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Published on: September 22, 2023
Phylogenetic relationships and molecular adaptation dynamics of human rhinoviruses
Nicole Lewis-Rogers1, Matthew L Bendall, Keith A Crandall
1Department of Microbiology and Molecular Biology, Brigham Young University, Provo, UT, USA. nlewisrogers@yahoo.com
Abstract:
Human rhinoviruses (HRVs) are responsible for nearly 50% of all common cold infections. Ordinarily, HRV infections are mild and self-limiting; nonetheless, every year they result in significant loss of economic productivity and substantial inappropriate antibiotic use. Development of effective vaccine and antiviral prophylaxis against HRV has been hampered by the extensive antigenic diversity present among the nearly 100 serotypes. To gain new insights into the evolutionary processes that create the genetic diversity present among HRVs, we tested for recombination and selection for individual genes and the coding genome for 45 HRV serotypes using estimated phylogenetic relationships. Although the structural capsid genes and nonstructural genes recovered incongruent tree topologies, no recombination was detected using substitution methods. Therefore, the coding genome was determined to be appropriate for phylogenetic tests. Results of the Shimodaira-Hasegawa (SH) test support the hypothesis that the capsid genes recover a different evolutionary history than the nonstructural genes. Our best phylogenetic estimate based on the coding genome suggests that HRV-B is more closely related to enterovirus than to HRV-A; however, several alternative phylogenetic hypotheses were not rejected by the SH test. Positive selection was examined by using two different approaches; d(N)/d(S) rate ratio and the physicochemical phenotypes for 31 amino acid properties. Analyses using d(N)/d(S) failed to detect positive selection. However, protein phenotypic expression appears to be a more sensitive approach. There was extensive stabilizing and destabilizing positive selection in HRV-A major and HRV-B serotypes for all proteins, except in 3A in HRV-B, which overlapped with functional, structural, and to a greater extent in uncharacterized genomic regions. In contrast, the evolution of HRV-A minor serotypes appears to be driven primarily by destabilizing selection. Our results demonstrate that HRV-A major, HRV-A minor, and HRV-B serotypes have not been similarly influenced by purifying selection.
Insights
Human rhinoviruses (HRVs) cause common colds and economic loss. Genetic analysis reveals different evolutionary paths for capsid and nonstructural genes, with selection pressures varying across HRV types.
Area of Science:
- Virology
- Evolutionary Biology
- Genetics
Background:
- Human rhinoviruses (HRVs) are a leading cause of the common cold, responsible for approximately 50% of infections.
- Despite generally mild symptoms, HRV infections lead to significant economic losses and inappropriate antibiotic use.
- The extensive antigenic diversity among nearly 100 HRV serotypes hinders the development of effective vaccines and antiviral therapies.
Purpose of the Study:
- To investigate the evolutionary processes driving genetic diversity in HRVs.
- To test for recombination and selection acting on individual genes and the entire coding genome of 45 HRV serotypes.
- To understand the distinct evolutionary histories of HRV structural capsid genes and nonstructural genes.
Main Methods:
- Phylogenetic analysis of coding genomes from 45 HRV serotypes.
- Recombination detection using substitution methods.
- Shimodaira-Hasegawa (SH) tests to compare gene evolutionary histories.
- Positive selection analysis using d(N)/d(S) ratios and protein physicochemical phenotypes.
Main Results:
- No recombination was detected, indicating the coding genome is suitable for phylogenetic analysis.
- SH tests supported different evolutionary histories for capsid and nonstructural genes.
- Phylogenetic estimates suggest HRV-B is more closely related to enteroviruses than HRV-A.
- Positive selection was detected via protein phenotype analysis, with distinct patterns in HRV-A major, HRV-A minor, and HRV-B serotypes, unlike d(N)/d(S) analyses.
- HRV-A major and HRV-B showed stabilizing and destabilizing selection, while HRV-A minor evolution was driven by destabilizing selection.
Conclusions:
- HRV evolution is shaped by distinct selection pressures on different gene types and across serotype groups.
- The genetic diversity of HRVs is not solely influenced by purifying selection.
- Understanding these evolutionary dynamics is crucial for developing targeted antiviral strategies and vaccines against common cold viruses.
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