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首页> 外文期刊>Journal of Plant Physiology >Functional alterations of root meristematic cells of Arabidopsis thaliana induced by a simulated microgravity environment
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Functional alterations of root meristematic cells of Arabidopsis thaliana induced by a simulated microgravity environment

机译:模拟微重力环境诱导拟南芥根分生组织细胞功能改变

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摘要

Environmental gravity modulates plant growth and development, and these processes are influenced by the balance between cell proliferation and differentiation in meristems. Meristematic cells are characterized by the coordination between cell proliferation and cell growth, that is, by the accurate regulation of cell cycle progression and the optimal production of biomass for the viability of daughter cells after division. Thus, cell growth is correlated with the rate of ribosome biogenesis and protein synthesis. We investigated the effects of simulated microgravity on cellular functions of the root meristem in a sequential study. Seedlings were grown in a clinostat, a device producing simulated microgravity, for periods between 3 and 10days. In a complementary study, seedlings were grown in a Random Positioning Machine (RPM) and sampled sequentially after similar periods of growth. Under these conditions, the cell proliferation rate and the regulation of cell cycle progression showed significant alterations, accompanied by a reduction of cell growth. However, the overall size of the root meristem did not change. Analysis of cell cycle phases by flow cytometry showed changes in their proportion and duration, and the expression of the cyclin B1 gene, a marker of entry in mitosis, was decreased, indicating altered cell cycle regulation. With respect to cell growth, the rate of ribosome biogenesis was reduced under simulated microgravity, as shown by morphological and morphometric nucleolar changes and variations in the levels of the nucleolar protein nucleolin. Furthermore, in a nucleolin mutant characterized by disorganized nucleolar structure, the microgravity treatment intensified disorganization. These results show that, regardless of the simulated microgravity device used, a great disruption of meristematic competence was the first response to the environmental alteration detected at early developmental stages. However, longer periods of exposure to simulated microgravity do not produce an intensification of the cellular damages or a detectable developmental alteration in seedlings analyzed at further stages of their growth. This suggests that the secondary response to the gravity alteration is a process of adaptation, whose mechanism is still unknown, which eventually results in viable adult plants. (C) 2016 Elsevier GmbH. All rights reserved.
机译:环境重力调节植物的生长和发育,而这些过程受到分生组织中细胞增殖与分化之间平衡的影响。分生组织细胞的特征在于细胞增殖与细胞生长之间的协调,即通过精确调节细胞周期进程和分裂后子代细胞活力的最佳生物量生产。因此,细胞生长与核糖体生物发生和蛋白质合成的速率相关。在顺序研究中,我们调查了模拟微重力对根分生组织细胞功能的影响。幼苗在可产生微重力的装置clinostat中生长3到10天。在一项补充研究中,幼苗在随机定位机(RPM)中生长,并在相似的生长时期后顺序采样。在这些条件下,细胞增殖率和细胞周期进程的调节显示出明显的变化,伴随着细胞生长的减少。但是,根分生组织的整体大小没有改变。通过流式细胞仪分析细胞周期阶段显示其比例和持续时间的变化,并且细胞周期蛋白B1基因(有丝分裂进入的标志物)的表达减少,表明细胞周期调控发生了改变。关于细胞生长,核糖体生物发生的速率在模拟的微重力下降低,如形态和形态计量的核仁变化和核仁蛋白核仁水平的变化所示。此外,在以核仁结构混乱为特征的核仁素突变体中,微重力处理加剧了混乱。这些结果表明,无论使用哪种模拟微重力装置,对分生能力的极大破坏都是对早期发育阶段检测到的环境变化的第一反应。但是,长时间暴露于模拟微重力中并不会导致细胞损伤的加剧或在其生长的其他阶段分析的幼苗中可检测到的发育变化。这表明对重力变化的次要反应是适应过程,其机制仍是未知的,最终导致成活的植物。 (C)2016 Elsevier GmbH。版权所有。

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