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Identification of Quantitative Trait Loci for Anthesis-Silking Interval and Yield Components Under Drought Stress in Maize

机译:干旱胁迫下玉米花期间隔和产量构成性状的数量性状基因座的鉴定

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摘要

A genetic linkage map with 89 SSR marker loci was constructed based on a maize (Zea mays L.) population consisting of 184 F_2 individuals from the cross, Huangzao 4 X Ye 107. The 184 F_3 families were evaluated in the field under well-watered and drought-stressed regimes in Shanxi Province of China. The objectives of the study were to identify genetic segments responsible for the expression of anthesis-silking interval (ASI), ear setting and grain yield, and to examine if the quantitative trait loci (QTLs) for ASI or yield components can be used in marker-assisted selection (MAS) to improve grain yield under drought conditions. Results showed that under well-watered and drought-stressed regimes, three and two QTLs involved in the expression of ASI were detected on chromosomes 1, 2 and 3, and 2 and 5, respectively. Under well-watered regime, two QTLs for ear setting were detected on chromosomes 3 and 6, explaining about 19.9% of the phenotypic variance, and displayed additive and partial dominant effects, respectively. Under drought-stressed condition, four QTLs for ear setting were detected on chromosomes 3, 7 and 10, which were responsible for interpreting 60.4% of the phenotypic variance, and showed dominant or partial dominant effects. Under well-watered condition, four QTLs controlling grain yield were identified on chromosomes 3, 6 and 7, while five QTLs were identified under drought stress on chromosomes 1, 2, 4 and 8. The gene action was of additive or partial dominant effects, and each QTL could explain 7.3% to 22.0% of the phenotypic variance, respectively. Under drought conditions, ASI and ear setting percentage were highly correlated with grain yield, which can be used as secondary traits for grain yield selection. Based on linked markers detected and gene action analyzed, an MAS strategy for yield improvement under drought condition could be established, which consists of QTLs contributing to decreased ASI and to increased ear setting and grain yield, respectively.
机译:以玉米(Zea mays L.)种群为基础,构建了具有89个SSR标记基因座的遗传连锁图谱,该种群由来自该杂交的184个F_2个体,黄早4 X叶107组成。在灌溉条件良好的田野中对184个F_3科进行了评估。和中国山西省干旱胁迫的政权。这项研究的目的是确定造成花期间隔期(ASI)表达,穗期和籽粒产量的遗传部分,并检查是否可以将ASI的数量性状基因座(QTL)或产量成分用于标记辅助选择(MAS)以提高干旱条件下的谷物产量。结果表明,在水源充足和干旱胁迫的情况下,分别在1、2、3、2和5号染色体上检测到三个和两个与ASI表达有关的QTL。在浇水状态良好的情况下,在3号和6号染色体上检测到两个用于耳部定位的QTL,解释了约19.9%的表型变异,并分别显示了加性效应和部分显性效应。在干旱胁迫条件下,在第3、7和10号染色体上检测到四个QTL定位耳朵,这些QTL负责解释60.4%的表型变异,并表现出显性或部分显性效应。在水分充足的条件下,在第3、6和7号染色体上鉴定出四个控制籽粒产量的QTL,而在干旱胁迫下在第1、2、4和8号染色体上鉴定出五个QTL。基因作用具有加性或部分显性作用,每个QTL可以解释表型差异的7.3%至22.0%。在干旱条件下,ASI和穗期百分比与籽粒产量高度相关,可作为选择籽粒产量的次要特征。基于检测到的相关标记并分析基因作用,可以建立一种在干旱条件下提高单产的MAS策略,该策略由QTL组成,分别有助于降低ASI并提高穗穗和籽粒产量。

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