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多个群体中不同位置叶片宽度的遗传分析及主要数量性状位点定位

Genetic analysis and major quantitative trait locus mapping of leaf widths at different positions in multiple populations.

作者信息

Guo Shulei, Ku Lixia, Qi Jianshuang, Tian Zhiqiang, Han Tuo, Zhang Liangkun, Su Huihui, Ren Zhenzhen, Chen Yanhui

机构信息

College of Agronomy, Synergetic Innovation Center of Henan Grain Crops and National Key Laboratory of Wheat and Maize Crop Science, Henan Agricultural University, Zhengzhou, 450002, China.

Research Institute of Food Crops, Henan Academy of Agricultural Science, Zhengzhou, Henan, 450002, China.

出版信息

PLoS One. 2015 Mar 10;10(3):e0119095. doi: 10.1371/journal.pone.0119095. eCollection 2015.

Abstract

BACKGROUND

Leaf width is an important agricultural trait in maize. Leaf development is dependent on cell proliferation and expansion, and these processes exhibit polarity with respect to the longitudinal and transverse axes of the leaf. However, the molecular mechanism of the genetic control of seed vigor remains unknown in maize, and a better understanding of this mechanism is required.

METHODOLOGY/PRINCIPAL FINDINGS: To reveal the genetic architecture of leaf width, a comprehensive evaluation using four RIL populations was performed, followed by a meta-analysis. Forty-six QTLs associated with the widths of leaves at different positions above the uppermost ear were detected in the four RIL populations in three environments. The individual effects of the QTLs ranged from 4.33% to 18.01% of the observed phenotypic variation, with 14 QTLs showing effects of over 10%. We identified three common QTLs associated with leaf width at all of the examined positions, in addition to one common QTL associated with leaf width at three of the positions and six common QTLs associated with leaf width at two of the positions. The results indicate that leaf width at different leaf positions may be affected by one QTL or several of the same QTLs. Such traits may also be regulated by many different QTLs. Thirty-one of the forty-six initial QTLs were integrated into eight mQTLs through a meta-analysis, and 10 of the 14 initial QTLs presenting an R2>10% were integrated into six mQTLs.

CONCLUSIONS/SIGNIFICANCE: mQTL1-2, mQTL3-1, mQTL7, and mQTL8 were composed of the initial QTLs showing an R2>10% and included four to six of the initial QTLs that were associated with two to four positions in a single population. Therefore, these four chromosome regions may be hot spots for important QTLs for these traits. Thus, they warrant further studies and may be useful for marker-assisted breeding.

摘要

背景

叶片宽度是玉米的一个重要农艺性状。叶片发育依赖于细胞增殖和扩展,并且这些过程在叶片的纵向和横向轴上表现出极性。然而,玉米种子活力遗传控制的分子机制仍不清楚,需要更好地理解这一机制。

方法/主要发现:为了揭示叶片宽度的遗传结构,利用四个重组自交系群体进行了综合评价,随后进行了元分析。在三个环境下的四个重组自交系群体中,检测到46个与最上部雌穗上方不同位置叶片宽度相关的QTL。这些QTL的个体效应占观察到的表型变异的4.33%至18.01%,其中14个QTL的效应超过10%。除了一个与三个位置的叶片宽度相关的共同QTL和六个与两个位置的叶片宽度相关的共同QTL外,我们还鉴定出了在所有检测位置都与叶片宽度相关的三个共同QTL。结果表明,不同叶片位置的叶片宽度可能受一个QTL或几个相同QTL的影响。这些性状也可能受许多不同QTL的调控。通过元分析,46个初始QTL中的31个被整合到8个meta-QTL中,14个R2>10%的初始QTL中的10个被整合到6个meta-QTL中。

结论/意义:meta-QTL1-2、meta-QTL3-1、meta-QTL7和meta-QTL8由R2>10%的初始QTL组成,包括四到六个在单个群体中与两到四个位置相关的初始QTL。因此,这四个染色体区域可能是这些性状重要QTL的热点。因此,它们值得进一步研究,可能对标记辅助育种有用。

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