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利用改良的 RNA 互作组捕获方法发现植物叶片的 RNA 结合蛋白组。

Discovering the RNA-Binding Proteome of Plant Leaves with an Improved RNA Interactome Capture Method.

机构信息

Department of Plant Sciences, University of Oxford, South Parks Road, Oxford OX1 3RB, UK.

Fakultät für Biologie, Universität Duisburg-Essen, North Rhine-Westphalia, 45117 Essen, Germany.

出版信息

Biomolecules. 2020 Apr 24;10(4):661. doi: 10.3390/biom10040661.

Abstract

RNA-binding proteins (RBPs) play a crucial role in regulating RNA function and fate. However, the full complement of RBPs has only recently begun to be uncovered through proteome-wide approaches such as RNA interactome capture (RIC). RIC has been applied to various cell lines and organisms, including plants, greatly expanding the repertoire of RBPs. However, several technical challenges have limited the efficacy of RIC when applied to plant tissues. Here, we report an improved version of RIC that overcomes the difficulties imposed by leaf tissue. Using this improved RIC method in Arabidopsis leaves, we identified 717 RBPs, generating a deep RNA-binding proteome for leaf tissues. While 75% of these RBPs can be linked to RNA biology, the remaining 25% were previously not known to interact with RNA. Interestingly, we observed that a large number of proteins related to photosynthesis associate with RNA in vivo, including proteins from the four major photosynthetic supercomplexes. As has previously been reported for mammals, a large proportion of leaf RBPs lack known RNA-binding domains, suggesting unconventional modes of RNA binding. We anticipate that this improved RIC method will provide critical insights into RNA metabolism in plants, including how cellular RBPs respond to environmental, physiological and pathological cues.

摘要

RNA 结合蛋白 (RBPs) 在调节 RNA 功能和命运方面发挥着至关重要的作用。然而,通过 RNA 互作组捕获 (RIC) 等全蛋白质组方法,最近才开始揭示完整的 RBP 组。RIC 已应用于各种细胞系和生物体,包括植物,极大地扩展了 RBP 的范围。然而,一些技术挑战限制了 RIC 在植物组织中的应用效果。在这里,我们报告了一种改进的 RIC 版本,克服了叶片组织带来的困难。我们使用这种改进的 RIC 方法在拟南芥叶片中鉴定了 717 个 RBP,为叶片组织生成了一个深度的 RNA 结合蛋白质组。虽然这些 RBP 中有 75%可以与 RNA 生物学相关联,但其余 25%以前与 RNA 相互作用不相关。有趣的是,我们观察到大量与光合作用相关的蛋白质与 RNA 在体内结合,包括来自四个主要光合超复合体的蛋白质。与以前在哺乳动物中报道的情况一样,大量的叶片 RBP 缺乏已知的 RNA 结合结构域,这表明存在非传统的 RNA 结合模式。我们预计,这种改进的 RIC 方法将为植物中的 RNA 代谢提供重要的见解,包括细胞 RBP 如何响应环境、生理和病理信号。

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