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The Structural Basis of Substrate Recognition by the Eukaryotic Chaperonin TRiC/CCT

机译:真核伴侣蛋白TRiC / CCT识别底物的结构基础

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摘要

The eukaryotic chaperonin TRiC (also called CCT) is the obligate chaperone for many essential proteins. TRiC is hetero-oligomeric, comprising two stacked rings of eight different subunits each. Subunit diversification from simpler archaeal chaperonins appears linked to proteome expansion. Here, we integrate structural, biophysical, and modeling approaches to identify the hitherto unknown substrate-binding site in TRiC and uncover the basis of substrate recognition. NMR and modeling provided a structural model of a chaperonin-substrate complex. Mutagenesis and crosslinking-mass spectrometry validated the identified substrate-binding interface and demonstrate that TRiC contacts full-length substrates combinatorially in a subunit-specific manner. The binding site of each subunit has a distinct, evolutionarily conserved pattern of polar and hydrophobic residues specifying recognition of discrete substrate motifs. The combinatorial recognition of polypeptides broadens the specificity of TRiC and may direct the topology of bound polypeptides along a productive folding trajectory, contributing to TRiC's unique ability to fold obligate substrates.
机译:真核伴侣蛋白TRiC(也称为CCT)是许多必需蛋白质的专职伴侣。 TRiC是异源寡聚体,包含两个堆叠的环,每个环有八个不同的亚基。来自简单古细菌伴侣蛋白的亚基多样化似乎与蛋白质组扩展有关。在这里,我们集成了结构,生物物理和建模方法,以识别TRiC中迄今未知的底物结合位点,并揭示底物识别的基础。 NMR和建模提供了伴侣蛋白-底物复合物的结构模型。诱变和交联质谱验证了已鉴定的底物结合界面,并证明TRiC以亚基特异性方式组合接触全长底物。每个亚基的结合位点具有极性和疏水残基的独特的,进化上保守的模式,可识别离散的底物基序。多肽的组合识别可拓宽TRiC的特异性,并可沿生产性折叠轨迹引导结合的多肽的拓扑结构,从而有助于TRiC独特的折叠专性底物的能力。

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