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Temperature, Hydrostatic Pressure, and Osmolyte Effects on Liquid-Liquid Phase Separation in Protein Condensates: Physical Chemistry and Biological Implications

机译:温度,静压压力和渗透物对蛋白质凝聚液中液 - 液相分离的影响:物理化学和生物学意义

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摘要

Liquid-liquid phase separation (LLPS) of proteins and other biomolecules play a critical role in the organization of extracellular materials and membrane-less compartmentalization of intra-organismal spaces through the formation of condensates. Structural properties of such mesoscopic droplet-like states were studied by spectroscopy, microscopy, and other biophysical techniques. The temperature dependence of biomolecular LLPS has been studied extensively, indicating that phase-separated condensed states of proteins can be stabilized or destabilized by increasing temperature. In contrast, the physical and biological significance of hydrostatic pressure on LLPS is less appreciated. Summarized here are recent investigations of protein LLPS under pressures up to the kbar-regime. Strikingly, for the cases studied thus far, LLPSs of both globular proteins and intrinsically disordered proteins/regions are typically more sensitive to pressure than the folding of proteins, suggesting that organisms inhabiting the deep sea and sub-seafloor sediments, under pressures up to 1 kbar and beyond, have to mitigate this pressure-sensitivity to avoid unwanted destabilization of their functional biomolecular condensates. Interestingly, we found that trimethylamine-N-oxide (TMAO), an osmolyte upregulated in deep-sea fish, can significantly stabilize protein droplets under pressure, pointing to another adaptive advantage for increased TMAO concentrations in deep-sea organisms besides the osmolyte's stabilizing effect against protein unfolding. As life on Earth might have originated in the deep sea, pressure-dependent LLPS is pertinent to questions regarding prebiotic proto-cells. Herein, we offer a conceptual framework for rationalizing the recent experimental findings and present an outline of the basic thermodynamics of temperature-, pressure-, and osmolyte-dependent LLPS as well as a molecular-level statistical mechanics picture in terms of solvent-mediated interactions and void volum
机译:蛋白质和其他生物分子的液体液相分离(LLP)在组织细胞外材料和通过形成缩合物的组织内的组织中发挥着关键作用。通过光谱,显微镜和其他生物物理技术研究了这种介观液滴状状态的结构性质。已经广泛地研究了生物分子LLP的温度依赖性,表明通过增加温度可以稳定或稳定相分离的蛋白质的凝结状态。相比之下,LLP上静压压力的物理和生物学意义不太理解。这里总结在此最近对kbar-stemime的压力进行蛋白质LLP的研究。对于迄今为止研究的病例而引人注目,球状蛋白质和本质无序蛋白/区域的LLPS对压力通常比蛋白质的折叠更敏感,表明居住在深海和亚海地板沉积物的生物,高达1的压力KBAR及以后,必须减轻这种压力敏感性,以避免其功能性生物分子凝聚液的不希望的不受欢迎。有趣的是,我们发现三甲胺-N-氧化物(TMAO),在深海鱼中上调的渗透肌肉,可以显着稳定在压力下的蛋白质液滴,指向除了渗透渗透效果之外,对深海生物中的TMAO浓度增加了另一种自适应优势对抗蛋白质展开。随着地球上的生命可能起源于深海,压力依赖性LLP与关于益生生物原型的问题有关。在此,我们提供了一种概念性框架,用于合理化最近的实验结果,并在溶剂介导的相互作用方面存在温度,压力和渗透物依赖性LLP的基本热力学以及分子级统计力学图像的概要和空隙量

著录项

  • 来源
    《Chemistry: A European journal》 |2019年第57期|共21页
  • 作者单位

    Physical Chemistry I-Biophysical Chemistry Faculty of Chemistry and Chemical Biology TU Dortmund University Otto-Hahn Strasse 4a 44227 Dortmund (Germany);

    Physical Chemistry I-Biophysical Chemistry Faculty of Chemistry and Chemical Biology TU Dortmund University Otto-Hahn Strasse 4a 44227 Dortmund (Germany);

    Physical Chemistry I-Biophysical Chemistry Faculty of Chemistry and Chemical Biology TU Dortmund University Otto-Hahn Strasse 4a 44227 Dortmund (Germany);

    Molecular Medicine The Hospital for Sick Children Toronto Ontario M5G 0A4 (Canada);

    Department of Biochemistry Faculty of Medicine University of Toronto Ontario M5S 1A8 (Canada);

    Physical Chemistry I-Biophysical Chemistry Faculty of Chemistry and Chemical Biology TU Dortmund University Otto-Hahn Strasse 4a 44227 Dortmund (Germany);

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用化学;
  • 关键词

    elastin; high pressure; intrinsically disordered proteins; liquid-liquid phase separation; lysozymes;

    机译:弹性蛋白;高压;本质无序的蛋白质;液 - 液相分离;溶菌酶;

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