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首页> 外文期刊>Molecular biology of the cell >Nucleolus-tethering system (NoTS) reveals that assembly of photobodies follows a self-organization model
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Nucleolus-tethering system (NoTS) reveals that assembly of photobodies follows a self-organization model

机译:核仁系留系统(NoTS)揭示了光电体的组装遵循自组织模型

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摘要

Protein-protein interactions play essential roles in regulating many biological processes. At the cellular level, many proteins form nuclear foci known as nuclear bodies in which many components interact with each other. Photobodies are nuclear bodies containing proteins for light-signaling pathways in plants. What initiates the formation of photobodies is poorly understood. Here we develop a nucleolar marker protein nucleolin2 (Nuc2)-based method called the nucleolus-tethering system (NoTS) by artificially tethering a protein of interest to the nucleolus to analyze the initiation of photobodies. A candidate initiator is evaluated by visualizing whether a protein fused with Nuc2 forms body-like structures at the periphery of the nucleolus, and other components are recruited to the de novo-formed bodies. The interaction between two proteins can also be revealed through relocation and recruitment of interacting proteins to the nucleolus. Using the NoTS, we test the interactions among components in photobodies. In addition, we demonstrate that components of photobodies such as CONSTITUTIVELY PHOTOMORPHOGENIC 1, photoreceptors, and transcription factors tethered to the nucleolus have the capacity to form body-like structures at the periphery of the nucleolus, which contain other components of photobodies, suggesting a self-organization model for the biogenesis of photobodies.
机译:蛋白质-蛋白质相互作用在调节许多生物学过程中起着至关重要的作用。在细胞水平上,许多蛋白质形成被称为核小体的核病灶,其中许多成分彼此相互作用。光电体是含有蛋白质的核体,这些蛋白质用于植物中的光信号通路。导致光体形成的原因知之甚少。在这里,我们通过将感兴趣的蛋白质人工拴系到核仁上来分析光抗体的起始,从而开发了一种基于核仁标记蛋白核仁2(Nuc2)的方法,称为核仁拴系系统(NoTS)。通过可视化与Nuc2融合的蛋白质是否在核仁的外围形成体状结构,以及将其他成分募集到从头形成的体中来评估候选引发剂。两种蛋白质之间的相互作用也可以通过将相互作用的蛋白质重新定位和募集到核仁中来揭示。使用NoTS,我们测试了光电体中组件之间的相互作用。此外,我们证明了光子的组成部分,例如组成性光生性1,光感受器和与核仁束缚的转录因子具有在核仁的外围形成类似身体的结构的能力,这些结构包含光体的其他组分,表明存在自我-生物体生物发生的组织模型。

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