PubMed Health⌕ Search

Biomedical subjects

Richard Sallie

Publications and source records attributed to Richard Sallie.

6 recordsLinked to original sources

Replicative homeostasis II: influence of polymerase fidelity on RNA virus quasispecies biology: implications for immune recognition, viral autoimmunity and other "virus receptor" diseases.

Much of the worlds' population is in active or imminent danger from established infectious pathogens, while sporadic and pandemic infections by these and emerging agents threaten everyone. RNA polymerases (RNApol) generate enormous genetic and consequent antigenic heterogeneity permitting both viruses and cellular pathogens to evade host defences. Thus, RNApol causes more morbidity and premature mortality than any other molecule. The extraordinary genetic heterogeneity defining viral quasispecies results from RNApol infidelity causing rapid cumulative genomic RNA mutation a process that, if uncontrolled, would cause catastrophic loss of sequence integrity and inexorable quasispecies extinction. Selective replication and replicative homeostasis, an epicyclical regulatory mechanism dynamically linking RNApol fidelity and processivity with quasispecies phenotypic diversity, modulating polymerase fidelity and, hence, controlling quasispecies behaviour, prevents this happening and also mediates immune escape. Perhaps more importantly, ineluctable generation of broad phenotypic diversity after viral RNA is translated to protein quasispecies suggests a mechanism of disease that specifically targets, and functionally disrupts, the host cell surface molecules--including hormone, lipid, cell signalling or neurotransmitter receptors--that viruses co-opt for cell entry. This mechanism--"Viral Receptor Disease (VRD)"--may explain so-called "viral autoimmunity", some classical autoimmune disorders and other diseases, including type II diabetes mellitus, and some forms of obesity. Viral receptor disease is a unifying hypothesis that may also explain some diseases with well-established, but multi-factorial and apparently unrelated aetiologies--like coronary artery and other vascular diseases--in addition to diseases like schizophrenia that are poorly understood and lack plausible, coherent, pathogenic explanations.

Autoimmunity↗

Replicative homeostasis: a fundamental mechanism mediating selective viral replication and escape mutation.

Hepatitis C (HCV), hepatitis B (HBV), the human immunodeficiency viruses (HIV), and other viruses that replicate via RNA intermediaries, cause an enormous burden of disease and premature death worldwide. These viruses circulate within infected hosts as vast populations of closely related, but genetically diverse, molecules known as "quasispecies". The mechanism(s) by which this extreme genetic and antigenic diversity is stably maintained are unclear, but are fundamental to understanding viral persistence and pathobiology. The persistence of HCV, an RNA virus, is especially problematic and HCV stability, maintained despite rapid genomic mutation, is highly paradoxical. This paper presents the hypothesis, and evidence, that viruses capable of persistent infection autoregulate replication and the likely mechanism mediating autoregulation - Replicative Homeostasis - is described. Replicative homeostasis causes formation of stable, but highly reactive, equilibria that drive quasispecies expansion and generates escape mutation. Replicative homeostasis explains both viral kinetics and the enigma of RNA quasispecies stability and provides a rational, mechanistic basis for all observed viral behaviours and host responses. More importantly, this paradigm has specific therapeutic implication and defines, precisely, new approaches to antiviral therapy. Replicative homeostasis may also modulate cellular gene expression.

Antigens, Viral↗

The paradox of HIV nef function: resolution of the contradictions.

The function of nef, an accessory protein of HIV, has been highly controversial. Careful studies by respected investigators have ascribed diametrically opposed functions to nef with some groups claiming nef increases replication and viral infectivity while others argue nef inhibits replication and reduces infectivity. Replicative homeostasis resolves this superficially irreconcilable paradox, and indicates both positions could be true, if the exact function of nef is dependent on whether the nef tested is wild-type or variant with respect to the polymerase. The basis of resolution of the enigma posed by nef function is fundamental to and understanding of viral pathobiology.

Base Sequence↗

Transcriptional homeostasis: a mechanism of protein quality control.

Sickle cell anaemia confirms that minor mutations in protein sequence can have catastrophic effects. However, RNA transcription depends on polymerases that have low fidelity and introduce errors at a rate of 10(-5) substitutions/base synthesised. For many large proteins translation of these errors could result in significant loss of function, while for others (for example, cell surface signalling proteins) variability of protein expression could be advantageous. This paper outlines a mechanism that enables proteins to modulate error incorporation (variability) into RNAs sysnthesised by RNA polymerase--transcriptional homeostasis--thereby modulating, and error correcting, their own sysnthesis. Transcriptional homeostasis is a fundamental regulatory mechanism relevant to control of gene expression.

DNA-Directed RNA Polymerases↗

Replicative homeostasis: a mechanism of viral persistence.

Acute viral infection is characterised by high-level replication before prompt decline of viraemia and, commonly, viral clearance. This kinetic pattern is generally held to be due to immune control. However, infection with some viruses, notably hepatitis C (HCV), hepatitis B (HBV) and the human immunodeficiency virus (HIV), often results in chronic stable low-level spontaneously fluctuating viraemia, kinetics that are difficult to rationalize on this basis. The persistence of HCV, an RNA virus, is especially problematic and its stability, occurring despite rapid, genomic mutation is highly paradoxical. This paper outlines the hypothesis, and evidence, that viruses autoregulate replication and mutation and describes a mechanism--replicative homeostasis--explaining viral stability. Replicative homeostasis results in stable, but reactive, replicative equilibria that drive quasispecies expansion and immune escape and explain all observed viral behaviours and host responses. This paradigm implies new approaches to antiviral therapy and is broadly relevant to modulation of gene expression.

DNA-Directed RNA Polymerases↗