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杂种化通过改变盐碱性胁迫下小麦渐渗系根系中的基因表达来影响根微生物组的结构和功能。

Hybridization affects the structure and function of root microbiome by altering gene expression in roots of wheat introgression line under saline-alkali stress.

机构信息

Key Laboratory of Plant Physiology and Developmental Regulation, School of Life Sciences, Guizhou Normal University, 116 Baoshan Road (N), Guiyang, Guizhou 550001, China; Key Laboratory of Plant Development and and Environmental Adaptation Biology, Ministry of Education, School of Life Science, Shandong University, Qingdao 266237, China.

Key Laboratory of Plant Development and and Environmental Adaptation Biology, Ministry of Education, School of Life Science, Shandong University, Qingdao 266237, China.

出版信息

Sci Total Environ. 2022 Aug 20;835:155467. doi: 10.1016/j.scitotenv.2022.155467. Epub 2022 Apr 27.

Abstract

The mutually beneficial relationship between plants and their root microbiota is essential for plants to adapt to unfavorable environments. However, the molecular mechanism of wheat regulating the structure of root microbiome and the influence of distant hybridization on this process are poorly understood. In this study, we systematically compared the root transcriptome and microbiome between a saline-alkali tolerant wheat introgression line SR4 (derived from somatic hybridization between wheat and tall wheatgrass) and its parent wheat variety JN177. The results indicated that root microorganisms were key factor maintaining better homeostasis of the sodium and potassium ion contents in SR4 than in JN177 under saline-alkali stress. Through systematic comparisons, we identified SR4-specific root bacterial and fungal taxa under saline-alkali stress. Through a weighted gene correlation network analysis (WGCNA) combining microbiome and transcriptome data, key functional genes and pathways, which were strongly related to root bacteria and fungi with differential abundance between JN177 and SR4, were identified. These results suggest that somatic hybridization has altered the key genes regulating root microbiome in wheat, further improving the saline-alkali tolerance of wheat introgression line. These findings provide the key bacterial and fungal taxa and functional target genes for wheat root microbiome engineering under saline-alkali stress.

摘要

植物与其根际微生物群落之间的互利关系对于植物适应不利环境至关重要。然而,小麦调节根际微生物组结构的分子机制以及远缘杂交对此过程的影响还知之甚少。在这项研究中,我们系统比较了耐盐碱性小麦渐渗系 SR4(源自小麦和高冰草体细胞杂交)与其亲本小麦品种 JN177 的根转录组和微生物组。结果表明,在盐碱性胁迫下,根际微生物是维持 SR4 中钠离子和钾离子含量更好的内稳态的关键因素。通过系统比较,我们在盐碱性胁迫下鉴定出了 SR4 特异性的根细菌和真菌类群。通过将微生物组和转录组数据相结合的加权基因相关网络分析(WGCNA),鉴定出了与 JN177 和 SR4 之间差异丰度的根细菌和真菌密切相关的关键功能基因和途径。这些结果表明,体细胞杂交改变了调节小麦根际微生物组的关键基因,进一步提高了小麦渐渗系的耐盐碱性。这些发现为盐碱性胁迫下小麦根际微生物组工程提供了关键的细菌和真菌类群以及功能目标基因。

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