The Kinetic and Thermodynamic Aftermath of Horizontal Gene Transfer Governs Evolutionary Recovery

Sarah M Doore1, Bentley A Fane2

  • 1School of Plant Sciences and the BIO5 Institute, University of Arizona.

Insights

Horizontal gene transfer in microviruses is hindered by protein assembly barriers. Researchers studied gene G transfer between virus clades, finding that while some chimeras easily recovered, others required complex adaptations for viability.

Area of Science:

  • Virology
  • Molecular Biology
  • Evolutionary Biology

Background:

  • Viral genomes can undergo horizontal gene transfer in shared host cells, leading to web-like phylogenetic structures.
  • Not all virus families display web-like phylogenies; microviruses, for example, form three distinct clades: φX174, G4, and α3.

Purpose of the Study:

  • To investigate protein-based barriers to horizontal gene transfer between distinct microvirus clades.
  • To understand the evolutionary recovery process of chimeric microviruses resulting from gene transfer.

Main Methods:

  • Gene G, encoding a structural protein, was transferred between φX174 and G4 microvirus clades.
  • The evolutionary recovery of resulting chimeric viruses was monitored through genetic selections and fitness assessments.

Main Results:

  • Particle assembly was identified as a major barrier to horizontal gene transfer in both transfer directions.
  • The G4φXG chimera showed a temperature-sensitive assembly defect, readily corrected by single mutations.
  • The φXG4G chimera initially required exogenous supply of φX174 spike G and pilot H proteins, with adaptations involving decreased gene expression, altered protein-protein interactions, and eventual re-elevation of gene expression.

Conclusions:

  • Protein-based barriers, particularly during particle assembly, significantly restrict horizontal gene transfer between microvirus clades.
  • The complex adaptive pathway for the φXG4G chimera highlights potential mechanisms for the persistence and emergence of novel recombinant viruses.
  • Viable chimeric strains exhibited reduced fitness compared to wild-type, suggesting an evolutionary trade-off.

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