SUMOylation Promotes PML Degradation during Encephalomyocarditis Virus Infection

Author:

El Mchichi Bouchra1,Regad Tarik1,Maroui Mohamed-Ali1,Rodriguez Manuel S.2,Aminev Aleksey3,Gerbaud Sylvie4,Escriou Nicolas4,Dianoux Laurent1,Chelbi-Alix Mounira K.1

Affiliation:

1. CNRS, FRE 3238, 7 rue Guy Môquet, Villejuif, France

2. University of the Basque Country, Derio 48100, Spain

3. University of Wisconsin—Madison, Madison, Wisconsin

4. Institut Pasteur, CNRS URA 3015, Université Paris 7, Paris, France

Abstract

ABSTRACT The promyelocytic leukemia (PML) protein is expressed in the diffuse nuclear fraction of the nucleoplasm and in matrix-associated structures, known as nuclear bodies (NBs). PML NB formation requires the covalent modification of PML to SUMO. The noncovalent interactions of SUMO with PML based on the identification of a SUMO-interacting motif within PML seem to be required for further recruitment within PML NBs of SUMOylated proteins. RNA viruses whose replication takes place in the cytoplasm and is inhibited by PML have developed various strategies to counteract the antiviral defense mediated by PML NBs. We show here that primary fibroblasts derived from PML knockout mice are more sensitive to infection with encephalomyocarditis virus (EMCV), suggesting that the absence of PML results in an increase in EMCV replication. Also, we found that EMCV induces a decrease in PML protein levels both in interferon-treated cells and in PMLIII-expressing cells. Reduction of PML was carried out by the EMCV 3C protease. Indeed, at early times postinfection, EMCV induced PML transfer from the nucleoplasm to the nuclear matrix and PML conjugation to SUMO-1, SUMO-2, and SUMO-3, leading to an increase in PML body size where the viral protease 3C and the proteasome component were found colocalizing with PML within the NBs. This process was followed by PML degradation occurring in a proteasome- and SUMO-dependent manner and did not involve the SUMO-interacting motif of PML. Together, these findings reveal a new mechanism evolved by EMCV to antagonize the PML pathway in the interferon-induced antiviral defense.

Publisher

American Society for Microbiology

Subject

Virology,Insect Science,Immunology,Microbiology

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