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功能性 TOC 复合物有助于拟南芥中的重力信号转导。

A functional TOC complex contributes to gravity signal transduction in Arabidopsis.

机构信息

Graduate Program in Cellular and Molecular Biology, Laboratory of Genetics, University of Wisconsin-Madison Madison, WI, USA.

Mass Spectrometry/Proteomics Facility, University of Wisconsin-Madison Madison, WI, USA.

出版信息

Front Plant Sci. 2014 Apr 22;5:148. doi: 10.3389/fpls.2014.00148. eCollection 2014.

Abstract

Although plastid sedimentation has long been recognized as important for a plant's perception of gravity, it was recently shown that plastids play an additional function in gravitropism. The Translocon at the Outer envelope membrane of Chloroplasts (TOC) complex transports nuclear-encoded proteins into plastids, and a receptor of this complex, Toc132, was previously hypothesized to contribute to gravitropism either by directly functioning as a gravity signal transducer or by indirectly mediating the plastid localization of a gravity signal transducer. Here we show that mutations in multiple genes encoding TOC complex components affect gravitropism in a genetically sensitized background and that the cytoplasmic acidic domain of Toc132 is not required for its involvement in this process. Furthermore, mutations in TOC132 enhance the gravitropic defect of a mutant whose amyloplasts lack starch. Finally, we show that the levels of several nuclear-encoded root proteins are altered in toc132 mutants. These data suggest that the TOC complex indirectly mediates gravity signal transduction in Arabidopsis and support the idea that plastids are involved in gravitropism not only through their ability to sediment but also as part of the signal transduction mechanism.

摘要

虽然质体沉降长期以来一直被认为对植物的重力感知很重要,但最近表明质体在向光性中还发挥了额外的作用。叶绿体的外被膜转运蛋白(TOC)复合物将核编码蛋白转运到质体中,该复合物的一个受体Toc132 先前被假设通过直接作为重力信号转导器发挥作用或通过间接介导重力信号转导器的质体定位来参与向光性。在这里,我们表明,多个编码 TOC 复合物成分的基因突变会在遗传敏感的背景下影响向光性,并且 Toc132 的细胞质酸性结构域对于其参与该过程不是必需的。此外,TOC132 的突变增强了其淀粉体缺乏淀粉的突变体的向光性缺陷。最后,我们表明,toc132 突变体中几种核编码的根蛋白的水平发生了改变。这些数据表明,TOC 复合物在拟南芥中间接介导重力信号转导,并支持这样的观点,即质体不仅通过沉降能力参与向光性,而且作为信号转导机制的一部分参与向光性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/884e/4001062/89d485a35d1e/fpls-05-00148-g0001.jpg

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