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The Utilization of Plant Facilities on the International Space Station—The Composition, Growth, and Development of Plant Cell Walls under Microgravity Conditions

机译:国际空间站上植物设施的利用—在微重力条件下植物细胞壁的组成,生长和发育

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In the preparation for missions to Mars, basic knowledge of the mechanisms of growth and development of living plants under microgravity (micro-g) conditions is essential. Focus has centered on the g-effects on rigidity, including mechanisms of signal perception, transduction, and response in gravity resistance. These components of gravity resistance are linked to the evolution and acquisition of responses to various mechanical stresses. An overview is given both on the basic effect of hypergravity as well as of micro-g conditions in the cell wall changes. The review includes plant experiments in the US Space Shuttle and the effect of short space stays (8–14 days) on single cells (plant protoplasts). Regeneration of protoplasts is dependent on cortical microtubules to orient the nascent cellulose microfibrils in the cell wall. The space protoplast experiments demonstrated that the regeneration capacity of protoplasts was retarded. Two critical factors are the basis for longer space experiments: a. the effects of gravity on the molecular mechanisms for cell wall development, b. the availability of facilities and hardware for performing cell wall experiments in space and return of RNA/DNA back to the Earth. Linked to these aspects is a description of existing hardware functioning on the International Space Station.
机译:在准备前往火星的任务时,必不可少的是在微重力(micro-g)条件下活体植物生长和发育机制的基本知识。焦点集中在刚性的g效应上,包括信号感知,传导和重力阻力响应的机制。重力阻力的这些组成部分与对各种机械应力的响应的演化和获取有关。概述了超重力以及细胞壁变化中的微克条件的基本作用。该综述包括美国航天飞机中的植物实验以及短期停留(8-14天)对单细胞(植物原生质体)的影响。原生质体的再生取决于皮层微管的定向,以使新生的纤维素微纤维在细胞壁中定向。空间原生质体实验表明,原生质体的再生能力受到阻碍。两个关键因素是进行更长的空间实验的基础:重力对细胞壁发育的分子机制的影响; b。在太空中进行细胞壁实验并将RNA / DNA返回地球的设施和硬件的可用性。与这些方面相关的是对国际空间站上现有硬件功能的描述。

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