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与组成型性状相关的数量性状位点控制珍珠粟[Pennisetum glaucum (L.) R. Br.]的水分利用。

Quantitative trait loci associated with constitutive traits control water use in pearl millet [Pennisetum glaucum (L.) R. Br].

作者信息

Aparna K, Nepolean T, Srivastsava R K, Kholová J, Rajaram V, Kumar S, Rekha B, Senthilvel S, Hash C T, Vadez V

机构信息

International Crops Research Institute for the Semi-Arid Tropics (ICRISAT), Crop Physiology Laboratory, Patancheru, India.

Centre for Biotechnology, IST, JNTUH, Kukatpally, Hyderabad, India.

出版信息

Plant Biol (Stuttg). 2015 Sep;17(5):1073-84. doi: 10.1111/plb.12343. Epub 2015 Jul 14.

Abstract

There is substantial genetic variation for drought adaption in pearl millet in terms of traits controlling plant water use. It is important to understand genomic regions responsible for these traits. Here, F7 recombinant inbred lines were used to identify quantitative trait loci (QTL) and allelic interactions for traits affecting plant water use, and their relevance is discussed for crop productivity in water-limited environments. Four QTL contributed to increased transpiration rate under high vapour pressure deficit (VPD) conditions, all with alleles from drought-sensitive parent ICMB 841. Of these four QTL, a major QTL (35.7%) was mapped on linkage group (LG) 6. The alleles for 863B at this QTL decreased transpiration rate and this QTL co-mapped to a previously detected LG 6 QTL, with alleles from 863B for grain weight and panicle harvest index across severe terminal drought stress environments. This provided additional support for a link between water saving from a lower transpiration rate under high VPD and drought tolerance. 863B alleles in this same genomic region also increased shoot weight, leaf area and total transpiration under well-watered conditions. One unexpected outcome was reduced transpiration under high VPD (15%) from the interaction of two alleles for high VPD transpiration (LG 6 (B), 40.7) and specific leaf mass and biomass (LG 7 (A), 35.3), (A, allele from ICMB 841, B, allele from 863B, marker position). The LG 6 QTL appears to combine alleles for growth potential, beneficial for non-stress conditions, and for saving water under high evaporative demand, beneficial under stressful conditions. Mapping QTL for water-use traits, and assessing their interactions offers considerable potential for improving pearl millet adaptation to specific stress conditions through physiology-informed marker-assisted selection.

摘要

在珍珠粟中,就控制植物水分利用的性状而言,存在大量与干旱适应性相关的遗传变异。了解负责这些性状的基因组区域非常重要。在此,利用F7重组自交系来鉴定影响植物水分利用性状的数量性状位点(QTL)和等位基因互作,并讨论它们在水分有限环境下对作物生产力的相关性。四个QTL在高蒸汽压亏缺(VPD)条件下导致蒸腾速率增加,所有这些QTL的等位基因均来自干旱敏感亲本ICMB 841。在这四个QTL中,一个主要QTL(35.7%)定位在连锁群(LG)6上。该QTL处863B的等位基因降低了蒸腾速率,并且该QTL与先前检测到的LG 6 QTL共定位,在严重的终末期干旱胁迫环境下,863B的等位基因与粒重和穗收获指数相关。这为高VPD下较低蒸腾速率所带来的节水与耐旱性之间的联系提供了额外支持。在相同基因组区域中的863B等位基因在水分充足条件下也增加了地上部重量、叶面积和总蒸腾量。一个意外的结果是,高VPD蒸腾的两个等位基因(LG 6(B),40.7)与比叶质量和生物量(LG 7(A),35.3)相互作用,导致高VPD下蒸腾减少(15%),(A,来自ICMB 841的等位基因,B,来自863B的等位基因,标记位置)。LG 6 QTL似乎结合了有利于非胁迫条件下生长潜力的等位基因,以及有利于高蒸发需求下节水的等位基因,后者在胁迫条件下有益。绘制水分利用性状的QTL并评估它们的互作,通过基于生理学的标记辅助选择,在改善珍珠粟对特定胁迫条件的适应性方面具有巨大潜力。

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