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微重力通过增加参与其分解的基因的表达水平来影响水稻芽细胞壁中基质多糖 1,3:1,4-β-葡聚糖的水平。

Microgravity Affects the Level of Matrix Polysaccharide 1,3:1,4-β-Glucans in Cell Walls of Rice Shoots by Increasing the Expression Level of a Gene Involved in Their Breakdown.

机构信息

Department of Biological Sciences, Graduate School of Science, Osaka City University, Osaka, Japan.

Division of Life Science, Graduate School of Science and Engineering, Saitama University, Saitama, Japan.

出版信息

Astrobiology. 2020 Jul;20(7):820-829. doi: 10.1089/ast.2019.2140. Epub 2020 Mar 24.

Abstract

The plant cell wall provides each cell with structural support and mechanical strength, and thus, it plays an important role in supporting the plant body against the gravitational force. We investigated the effects of microgravity on the composition of cell wall polysaccharides and on the expression levels of genes involved in cell wall metabolism using rice shoots cultivated under artificial 1 and microgravity conditions on the International Space Station. The bulk amount of the cell wall obtained from microgravity-grown shoots was comparable with that from 1 -grown shoots. However, the analysis of sugar constituents of matrix polysaccharides showed that microgravity specifically reduced the amount of glucose (Glc)-containing polysaccharides such as 1,3:1,4-β-glucans, in shoot cell walls. The expression level of a gene for endo-1,3:1,4-β-glucanase, which hydrolyzes 1,3:1,4-β-glucans, largely increased under microgravity conditions. However, the expression levels of genes involved in the biosynthesis of 1,3:1,4-β-glucans were almost the same under both gravity conditions. On the contrary, microgravity scarcely affected the level and the metabolism of arabinoxylans. These results suggest that a microgravity environment promotes the breakdown of 1,3:1,4-β-glucans, which, in turn, causes the reduced level of these polysaccharides in growing rice shoots. Changes in 1,3:1,4-β-glucan level may be involved in the modification of mechanical properties of cell walls under microgravity conditions in space.

摘要

植物细胞壁为每个细胞提供结构支撑和机械强度,因此在支撑植物体抵抗重力方面起着重要作用。我们使用在国际空间站上人工模拟的 1 和微重力条件下培养的水稻芽,研究了微重力对细胞壁多糖组成和细胞壁代谢相关基因表达水平的影响。从微重力生长的芽中获得的细胞壁总量与 1 生长的芽中获得的细胞壁总量相当。然而,对基质多糖糖成分的分析表明,微重力特异性地降低了含有葡萄糖(Glc)的多糖的量,如 1,3:1,4-β-葡聚糖,在芽细胞壁中。内切 1,3:1,4-β-葡聚糖酶基因的表达水平在微重力条件下大大增加,该基因水解 1,3:1,4-β-葡聚糖。然而,参与 1,3:1,4-β-葡聚糖生物合成的基因的表达水平在两种重力条件下几乎相同。相反,微重力对阿拉伯木聚糖的水平和代谢几乎没有影响。这些结果表明,微重力环境促进了 1,3:1,4-β-葡聚糖的分解,从而导致生长中的水稻芽中这些多糖的水平降低。1,3:1,4-β-葡聚糖水平的变化可能参与了太空微重力条件下细胞壁机械性能的修饰。

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