拟南芥在模拟微重力条件下的自噬形成、微管失调以及 ATG8 和微管蛋白基因表达的改变

IF 4.4 1区 物理与天体物理 Q1 MULTIDISCIPLINARY SCIENCES npj Microgravity Pub Date : 2024-03-18 DOI:10.1038/s41526-024-00381-9
Alla Yemets, Ruslana Shadrina, Rostyslav Blume, Svitlana Plokhovska, Yaroslav Blume
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引用次数: 0

摘要

自噬在植物生长和发育、病原体入侵以及调节植物对各种非生物胁迫刺激的反应和适应方面发挥着重要作用。微管(MTs)是自噬过程中的重要角色,自噬体的生物生成和运输都涉及到微管。然而,此前尚未研究过微重力条件下植物自噬的启动过程。在这里,我们展示了模拟微重力如何诱导自噬发育,其中涉及自噬体形成期间的微管重组。研究表明,在拟南芥根细胞中观察到自噬的诱导和最大自噬体的形成,这与 MT 紊乱有关,并导致根形态的明显变化。实验的第 9 天和第 12 天,自噬体数量逐渐减少,MT 也没有明显的重新定向。分别对 α-、β-微管蛋白和 ATG8 基因表达进行了分析。特别是,在模拟微重力条件下的第6天和第9天,非同源的AtATG8b、AtATG8f、AtATG8i和AtTUA2、AtTUA3基因以及一对β-微管蛋白复合物(即AtTUB2和AtTUB3)的表达量增加最为明显。总体而言,在暴露于模拟微重力环境 6 天和 9 天后观察到了主要的自噬反应,随后在 12 天后观察到了适应性反应。这些发现为进一步研究自噬的细胞机制以及细胞骨架结构在微重力条件下参与自噬生物发生提供了重要依据,从而有助于开发新的方法,增强植物对微重力的适应性。
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Autophagy formation, microtubule disorientation, and alteration of ATG8 and tubulin gene expression under simulated microgravity in Arabidopsis thaliana.

Autophagy plays an important role in plant growth and development, pathogen invasion and modulates plant response and adaptation to various abiotic stress stimuli. The biogenesis and trafficking of autophagosomes involve microtubules (MTs) as important actors in the autophagic process. However, initiation of autophagy in plants under microgravity has not been previously studied. Here we demonstrate how simulated microgravity induces autophagy development involving microtubular reorganization during period of autophagosome formation. It was shown that induction of autophagy with maximal autophagosome formation in root cells of Arabidopsis thaliana is observed after 6 days of clinostating, along with MT disorganization, which leads to visible changes in root morphology. Gradual decrease of autophagosome number was indicated on 9th and 12th days of the experiment as well as no significant re-orientation of MTs were identified. Respectively, analysis of α- and β-tubulins and ATG8 gene expression was carried out. In particular, the most pronounced increase of expression on both 6th and 9th days in response to simulated microgravity was detected for non-paralogous AtATG8b, AtATG8f, AtATG8i, and AtTUA2, AtTUA3 genes, as well as for the pair of β-tubulin duplicates, namely AtTUB2 and AtTUB3. Overall, the main autophagic response was observed after 6 and 9 days of exposure to simulated microgravity, followed by adaptive response after 12 days. These findings provide a key basis for further studies of cellular mechanisms of autophagy and involvement of cytoskeletal structures in autophagy biogenesis under microgravity, which would enable development of new approaches, aimed on enhancing plant adaptation to microgravity.

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来源期刊
npj Microgravity
npj Microgravity Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
7.30
自引率
7.80%
发文量
50
审稿时长
9 weeks
期刊介绍: A new open access, online-only, multidisciplinary research journal, npj Microgravity is dedicated to publishing the most important scientific advances in the life sciences, physical sciences, and engineering fields that are facilitated by spaceflight and analogue platforms.
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