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BAG3的计算机结构评估及通过蛋白质-蛋白质和宿主-病原体相互作用分析阐明其与细菌感染的关联。

In silico structure evaluation of BAG3 and elucidating its association with bacterial infections through protein-protein and host-pathogen interaction analysis.

作者信息

Basu Soumya, Naha Aniket, Veeraraghavan Balaji, Ramaiah Sudha, Anbarasu Anand

机构信息

Medical and Biological Computing Laboratory, School of Bio-Sciences and Technology, Vellore Institute of Technology, Vellore, Tamil Nadu, India.

Department of Clinical Microbiology, Christian Medical College & Hospital, Vellore, Tamil Nadu, India.

出版信息

J Cell Biochem. 2022 Jan;123(1):115-127. doi: 10.1002/jcb.29953. Epub 2021 May 17.

Abstract

BAG3, a co-chaperone protein with a Bcl-2-associated athanogene (BAG) domain, has diverse functionalities in protein-folding, apoptosis, inflammation, and cell cycle regulatory cross-talks. It has been well characterised in cardiac diseases, cancers, and viral pathogenesis. The multiple roles of BAG3 are attributed to its functional regions like BAG, Tryptophan-rich (WW), isoleucine-proline-valine-rich (IPV), and proline-rich (PXXP) domains. However, to study its structural impact on various functions, the experimental 3D structure of BAG3 protein was not available. Hence, the structure was predicted through in silico modelling and validated through computational tools and molecular dynamics simulation studies. To the best of our knowledge, the role of BAG3 in bacterial infections is not explicitly reported. We attempted to study them through an in-silico protein-protein interaction network and host-pathogen interaction analysis. From structure-function relationships, it was identified that the WW and PXXP domains were associated with cellular cytoskeleton rearrangement and adhesion-mediated response, which might be involved in BAG3-related intracellular bacterial proliferation. From functional enrichment analysis, Gene Ontology terms and topological matrices, 18 host proteins and 29 pathogen proteins were identified in the BAG3 interactome pertaining to Legionellosis, Tuberculosis, Salmonellosis, Shigellosis, and Pertussis through differential phosphorylation events associated with serine metabolism. Furthermore, it was evident that direct (MAPK8, MAPK14) and associated (MAPK1, HSPD1, NFKBIA, TLR2, RHOA) interactors of BAG3 could be considered as therapeutic markers to curb down intracellular bacterial propagation in humans.

摘要

BAG3是一种具有Bcl-2相关抗凋亡基因(BAG)结构域的共伴侣蛋白,在蛋白质折叠、细胞凋亡、炎症和细胞周期调控的相互作用中具有多种功能。它在心脏病、癌症和病毒发病机制方面已得到充分表征。BAG3的多种作用归因于其功能区域,如BAG、富含色氨酸(WW)、富含异亮氨酸-脯氨酸-缬氨酸(IPV)和富含脯氨酸(PXXP)的结构域。然而,为了研究其对各种功能的结构影响,BAG3蛋白的实验性三维结构尚不可得。因此,通过计算机模拟对其结构进行了预测,并通过计算工具和分子动力学模拟研究进行了验证。据我们所知,BAG3在细菌感染中的作用尚未明确报道。我们试图通过计算机模拟的蛋白质-蛋白质相互作用网络和宿主-病原体相互作用分析来研究它们。从结构-功能关系中发现,WW和PXXP结构域与细胞细胞骨架重排和粘附介导的反应有关,这可能参与了BAG3相关的细胞内细菌增殖。通过功能富集分析、基因本体术语和拓扑矩阵,在BAG3相互作用组中通过与丝氨酸代谢相关的差异磷酸化事件鉴定出了与军团病、结核病、沙门氏菌病、志贺氏菌病和百日咳相关的18种宿主蛋白和29种病原体蛋白。此外,很明显,BAG3的直接相互作用蛋白(MAPK8、MAPK14)和相关相互作用蛋白(MAPK1、HSPD1、NFKBIA、TLR2、RHOA)可被视为抑制人类细胞内细菌繁殖的治疗标志物。

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