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Article

DNA-Binding Activities of KSHV DNA Polymerase Processivity Factor (PF-8) Complexes

by
Jennifer Kneas Travis
1,2,
Megan Martin
1 and
Lindsey M. Costantini
1,*
1
Department of Biological and Biomedical Sciences, North Carolina Central University, Durham, NC 27707, USA
2
Integrated Biosciences (INBS) Doctoral Program, North Carolina Central University, Durham, NC 27707, USA
*
Author to whom correspondence should be addressed.
Viruses 2025, 17(2), 190; https://doi.org/10.3390/v17020190
Submission received: 18 December 2024 / Revised: 23 January 2025 / Accepted: 25 January 2025 / Published: 29 January 2025
(This article belongs to the Special Issue Molecular and Cellular Biology of Human Oncogenic Viruses)

Abstract

Kaposi’s Sarcoma Herpesvirus (KSHV) is the causative agent of several human diseases. There are few effective treatments available to treat infection and KSHV oncogenesis. Disrupting the KSHV infectious cycle would diminish the viral spread. The KSHV lytic phase and production of new virions require efficient copying and packaging of the KSHV genome. KSHV encodes its own lytic DNA replication machinery, including the processivity factor (PF-8), which presents itself as an attractive target for antiviral development. We characterized PF-8 at the single molecule level using transmission electron microscopy to identify key molecular interactions that mediate viral DNA replication initiation. Our results indicate that PF-8 forms oligomeric ring structures (tetramer, hexamer, and/or dodecamer) similar to the related Epstein–Barr virus processivity factor (BMRF1). Our DNA positional mapping revealed high-frequency binding locations of PF-8 within the lytic origin of replication (OriLyt). A multi-variable analysis of PF-8 DNA-binding activity with three mutant OriLyts provides new insights into the mechanisms that PF-8 associates with viral DNA and complexes to form multi-ring-like structures. Collectively, these data enhance the mechanistic understanding of the molecular interactions (protein–protein and protein-DNA) of an essential KSHV DNA replication protein.
Keywords: KSHV; HHV-8; viral replication; electron microscopy; human herpesviruses KSHV; HHV-8; viral replication; electron microscopy; human herpesviruses
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MDPI and ACS Style

Travis, J.K.; Martin, M.; Costantini, L.M. DNA-Binding Activities of KSHV DNA Polymerase Processivity Factor (PF-8) Complexes. Viruses 2025, 17, 190. https://doi.org/10.3390/v17020190

AMA Style

Travis JK, Martin M, Costantini LM. DNA-Binding Activities of KSHV DNA Polymerase Processivity Factor (PF-8) Complexes. Viruses. 2025; 17(2):190. https://doi.org/10.3390/v17020190

Chicago/Turabian Style

Travis, Jennifer Kneas, Megan Martin, and Lindsey M. Costantini. 2025. "DNA-Binding Activities of KSHV DNA Polymerase Processivity Factor (PF-8) Complexes" Viruses 17, no. 2: 190. https://doi.org/10.3390/v17020190

APA Style

Travis, J. K., Martin, M., & Costantini, L. M. (2025). DNA-Binding Activities of KSHV DNA Polymerase Processivity Factor (PF-8) Complexes. Viruses, 17(2), 190. https://doi.org/10.3390/v17020190

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