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爱泼斯坦-巴尔病毒潜伏膜蛋白1的计算机模拟建模与特性分析

In Silico Modeling and Characterization of Epstein-Barr Virus Latent Membrane Protein 1 Protein.

作者信息

Salam Dayang-Sharyati D A, Gunasinghe Kavinda Kashi Juliyan, Hwang Siaw San, Ginjom Irine Runnie Henry, Chee Wezen Xavier, Rahman Taufiq

机构信息

Faculty of Engineering, Computing and Science, Swinburne University of Technology Sarawak, Kuching 93350, Malaysia.

Department of Biochemistry, Yong Loo Lin School of Medicine, National University of Singapore, Singapore 117596, Singapore.

出版信息

ACS Omega. 2024 Dec 2;9(50):49422-49431. doi: 10.1021/acsomega.4c06868. eCollection 2024 Dec 17.

Abstract

Latent membrane protein 1 (LMP1) plays a crucial role in Epstein-Barr virus (EBV)'s ability to establish latency and is involved in developing and progressing EBV-associated cancers. Additionally, EBV-infected cells affect the immune responses, making it challenging for the immune system to eliminate them. Due to the aforementioned reasons, it is crucial to understand the structural features of LMP1, which are essential for the development of novel cancer therapies that target its signaling pathways. To date, there is yet to be a complete LMP1 protein structure; therefore, in our work, we modeled the full-length LMP1 containing the short cytoplasmic N-terminus, six transmembrane domains (TMDs), and a long-simulated C-terminus. Our model showed good stability and protein compactness evaluated through accelerated-molecular dynamics, where the conformational ensemble exhibited compact folds, particularly in the TMDs. Our results suggest that specific domains or motifs, predominantly in the C-terminal domain of LMP1, show promise as potential drug targets. As a whole, our work provides insights into key structural features of LMP1 that will allow the development of novel LMP1 therapies.

摘要

潜伏膜蛋白1(LMP1)在爱泼斯坦-巴尔病毒(EBV)建立潜伏感染的能力中起着关键作用,并参与EBV相关癌症的发生和发展。此外,EBV感染的细胞会影响免疫反应,使免疫系统难以清除它们。由于上述原因,了解LMP1的结构特征至关重要,这对于开发针对其信号通路的新型癌症治疗方法必不可少。迄今为止,尚无完整的LMP1蛋白结构;因此,在我们的工作中,我们对包含短细胞质N端、六个跨膜结构域(TMD)和长模拟C端的全长LMP1进行了建模。通过加速分子动力学评估,我们的模型显示出良好的稳定性和蛋白质紧凑性,其中构象集合呈现出紧凑的折叠,特别是在TMD中。我们的结果表明,主要在LMP1的C端结构域中的特定结构域或基序有望成为潜在的药物靶点。总体而言,我们的工作为LMP1的关键结构特征提供了见解,这将有助于开发新型LMP1疗法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/10d1/11656244/5d134e1f6531/ao4c06868_0001.jpg

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