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正常和水分亏缺条件下面包小麦生理、农艺和品质性状的遗传潜力及遗传模式

Genetic Potential and Inheritance Patterns of Physiological, Agronomic and Quality Traits in Bread Wheat under Normal and Water Deficit Conditions.

作者信息

Kamara Mohamed M, Rehan Medhat, Mohamed Amany M, El Mantawy Rania F, Kheir Ahmed M S, Abd El-Moneim Diaa, Safhi Fatmah Ahmed, ALshamrani Salha M, Hafez Emad M, Behiry Said I, Ali Mohamed M A, Mansour Elsayed

机构信息

Department of Agronomy, Faculty of Agriculture, Kafrelsheikh University, Kafr El-Sheikh 33516, Egypt.

Department of Plant Production and Protection, College of Agriculture and Veterinary Medicine, Qassim University, Burydah 51452, Saudi Arabia.

出版信息

Plants (Basel). 2022 Mar 31;11(7):952. doi: 10.3390/plants11070952.

Abstract

Water scarcity is a major environmental stress that adversatively impacts wheat growth, production, and quality. Furthermore, drought is predicted to be more frequent and severe as a result of climate change, particularly in arid regions. Hence, breeding for drought-tolerant and high-yielding wheat genotypes has become more decisive to sustain its production and ensure global food security with continuing population growth. The present study aimed at evaluating different parental bread wheat genotypes (exotic and local) and their hybrids under normal and drought stress conditions. Gene action controlling physiological, agronomic, and quality traits through half-diallel analysis was applied. The results showed that water-deficit stress substantially decreased chlorophyll content, photosynthetic efficiency (FV/Fm), relative water content, grain yield, and yield attributes. On the other hand, proline content, antioxidant enzyme activities (CAT, POD, and SOD), grain protein content, wet gluten content, and dry gluten content were significantly increased compared to well-watered conditions. The 36 evaluated genotypes were classified based on drought tolerance indices into 5 groups varying from highly drought-tolerant (group A) to highly drought-sensitive genotypes (group E). The parental genotypes P and P were identified as good combiners to increase chlorophyll b, total chlorophyll content, relative water content, grain yield, and yield components under water deficit conditions. Additionally, the cross combinations P × P, P × P, P × P, and P × P were the most promising combinations to increase yield traits and multiple physiological parameters under water deficit conditions. Furthermore, P, P, and P were recognized as promising parents to improve grain protein content and wet and dry gluten contents under drought stress. In addition, the crosses P × P, P × P, P × P, P × P, P × P, P × P, P × P, P × P, and P × P were the best combinations to improve grain protein content under water-stressed and non-stressed conditions. Certain physiological traits displayed highly positive associations with grain yield and its contributing traits under drought stress such as chlorophyll a, chlorophyll b, total chlorophyll content, photosynthetic efficiency (Fv/Fm), proline content, and relative water content, which suggest their importance for indirect selection under water deficit conditions. Otherwise, grain protein content was negatively correlated with grain yield, indicating that selection for higher grain yield could reduce grain protein content under drought stress conditions.

摘要

水资源短缺是一种主要的环境胁迫,对小麦的生长、产量和品质产生不利影响。此外,由于气候变化,预计干旱将更加频繁和严重,特别是在干旱地区。因此,培育耐旱高产的小麦基因型对于在人口持续增长的情况下维持其产量并确保全球粮食安全变得更加关键。本研究旨在评估不同的亲本面包小麦基因型(外来和本地)及其杂交种在正常和干旱胁迫条件下的表现。通过半双列分析应用控制生理、农艺和品质性状的基因作用。结果表明,水分亏缺胁迫显著降低了叶绿素含量、光合效率(FV/Fm)、相对含水量、籽粒产量和产量构成因素。另一方面,与充分供水条件相比,脯氨酸含量、抗氧化酶活性(CAT、POD和SOD)、籽粒蛋白质含量、湿面筋含量和干面筋含量显著增加。根据耐旱指数,将36个评估基因型分为5组,从高度耐旱(A组)到高度干旱敏感基因型(E组)。亲本基因型P和P被确定为在水分亏缺条件下增加叶绿素b、总叶绿素含量、相对含水量、籽粒产量和产量构成因素的优良组合。此外,杂交组合P×P、P×P、P×P和P×P是在水分亏缺条件下增加产量性状和多个生理参数最有前景的组合。此外,P、P和P被认为是在干旱胁迫下提高籽粒蛋白质含量以及湿面筋和干面筋含量的有前景的亲本。此外,杂交组合P×P、P×P、P×P、P×P、P×P、P×P、P×P、P×P和P×P是在水分胁迫和非胁迫条件下提高籽粒蛋白质含量的最佳组合。在干旱胁迫下,某些生理性状与籽粒产量及其构成性状表现出高度正相关,如叶绿素a、叶绿素b、总叶绿素含量、光合效率(Fv/Fm)、脯氨酸含量和相对含水量,这表明它们在水分亏缺条件下进行间接选择的重要性。否则,籽粒蛋白质含量与籽粒产量呈负相关,这表明在干旱胁迫条件下选择较高的籽粒产量可能会降低籽粒蛋白质含量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4e7a/9002629/a0844a42fdac/plants-11-00952-g001.jpg

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