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太空微重力条件下拟南芥微管蛋白突变体花序中的生长刺激作用。

Growth stimulation in inflorescences of an Arabidopsis tubulin mutant under microgravity conditions in space.

作者信息

Hoson T, Soga K, Wakabayashi K, Hashimoto T, Karahara I, Yano S, Tanigaki F, Shimazu T, Kasahara H, Masuda D, Kamisaka S

机构信息

Department of Biology, Graduate School of Science, Osaka City University, Sumiyoshi-ku, Osaka, Japan.

出版信息

Plant Biol (Stuttg). 2014 Jan;16 Suppl 1:91-6. doi: 10.1111/plb.12099. Epub 2013 Oct 22.

Abstract

Cortical microtubules are involved in plant resistance to hypergravity, but their roles in resistance to 1 g gravity are still uncertain. To clarify this point, we cultivated an Arabidopsis α-tubulin 6 mutant (tua6) in the Cell Biology Experiment Facility on the Kibo Module of the International Space Station, and analyzed growth and cell wall mechanical properties of inflorescences. Growth of inflorescence stems was stimulated under microgravity conditions, as compared with ground and on-orbit 1 g conditions. The stems were 10-45% longer and their growth rate 15-55% higher under microgravity conditions than those under both 1 g conditions. The degree of growth stimulation tended to be higher in the tua6 mutant than the wild-type Columbia. Under microgravity conditions, the cell wall extensibility in elongating regions of inflorescences was significantly higher than the controls, suggesting that growth stimulation was caused by cell wall modifications. No clear differences were detected in any growth or cell wall property between ground and on-orbit 1 g controls. These results support the hypothesis that cortical microtubules generally play an important role in plant resistance to the gravitational force.

摘要

皮层微管参与植物对超重的抗性,但其在抗1g重力方面的作用仍不明确。为阐明这一点,我们在国际空间站“希望”号实验舱的细胞生物学实验设施中培养了拟南芥α-微管蛋白6突变体(tua6),并分析了花序的生长和细胞壁力学特性。与地面和在轨1g条件相比,微重力条件下花序茎的生长受到刺激。在微重力条件下,茎比在两种1g条件下长10%-45%,生长速率高15%-55%。tua6突变体的生长刺激程度往往高于野生型哥伦比亚。在微重力条件下,花序伸长区域的细胞壁伸展性显著高于对照,表明生长刺激是由细胞壁修饰引起的。地面和在轨1g对照在任何生长或细胞壁特性上均未检测到明显差异。这些结果支持了皮层微管通常在植物抗重力中起重要作用的假说。

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