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Szczepaniak, R.

Publications and source records attributed to Szczepaniak, R..

3 recordsLinked to original sources

Viral Nuclease Inhibitors: Small molecule disruptors of the UL12 alkaline nuclease display broad anti-herpes virus activity

Herpes simplex virus-1 (HSV-1) UL12 gene encodes a well-conserved 5 [->] 3 alkaline exonuclease. UL12 collaborates with the HSV single-strand DNA binding protein ICP8 to mediate recombination-dependent replication of viral DNA and is essential for the production of DNA that can be packaged into infectious virus. The UL12 gene has orthologs in the eight other human herpesviruses, including UL98 in HCMV and SOX in KSHV, which are also essential for virus production. We have developed viral nuclease inhibitors (VNIs) of HSV-1 UL12 that potently block its nuclease activity and display strong antiviral effects in cell culture. These inhibitors are also effective against alkaline nucleases from the {beta}-HHV HCMV (UL98) and the {gamma}-HHV KSHV (SOX), and we have demonstrated antiviral activity against HSV-1 and HCMV in cell culture. In this work, we describe the first crystal structure of an alphaherpesvirus alkaline nuclease (UL12.5), which was used to elucidate structure activity relationships and improve the selectivity of our inhibitors. These VNIs exhibit EC50 and IC50 values in the nanomolar to low micromolar range. Our findings highlight the potential of targeting HHV alkaline nucleases with novel small molecules, paving the way for the development of new therapies that can be broadly antiviral on their own or in combination with nucleoside analogs. Significance StatementHerpesviruses are widespread pathogens that establish lifelong infections and cause serious disease in immunocompromised individuals, neonates and older adults, yet treatment options remain limited. We report the first crystal structure of the HSV-1 alkaline nuclease UL12.5 and use it to design potent small-molecule inhibitors. These inhibitors exhibit antiviral activity against HSV-1 and HCMV, supporting alkaline nuclease as a conserved and druggable target across all herpesvirus subfamilies. The significance is threefold: it confirms alkaline nucleases as having an essential role in viral replication, provides a structural foundation for rational antiviral design and introduces a new class of inhibitors with potential as pan-herpesvirus therapeutics, alone or in combination, to overcome resistance and improve clinical outcomes.

pharmacology and toxicology↗

PXL: a Nucleic Acid-Binding Module of Promyelocytic Leukemia Protein

The promyelocytic leukemia protein (PML) is a stress-response factor that assembles into PML nuclear bodies, dynamic subnuclear compartments involved in tumor suppression and antiviral defense. The most abundant isoform, PML-1, has been linked to transcriptional regulation, genome stability, and antiviral responses, yet the molecular basis of these functions remains unclear. Here, we report that PML-1 contains a unique nucleic acid- binding module, PXL, and determine its three-dimensional structure by X-ray crystallography. Further biochemical, mutational, and cellular analyses, including RNA-seq, demonstrate that this module selectively binds single-stranded G-rich RNA and DNA motifs and modulates the transcriptome. These findings reveal an unexpected molecular function of PML and provide a framework for understanding its roles in nuclear organization and gene regulation.

biochemistry↗

Conserved assembly architecture of the essential herpesvirus packaging accessory factor

To create a new wave of infectious virions, all herpesviruses require an accessory factor of unknown function to package their viral genomes into nascent capsids. Here, we present cryo-EM structures of the packaging accessory factor from the -herpesvirus herpes simplex virus type 1 (HSV-1, UL32) and the {beta}-herpesvirus human cytomegalovirus (HCMV, UL52). Unlike homologs from the {gamma}-herpesviruses, neither UL32 nor UL52 form stable homopentameric rings. UL52 forms incomplete pentameric rings lacking one or two protomers. UL32 does not form stable higher-order species, but stabilization through chemical crosslinking revealed a novel quaternary structure where three pentameric rings assemble into a "tripentamer." Our results reveal that herpesvirus packaging accessory factors adopt distinct oligomeric states but are constrained to pentameric symmetry. Assembly of protomers into a ring creates a positively charged central channel that we show is critical for infectious virus production in HSV-1. Taken together, our study points to a structurally conserved, essential function of packaging accessory factors across the Herpesviridae. AUTHOR SUMMARYHerpesviruses are a diverse family of pathogens that drive human disease. At the end of their life cycle, all herpesviruses must actively package their genomes into newly formed capsids. Although some aspects of packaging are conserved with tailed bacteriophages, herpesviruses require an additional packaging accessory factor of unknown function. Here, we present two high-resolution structures of the packaging accessory factor from herpes simplex virus and human cytomegalovirus and identify pentameric symmetry as a unifying structural feature. We propose that the packaging accessory factor oligomerizes to concentrate positively charges in a central channel critical for packaging progression.

microbiology↗