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Protein Network Structure Enables Switching between Liquid and Gel States

机译:蛋白质网络结构可实现液体和凝胶状态之间的切换

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摘要

Biomolecular condensates are emerging as an important organizational principle within living cells. These condensed states are formed by phase separation, yet little is known about how material properties are encoded within the constituent molecules and how the specificity for being in different phases is established. Here we use analytic theory to explain the phase behavior of the cancer-related protein SPOP and its substrate DAXX. Binary mixtures of these molecules have a phase diagram that contains dilute liquid, dense liquid, and gel states. We show that these discrete phases appear due to a competition between SPOP-DAXX and DAXX-DAXX interactions. The stronger SPOP-DAXX interactions dominate at sub-stoichiometric DAXX concentrations leading to the formation of cross-linked gels. The theory shows that the driving force for gel formation is not the binding energy, but rather the entropy of distributing DAXX molecules on the binding sites. At high DAXX concentrations the SPOP-DAXX interactions saturate, which leads to the dissolution of the gel and the appearance of a liquid phase driven by weaker DAXX-DAXX interactions. This competition between interactions allows multiple dense phases to form in a narrow region of parameter space. We propose that the molecular architecture of phase-separating proteins governs the internal structure of dense phases, their material properties and their functions. Analytical theory can reveal these properties on the long length and time scales relevant to biomolecular condensates.
机译:生物分子缩合物正在作为活细胞内的重要组织原理而出现。这些凝聚态是通过相分离形成的,但人们对如何在组成分子内编码材料特性以及如何确定在不同相中的特异性却知之甚少。在这里,我们使用分析理论来解释癌症相关蛋白SPOP及其底物DAXX的相行为。这些分子的二元混合物的相图包含稀液体,浓液体和凝胶状态。我们表明,这些离散相的出现是由于SPOP-DAXX和DAXX-DAXX相互作用之间的竞争。在亚化学计量的DAXX浓度下,更强的SPOP-DAXX相互作用起主导作用,导致形成交联凝胶。该理论表明,凝胶形成的驱动力不是结合能,而是结合位点上DAXX分子分布的熵。在高DAXX浓度下,SPOP-DAXX相互作用达到饱和,这导致凝胶溶解,并出现弱DAXX-DAXX相互作用所驱动的液相。相互作用之间的竞争允许在参数空间的狭窄区域中形成多个稠密相。我们提出,相分离蛋白的分子结构决定着致密相的内部结构,其材料性质和功能。分析理论可以在与生物分子缩合物有关的较长时间和长尺度上揭示这些性质。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第2期|874-883|共10页
  • 作者单位

    Department of Physics Kansas State University Manhattan Kansas 66506 United States;

    Department of Structural Biology St. Jude Children's Research Hospital Memphis Tennessee 38105 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 05:17:03

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