Cell size and xylem differentiation regulating genes from Salicornia europaea contribute to plant salt tolerance

木质部 扩张素 拟南芥 细胞壁 次生细胞壁 生物 植物 木质素 细胞生物学 盐度 木聚糖 转录组 开枪 基因 突变体 基因表达 生物化学 生态学
作者
Tengxue Lou,Sulian Lv,Jinhui Wang,Duoliya Wang,Kangqi Lin,Xuan Zhang,Bing Zhang,Zijing Guo,Ze Yi,Yinxin Li
出处
期刊:Plant Cell and Environment [Wiley]
标识
DOI:10.1111/pce.14905
摘要

Cell wall is involved in plant growth and plays pivotal roles in plant adaptation to environmental stresses. Cell wall remodelling may be crucial to salt adaptation in the euhalophyte Salicornia europaea. However, the mechanism underlying this process is still unclear. Here, full-length transcriptome indicated cell wall-related genes were comprehensively regulated under salinity. The morphology and cell wall components in S. europaea shoot were largely modified under salinity. Through the weighted gene co-expression network analysis, SeXTH2 encoding xyloglucan endotransglucosylase/hydrolases, and two SeLACs encoding laccases were focused. Meanwhile, SeEXPB was focused according to expansin activity and the expression profiling. Function analysis in Arabidopsis validated the functions of these genes in enhancing salt tolerance. SeXTH2 and SeEXPB overexpression led to larger cells and leaves with hemicellulose and pectin content alteration. SeLAC1 and SeLAC2 overexpression led to more xylem vessels, increased secondary cell wall thickness and lignin content. Notably, SeXTH2 transgenic rice exhibited enhanced salt tolerance and higher grain yield. Altogether, these genes may function in the succulence and lignification process in S. europaea. This work throws light on the regulatory mechanism of cell wall remodelling in S. europaea under salinity and provides potential strategies for improving crop salt tolerance and yields.
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