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宿主网络劫持的精心策划:病毒复制的调控过程

Orchestrated efforts on host network hijacking: Processes governing virus replication.

作者信息

Dai Xiaofeng, Hakizimana Olivier, Zhang Xuanhao, Kaushik Aman Chandra, Zhang Jianying

机构信息

The First Affiliated Hospital of Xi'an Jiaotong University, Xi'an, China.

Wuxi School of Medicine, Jiangnan University, Wuxi, China.

出版信息

Virulence. 2020 Dec;11(1):183-198. doi: 10.1080/21505594.2020.1726594.

Abstract

With the high pervasiveness of viral diseases, the battle against viruses has never ceased. Here we discuss five cellular processes, namely "autophagy", "programmed cell death", "immune response", "cell cycle alteration", and "lipid metabolic reprogramming", that considerably guide viral replication after host infection in an orchestrated manner. On viral infection, "autophagy" and "programmed cell death" are two dynamically synchronized cell survival programs; "immune response" is a cell defense program typically suppressed by viruses; "cell cycle alteration" and "lipid metabolic reprogramming" are two altered cell housekeeping programs tunable in both directions. We emphasize on their functionalities in modulating viral replication, strategies viruses have evolved to tune these processes for their benefit, and how these processes orchestrate and govern cell fate upon viral infection. Understanding how viruses hijack host networks has both academic and industrial values in providing insights toward therapeutic strategy design for viral disease control, offering useful information in applications that aim to use viral vectors to improve human health such as gene therapy, and providing guidelines to maximize viral particle yield for improved vaccine production at a reduced cost.

摘要

随着病毒性疾病的高度普遍性,对抗病毒的斗争从未停止。在此,我们讨论五个细胞过程,即“自噬”、“程序性细胞死亡”、“免疫反应”、“细胞周期改变”和“脂质代谢重编程”,这些过程在宿主感染后以协调的方式显著引导病毒复制。在病毒感染时,“自噬”和“程序性细胞死亡”是两个动态同步的细胞存活程序;“免疫反应”是一个通常被病毒抑制的细胞防御程序;“细胞周期改变”和“脂质代谢重编程”是两个可双向调节的改变的细胞管家程序。我们强调它们在调节病毒复制中的功能、病毒为自身利益而进化出的调节这些过程的策略,以及这些过程在病毒感染时如何协调和控制细胞命运。了解病毒如何劫持宿主网络在为病毒性疾病控制的治疗策略设计提供见解、为旨在利用病毒载体改善人类健康(如基因治疗)的应用提供有用信息以及为以降低成本提高疫苗产量而最大化病毒颗粒产量提供指导方面具有学术和产业价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d47f/7051146/e51d627a7ef9/kvir-11-01-1726594-g001.jpg

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