Search PubMed⌕ Search

Biomedical subjects

Art F Y Poon

Publications and source records attributed to Art F Y Poon.

3 recordsLinked to original sources

Selection profiles in RNA viruses reflect the characteristics of viruses more than individual proteins.

Proteins that are exposed on the surface of a virus are frequently subject to strong selection to escape from neutralizing antibodies. To investigate whether surface-exposed (SE) and non-exposed (NE) proteins encoded by RNA viruses exhibit different patterns of evolution under selection, we analyzed 244 protein-coding genes from 28 species of RNA viruses representing 15 taxonomic families. First, we show that gene-wide rates of non-synonymous (dN) and synonymous (dS) substitutions do not differentiate between SE and NE proteins. To incorporate variation in substitution rates among codon sites, we inferred the posterior distribution over a fixed grid of dN and dS rates for each alignment. This 'evolutionary fingerprint' provides a common framework for comparing the selection profiles of non-homologous genes. Next, we computed the Wasserstein distance for every pair of fingerprints, which is analogous to amount of work required to reshape one distribution to another. After compensating for differences in genetic variation among alignments, we found a small but significant difference between the fingerprints of SE and NE proteins (PERMANOVA, P&#x2009;=&#x2009;0.03). However, we observed larger and more significant effects of whether the virus is enveloped (P&#x2009;<&#x2009;10-5) and the interaction between these factors (P=6.9&#xd7;10-4). The latter effects were driven by high levels of purifying selection in capsid proteins of Picornaviruses. Furthermore, greater amounts of variation in fingerprints were explained by significant differences among virus families and modes of transmission (P&#x2009;<&#x2009;10-5). These results imply the pattern of selection on a virus protein is shaped more by characteristics of the virus than the protein itself.

RNA Viruses↗

Pervasive HIV recombination limits the utility of circulating recombinant form nomenclature.

The naming of HIV-1 circulating recombinant forms (CRFs)-descendent viruses from the same intersubtype recombination events, is along with the designation of 'subtypes' and 'groups', routinely used to track HIV-1 diversity. However, we argue that continuing to designate all detected CRFs as distinct entities is biologically unjustified, as many represent recombinants of limited epidemiological significance. Indeed, the mechanistic underpinning of HIV-1 recombination highlights the arbitrary nature of naming these incidental recombinants, the majority of which are rarely detected again. This underlines the need to prioritise taxonomically meaningful clades, with a focus on biological significance such as emergence events associated with significant epidemiological spread, phenotypic properties or transmission advantage.

HIV-1↗

Functional origins of fitness effect-sizes of compensatory mutations in the DNA bacteriophage phiX174.

Epistasis is an important and poorly understood aspect of mutations and strongly influences the evolutionary impact of genetic variation on adaptation and fitness. Although recent studies have begun to characterize the distribution of epistatic effects between mutations affecting fitness, there is currently a lack of empirical information on the underlying biological causes of these epistatic interactions. What are the functional constraints that determine the effectiveness of a compensatory mutation at restoring fitness? We have measured the effect-sizes of 52 compensatory mutations affecting nine different deleterious mutations in the major capsid and spike proteins of the DNA bacteriophage phiX174. On average, an experimentally detectable compensatory mutation recovers about two-thirds of the fitness cost of the preceding deleterious mutation. Variation in fitness effect-sizes is only weakly associated with measures of the distance separating the deleterious and compensatory mutations in the amino acid sequence or the folded protein structure. However, there is a strong association of fitness effect-size with the correlation in the effects of the mutations on the biochemical properties of amino acids. A compensatory mutation has the largest effect-size, on average, when both the compensatory and deleterious mutations have radical effects on the overall biochemical make-up of the amino acids. By examining the relative contributions of specific biochemical properties to variation in fitness effect-size, we find that the area and charge of amino acids have a major influence, which suggests that the complexity of the amino acid phenotype is simplified by selection into a reduced number of phenotypic components.

Bacteriophage phi X 174↗