内质网腔内四种同时共表达的相分离蛋白的分离。

IF 4.7 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Haruki Hasegawa
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引用次数: 0

摘要

细胞内蛋白质结晶代表了一种有趣的生物分子组装形式。虽然细胞内结晶蛋白的种类越来越多,它们的生理作用也越来越清楚,但细胞内结晶发生的基本要求和过程在很大程度上仍然未知。为了揭示细胞容纳蛋白质晶体和晶体样包涵体的能力和形态可塑性,本研究探讨了同时共表达的相分离蛋白如何在内质网(ER)管腔中相互影响行为。为此,根据产生独特包涵体类型和形态的能力选择了四种货物,而不考虑其起源物种、功能或序列同源性。共表达的模型蛋白独立地分相分离成独特的内含体,并在内质网中共存,而不失去其标志性的形态特征。内质网内蛋白质晶体和液滴的持续生长表明,共表达的货物蛋白在内质网内不断合成和折叠,从而促进了相应包涵体的生长。因此,即使在拥挤的内质网环境中,四种过表达的货物蛋白中的每一种都可以通过自结合找到配偶,并在内质网中组装成四种独特的结构。该研究表明,细胞可以同时容纳多达四种不同类型的中尺度包涵体在内质网腔中,并且各自的相分离事件不会相互干扰,也不会出现形态混合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Demixing of four simultaneously co-expressed phase-separating proteins in the endoplasmic reticulum lumen.

Intracellular protein crystallization represents an intriguing form of biomolecular assembly. While the list of intracellularly crystallizing proteins is growing and their physiological roles are being elucidated, the underlying requirements and processes for intracellular crystallogenesis remain largely unknown. To reveal cellular capacity and morphological plasticity to accommodate protein crystals and crystal-like inclusion bodies, this study examines how simultaneously co-expressed phase-separating proteins influence each other's behavior in the endoplasmic reticulum (ER) lumen. To this end, four cargoes were selected based on their ability to produce distinctive inclusion body types and morphologies irrespective of originating species, function, or sequence homology. The co-expressed model proteins independently phase-separated into distinctive inclusions and coexisted in the ER without losing their signature morphologic characteristics. The continued growth of intra-ER protein crystals and droplets suggested that co-expressed cargo proteins were continuously synthesized and folded in the ER, thereby fueling the growth of the corresponding inclusion bodies. Thus, even in the crowded ER environment, each of the four overexpressed cargo proteins can find their mates through self-association and assemble into four unique structures in the ER. This study demonstrates that cells can accommodate up to four distinct types of mesoscale inclusion bodies in the ER lumen simultaneously, and the respective phase-separation events proceed without interfering with each other and without morphological mixing.

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来源期刊
Bioscience Reports
Bioscience Reports 生物-细胞生物学
CiteScore
8.50
自引率
0.00%
发文量
380
审稿时长
6-12 weeks
期刊介绍: Bioscience Reports provides a home for sound scientific research in all areas of cell biology and molecular life sciences. Since 2012, Bioscience Reports has been fully Open Access and publishes all papers under the liberal CC BY licence, giving the life science community quality research to share and discuss.Content before 2012 is subscription-only, and is accessible via archive purchase. Articles are assessed on soundness, providing a home for valid findings and data. We welcome papers that span disciplines (e.g. chemistry, medicine), including papers describing: -new methodologies -tools and reagents to probe biological questions -mechanistic details -disease mechanisms -metabolic processes and their regulation -structure and function -bioenergetics
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