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Published on: November 7, 2018
Evidence of structural genomic region recombination in Hepatitis C virus
1Laboratorio de Virología Molecular, Centro de Investigaciones Nucleares, Facultad de Ciencias, Universidad de la República, Iguá 4225, 11400 Montevideo, Uruguay. cristina@cin.edu.uy
Insights
Homologous recombination is rare in Hepatitis C virus (HCV) evolution, with only one recombinant strain found among 89 analyzed. However, this mechanism can still contribute to genetic diversity in HCV populations.
Area of Science:
- Virology
- Molecular Biology
- Evolutionary Biology
Background:
- Hepatitis C virus (HCV) is a significant human pathogen.
- Homologous recombination is known in Flaviviridae but understudied in natural HCV populations.
- Recombination's role in HCV evolution requires further investigation.
Purpose of the Study:
- To determine the extent of homologous recombination in global HCV strains.
- To identify recombination events and break-points within the HCV genome.
- To assess the contribution of recombination to HCV evolution and genetic diversity.
Main Methods:
- Phylogenetic analysis of 89 full-length HCV strains.
- Identification of putative recombinant sequences using the SimPlot program.
- Confirmation of recombination events via bootscanning.
Main Results:
- One intra-typic recombinant strain (1a/1c) was identified among 89 strains.
- Two crossing-over events were located in the E1/E2 structural region.
- Recombination break-points were found in the structural region of the HCV genome.
Conclusions:
- Homologous recombination plays a limited role in the overall evolution of HCV.
- Despite its rarity, recombination can generate genetic diversity in natural HCV populations.
- The study identified a novel intra-typic recombinant HCV strain.
Background/Aim:
Hepatitis C virus (HCV) has been the subject of intense research and clinical investigation as its major role in human disease has emerged. Although homologous recombination has been demonstrated in many members of the family Flaviviridae, to which HCV belongs, there have been few studies reporting recombination on natural populations of HCV. Recombination break-points have been identified in non structural proteins of the HCV genome. Given the implications that recombination has for RNA virus evolution, it is clearly important to determine the extent to which recombination plays a role in HCV evolution. In order to gain insight into these matters, we have performed a phylogenetic analysis of 89 full-length HCV strains from all types and sub-types, isolated all over the world, in order to detect possible recombination events.
Method:
Putative recombinant sequences were identified with the use of SimPlot program. Recombination events were confirmed by bootscaning, using putative recombinant sequence as a query.
Results:
Two crossing over events were identified in the E1/E2 structural region of an intra-typic (1a/1c) recombinant strain.
Conclusion:
Only one of 89 full-length strains studied resulted to be a recombinant HCV strain, revealing that homologous recombination does not play an extensive roll in HCV evolution. Nevertheless, this mechanism can not be denied as a source for generating genetic diversity in natural populations of HCV, since a new intra-typic recombinant strain was found. Moreover, the recombination break-points were found in the structural region of the HCV genome.
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