生物分子凝聚物——缺氧的先决条件?

IF 5.2 3区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Protein Science Pub Date : 2025-07-01 DOI:10.1002/pro.70192
Charles A Elder, Hannah M Skaggs, Lynnette M A Dirk, David F Grimm, Clinton J Belott, Willem F Wolkers, Harriëtte Oldenhof, Vladimir N Uversky, A Bruce Downie, Michael A Menze
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引用次数: 0

摘要

尽管水是地球上生命的必需品,但属于所有分类王国的生物都发展出了在干燥中生存的机制,这一点经常被低估。这些生物,被称为无水生物,在干燥期间或之前积累特定的生物分子,促进干燥胁迫下的生存。各种无水生物在脱水过程中利用的化合物包括代谢物,如糖和氨基酸,以及具有广泛内在无序区域的蛋白质。在发病或准备干燥过程中组成性表达或上调的内在无序蛋白包括胚胎发育晚期的丰富蛋白、缓步性无序蛋白、亲水蛋白、一些小的热休克蛋白和朊病毒样蛋白。其中一些蛋白质在细胞环境中形成生物分子凝聚体。我们假设,由与无水相关的内在紊乱蛋白驱动的相变在实现无水过程中发挥了重要作用:(1)促进代谢和发育过程的下调,(2)在干燥过程中选择性地将干燥敏感分子隔离到“保护室”中,(3)干扰程序性细胞死亡信号通路,为细胞在补液后修复提供最佳时间。(4)抵抗细胞内体积变化,以帮助干燥过程中的膜稳定;(5)改变水的生物物理性质,以减少干燥引起的细胞损伤。无水生物的生化策略当然是多方面的,在不同的系统中可能有所不同。然而,更好地理解相变与无水生物的相关性,可能使我们更接近揭开无水生命的神秘现象。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biomolecular condensates-Prerequisites for anhydrobiosis?

It is often underappreciated that despite water being a requirement for life on Earth, organisms belonging to all taxonomic kingdoms have developed mechanisms to survive desiccation. These organisms, referred to as anhydrobiotes, accumulate specific biomolecules during or before drying that facilitate the survival of desiccation stress. Compounds utilized by a wide variety of anhydrobiotes during desiccation include metabolites such as sugars and amino acids, as well as proteins with extensive intrinsically disordered regions. Intrinsically disordered proteins that are constitutively expressed or upregulated during the onset or in preparation for desiccation include late embryogenesis abundant proteins, tardigrade disordered proteins, hydrophilins, some small heat shock proteins, and prion-like proteins. Some of these proteins form biomolecular condensates in the cellular environment. We hypothesize that phase transitions driven by anhydrobiosis-related intrinsically disordered proteins play a substantial role in enabling anhydrobiosis by (1) contributing to the downregulation of metabolic and developmental processes, (2) selectively sequestering desiccation-sensitive molecules into a "protective compartment" during drying, (3) interfering with programmed cell death signaling pathways to confer optimal time for the cell to repair after rehydration, (4) resisting intracellular volume changes to aid in membrane stabilization during desiccation, and (5) changing the biophysical properties of water to reduce desiccation-induced cellular damage. Biochemical strategies in anhydrobiotes are certainly multifaceted and may differ among systems. Nevertheless, a better understanding of the relevance of phase transitions in anhydrobiosis may allow us to get one step closer to unraveling the enigmatic phenomenon of life without water.

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来源期刊
Protein Science
Protein Science 生物-生化与分子生物学
CiteScore
12.40
自引率
1.20%
发文量
246
审稿时长
1 months
期刊介绍: Protein Science, the flagship journal of The Protein Society, is a publication that focuses on advancing fundamental knowledge in the field of protein molecules. The journal welcomes original reports and review articles that contribute to our understanding of protein function, structure, folding, design, and evolution. Additionally, Protein Science encourages papers that explore the applications of protein science in various areas such as therapeutics, protein-based biomaterials, bionanotechnology, synthetic biology, and bioelectronics. The journal accepts manuscript submissions in any suitable format for review, with the requirement of converting the manuscript to journal-style format only upon acceptance for publication. Protein Science is indexed and abstracted in numerous databases, including the Agricultural & Environmental Science Database (ProQuest), Biological Science Database (ProQuest), CAS: Chemical Abstracts Service (ACS), Embase (Elsevier), Health & Medical Collection (ProQuest), Health Research Premium Collection (ProQuest), Materials Science & Engineering Database (ProQuest), MEDLINE/PubMed (NLM), Natural Science Collection (ProQuest), and SciTech Premium Collection (ProQuest).
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