4.5 Article

The cross-talk between STAT1/STAT3 and ROS up-regulates PD-L1 and promotes the release of pro-inflammatory/immune suppressive cytokines in primary monocytes infected by HHV-6B

期刊

VIRUS RESEARCH
卷 292, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.virusres.2020.198231

关键词

HHV-6B; PD-L1; Monocytes; Cytokines; STAT1 and STAT3; JAK/STATs; ROS

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资金

  1. Istituto Pasteur ItaliaFondazione Cenci Bolognetti, PRIN 2017 [2017K55HLC]
  2. HHV6 Foundantion
  3. Italian Association for Cancer Research (AIRC) Grant (IG 2019) [23040]

向作者/读者索取更多资源

The study revealed that HHV-6B infection induces up-regulation of PD-L1 expression on monocytes, leading to impaired immune response through activation of intracellular ROS, STAT1, and STAT3 pathways. These findings provide insight into potential therapeutic targets to counteract HHV-6B-induced immune dysfunction.
Programmed death ligand 1 (PD-L1) up-regulation on antigen presenting cells induces T cell dysfunction, strongly impairing immune response. Human Herpesviruses (HHV) 6B is a beta-herpesvirus that, although displays a higher tropism for T cells, can infect other immune cells including monocytes and dendritic cells (DCs) and neuronal cells. We have previously shown that HHV-6B infection of primary monocytes reduced autophagy and induced Endoplasmic Reticulum (ER) stress/ Unfolded Protein Response (UPR), impairing their survival and differentiation into DCs. In this study, we found that PD-L1 expression was up-regulated by HHV-6B on the surface of infected monocytes and that its extracellular release also increased, effects known to lead to an impairment of anti-viral immune response. At molecular level, PD-L1 up-regulation correlated with the activation of a positive regulatory circuit between the increase of intracellular ROS and the activation of STAT1 and STAT3 induced by HHV-6B, accompanied by a high release of pro-inflammatory/immune suppressive cytokines. In conclusion, this study unveils new strategies put in place by HHV-6B to induce immune dysfunction and the underlying molecular pathways that could be targeted to counteract such immune suppressive effects.

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