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RNA-binding activities of cocksfoot mottle sobemovirus proteins

T Tamm1, E Truve

  • 1Gene Technology Center, Institute of Chemical Physics and Biophysics, Tallinn Technical University, Akadeemia tee 23, EE12618, Tallinn, Estonia.

Virus Research
|March 22, 2000
PubMed

Insights

Cocksfoot mottle virus (CfMV) proteins P1, P2a, P2b, and P3 bind to single-stranded RNA (ssRNA) non-specifically. Their binding affinities vary with salt concentration, suggesting distinct roles in viral replication.

Area of Science:

  • Virology
  • Molecular Biology
  • Plant Pathology

Background:

  • Cocksfoot mottle virus (CfMV) possesses a positive-sense single-stranded RNA (ssRNA) genome.
  • Four open reading frames (ORFs) encode key viral proteins: movement protein (P1), VPg/serine protease (P2a), RNA-dependent RNA polymerase (P2b), and coat protein (P3).

Purpose of the Study:

  • To investigate the RNA-binding activities of CfMV proteins P1, P2a, P2b, and P3.
  • To characterize the sequence-nonspecific RNA-binding properties and salt concentration optima for these proteins.

Main Methods:

  • Expression and purification of His-tagged CfMV proteins (P1, P2a, P2b, P3) in Escherichia coli.
  • Northwestern blot assays to detect ssRNA-protein interactions.
  • Filter-binding assays to quantify ssRNA-binding capacity.
  • Analysis of RNA-binding activity under varying NaCl concentrations.

Main Results:

  • All tested CfMV proteins (P1, P2a, P2b, P3) exhibited sequence-nonspecific binding to ssRNA.
  • Recombinant P1, P2a, and P3 demonstrated confirmed ssRNA-binding capacity.
  • RNA-binding activity of P1 and P2a decreased significantly with increasing NaCl concentrations.
  • P3 displayed optimal RNA-binding at 100-200 mM NaCl, similar to the native coat protein.

Conclusions:

  • CfMV proteins P1, P2a, P2b, and P3 possess inherent ssRNA-binding capabilities.
  • Differential salt concentration optima suggest distinct functional roles for these proteins in the viral life cycle.
  • Further investigation into specific amino acid motifs involved in RNA binding is warranted.

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