Literature DB >> 28701329

Multisubunit DNA-Dependent RNA Polymerases from Vaccinia Virus and Other Nucleocytoplasmic Large-DNA Viruses: Impressions from the Age of Structure.

Yeva Mirzakhanyan1, Paul D Gershon2.   

Abstract

The past 17 years have been marked by a revolution in our understanding of cellular multisubunit DNA-dependent RNA polymerases (MSDDRPs) at the structural level. A parallel development over the past 15 years has been the emerging story of the giant viruses, which encode MSDDRPs. Here we link the two in an attempt to understand the specialization of multisubunit RNA polymerases in the domain of life encompassing the large nucleocytoplasmic DNA viruses (NCLDV), a superclade that includes the giant viruses and the biochemically well-characterized poxvirus vaccinia virus. The first half of this review surveys the recently determined structural biology of cellular RNA polymerases for a microbiology readership. The second half discusses a reannotation of MSDDRP subunits from NCLDV families and the apparent specialization of these enzymes by virus family and by subunit with regard to subunit or domain loss, subunit dissociability, endogenous control of polymerase arrest, and the elimination/customization of regulatory interactions that would confer higher-order cellular control. Some themes are apparent in linking subunit function to structure in the viral world: as with cellular RNA polymerases I and III and unlike cellular RNA polymerase II, the viral enzymes seem to opt for speed and processivity and seem to have eliminated domains associated with higher-order regulation. The adoption/loss of viral RNA polymerase proofreading functions may have played a part in matching intrinsic mutability to genome size.
Copyright © 2017 American Society for Microbiology.

Entities:  

Keywords:  NCLDV; RNA polymerase; giant virus; mimivirus; phycodnavirus; poxvirus; vaccinia virus

Mesh:

Substances:

Year:  2017        PMID: 28701329      PMCID: PMC5584312          DOI: 10.1128/MMBR.00010-17

Source DB:  PubMed          Journal:  Microbiol Mol Biol Rev        ISSN: 1092-2172            Impact factor:   11.056


  134 in total

Review 1.  Transcription elongation factor SII.

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Authors:  Donald M Prather; Erica Larschan; Fred Winston
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Authors:  Y Lin; T Nomura; J Cheong; D Dorjsuren; K Iida; S Murakami
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