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聚乙二醇诱导的渗透胁迫改变小麦基因型的根系形态和根毛性状。

PEG-Induced Osmotic Stress Alters Root Morphology and Root Hair Traits in Wheat Genotypes.

作者信息

Robin Arif Hasan Khan, Ghosh Shatabdi, Shahed Md Abu

机构信息

Department of Genetics and Plant Breeding, Bangladesh Agricultural University, Mymensingh 2202, Bangladesh.

出版信息

Plants (Basel). 2021 May 21;10(6):1042. doi: 10.3390/plants10061042.

Abstract

Wheat crop in drought-prone regions of Bangladesh suffers from osmotic stress. The objective of this study was to investigate the response of wheat genotypes with respect to root morphology and root hair traits under polyethylene glycol (PEG)-induced osmotic stress. A total of 22 genotypes of wheat were grown hydroponically and two treatments-0% and 10% PEG-were imposed at 14 days after germination. Plant growth was reduced in terms of plant height, number of live leaves per tiller, shoot dry weight, number of root-bearing phytomers, and roots per tiller. Notably, PEG-induced osmotic stress increased root dry weight per tiller by increasing length of the main axis and lateral roots, as well as the diameter and density of both lateral roots and root hairs of the individual roots. A biplot was drawn after a principal component analysis, taking three less-affected (high-yielding genotypes) and three highly affected (low-yielding genotypes and landrace) genotypes under 10% PEG stress, compared to control. Principal component 1 separated PEG-treated wheat genotypes from control-treated genotypes, with a high and positive coefficient for the density of lateral roots and root hairs, length and diameter of the main axis, and first-order lateral roots and leaf injury scores, indicating that these traits are associated with osmotic stress tolerance. Principal component 2 separated high-yielding and tolerant wheat genotypes from low-yielding and susceptible genotypes, with a high coefficient for root dry weight, density of root hairs and second-order lateral roots, length of the main axis, and first-order lateral roots. An increase in root dry weight in PEG-stress-tolerant wheat genotypes was achieved through an increase in length and diameter of the main axis and lateral roots. The information derived from this research could be exploited for identifying osmotic stress-tolerant QTL and for developing abiotic-tolerant cultivars of wheat.

摘要

孟加拉国易旱地区的小麦作物遭受渗透胁迫。本研究的目的是调查在聚乙二醇(PEG)诱导的渗透胁迫下,小麦基因型对根系形态和根毛性状的响应。总共22个小麦基因型进行水培种植,在发芽后14天施加两种处理——0%和10% PEG。就株高、每分蘖活叶数、地上部干重、生根节数和每分蘖根数而言,植株生长受到抑制。值得注意的是,PEG诱导的渗透胁迫通过增加主轴和侧根的长度以及单个根的侧根和根毛的直径和密度,增加了每分蘖根干重。在主成分分析后绘制了双标图,选取了在10% PEG胁迫下与对照相比受影响较小的三个(高产基因型)和受影响较大的三个(低产基因型和地方品种)基因型。主成分1将PEG处理的小麦基因型与对照处理的基因型分开,侧根和根毛密度、主轴长度和直径、一级侧根以及叶片损伤评分具有高且正的系数,表明这些性状与渗透胁迫耐受性相关。主成分2将高产和耐胁迫的小麦基因型与低产和敏感基因型分开,根干重、根毛和二级侧根密度、主轴长度以及一级侧根具有高系数。耐PEG胁迫的小麦基因型根干重的增加是通过主轴和侧根长度和直径的增加实现的。本研究获得的信息可用于鉴定耐渗透胁迫的QTL以及培育耐非生物胁迫的小麦品种。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4d4/8224394/b7900f6560f8/plants-10-01042-g001.jpg

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