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首页> 外文期刊>PLoS Computational Biology >BiP Clustering Facilitates Protein Folding in the Endoplasmic Reticulum
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BiP Clustering Facilitates Protein Folding in the Endoplasmic Reticulum

机译:BiP聚类有助于内质网中的蛋白质折叠

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The chaperone BiP participates in several regulatory processes within the endoplasmic reticulum (ER): translocation, protein folding, and ER-associated degradation. To facilitate protein folding, a cooperative mechanism known as entropic pulling has been proposed to demonstrate the molecular-level understanding of how multiple BiP molecules bind to nascent and unfolded proteins. Recently, experimental evidence revealed the spatial heterogeneity of BiP within the nuclear and peripheral ER of S. cerevisiae (commonly referred to as ‘clusters’). Here, we developed a model to evaluate the potential advantages of accounting for multiple BiP molecules binding to peptides, while proposing that BiP's spatial heterogeneity may enhance protein folding and maturation. Scenarios were simulated to gauge the effectiveness of binding multiple chaperone molecules to peptides. Using two metrics: folding efficiency and chaperone cost, we determined that the single binding site model achieves a higher efficiency than models characterized by multiple binding sites, in the absence of cooperativity. Due to entropic pulling, however, multiple chaperones perform in concert to facilitate the resolubilization and ultimate yield of folded proteins. As a result of cooperativity, multiple binding site models used fewer BiP molecules and maintained a higher folding efficiency than the single binding site model. These insilico investigations reveal that clusters of BiP molecules bound to unfolded proteins may enhance folding efficiency through cooperative action via entropic pulling.
机译:伴侣蛋白BiP参与内质网(ER)内的几个调节过程:易位,蛋白质折叠和与ER相关的降解。为了促进蛋白质折叠,已提出一种称为熵拉的协同机制,以证明在分子水平上了解多个BiP分子如何与新生和未折叠的蛋白质结合。最近,实验证据揭示了BiP在酿酒酵母核内和外围ER(通常称为“簇”)中的空间异质性。在这里,我们开发了一个模型来评估考虑多个BiP分子与肽结合的潜在优势,同时提出BiP的空间异质性可以增强蛋白质折叠和成熟度。模拟了场景,以评估将多个分子伴侣分子与肽结合的有效性。使用折叠效率和伴侣成本这两个指标,我们确定了在没有协作性的情况下,单个结合位点模型比以多个结合位点为特征的模型实现了更高的效率。然而,由于熵的拉动,多个分子伴侣共同发挥作用,以促进折叠蛋白的再溶解和最终产量。由于协同作用,与单结合位点模型相比,多个结合位点模型使用的BiP分子更少,折叠效率更高。这些计算机研究表明,结合到未折叠蛋白质上的BiP分子簇可以通过熵拉的协同作用增强折叠效率。

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