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KRAB-ZFP repressors enforce quiescence of oncogenic human herpesviruses

  • Xiaofan Li
  • , Eric M. Burton
  • , Siva Koganti
  • , Jizu Zhi
  • , Francis Doyle
  • , Scott A. Tenenbaum
  • , Biljana Horn
  • , Sumita Bhaduri-McIntosha
  • University of Florida
  • Stony Brook University
  • Acharya Nagarjuna University
  • SUNY Polytechnic Institute

Research output: Contribution to journalArticlepeer-review

34 Scopus citations

Abstract

Cancer-causing herpesviruses infect nearly every human and persist indefinitely in B lymphocytes in a quiescent state known as latency. A hallmark of this quiescence or latency is the presence of extrachromosomal viral genomes with highly restricted expression of viral genes. Silencing of viral genes ensures both immune evasion by the virus and limited pathology to the host, yet how multiple genes on multiple copies of viral genomes are simultaneously silenced is a mystery. In a unifying theme, we report that both cancer-causing human herpesviruses, despite having evolved independently, are silenced through the activities of two members of the Krüppel-associated box (KRAB) domain-zinc finger protein (ZFP) (KRABZFP) epigenetic silencing family, revealing a novel STAT3-KRAB-ZFP axis of virus latency. This dual-edged antiviral strategy restricts the destructive ability of the lytic phase while promoting the cancer-causing latent phase. These findings also unveil roles for KRAB-ZFPs in silencing of multicopy foreign genomes with the promise of evicting herpesviruses to kill viral cancers bearing clonal viral episomes.

Original languageEnglish
Article numbere00298-18
JournalJournal of Virology
Volume92
Issue number14
DOIs
StatePublished - Jul 1 2018

Keywords

  • Epstein-Barr virus
  • KRAB-ZFP
  • Kaposi's sarcoma-associated herpesvirus
  • Lytic cycle
  • STAT3
  • SZF1
  • TRIM28
  • Viral persistence
  • ZNF557

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