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Interaction of the vaccinia virus nucleoside triphosphate phosphohydrolase I with linear oligonucleotides

L A Christen1, M Sanders, E G Niles

  • 1Department of Biochemistry, Center for Microbial Pathogenesis, State University of New York, Buffalo 14214-3000, USA.

Biochemistry
|July 1, 1999
PubMed

Insights

Vaccinia virus nucleoside triphosphate phosphohydrolase I (NPH I) binds single-stranded DNA and RNA, influencing transcription termination. DNA binding alters enzyme kinetics, with longer DNA increasing affinity and activity.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Virology

Background:

  • Vaccinia virus nucleoside triphosphate phosphohydrolase I (NPH I) is crucial for early gene transcription termination.
  • Understanding its ATPase activity and oligonucleotide interaction is key to elucidating its role.

Purpose of the Study:

  • To investigate the kinetic and binding interactions of NPH I with linear oligonucleotides.
  • To elucidate the structure-function relationship of NPH I in oligonucleotide activation.

Main Methods:

  • Combined kinetic and binding analyses (EMSA) of NPH I with ssDNA and ssRNA.
  • UV photo-cross-linking experiments to identify binding sites.
  • In vitro transcription termination assays.

Main Results:

  • NPH I's ATPase activity is stimulated by ssDNA in a saturable manner, with length-dependent affinity and altered kcat.
  • NPH I exhibits complex kinetics suggesting conformational changes upon ATP binding.
  • The NPH I binding site is approximately 12 bases long; ssRNA binds but does not stimulate activity.
  • Both ssDNA and ssRNA share a common binding site, with ssRNA inhibiting ssDNA activation.
  • ssDNA inhibits in vitro transcription termination, an effect reversed by NPH I.

Conclusions:

  • NPH I's oligonucleotide binding site is critical for its ATPase activity and role in transcription termination.
  • The enzyme's kinetics and potential conformational states are modulated by ssDNA length and ATP concentration.
  • NPH I interacts with both ssDNA and ssRNA, but only ssDNA activates its ATPase function.

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