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揭示 GRB2 的亚稳态集合以及结构域间通讯在折叠过程中的相关性。

Unveiling Metastable Ensembles of GRB2 and the Relevance of Interdomain Communication during Folding.

机构信息

Department of Physics, São Paulo State University (UNESP), Institute of Biosciences, Humanities, and Exact Sciences, São José do Rio Preto, SP 15054-000, Brazil.

Multiuser Center for Biomolecular Innovation (CMIB), São Paulo State University (UNESP), São José do Rio Preto, SP 15054-000, Brazil.

出版信息

J Chem Inf Model. 2023 Oct 23;63(20):6344-6353. doi: 10.1021/acs.jcim.3c00955. Epub 2023 Oct 12.

Abstract

The folding process of multidomain proteins is a highly intricate phenomenon involving the assembly of distinct domains into a functional three-dimensional structure. During this process, each domain may fold independently while interacting with others. The folding of multidomain proteins can be influenced by various factors, including their composition, the structure of each domain, or the presence of disordered regions, as well as the surrounding environment. Misfolding of multidomain proteins can lead to the formation of nonfunctional structures associated with a range of diseases, including cancers or neurodegenerative disorders. Understanding this process is an important step for many biophysical analyses such as stability, interaction, malfunctioning, and rational drug design. One such multidomain protein is growth factor receptor-bound protein 2 (GRB2), an adaptor protein that is essential in regulating cell survival. GRB2 consists of one central Src homology 2 (SH2) domain flanked by two Src homology 3 (SH3) domains. The SH2 domain interacts with phosphotyrosine regions in other proteins, while the SH3 domains recognize proline-rich regions on protein partners during cell signaling. Here, we combined computational and experimental techniques to investigate the folding process of GRB2. Through computational simulations, we sampled the conformational space and mapped the mechanisms involved by the free energy profiles, which may indicate possible intermediate states. From the molecular dynamics trajectories, we used the energy landscape visualization method (ELViM), which allowed us to visualize a three-dimensional (3D) representation of the overall energy surface. We identified two possible parallel folding routes that cannot be seen in a one-dimensional analysis, with one occurring more frequently during folding. Supporting these results, we used differential scanning calorimetry (DSC) and fluorescence spectroscopy techniques to confirm these intermediate states in vitro. Finally, we analyzed the deletion of domains to compare our model outputs to previously published results, supporting the presence of interdomain modulation. Overall, our study highlights the significance of interdomain communication within the GRB2 protein and its impact on the formation, stability, and structural plasticity of the protein, which are crucial for its interaction with other proteins in key signaling pathways.

摘要

多结构域蛋白的折叠过程是一个高度复杂的现象,涉及到不同结构域的组装成一个功能的三维结构。在这个过程中,每个结构域可能在相互作用的同时独立折叠。多结构域蛋白的折叠可以受到多种因素的影响,包括它们的组成、每个结构域的结构、无序区域的存在以及周围环境。多结构域蛋白的错误折叠会导致形成与多种疾病相关的非功能结构,包括癌症或神经退行性疾病。理解这个过程是许多生物物理分析的重要步骤,如稳定性、相互作用、功能障碍和合理的药物设计。生长因子受体结合蛋白 2(GRB2)就是这样一种多结构域蛋白,它是一种调节细胞存活的衔接蛋白。GRB2 由一个中央 Src 同源 2(SH2)结构域和两个 Src 同源 3(SH3)结构域组成。SH2 结构域与其他蛋白质中的磷酸酪氨酸区域相互作用,而 SH3 结构域在细胞信号转导过程中识别蛋白质伴侣上富含脯氨酸的区域。在这里,我们结合计算和实验技术来研究 GRB2 的折叠过程。通过计算模拟,我们在自由能图谱中采样构象空间并绘制了参与的机制,这可能表明存在可能的中间状态。从分子动力学轨迹中,我们使用能量景观可视化方法(ELViM),这使我们能够可视化整体能量表面的三维(3D)表示。我们确定了两种可能的平行折叠途径,这在一维分析中是看不到的,其中一种在折叠过程中更频繁地发生。支持这些结果,我们使用差示扫描量热法(DSC)和荧光光谱技术在体外证实了这些中间状态。最后,我们分析了结构域的缺失,以将我们的模型输出与以前发表的结果进行比较,支持结构域之间的调制。总的来说,我们的研究强调了 GRB2 蛋白内结构域之间的相互通讯的重要性及其对蛋白形成、稳定性和结构可塑性的影响,这对其与关键信号通路中的其他蛋白相互作用至关重要。

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