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小麦岩藻糖合酶基因家族分析及. 抗旱耐盐功能鉴定

Analysis of Raffinose Synthase Gene Family in Bread Wheat and Identification of Drought Resistance and Salt Tolerance Function of .

机构信息

State Key Laboratory of Crop Stress Biology for Arid Areas, College of Life Sciences, Northwest A&F University, Xianyang 712100, China.

State Key Laboratory of Crop Stress Biology for Arid Areas, College of Agronomy, Northwest A&F University, Xianyang 712100, China.

出版信息

Int J Mol Sci. 2023 Jul 6;24(13):11185. doi: 10.3390/ijms241311185.

Abstract

Raffinose synthase (RS) plays a crucial role in plant growth and development, as well as in responses to biotic stresses and abiotic stresses, yet few studies have been conducted on its role in bread wheat. Therefore, in this study we screened and identified a family of bread wheat raffinose synthase genes based on bread wheat genome information and analyzed their physicochemical properties, phylogenetic evolutionary relationships, conserved structural domains, promoter cis-acting elements, and expression patterns. The BSMV-induced silencing of resulted in the bread wheat seedlings being susceptible to drought and salt stress and reduced the expression levels of stress-related and ROS-scavenging genes in bread wheat plants. This further affected the ability of bread wheat to cope with drought and salt stress. In conclusion, this study revealed that the RS gene family in bread wheat plays an important role in plant response to abiotic stresses and that the gene can improve the tolerance of transgenic bread wheat to drought and salt stresses, provide directions for the study of other RS gene families in bread wheat, and supply candidate genes for use in molecular breeding of bread wheat for stress resistance.

摘要

棉子糖合酶(RS)在植物生长发育以及生物和非生物胁迫响应中起着至关重要的作用,但关于其在面包小麦中的作用的研究较少。因此,本研究基于面包小麦基因组信息,筛选并鉴定了一组面包小麦棉子糖合酶基因,并分析了它们的理化性质、系统进化关系、保守结构域、启动子顺式作用元件和表达模式。BSMV 诱导的沉默导致小麦幼苗对干旱和盐胁迫敏感,并降低了小麦植株中与胁迫相关和 ROS 清除基因的表达水平。这进一步影响了小麦应对干旱和盐胁迫的能力。综上所述,本研究揭示了面包小麦 RS 基因家族在植物应对非生物胁迫中的重要作用,并且 基因可以提高转基因小麦对干旱和盐胁迫的耐受性,为研究面包小麦中其他 RS 基因家族提供了方向,并为小麦的分子育种提供了候选基因,以提高其对胁迫的抗性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/456c/10342549/eabac3387746/ijms-24-11185-g001.jpg

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