同耐盐性的小麦基因型中的表达序列比较鉴定出了几个非同义/错义突变位点,这些突变位点与耐盐性变异有关,表明这些多态性具有生物学相关性,可以在小麦耐盐性育种中加以利用。

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