Strong inclination toward transition mutation in nucleotide substitutions by poliovirus replicase

S Kuge1, N Kawamura, A Nomoto

  • 1Department of Microbiology, Faculty of Medicine, University of Tokyo, Japan.

Insights

Researchers created a poliovirus mutant with a small-plaque phenotype by inserting a sequence into its genome. This insertion, containing an AUG sequence, reduced viral replication, highlighting its role in poliovirus type 1 plaque size reduction.

Area of Science:

  • Virology
  • Molecular Biology
  • Genetics

Background:

  • The Sabin strain of poliovirus type 1 is a critical vaccine strain.
  • Understanding genetic elements that influence viral replication and phenotype is essential for virology research.
  • The 5' non-coding region of viral genomes plays a significant role in replication and translation.

Purpose of the Study:

  • To construct and characterize a viable poliovirus type 1 insertion mutant.
  • To investigate the role of a specific AUG sequence within the 5' non-coding region on viral phenotype.
  • To analyze nucleotide substitution patterns in viral variants to understand RNA replication errors.

Main Methods:

  • Construction of a Sabin type 1 poliovirus insertion mutant with a 72-nucleotide sequence at position 702 in the 5' non-coding region.
  • Phenotypic analysis of the mutant, including plaque size and viral yield assessment.
  • Nucleotide sequence analysis of large-plaque variants to identify mutations and understand error profiles of the virus-specific replicase.

Main Results:

  • The insertion mutant exhibited a small-plaque phenotype and a tenfold reduction in viral yield compared to the parental virus.
  • Large-plaque variants generated from the mutant showed efficient replication and single nucleotide changes, primarily near the inserted AUG sequence.
  • Analysis of 44 variants revealed predominantly transition mutations, suggesting a strong bias in poliovirus replicase error patterns.

Conclusions:

  • The AUG sequence within the inserted element significantly reduces the plaque size of Sabin type 1 poliovirus.
  • This study presents the first in vitro poliovirus mutant with reduced viability solely due to an insertion in the 5' non-coding region.
  • The predominance of transition mutations in variants strongly indicates characteristic error-prone activity of the poliovirus replicase during RNA replication.

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