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在国际空间站上生长的拟南芥野生型和磷脂酶 - A - I 基因敲除突变体中重力依赖型分化和根卷曲现象

Gravity-dependent differentiation and root coils in Arabidopsis thaliana wild type and phospholipase-A-I knockdown mutant grown on the International Space Station.

作者信息

Scherer G F E, Pietrzyk P

机构信息

Leibniz Universität Hannover, Institut für Zierpflanzenbau und Gehölzwissenschaften, Abt. Molekulare Ertragsphysiologie, Hannover, Germany.

出版信息

Plant Biol (Stuttg). 2014 Jan;16 Suppl 1:97-106. doi: 10.1111/plb.12123. Epub 2013 Nov 8.

DOI:10.1111/plb.12123
PMID:24373011
Abstract

Arabidopsis roots on 45° tilted agar in 1-g grow in wave-like figures. In addition to waves, formation of root coils is observed in several mutants compromised in gravitropism and/or auxin transport. The knockdown mutant ppla-I-1 of patatin-related phospholipase-A-I is delayed in root gravitropism and forms increased numbers of root coils. Three known factors contribute to waving: circumnutation, gravisensing and negative thigmotropism. In microgravity, deprivation of wild type (WT) and mutant roots of gravisensing and thigmotropism and circumnutation (known to slow down in microgravity, and could potentially lead to fewer waves or increased coiling in both WT and mutant). To resolve this, mutant ppla-I-1 and WT were grown in the BIOLAB facility in the International Space Station. In 1-g, roots of both types only showed waving. In the first experiment in microgravity, the mutant after 9 days formed far more coils than in 1-g but the WT also formed several coils. After 24 days in microgravity, in both types the coils were numerous with slightly more in the mutant. In the second experiment, after 9 days in microgravity only the mutant formed coils and the WT grew arcuated roots. Cell file rotation (CFR) on the mutant root surface in microgravity decreased in comparison to WT, and thus was not important for coiling. Several additional developmental responses (hypocotyl elongation, lateral root formation, cotyledon expansion) were found to be gravity-influenced. We tentatively discuss these in the context of disturbances in auxin transport, which are known to decrease through lack of gravity.

摘要

在1g重力条件下,拟南芥根在45°倾斜的琼脂上呈波浪状生长。除了波浪状生长外,在一些重力感应和/或生长素运输受损的突变体中还观察到根卷曲的形成。与马铃薯块茎蛋白相关的磷脂酶A-I的敲低突变体ppla-I-1在根重力感应方面延迟,并形成更多数量的根卷曲。有三个已知因素导致波浪状生长:回旋运动、重力感应和负向触性。在微重力条件下,野生型(WT)和突变体根的重力感应、触性和回旋运动都缺失(已知在微重力条件下回旋运动会减慢,这可能导致WT和突变体中波浪减少或卷曲增加)。为了解决这个问题,突变体ppla-I-1和WT在国际空间站的BIOLAB设施中生长。在1g重力条件下,两种类型的根都只表现出波浪状生长。在微重力条件下的第一个实验中,9天后突变体形成的卷曲比在1g重力条件下多得多,但WT也形成了一些卷曲。在微重力条件下24天后,两种类型的根都有大量卷曲,突变体中的卷曲略多一些。在第二个实验中,微重力条件下9天后只有突变体形成卷曲,而WT长出了弧形根。与WT相比,微重力条件下突变体根表面的细胞列旋转(CFR)减少,因此对卷曲并不重要。还发现了几种其他的发育反应(下胚轴伸长、侧根形成、子叶扩展)受重力影响。我们初步在生长素运输紊乱的背景下讨论这些问题,已知生长素运输会因缺乏重力而减少。

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