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Genetic lesions associated with Muller's ratchet in an RNA virus

C Escarmís1, M Dávila, N Charpentier

  • 1Centro de Biología Molecular Severo Ochoa, Consejo Superior de Investigaciones Científicas, Universidad Autónoma de Madrid, Spain.

Insights

Muller's ratchet drives RNA viruses like foot-and-mouth disease virus (FMDV) towards extinction through accumulated mutations. Genetic analysis reveals unique lesions and mutational hotspots, offering insights into viral evolution and extinction risks.

Area of Science:

  • Virology
  • Evolutionary Biology
  • Genetics

Background:

  • Muller's ratchet describes the irreversible accumulation of deleterious mutations in asexual populations.
  • Foot-and-mouth disease virus (FMDV) is a significant animal pathogen with an RNA genome.

Purpose of the Study:

  • To investigate the molecular mechanisms of Muller's ratchet in an RNA virus, specifically FMDV.
  • To understand the genetic basis of fitness loss and potential extinction in FMDV populations under bottleneck conditions.

Main Methods:

  • Serial plaque transfers of FMDV clones on BHK-21 cells to simulate bottleneck events.
  • Fitness assays to quantify relative fitness changes in viral clones.
  • Whole-genome nucleotide sequence analysis to identify genetic lesions and mutations.

Main Results:

  • 11 out of 19 FMDV clones showed significant fitness losses after serial transfers.
  • One clone exhibited extremely low plating efficiency, indicating near extinction due to deleterious mutations.
  • Novel genetic lesions, including polyadenylate extensions and capsid substitutions, were identified.
  • Mutational hotspots and a high frequency of non-synonymous substitutions were observed in transferred clones.

Conclusions:

  • Serial bottleneck events can drive FMDV populations towards extinction via Muller's ratchet.
  • Specific genetic lesions and mutational patterns characterize the evolutionary trajectory of FMDV under strong selection.
  • Understanding these mechanisms provides crucial insights into RNA virus evolution and the dynamics of FMDV quasispecies.

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