CsLAC4由CsmiR397a调控,通过促进木质素的生物合成,赋予茶树耐旱性。

Hongbin Yang, Linxuan Xia, Jingshan Li, Xiaoyu Jia, Xinyue Jia, Yuying Qi, Youben Yu, Weidong Wang
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引用次数: 0

摘要

干旱是一种普遍存在的非生物胁迫,通常会影响茶叶的质量和产量。尽管大量研究表明木质素积累在赋予茶树耐旱性方面具有重要意义,但控制茶树对干旱反应的潜在分子调节机制在很大程度上仍然难以捉摸。laccase (LACs)是一类植物含铜多酚氧化酶,已被广泛报道参与植物木质素的生物合成,并涉及许多植物生命过程,特别是在不利条件下。在本研究中,我们检测到了CsLAC4在干旱诱导下的上调。值得注意的是,CsLAC4的过表达不仅显著提高了转基因拟南芥的木质素含量,而且还模拟了维管组织的发育,从而显著增强了转基因拟南芥的抗旱性。此外,通过双荧光素酶测定和茶叶中的瞬时过表达,我们发现CsLAC4受到上游基因CsmiR397a的负调控。有趣的是,CsmiR397a在茶树干旱胁迫下表达下调。过表达CsmiR397a的拟南芥对干旱胁迫的敏感性增加。通过在茶树叶片中短暂过表达CsmiR397a和CsLAC4,我们证实了CsmiR397a调控的CsLAC4通过促进木质素的生物合成来增强茶树的抗旱性。这些发现增强了我们对茶树对干旱胁迫反应的分子调控机制的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CsLAC4, regulated by CsmiR397a, confers drought tolerance to the tea plant by enhancing lignin biosynthesis.

Drought is a prevalent abiotic stress that commonly affects the quality and yield of tea. Although numerous studies have shown that lignin accumulation holds significant importance in conferring drought tolerance to tea plants, the underlying molecular regulatory mechanisms governing the tea plant's response to drought remain largely elusive. LACCASEs (LACs), which belong to the class of plant copper-containing polyphenol oxidases, have been widely reported to participate in lignin biosynthesis in plants and are implicated in numerous plant life processes, especially in the context of adverse conditions. In this study, we detected the upregulation of CsLAC4 in response to drought induction. Remarkably, the overexpression of CsLAC4 not only substantially increased the lignin content of transgenic Arabidopsis thaliana but also simulated the development of vascular tissues, consequently leading to a significant enhancement in drought tolerance. Moreover, via dual-luciferase assays and transient overexpression in tea leaves, we revealed that CsLAC4 was negatively regulated by the upstream CsmiR397a. Interestingly, the expression of CsmiR397a was downregulated during drought stress in tea plants. Arabidopsis thaliana overexpressing CsmiR397a showed increased sensitivity to drought stress. By transient overexpression of CsmiR397a and CsLAC4 in tea plant leaves, we verified that CsLAC4, which is regulated by CsmiR397a, conferred drought tolerance to tea plants by enhancing lignin biosynthesis. These findings enhance our understanding of the molecular regulatory mechanisms underlying the response of tea plants to drought stress.

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