Skip to main navigation Skip to search Skip to main content

Structure of varicella-zoster virus DNA

  • S. E. Straus
  • , H. S. Aulakh
  • , W. T. Ruyechan
  • , J. Hay
  • , T. A. Casey
  • , G. F. Vande Woude
  • , J. Owens
  • , H. A. Smith
  • National Institutes of Health

Research output: Contribution to journalArticlepeer-review

96 Scopus citations

Abstract

Varicella-zoster virus (VZV) DNA was prepared from nucleocapsids and from enveloped virions of a laboratory strain (Ellen) and directly from the vesicle fluids of patients with zoster infections. VZV Ellen nucleocapsid DNA was cleaved with 11 different restriction endonucleases and electrophoresed in agarose gels. The restriction profiles of the nucleocapsid DNA were identical to those of the DNA recovered from purified virions, but differed from those of another VZV strain (KM). In vitro-labeled VZV KM DNA purified directly from vesicle fluid yielded a distinct restriction pattern which appeared to be unchanged after several tissue culture passages of the isolate from that fluid. Restriction endonuclease analysis (EcoRI or BglII) of VZV DNA revealed the presence of four cleavage fragments with a molar ratio of ~0.5. No individual fragments with molar ratios of 0.25 were noted. This observation suggests that the VZV genome may contain one invertible segment. Comparison of the electrophoretic migrations of VZV DNA fragments relative to those of DNAs of known size permitted calculation of the VZV genome size to be 72x106 to 80x106 daltons. These results were confirmed by electron microscopy which demonstrated a genome size of about 76x106 daltons for passaged and unpassaged VZV DNA. Electron microscopy also revealed that some of the DNA molecules recovered from nucleocapsids or directly from vesicle fluids were superhelical circles.

Original languageEnglish
Pages (from-to)516-525
Number of pages10
JournalUnknown Journal
Volume40
Issue number2
DOIs
StatePublished - 1981

Fingerprint

Dive into the research topics of 'Structure of varicella-zoster virus DNA'. Together they form a unique fingerprint.

Cite this