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Bamford, C. G. G.

Publications and source records attributed to Bamford, C. G. G..

3 recordsLinked to original sources

Strange Stable Replicators Generated From Mumps Virus cDNA Clones

In reverse genetic experiments we have isolated recombinant mumps viruses (rMuV) based on a recent clinical isolate that carry large numbers of mutations clustered in small parts of their genome and which are not caused by biased hyper-mutation. In two separate experiments we obtained such rMuV: one virus had 19 mutations in the V/P region of the genome; the other, which also contained an extra transcription unit encoding green fluorescent protein (EGFP), had 32 mutations in the N gene. These specific constellations of mutations have not been observed in naturally occurring MuV isolates. The vast majority of the mutations (48/51) are synonymous.\n\nOn passage in Vero cells and human B-LCL cells, a B lymphocyte-like cell Line, these mutations appear stable as no reversal occurs to the original consensus sequences, though mutations in other genes occur and change in frequency during passage. Defective Interfering RNAs accumulate in passage in Vero cells but not in B-LCL cells. Interestingly, in all passaged samples the level of variation in the EGFP gene is the same as in the viral genes, though it is unlikely that this gene is under any functionality constraint. The stability in repeated high multiplicity passage indicates that the constellation of mutations is placing the virus on a fitness peak from which it cannot escape. What mechanism gave rise to these mutant viruses and their stability remain open questions of interest to a wider field than mumps reverse genetics alone.

microbiology

Interferon lambda 4 impacts broadly on hepatitis C virus diversity.

Type III interferons (IFN-{lambda}) are part of the innate immune response to hepatitis C virus (HCV) infection however the specific role of IFN-{lambda}4 and the nature of the viral adaption to this pressure have not been defined. Here we use paired genome-wide human and viral genetic data in 485 patients infected with HCV genotype 3a to explore the role of IFN-{lambda}4 on HCV evolution during chronic infection. We show that genetic variations within the host IFNL4 locus have a broad and systematic impact on HCV amino acid diversity. We also demonstrate that this impact is larger in patients producing a more active form of IFN-{lambda}4 protein compared to the less active form. A similar observation was noted for viral load. We conclude that IFN-{lambda}4 protein is a likely causal agent driving widespread HCV amino acid changes and associated with viral load and possibly other clinical and biological outcomes of HCV infection.

genomics

A Polymorphic Residue That Attenuates Interferon Lambda 4 Activity in Hominid Lineages

As antimicrobial signalling molecules, type III or lambda interferons (IFN{lambda}s) are critical for defence against infection by diverse pathogens. Counter-intuitively, expression of one member of the family, IFN{lambda}4, is associated with decreased clearance of hepatitis C virus (HCV) in the human population; by contrast, a natural in-frame nucleotide insertion that abrogates IFN{lambda}4 production improves viral clearance. To further understand how genetic variation between and within species affects IFN{lambda}4 function, we screened a panel of extant coding variants of human IFN{lambda}4 and identified three variants that substantially affect antiviral activity (P70S, L79F and K154E). The most notable variant was K154E, which enhanced in vitro activity in a range of antiviral and interferon stimulated gene (ISG) assays. This more active E154 variant of IFN{lambda}4 was found only in African Congo rainforest Pygmy hunter-gatherers. Remarkably, E154 was highly conserved as the ancestral residue in mammalian IFN{lambda}4s yet K154 is the dominant variant throughout evolution of the hominid genus Homo. Compared to chimpanzee IFN{lambda}4, the human orthologue had reduced activity due to amino acid substitution of glutamic acid with lysine at position 154. Meta-analysis of published gene expression data from humans and chimpanzees showed that this difference in activity between K154 and E154 in IFN{lambda}4 is consistent with differences in antiviral gene expression in vivo during HCV infection. Mechanistically, our data suggest that human-specific K154 likely affects IFN{lambda}4 activity by reducing secretion and potency. We postulate that evolution of an IFN{lambda}4 with attenuated activity in humans (K154) likely contributes to distinct host-specific responses to and outcomes of infection, such as HCV.

immunology