Targeting Peptidylarginine Deiminase 3 to Efficiently Suppress Herpes Simplex Virus Type 2 Infection

Author:

Pasquero Selina1ORCID,Gugliesi Francesca1ORCID,Biolatti Matteo1ORCID,Albano Camilla1ORCID,Bajetto Greta12ORCID,Trifirò Linda1ORCID,Raviola Stefano23ORCID,Dell’Oste Valentina1ORCID,De Andrea Marco12ORCID

Affiliation:

1. Department of Public Health and Pediatric Sciences, Medical School, University of Turin, 10124 Turin, Italy

2. CAAD Center for Translational Research on Autoimmune and Allergic Disease, University of Piemonte Orientale, Novara Medical School, 28100 Novara, Italy

3. Department of Translational Medicine, University of Piemonte Orientale, 28100 Novara, Italy

Abstract

Protein expression is regulated through multiple mechanisms, including post-translational modifications (PTMs), which can alter protein structure, stability, localization, and function. Among these, citrullination stands out due to its ability to convert arginine residues into citrulline, altering protein charge and mass. This modification is catalyzed by calcium-dependent protein arginine deiminases (PADs), enzymes implicated in various inflammatory diseases. We have recently shown that human cytomegalovirus (HCMV) and herpes simplex virus type 1 (HSV-1) exploit these enzymes to enhance their replication capabilities. Although the role of PADs in HCMV and HSV-1 infections is well documented, their involvement in HSV-2 infection has not yet been thoroughly investigated. Here, we demonstrate that HSV-2 manipulates the overall protein citrullination profile by activating three PAD isoforms: PAD2, PAD3, and PAD4. However, as previously observed during HSV-1 infection, PAD3 is the most significantly upregulated isoform, both at the mRNA and protein levels. Consistently, we demonstrate that inhibiting PAD3, either through the specific inhibitor CAY10727 or via CRISPR/Cas9-mediated gene silencing, markedly reduces HSV-2 replication and viral protein expression. Lastly, we show that CAY10727 displays an IC50 value of 0.3 μM, which is extremely close to what was previously observed for HSV-1. Overall, our findings highlight the crucial role of PAD3 in the life cycle of HSV-2 and suggest that the targeted inhibition of PAD3 may represent a promising approach for treating HSV-2 infections, especially in cases resistant to existing antiviral therapies.

Funder

University of Turin

Ministry of Education, University and Research—MUR

Cassa di Risparmio of Turin Foundation

EU funding within the MUR PNRR Extended Partnership initiative on Emerging Infectious Diseases

“Istituto di Ricerca Virologica Orietta Bartolomei Corsi”, Florence, Italy

Publisher

MDPI AG

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