数字农科院2.0

Midnolin inhibits coronavirus proliferation by degrading viral proteins

文献类型: 外文期刊

作者: Wang, Yahe;Tong, Wu;Qin, Wenzhen;Yang, Xinyu;Yu, Hai;Zheng, Hao;Zhang, Wen;Tong, Guangzhi;Wang, Chunmei;Kong, Ning;Shan, Tongling

作者机构:

关键词: midnolin;PEDV;proteasome;autophagy;domain

期刊名称: JOURNAL OF VIROLOGY

ISSN: 0022-538X

年卷期: 2025 年

页码:

收录情况: SCIE(2025版)

摘要: Cells utilize proteasomes and selective autophagy to degrade ubiquitin-labeled viral proteins and inhibit viral proliferation. Midnolin, a midbrain nucleolar protein, is reported to use ubiquitin-independent proteasomal degradation to degrade various nuclear proteins including transcription factors encoded by the immediate-early genes. However, it remains unclear whether midnolin can degrade viral protein to hinder viral replication. In this study, midnolin degraded porcine epidemic diarrhea virus (PEDV) S1/S2/M/E proteins to suppress PEDV proliferation. Midnolin has two essential structural domains: the Catch domain and the ubiquitin-like domain. We found that the Catch domain and the ubiquitin-like domain of midnolin concerted to target and degrade PEDV S1/S2/M/E proteins by both the proteasome and selective autophagy. Furthermore, this study indicated that the individual Catch domain of midnolin degraded PEDV S1/S2/M/E proteins through the autophagy pathway, which recruited the E3 ubiquitinating enzyme MARCH8 to ubiquitinate S1/S2/M/E proteins, and that the ubiquitinated proteins were recognized by Tollip and transported to the lysosome for degradation. Collectively, midnolin degraded viral proteins not only through the proteasomal pathway but also revealed a new mechanism of midnolin-mediated virus restriction, where the Catch domain degraded viral proteins using the midnolin (Catch)-MARCH8-Tollip-autophagosome pathway.IMPORTANCEProteasomes and selective autophagy are two ways that inhibit viral proliferation in cells. Midnolin can degrade nuclear proteins. However, whether midnolin can degrade viral protein is unknown. In this study, we found that midnolin degraded porcine epidemic diarrhea virus (PEDV) S1/S2/M/E proteins to suppress PEDV proliferation. During the degradation, two domains of midnolin exerted a vital role. The Catch domain and the ubiquitin-like domain concerted to interact and degrade PEDV S1/S2/M/E proteins through the proteasome pathway. In addition, the individual Catch domain of midnolin degraded PEDV S1/S2/M/E proteins through the autophagy pathway using the midnolin (Catch)-MARCH8-Tollip-autophagosome pathway. Overall, we have discovered a new mechanism of midnolin which acts as a host factor for antiviral function.

分类号:

  • 相关文献

[1]Nuclear ribonucleoprotein RALY targets virus nucleocapsid protein and induces autophagy to restrict porcine epidemic diarrhea virus replication. Wenzhen Qin,Ning Kong,Yu Zhang,Sujie Dong,Huanjie Zhai,Xueying Zhai,Xinyu Yang,Chenqian Ye,Manqing Ye,Changlong Liu,Lingxue Yu,Hao Zheng,Hai Yu,Wen Zhang,Guangzhi Tong,Daoliang Lan,Wu Tong,Tongling Shan. 2022

[2]RBM14 inhibits the replication of porcine epidemic diarrhea virus by recruiting p62 to degrade nucleocapsid protein through the activation of autophagy and interferon pathway. Wang, Xiaoquan,Tong, Wu,Yang, Xinyu,Zhai, Huanjie,Qin, Wenzhen,Liu, Changlong,Zheng, Hao,Yu, Hai,Tong, Guangzhi,Zhang, Zhendong,Kong, Ning,Shan, Tongling. 2024

[3]POLM inhibits porcine epidemic diarrhea virus replication by degrading multiple viral structural proteins. Cao, Xinyu,Liu, Yingyu,Tong, Wu,Qin, Wenzhen,Yang, Xinyu,Yu, Hai,Zheng, Hao,Zhang, Wen,Tong, Guangzhi,Kong, Ning,Shan, Tongling. 2025

[4]Zn2+ inhibits PEDV replication by inducing autophagy through the Akt-mTOR pathway. Caiying Wang,Yue Zhang,Shanshan Yang,Huub F.J. Savelkoul,Christine A. Jansen,Guangliang Liu. 2025

[5]ALDH1L1 suppresses the replication of porcine epidemic diarrhea virus by degrading viral nucleocapsid and envelope proteins. Wang, Jiarui,Zeng, Yan,Liu, Yuchang,Sun, He,Gao, Ao,Zheng, Dongfang,Tong, Wu,Yu, Hai,Zheng, Hao,Tong, Guangzhi,Cao, Xin,Kong, Ning,Shan, Tongling. 2025

[6]Role of the ubiquitin-proteasome pathway on proteolytic activity in postmortem proteolysis and tenderisation of sheep skeletal muscle. Liu, Yue,Du, Manting,Li, Xin,Chen, Li,Zhang, Dequan,Liu, Yue,Tian, Jianwen,Shen, Qingwu.

[7]Structure of an endogenous yeast 26S proteasome reveals two major conformational states. Luan, Bai,Huang, Xiuliang,Wu, Jianping,Wang, Yiwei,Xue, Xiaobin,Yan, Chuangye,Wang, Jiawei,Shi, Yigong,Wang, Feng,Mei, Ziqing,Finley, Daniel J..

[8]DNA-Bound peptides control the mRNA transcription through CDK7. Lv, Xiaowen,Lv, Feijie,Qin, Yuchang,Wang, Jing,Dong, Zhiyuan. 2009

[9]DIA-based quantitative proteomic analysis on porcine meat quality at different chilling rates. Yuqiang Bai,Tongjing Yan,Fei Fang,Xin Li,Su Wang,Juan Li,Chengli Hou,Dequan Zhang. 2024

[10]猪流行性腹泻病毒感染猪小肠上皮细胞miRNA表达谱分析及验证. 张宸语,陈佳宁,温建新,刘光亮. 2018

[11]中国猪病毒性腹泻流行概况及其科学防控. 冯力,陈建飞,时洪艳,张鑫. 2015

[12]2013-2014年全国23个地区猪腹泻病毒的流行病学调查. 张贺伟,张华,孟庆森,夏铭崎,王鑫,王炜,宋妮,宁晨,赵建增,武华. 2015

[13]猪流行性腹泻病毒感染小肠上皮细胞后诱导的天然免疫应答. 刘平黄,符芳,潘巧,应兰,陈建飞,冯力. 2014

[14]病毒宏基因组学分析腹泻仔猪肠道病毒群落及变异PEDV的分离和鉴定. 单同领,童光志. 2013

[15]猪流行性腹泻病毒IgA抗体间接ELISA方法的建立. 刘烨,张家林,王潇博,石达,时洪艳,陈建飞,张鑫,冯力. 2019

[16]STAT3在猪流行性腹泻病毒感染的作用及机制初步探索. 杨丽君,张健,许嘉宇,张璐,冯力,陈洪岩,王玉娥. 2019

[17]猪流行性腹泻病毒中和抗体PC10-IgG重组腺病毒的构建及其抗病毒效果的研究. 罗毅,符芳,李亮,尹灵丹,郭珊珊,薛美,孙元,单玲玲,李忍,刘翔,冯力,刘平黄. 2020

[18]表达PEDV S蛋白优势抗原区域的重组PRRSV活载体疫苗株的鉴定. 劳梦琴,刘瑞琳,陈鹏飞,黄世静,于家荣,朱钧锐,孙祁,虞凌雪,高飞,姜一峰,童武,刘长龙,李丽薇,于海,童光志,周艳君. 2022

[19]Fusion expression of bovine lactoferricin in Escherichia coli. Feng, Xing-jun,Wang, Jian-hua,Shan, An-shan,Teng, Da,Yang, Ya-lin,Yao, Yi,Yang, Guan-pin,Shao, Yan-chun,Liu, Shuo,Zhang, Fan.

[20]Genome-wide analysis of SINA family in plants and their phylogenetic relationships. Wang, Meng,Jin, Ying,Fu, Junjie,Zhu, Yun,Hu, Jian,Wang, Guoying,Zheng, Jun,Wang, Guoying.

作者其他论文 更多>>