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Src SH3结构域中nSrc特异性决定环的构象受SH3结构域中发现的WX保守序列基序调控。

The conformation of the nSrc specificity-determining loop in the Src SH3 domain is modulated by a WX conserved sequence motif found in SH3 domains.

作者信息

Longshore-Neate Frederick, Ceravolo Caroline, Masuga Cole, Tahti Elise F, Blount Jadon M, Smith Sarah N, Amacher Jeanine F

机构信息

Department of Chemistry, Western Washington University, Bellingham, WA, United States.

出版信息

Front Mol Biosci. 2024 Dec 3;11:1487276. doi: 10.3389/fmolb.2024.1487276. eCollection 2024.

Abstract

Cellular signaling networks are modulated by multiple protein-protein interaction domains that coordinate extracellular inputs and processes to regulate cellular processes. Several of these domains recognize short linear motifs, or SLiMs, which are often highly conserved and are closely regulated. One such domain, the Src homology 3 (SH3) domain, typically recognizes proline-rich SLiMs and is one of the most abundant SLiM-binding domains in the human proteome. These domains are often described as quite , and indeed, SH3 domains can bind ligands in opposite orientations dependent on target sequence. Furthermore, recent work has identified diverse modes of binding for SH3 domains and a wide variety of sequence motifs that are recognized by various domains. Specificity is often attributed to the RT and nSrc loops near the peptide-binding cleft in this domain family, particularly for Class I binding, which is defined as RT and nSrc loop interactions with the N-terminus of the ligand. Here, we used the Src and Abl SH3 domains as a model to further investigate the role of the RT and nSrc loops in SH3 specificity. We created chimeric domains with both the RT and nSrc loop sequences swapped between these SH3 domains, and used fluorescence anisotropy assays to test how relative binding affinities were affected for Src SH3- and Abl SH3-specific ligands. We also used Alphafold-Multimer to model our SH3:peptide complexes in combination with molecular dynamics simulations. We identified a position that contributes to the nSrc loop conformation in Src SH3, the amino acid immediately following a highly conserved Trp that creates a hydrophobic pocket critical for SH3 ligand recognition. We defined this as the WX motif, where X = Trp for Src and Cys for Abl. A broad importance of this position for modulating nSrc loop conformation in SH3 domains is suggested by analyses of previously deposited SH3 structures, multiple sequence alignment of SH3 domains in the human proteome, and our biochemical and computational data of mutant Src and Abl SH3 domains. Overall, our work uses experimental approaches and structural modeling to better understand specificity determinants in SH3 domains.

摘要

细胞信号网络由多种蛋白质 - 蛋白质相互作用结构域调节,这些结构域协调细胞外输入和过程以调控细胞过程。其中一些结构域识别短线性基序,即SLiMs,它们通常高度保守且受到严格调控。一种这样的结构域,即Src同源3(SH3)结构域,通常识别富含脯氨酸的SLiMs,并且是人类蛋白质组中最丰富的SLiM结合结构域之一。这些结构域通常被描述为相当灵活,实际上,SH3结构域可以根据靶序列以相反的方向结合配体。此外,最近的研究已经确定了SH3结构域的多种结合模式以及各种结构域识别的多种序列基序。特异性通常归因于该结构域家族中肽结合裂隙附近的RT和nSrc环,特别是对于I类结合,其定义为RT和nSrc环与配体N端的相互作用。在这里,我们以Src和Abl SH3结构域为模型,进一步研究RT和nSrc环在SH3特异性中的作用。我们创建了嵌合结构域,其中RT和nSrc环序列在这些SH3结构域之间进行了交换,并使用荧光各向异性测定法来测试Src SH3和Abl SH3特异性配体的相对结合亲和力如何受到影响。我们还使用Alphafold - Multimer对我们的SH3:肽复合物进行建模,并结合分子动力学模拟。我们在Src SH3中确定了一个有助于nSrc环构象的位置,即紧跟在一个高度保守的Trp之后的氨基酸,该Trp形成了一个对SH3配体识别至关重要的疏水口袋。我们将其定义为WX基序,其中对于Src,X = Trp,对于Abl,X = Cys。对先前存入的SH3结构的分析、人类蛋白质组中SH3结构域的多序列比对以及我们对突变型Src和Abl SH3结构域的生化和计算数据表明,该位置对于调节SH3结构域中的nSrc环构象具有广泛的重要性。总体而言,我们的工作使用实验方法和结构建模来更好地理解SH3结构域中的特异性决定因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/372b/11653366/3a8cdef6e567/fmolb-11-1487276-g001.jpg

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