Ting-Ting Zhu, Yu-Liang Xu, He Ta, Jiao-Zhen Zhang, Dan-Dan Xu, Jie Fu, Yue Hao, Ni-Hong Du, Ai-Xia Cheng, Hong-Xiang Lou
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引用次数: 0
摘要
生物钟有效地协调生长调节剂和植物生长的生理过程的时间调节。生长调节时钟在植物生长发育的时空调控中所起的作用在非维管植物中仍未得到解释。在这项研究中,我们旨在评估假定的苔类生长调节剂月桂酸(LA)水平与多形地药(Marchantia polymorpha)生长随生物钟变化的关系。在光照阶段,LA水平与gemmalings的加速生长具有相似的昼夜节律,并且UV-B应激实验表明,在光照阶段开始时LA水平的激增可以作为基于昼夜节律的预测,以预先预防UV-B损伤,LA可以作为对UV-B照射的保护屏障。值得注意的是,葡萄糖缀合/水解,缓冲内源性LA的合成代谢-分解代谢,是有节律调节的。此外,LA与LA-4′- o -葡萄糖苷之间的可逆转化(由葡萄糖转移酶MpUGT744A1和β-葡萄糖苷酶MpBGLU2/3介导)在体外和体内均被表征,并被证明与LA水平的日变化有关。MpUGT744A1和MpBGLU2之间的相互作用保证了LA和LA- ge之间高效的代谢通量。这些发现揭示了LA代谢的调控机制,以及了解LA的时间方面对Marchantia对环境应激源(如UV-B辐射)的适应性反应的重要性。
Reversible Glc-conjugation/hydrolysis modulates the homeostasis of lunularic acid in Marchantia polymorpha growth
The circadian clock efficiently coordinates growth regulators and plant growth in the temporal regulation of physiological processes. The involvement of the growth-regulator-clock in governing the spatio-temporal regulation of plant growth and development remains unexplained in the nonvascular liverworts. In this study, we aimed to assess the relationship between the putative liverwort growth regulator lunularic acid (LA) levels and the growth variation of Marchantia polymorpha according to the circadian clock. LA level exhibited a similar circadian rhythm as gemmalings' accelerated growth during the light phase, and UV-B stress experiments implied that the surge in LA levels at the start of the light phase could serve as a circadian rhythm-based prediction for preempting UV-B injury, with LA serving as a protective shield against UV-B irradiation. Notably, Glc-conjugation/hydrolysis, buffering the anabolism-catabolism of endogenous LA, was rhythmically regulated. Furthermore, the reversible conversion between LA and LA-4′-O-glucoside (mediated by glucosyltransferases MpUGT744A1 and β-glucosidases MpBGLU2/3) was characterized both in vitro and in vivo and evidenced to be relevant to diurnal variation in LA level. Interaction between MpUGT744A1 and MpBGLU2 ensures the efficient metabolic flux between LA and LA-GE. These findings shed light on the regulatory mechanisms that govern LA metabolism and the importance of understanding the temporal aspects of LA for Marchantia's adaptive response to environmental stressors such as UV-B radiation.
期刊介绍:
Publishing the best original research papers in all key areas of modern plant biology from the world"s leading laboratories, The Plant Journal provides a dynamic forum for this ever growing international research community.
Plant science research is now at the forefront of research in the biological sciences, with breakthroughs in our understanding of fundamental processes in plants matching those in other organisms. The impact of molecular genetics and the availability of model and crop species can be seen in all aspects of plant biology. For publication in The Plant Journal the research must provide a highly significant new contribution to our understanding of plants and be of general interest to the plant science community.