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解析 Bak 肽与抗凋亡蛋白形成异二聚体过程中涉及的关键残基,以促进细胞凋亡。

Deciphering the crucial residues involved in heterodimerization of Bak peptide and anti-apoptotic proteins for apoptosis.

机构信息

a Structural Bioinformatics Laboratory (SBL), Faculty of Science and Engineering, Biochemistry , Åbo Akademi University , Turku , FI , 20520 , Finland.

b Department of Biology , Albany State University , 504 College Drive, Albany , GA , USA.

出版信息

J Biomol Struct Dyn. 2018 May;36(6):1637-1648. doi: 10.1080/07391102.2017.1331863. Epub 2017 Jun 2.

Abstract

B-cell lymphoma 2 (Bcl-2) family proteins are the central regulators of apoptosis, functioning via mitochondrial outer membrane permeabilization. The family members are involved in several stages of apoptosis regulation. The overexpression of the anti-apoptotic proteins leads to several cancer pathological conditions. This overexpression is modulated or inhibited by heterodimerization of pro-apoptotic BH3 domain or BH3-only peptides to the hydrophobic groove present at the surface of anti-apoptotic proteins. Additionally, the heterodimerization displayed differences in binding affinity profile among the pro-apoptotic peptides binding to anti-apoptotic proteins. In light of discovering the novel peptide/drug molecules that contain the potential to inhibit specific anti-apoptotic protein, it is necessary to understand the molecular basis of recognition between the protein and its binding partner (peptide or ligand) along with its binding energies. Therefore, the present work focused on deciphering the molecular basis of recognition between pro-apoptotic Bak peptide binding to different anti-apoptotic (Bcl-xL, Bfl-1, Bcl-W, Mcl-1, and Bcl-2) proteins using advanced Molecular Dynamics (MD) approach such as Molecular Mechanics-Generalized Born Solvent Accessible. The results from our investigation revealed that the predicted binding free energies showed excellent correlation with the experimental values (r = .95). The electrostatic (ΔG) contributions are the major component that drives the interaction between Bak peptides and different anti-apoptotic peptides. Additionally, van der Waals (ΔG) energies also play an indispensible role in determining the binding free energy. Furthermore, the decomposition analysis highlighted the comprehensive information about the energy contributions of hotspot residues involved in stabilizing the interaction between Bak peptide and different anti-apoptotic proteins.

摘要

B 细胞淋巴瘤 2 (Bcl-2) 家族蛋白是细胞凋亡的核心调节因子,通过线粒体外膜通透性发挥作用。家族成员参与细胞凋亡调节的多个阶段。抗凋亡蛋白的过表达导致多种癌症病理状况。这种过表达通过促凋亡 BH3 结构域或 BH3 仅肽与抗凋亡蛋白表面存在的疏水性凹槽的异二聚化来调节或抑制。此外,促凋亡肽与抗凋亡蛋白结合的异二聚化显示出结合亲和力谱在结合到抗凋亡蛋白的促凋亡肽之间存在差异。鉴于发现包含抑制特定抗凋亡蛋白潜力的新型肽/药物分子,有必要了解蛋白与其结合伙伴(肽或配体)之间的识别的分子基础及其结合能。因此,本工作集中于使用先进的分子动力学(MD)方法(例如分子力学-广义 Born 溶剂可及性)来破译促凋亡 Bak 肽与不同抗凋亡(Bcl-xL、Bfl-1、Bcl-W、Mcl-1 和 Bcl-2)蛋白之间的识别的分子基础。我们的研究结果表明,预测的结合自由能与实验值具有很好的相关性(r=.95)。静电(ΔG)贡献是驱动 Bak 肽与不同抗凋亡肽相互作用的主要组成部分。此外,范德华(ΔG)能量在确定结合自由能方面也起着不可或缺的作用。此外,分解分析突出了与 Bak 肽和不同抗凋亡蛋白之间相互作用稳定相关的热点残基的能量贡献的综合信息。

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