数字农科院2.0

Host cells reprogram lipid droplet synthesis through YY1 to resist PRRSV infection

文献类型: 外文期刊

作者: Zheng, Zifang;Ling, Xue;Li, Yang;Qiao, Shuang;Zhang, Shuangquan;Wu, Jie;Ma, Zhiqian;Li, Mingyu;Guo, Xuyang;Li, Zhiwei;Feng, Yingtong;Liu, Xiao;Goodfellow, Ian G.;Zheng, Haixue;Xiao, Shuqi

作者机构:

关键词: porcine reproductive and respiratory syndrome virus;yin yang 1;reprogram;lipid droplet;antiviral

期刊名称: MBIO

ISSN: 2150-7511

年卷期: 2024 年

页码:

收录情况: SCIE(2024版)

摘要: Metabolism in host cells can be modulated after viral infection, favoring viral survival or clearance. Here, we report that lipid droplet (LD) synthesis in host cells can be modulated by yin yang 1 (YY1) after porcine reproductive and respiratory syndrome virus (PRRSV) infection, resulting in active antiviral activity. As a ubiquitously distributed transcription factor, there was increased expression of YY1 upon PRRSV infection both in vitro and in vivo. YY1 silencing promoted the replication of PRRSV, whereas YY1 overexpression inhibited PRRSV replication. PRRSV infection led to a marked increase in LDs, while YY1 knockout inhibited LD synthesis, and YY1 overexpression enhanced LD accumulation, indicating that YY1 reprograms PRRSV infection-induced intracellular LD synthesis. We also showed that the viral components do not colocalize with LDs during PRRSV infection, and the effect of exogenously induced LD synthesis on PRRSV replication is nearly lethal. Moreover, we demonstrated that YY1 affects the synthesis of LDs by regulating the expression of lipid metabolism genes. YY1 negatively regulates the expression of fatty acid synthase (FASN) to weaken the fatty acid synthesis pathway and positively regulates the expression of peroxisome proliferator-activated receptor gamma (PPAR gamma) to promote the synthesis of LDs, thus inhibiting PRRSV replication. These novel findings indicate that YY1 plays a crucial role in regulating PRRSV replication by reprogramming LD synthesis. Therefore, our study provides a novel mechanism of host resistance to PRRSV and suggests potential new antiviral strategies against PRRSV infection.IMPORTANCEPorcine reproductive and respiratory virus (PRRSV) has caused incalculable economic damage to the global pig industry since it was first discovered in the 1980s. However, conventional vaccines do not provide satisfactory protection. It is well known that viruses are parasitic pathogens, and the completion of their replication life cycle is highly dependent on host cells. A better understanding of host resistance to PRRSV infection is essential for developing safe and effective strategies to control PRRSV. Here, we report a crucial host antiviral molecule, yin yang 1 (YY1), which is induced to be expressed upon PRRSV infection and subsequently inhibits virus replication by reprogramming lipid droplet (LD) synthesis through transcriptional regulation. Our work provides a novel antiviral mechanism against PRRSV infection and suggests that targeting YY1 could be a new strategy for controlling PRRSV. Porcine reproductive and respiratory virus (PRRSV) has caused incalculable economic damage to the global pig industry since it was first discovered in the 1980s. However, conventional vaccines do not provide satisfactory protection. It is well known that viruses are parasitic pathogens, and the completion of their replication life cycle is highly dependent on host cells. A better understanding of host resistance to PRRSV infection is essential for developing safe and effective strategies to control PRRSV. Here, we report a crucial host antiviral molecule, yin yang 1 (YY1), which is induced to be expressed upon PRRSV infection and subsequently inhibits virus replication by reprogramming lipid droplet (LD) synthesis through transcriptional regulation. Our work provides a novel antiviral mechanism against PRRSV infection and suggests that targeting YY1 could be a new strategy for controlling PRRSV.

分类号:

  • 相关文献

[1]CIDE proteins and lipid metabolism. Xu, Li,Zhou, Linkang,Li, Peng,Xu, Li.

[2]Genome-Wide Identification and Characterization of Oil-Body-Membrane Proteins in Polyploid Crop Brassica napus. Zhao, Wei,Liu, Jun,Qian, Lunwen,Guan, Mei,Guan, Chunyun. 2022

[3]Untargeted Lipidomics Analysis Unravels the Different Metabolites in the Fat Body of Mated Bumblebee (Bombus terrestris) Queens. Yueqin Guo,Fugang Liu,Yulong Guo,Yingping Qu,Zhengyi Zhang,Jun Yao,Jin Xu,Jilian Li. 2023

[4]The Biosynthesis of Astaxanthin Esters in Schizochytrium sp. is Mediated by a Bifunctional Diacylglycerol Acyltransferase. Liu P.-Y.,Wu J.-J.,Li G.,Lin C.-B.,Jiang S.,Liu S.,Wan X.. 2024

[5]Nitazoxanide inhibits the replication of Japanese encephalitis virus in cultured cells and in a mouse model. Shi, Zixue,Wei, Jianchao,Deng, Xufang,Qiu, Yafeng,Shao, Donghua,Li, Beibei,Zhang, Keyu,Xue, Feiqun,Ma, Zhiyong,Li, Shuqing,Wang, Xiaodu. 2014

[6]Lentivirus-mediated RNA interference against Japanese encephalitis virus infection in vitro and in vivo. Shen, Ting,Cao, Ruibing,Zhou, Bin,Chen, Puyan,Liu, Ke,Miao, Denian.

[7]CRISPR-Cas13d Exhibits Robust Antiviral Activity Against Seneca Valley Virus. Yu Yuan Zhang,Ming Xia Sun,Yuexiao Lian,Tong Yun Wang,Mei Yu Jia,Chaoliang Leng,Meng Chen,Yuan Zhe Bai,Fandan Meng,Xue Hui Cai,Yan Dong Tang. 2022

[8]Recombinant porcine Interferon-α and Interleukin-2 fusion protein (rPoIFNα+IL-2) shows potent anti-pseudorabies virus activity in vitro and in vivo. Kuan Zhao,Xiuli Li,Baishi Lei,Ying Han,Tongqing An,Wuchao Zhang,Huiwen Zhang,Bosen Li,Wanzhe Yuan. 2023

[9]Small-Molecule RAF265 as an Antiviral Therapy Acts against PEDV Infection. Wang J.,Tian W.-J.,Li C.-C.,Zhang X.-Z.,Fan K.,Li S.-L.,Wang X.-J.. 2022

[10]RNA-seq and LC-MS/MS analysis of antiviral effects mediated by cold stress and stress hormone corticosterone in chicken DF-1 cells. Dai J.,Wang H.,Liao Y.,Tan L.,Sun Y.,Song C.,Liu W.,Qiu X.,Ding C.. 2022

[11]Inhibitory Effects Of Homoharringtonine On F.oot And Mouth Disease V irus In Vitro. Gong, MJ, Li, SF, Xie, YL, Zhao, FR, Shao, JJ, Zhang, YG, Wang, WH, Chang, HY. 2019

[12]When MARCH family proteins meet viral infections. Chunfu Zheng,Yan-Dong Tang. 2021

[13]Antiviral function of peptidoglycan recognition protein in Spodoptera exigua (Lepidoptera: Noctuidae). Li, Jie,Li, Jie,Jing, Zhaohao,Yu, Qianlong,Zheng, Guiling,Zhang, Bin,Xing, Longsheng,Zhang, Huan,Wan, Fanghao,Li, Changyou. 2023

[14]ESCRT machinery and virus infection. Dai J.,Feng Y.,Liao Y.,Tan L.,Sun Y.,Song C.,Qiu X.,Ding C.. 2024

[15]IFITM3 restricts porcine deltacoronavirus infection by targeting its Spike protein. Wu J.,Tang R.,Zhang X.,Gao M.,Guo L.,Zhang L.,Shi D.,Zhang X.,Shi H.,Song H.,Feng L.,Chen J.. 2024

[16]m6A modification associated with YTHDF1 is involved in Japanese encephalitis virus infection. Xiao han Li,Jing Chen,Yu da Ou,Xiang Zhong,Jia huan Hu,Rui cong Sun,Ying jun Lv,Jian chao Wei,Yun Young Go,Bin Zhou. 2023

[17]The antiviral efficacy of andrographolide against grass carp reovirus in vitro and in vivo. Mengmeng Li,Mingyang Xue,Yong Zhou,Wenzhi Liu,Yan Meng,Chen Xu,Yiqun Li,Nan Jiang,Yuding Fan. 2025

[18]Identification of Escherichia coli 166 isolate as an effective inhibitor of African swine fever virus replication. Zhang, Jinya,Cui, Hongyu,Zhang, Zhenjiang,Wang, Wenqing,Jiang, Fengwei,Sun, Encheng,Zhu, Yuanmao,Li, Fang,Bu, Zhigao,Zhao, Dongming. 2025

[19]A Nanobody-based TRIM-away targets the intracellular protein degradation of African swine fever virus. Fayu Yang,Yuxi Yang,Xiaoyun Li,Saba Aliyari,Guoliang Zhu,Zixiang Zhu,Haixue Zheng,Shilei Zhang. 2024

[20]In vitro efficacy of bovine lactoferrin against bovine viral diarrhea virus. Hongwei Cui,Songda Li,Xiaohuan Yan,Zhaohua Wang,Tianyi Leng,Ming Li,Songli Li. 2025

作者其他论文 更多>>