Third intracellular loop of HCMV US28 is necessary for signaling and viral reactivation.

IF 4 2区 医学 Q2 VIROLOGY
Journal of Virology Pub Date : 2025-01-31 Epub Date: 2024-12-10 DOI:10.1128/jvi.01801-24
Samuel Medica, Michael Denton, Nicole L Diggins, Olivia Kramer-Hansen, Lindsey B Crawford, Adam T Mayo, Wilma D Perez, Michael A Daily, Christopher J Parkins, Luke E Slind, Lydia J Pung, Whitney C Weber, Hannah K Jaeger, Zachary J Streblow, Gauthami Sulgey, Craig N Kreklywich, Timothy Alexander, Mette M Rosenkilde, Patrizia Caposio, Meaghan H Hancock, Daniel N Streblow
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引用次数: 0

Abstract

The human cytomegalovirus (HCMV) encoded chemokine receptor US28 plays a critical role in viral pathogenesis, mediating several processes such as cellular migration, differentiation, transformation, and viral latency and reactivation. Despite significant research examining the signal transduction pathways utilized by US28, the precise mechanism by which US28 activates these pathways remains unclear. We performed a mutational analysis of US28 to identify signaling domains that are critical for functional activities. Our results indicate that specific residues within the third intracellular loop (ICL3) of US28 are major determinants of G-protein coupling and downstream signaling activity. Alanine substitutions at positions S218, K223, and R225 attenuated US28-mediated activation of MAPK and RhoA signal transduction pathways. Furthermore, we show that mutations at positions S218, K223, or R225 result in impaired coupling to multiple Gα isoforms. However, these substitutions did not affect US28 plasma membrane localization or the receptor internalization rate. Utilizing CD34+ HPC models, we demonstrate that attenuation of US28 signaling via mutation of residues within the ICL3 region results in an inability of the virus to efficiently reactivate from latency. These results were recapitulated in vivo, utilizing a humanized mouse model of HCMV infection. Together, our results provide new insights into the mechanism by which US28 manipulates host signaling networks to mediate viral latency and reactivation. The results reported here will guide the development of targeted therapies to prevent HCMV-associated disease.IMPORTANCEHuman cytomegalovirus (HCMV) is a β-herpesvirus that infects between 44% and 100% of the world population. Primary infection is typically asymptomatic and results in the establishment of latent infection within CD34+hematopoietic progenitor cells (HPCs). However, reactivation from latent infection remains a significant cause of morbidity and mortality in immunocompromised individuals. The viral chemokine receptor US28 influences various cellular processes crucial for viral latency and reactivation, yet the precise mechanism by which US28 functions remains unclear. Through mutational analysis, we identified key residues within the third intracellular loop (ICL3) of US28 that govern G-protein coupling, downstream signaling, and viral reactivation in vitro and in vivo. These findings offer novel insights into how US28 manipulates host signaling networks to regulate HCMV latency and reactivation and expand our understanding of HCMV pathogenesis.

HCMV US28的第三个细胞内环是信号传导和病毒再激活所必需的。
人巨细胞病毒(HCMV)编码的趋化因子受体US28在病毒发病过程中起关键作用,介导细胞迁移、分化、转化、病毒潜伏期和再激活等过程。尽管对US28利用的信号转导途径进行了大量研究,但US28激活这些途径的确切机制仍不清楚。我们对US28进行了突变分析,以确定对功能活动至关重要的信号域。我们的研究结果表明,US28的第三胞内环(ICL3)内的特定残基是g蛋白偶联和下游信号活性的主要决定因素。S218、K223和R225位置的丙氨酸取代减弱了us28介导的MAPK和RhoA信号转导通路的激活。此外,我们发现S218、K223或R225位点的突变导致与多个Gα亚型的偶联受损。然而,这些取代不影响US28质膜定位或受体内化率。利用CD34+ HPC模型,我们证明了通过ICL3区域残基突变导致US28信号的衰减导致病毒无法有效地从潜伏期重新激活。这些结果在体内重现,利用人源化HCMV感染小鼠模型。总之,我们的研究结果为US28操纵宿主信号网络介导病毒潜伏期和再激活的机制提供了新的见解。本文报道的结果将指导靶向治疗的发展,以预防hcmv相关疾病。人类巨细胞病毒(HCMV)是一种β-疱疹病毒,感染全球44%至100%的人口。原发性感染通常无症状,并导致在CD34+造血祖细胞(HPCs)内建立潜伏感染。然而,潜伏感染的再激活仍然是免疫功能低下个体发病和死亡的重要原因。病毒趋化因子受体US28影响各种对病毒潜伏期和再激活至关重要的细胞过程,但US28发挥作用的确切机制尚不清楚。通过突变分析,我们确定了US28的第三胞内环(ICL3)中的关键残基,这些残基在体外和体内控制g蛋白偶联、下游信号传导和病毒再激活。这些发现为US28如何操纵宿主信号网络调节HCMV潜伏期和再激活提供了新的见解,并扩展了我们对HCMV发病机制的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Virology
Journal of Virology 医学-病毒学
CiteScore
10.10
自引率
7.40%
发文量
906
审稿时长
1 months
期刊介绍: Journal of Virology (JVI) explores the nature of the viruses of animals, archaea, bacteria, fungi, plants, and protozoa. We welcome papers on virion structure and assembly, viral genome replication and regulation of gene expression, genetic diversity and evolution, virus-cell interactions, cellular responses to infection, transformation and oncogenesis, gene delivery, viral pathogenesis and immunity, and vaccines and antiviral agents.
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