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SAMHD1 Modulates Early Steps during Human Cytomegalovirus Infection by Limiting NF-?B Activation.


ABSTRACT: Cellular SAMHD1 inhibits replication of many viruses by limiting intracellular deoxynucleoside triphosphate (dNTP) pools. We investigate the influence of SAMHD1 on human cytomegalovirus (HCMV). During HCMV infection, we observe SAMHD1 induction, accompanied by phosphorylation via viral kinase UL97. SAMHD1 depletion increases HCMV replication in permissive fibroblasts and conditionally permissive myeloid cells. We show this is due to enhanced gene expression from the major immediate-early (MIE) promoter and is independent of dNTP levels. SAMHD1 suppresses innate immune responses by inhibiting nuclear factor ?B (NF-?B) activation. We show that SAMHD1 regulates the HCMV MIE promoter through NF-?B activation. Chromatin immunoprecipitation reveals increased RELA and RNA polymerase II on the HCMV MIE promoter in the absence of SAMHD1. Our studies reveal a mechanism of HCMV virus restriction by SAMHD1 and show how SAMHD1 deficiency activates an innate immune pathway that paradoxically results in increased viral replication through transcriptional activation of the HCMV MIE gene promoter.

SUBMITTER: Kim ET 

PROVIDER: S-EPMC6662646 | biostudies-literature | 2019 Jul

REPOSITORIES: biostudies-literature

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SAMHD1 Modulates Early Steps during Human Cytomegalovirus Infection by Limiting NF-κB Activation.

Kim Eui Tae ET   Roche Kathryn L KL   Kulej Katarzyna K   Spruce Lynn A LA   Seeholzer Steven H SH   Coen Donald M DM   Diaz-Griffero Felipe F   Murphy Eain A EA   Weitzman Matthew D MD  

Cell reports 20190701 2


Cellular SAMHD1 inhibits replication of many viruses by limiting intracellular deoxynucleoside triphosphate (dNTP) pools. We investigate the influence of SAMHD1 on human cytomegalovirus (HCMV). During HCMV infection, we observe SAMHD1 induction, accompanied by phosphorylation via viral kinase UL97. SAMHD1 depletion increases HCMV replication in permissive fibroblasts and conditionally permissive myeloid cells. We show this is due to enhanced gene expression from the major immediate-early (MIE) p  ...[more]

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