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Differential proteostatic regulation of insoluble and abundant proteins.差异蛋白稳态调控不溶性和丰富的蛋白质。
Bioinformatics. 2019 Oct 15;35(20):4098-4107. doi: 10.1093/bioinformatics/btz214.
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UniProt: the universal protein knowledgebase.通用蛋白质知识库:UniProt
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The OMA orthology database in 2018: retrieving evolutionary relationships among all domains of life through richer web and programmatic interfaces.2018 年的 OMA 同源数据库:通过更丰富的网络和编程接口检索所有生命领域之间的进化关系。
Nucleic Acids Res. 2018 Jan 4;46(D1):D477-D485. doi: 10.1093/nar/gkx1019.
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Substrate specificity in the context of molecular chaperones.分子伴侣作用环境中的底物特异性。
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Profiling Ssb-Nascent Chain Interactions Reveals Principles of Hsp70-Assisted Folding.分析Ssb与新生链的相互作用揭示了Hsp70辅助折叠的原理。
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Hsp90 interaction with clients.热休克蛋白 90 与客户的相互作用。
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[Mycoplasma heat shock proteins and their genes].[支原体热休克蛋白及其基因]
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Calcium binding to gatekeeper residues flanking aggregation-prone segments underlies non-fibrillar amyloid traits in superoxide dismutase 1 (SOD1).钙与超氧化物歧化酶1(SOD1)中易于聚集的片段两侧的守门残基结合是无纤维淀粉样特性的基础。
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Proteome-wide subcellular topologies of E. coli polypeptides database (STEPdb).大肠杆菌多肽数据库(STEPdb)的全蛋白质组亚细胞拓扑结构
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酸性残基的自主聚集抑制解释了为什么伴侣蛋白偏爱碱性残基。

Autonomous aggregation suppression by acidic residues explains why chaperones favour basic residues.

机构信息

Switch Laboratory, VIB Center for Brain and Disease Research, Leuven, Belgium.

Department of Cellular and Molecular Medicine, KULeuven, Leuven, Belgium.

出版信息

EMBO J. 2020 Jun 2;39(11):e102864. doi: 10.15252/embj.2019102864. Epub 2020 Apr 1.

DOI:10.15252/embj.2019102864
PMID:32237079
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7265246/
Abstract

Many chaperones favour binding to hydrophobic sequences that are flanked by basic residues while disfavouring acidic residues. However, the origin of this bias in protein quality control remains poorly understood. Here, we show that while acidic residues are the most efficient aggregation inhibitors, they are also less compatible with globular protein structure than basic amino acids. As a result, while acidic residues allow for chaperone-independent control of aggregation, their use is structurally limited. Conversely, we find that, while being more compatible with globular structure, basic residues are not sufficient to autonomously suppress protein aggregation. Using Hsp70, we show that chaperones with a bias towards basic residues are structurally adapted to prioritize aggregating sequences whose structural context forced the use of the less effective basic residues. The hypothesis that emerges from our analysis is that the bias of many chaperones for basic residues results from fundamental thermodynamic and kinetic constraints of globular structure. This also suggests the co-evolution of basic residues and chaperones allowed for an expansion of structural variety in the protein universe.

摘要

许多伴侣蛋白倾向于结合由碱性残基侧翼包围的疏水性序列,而不倾向于结合酸性残基。然而,蛋白质质量控制中这种偏好的起源仍知之甚少。在这里,我们表明,虽然酸性残基是最有效的聚集抑制剂,但它们与球状蛋白结构的兼容性也不如碱性氨基酸。因此,虽然酸性残基允许伴侣蛋白独立控制聚集,但它们的使用在结构上受到限制。相反,我们发现,虽然碱性残基与球状结构更兼容,但它们不足以自主抑制蛋白质聚集。我们使用 Hsp70 表明,偏向碱性残基的伴侣蛋白在结构上适应于优先选择结构环境迫使使用效果较差的碱性残基的聚集序列。我们的分析得出的假设是,许多伴侣蛋白偏向碱性残基是由球状结构的基本热力学和动力学限制决定的。这也表明,碱性残基和伴侣蛋白的共同进化允许蛋白质宇宙中结构多样性的扩展。