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QTL mapping for six ear leaf architecture traits under water-stressed and well-watered conditions in maize (Zea mays L.)

机译:玉米含水和浇水条件下的六耳架结构的QTL映射(Zea Mays L.)

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摘要

Morphological traits for ear leaf are determinant traits influencing plant architecture and drought tolerance in maize. However, the genetic controls of ear leaf architecture traits remain poorly understood under drought stress. Here, we identified 100 quantitative trait loci (QTLs) for leaf angle, leaf orientation value, leaf length, leaf width, leaf size and leaf shape value of ear leaf across four populations under drought-stressed and unstressed conditions, which explained 0.71%-20.62% of phenotypic variation in single watering condition. Forty-five of the 100 QTLs were identified under water-stressed conditions, and 29 stable QTLs (sQTLs) were identified under water-stressed conditions, which could be useful for the genetic improvement of maize drought tolerance via QTL pyramiding. We further integrated 27 independent QTL studies in a meta-analysis to identify 21 meta-QTLs (mQTLs). Then, 24 candidate genes controlling leaf architecture traits coincided with 20 corresponding mQTLs. Thus, new/valuable information on quantitative traits has shed some light on the molecular mechanisms responsible for leaf architecture traits affected by watering conditions. Furthermore, alleles for leaf architecture traits provide useful targets for marker-assisted selection to generate high-yielding maize varieties.
机译:穗叶形态性状是影响玉米植株结构和耐旱性的决定性状。然而,在干旱胁迫下,对穗叶结构性状的遗传控制仍知之甚少。在干旱胁迫和非胁迫条件下,我们在四个群体中鉴定了100个数量性状位点(QTL),用于叶角、叶向值、叶长、叶宽、叶大小和穗叶的叶形值,解释了单次浇水条件下0.71%-20.62%的表型变异。100个QTL中有45个在水分胁迫条件下被鉴定,29个稳定QTL(sqtl)在水分胁迫条件下被鉴定,这可能有助于通过QTL聚合进行玉米抗旱性的遗传改良。在荟萃分析中,我们进一步整合了27个独立的QTL研究,以确定21个荟萃QTL(MQTL)。然后,24个控制叶结构性状的候选基因与20个相应的MQTL一致。因此,有关数量性状的新的/有价值的信息对影响浇水条件的叶结构性状的分子机制有了一些帮助。此外,叶结构性状的等位基因为标记辅助选择产生高产玉米品种提供了有用的目标。

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