数字农科院2.0

KAP1 in antiviral immunity: dual roles in viral silencing and immune regulation

文献类型: 外文期刊

作者: Xin, Ruihua;Garigliany, Mutien-Marie;Li, Jianxi

作者机构:

关键词: KAP1/TRIM28;transcriptional regulation;virus-host interaction;innate immunity;post-translational modifications;viral latency

期刊名称: FRONTIERS IN CELLULAR AND INFECTION MICROBIOLOGY

ISSN: 2235-2988

年卷期: 2025 年 15 卷

页码:

收录情况: SCIE(2025版)

摘要: Kr & uuml;ppel-associated box (KRAB)-associated protein 1 (KAP1), also known as TRIM28 due to its tripartite motif (TRIM) domain, is a member of the transcription intermediary factor 1 (TIF1) family. Since its discovery in 1996, KAP1 has been widely studied as a scaffold protein involved in histone methylation, heterochromatin formation, and genome maintenance. Its function and stability are dynamically regulated by post-translational modifications (PTMs), including phosphorylation, SUMOylation, and acetylation. In addition, KAP1 serves as a signal transducer via its SUMO/ubiquitin E3 ligase activity. This review summarizes current advances in understanding the roles of KAP1 in regulating retroviruses (RVs), herpesviruses, and emerging respiratory viruses such as Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) and influenza A virus (IAV), with a particular focus on the interplay between its structural domains and physiological functions. Recent findings on human immunodeficiency virus (HIV) are highlighted to address ongoing mechanistic controversies, particularly those involving KAP1-mediated latency control. We further examine novel insights into KAP1's involvement in other viruses, including hepatitis B virus (HBV), porcine reproductive and respiratory syndrome virus (PRRSV), and African swine fever virus (ASFV). as well as its emerging regulatory roles in host innate immune responses through PTM-mediated modulation of antiviral signaling pathways. Although KAP1 exerts both antiviral and proviral effects, the underlying mechanisms remain incompletely defined, especially in systems where conflicting observations exist for the same pathogen. These discrepancies-reflecting both methodological variation and KAP1's inherent regulatory complexity-underscore the need for deeper mechanistic insight. Future studies utilizing precise genetic tools and in vivo models will be critical for elucidating the context-specific roles of KAP1 in viral gene regulation and advancing its translational potential.

分类号:

  • 相关文献

[1]The multiple roles of viral 3Dpol protein in picornavirus infections. Nie Z.,Zhai F.,Zhang H.,Zheng H.,Pei J.. 2024

[2]Nucleocapsid protein captures DDX5 and RNMT facilitating viral RNA synthesis and viral protein translation for coronavirus replication. Liu, Yuchang,Kong, Ning,Yang, Xinyu,Qin, Wenzhen,Wang, Yahe,Wang, Chen,Sun, He,Wang, Jiarui,Gao, Ao,Zheng, Dongfang,Tong, Wu,Yu, Hai,Zheng, Hao,Tong, Guangzhi,Shan, Tongling. 2026

[3]Practical Chemical Synthesis of Atypical Ubiquitin Chains by Using an Isopeptide-Linked Ub Isomer. Tang, Shan,Liang, Lu-Jun,Si, Yan-Yan,Gao, Shuai,Wang, Jia-Xing,Liu, Lei,Liang, Jun,Zheng, Ji-Shen,Mei, Ziqing.

[4]Epigenetic modification for horticultural plant improvement comes of age. Sadaruddin Chachar,Muzafaruddin Chachar,Adeel Riaz,Aamir Ali Shaikh,Xiulan Li,Xiaoxue Li,Changfei Guan,Pingxian Zhang. 2022

[5]Quantitative phosphoproteomics analyses reveal the regulatory mechanisms related to frozen-thawed sperm capacitation and acrosome reaction in yak (Bos grunniens). Zhang R.,Liang C.,Guo X.,Bao P.,Pei J.,Wu F.,Yin M.,Chu M.,Yan P.. 2022

[6]Proteome-wide analysis of lysine 2-hydroxyisobutyrylation in Frankliniella occidentalis. Ding C.,Song L.,Li Y.,Shen L.,Liu D.,Wang F.,Lin Z.,Yang J.. 2022

[7]Modifications Of Histones In Parasites As Drug Targets. Nawaz, M, Malik, I, Hameed, M, Kuthu, ZH, Zhou, JL. 2020

[8]Deciphering intricate plant-virus interactions: Potyvirids orchestrate protein posttranslational modifications to regulate pathogenicity. Kamran, Ali,Hussain, Muhammad Dilshad,Farooq, Tahir,Li, Fangfang,Khan, Mehran,Li, Xiangyang,Yang, Sanwei,Xie, Xin. 2024

[9]Peptide hormones in plants. Zhang, Zhenbiao,Han, Huibin,Zhao, Junxiang,Liu, Zhiwen,Deng, Lei,Wu, Liuji,Niu, Junpeng,Guo, Yongfeng,Wang, Guodong,Gou, Xiaoping,Li, Chao,Li, Chuanyou,Liu, Chun-Ming. 2025

[10]Feedback regulation of energy metabolism in meat: a study on the mechanism of lactic acid affecting phosphorylation and acetylation of glycolytic enzymes. Xiangfei Liu,Yu Dong,Ying Xu,Xinran Zhao,Yuqiang Bai,Chi Ren,Chengli Hou,Xin Li,Dequan Zhang. 2025

[11]Lactate metabolism in meat: from postmortem changes to emerging regulatory mechanisms. Liu, Xiangfei,Hou, Chengli,Li, Xin,Zhang, Dequan. 2026

[12]The role of lactate in meat beyond pH regulation: A study on lactylation and its effects on meat metabolism. Xiangfei Liu,Ying Xu,Xinran Zhao,Yuqiang Bai,Chi Ren,Xin Li,Chengli Hou,Dequan Zhang. 2025

[13]A structural machine learning approach for rapid prediction of thermodynamically destabilizing tyrosine phosphorylations. Jaie Woodard,Zhengqing Liu,Atena Malemir Chegini,Jian Tian,Rupa Bhowmick,Subramaniam Pennathur,Alireza Mashaghi,Jeffrey R. Brender,Sriram Chandrasekaran. 2025

[14]A novel DREB transcription factor from Halimodendron halodendron leads to enhance drought and salt tolerance in Arabidopsis. Ma, J. -T.,Wang, Z. -L.,Ma, J. -T.,Yin, C. -C.,Guo, Q. -Q.,Zhou, M. -L.,Wu, Y. -M.,Guo, Q. -Q..

[15]Characterization of an inducible C2H2-type zinc finger transcription factor VuSTOP1 in rice bean (Vigna umbellata) reveals differential regulation between low pH and aluminum tolerance mechanisms. Fan, Wei,Lou, He Qiang,Gong, Yu Long,Cao, Meng Jie,Liu, Yu,Yang, Jian Li,Zheng, Shao Jian,Fan, Wei,Liu, Mei Ya.

[16]Characterization of VuMATE1 Expression in Response to Iron Nutrition and Aluminum Stress Reveals Adaptation of Rice Bean (Vigna umbellata) to Acid Soils through Cis Regulation. Liu, Meiya,Xu, Jiameng,Lou, Heqiang,Yang, Jianli,Zheng, Shaojian,Liu, Meiya,Fan, Wei. 2016

[17]Coordinate involvement of Nodal-dependent inhibition and Wnt-dependent activation in the maintenance of organizer-specific bmp2b in zebrafish. Xue, Yu,Zhang, Wenjuan,Chen, Canbin,Xu, Jingjin,Pan, Yutian,Xing, Cencan,Xing, Cencan,Meng, Anming.

[18]Transcriptional regulation of the gene for prothoracicotropic hormone in the silkworm, Bombyx mori. Wei, Zhao-Jun,Yu, Miao,Hong, Gui-Yun,Jiang, Shao-Tong,Tang, Shun-Ming,Yi, Yong-Zhu.

[19]Rice zinc finger protein DST enhances grain production through controlling Gn1a/OsCKX2 expression. Li, Shuyu,Wang, Bao,Liu, Xiaoqiang,Zhang, Jie,Wang, Jun,Sun, Jiaqiang,Li, Chuanyou,Zhao, Bingran,Yuan, Dingyang,Duan, Meijuan,Tang, Li,Yuan, Longping,Qian, Qian,Liu, Zhao,Feng, Yu-Qi.

[20]Protein-DNA interactions in the promoter region of the gene encoding diapause hormone and pheromone biosynthesis activating neuropeptide of the cotton bollworm, Helicoverpa armigera. Hong, B,Zhang, ZF,Tang, SM,Yi, YZ,Zhang, TY,Xu, WH.

作者其他论文 更多>>