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Secondary structure of the 3'-untranslated region of yellow fever virus: implications for virulence, attenuation and vaccine development. | LitMetric

Secondary structure of the 3'-untranslated region of yellow fever virus: implications for virulence, attenuation and vaccine development.

J Gen Virol

Wellcome Trust Centre for the Epidemiology of Infectious Disease, Department of Zoology, University of Oxford, UK.

Published: July 1997

AI Article Synopsis

  • A genetic algorithm combined with comparative analysis was used to predict the RNA secondary structure of the yellow fever virus (YFV) 3'-UTR, revealing key stable and conserved structural elements.
  • Structural variations were found among different YFV strains, indicating a connection between these variations and the virus's virulence, with wild/pathogenic strains showing distinct folding from vaccine strains.
  • The research suggests that understanding the 3'-UTR's secondary structure could provide insights into how YFV's virulence is determined and could inform future vaccine development strategies.

Article Abstract

A genetic algorithm-based RNA secondary structure prediction was combined with comparative sequence analysis to construct models of folding for the distal 380 nucleotides of the 3'-untranslated region (3'-UTR) of yellow fever virus (YFV). A number of structural elements that are thermodynamically stable, conserved in shape, and confirmed by compensatory mutations were revealed. At the same time structural polymorphisms were observed among strains of YFV. These polymorphisms showed an association with virulence: all wild and pathogenic strains were likely to be folded in a significantly different way from vaccine strains with reduced virulence. Structural divergence was also found among vaccine strains, with 17DD, the most virulent in the mouse model, exhibiting an intermediate pattern of folding, combining structural features of both wild and vaccine strains. The observation of a strong association between secondary structure of the 3'-UTR and virulence of YFV may help elucidate the molecular mechanisms of virus attenuation and lead to new strategies of vaccine development directed towards rational modification of secondary structure of the 3'-UTR.

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Source
http://dx.doi.org/10.1099/0022-1317-78-7-1543DOI Listing

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