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Biomedical subjects

C Day

Publications and source records attributed to C Day.

At least 73 records · Page 4Linked to original sources

Engineered disulfide bond greatly increases specific activity of recombinant murine interferon-beta.

Unlike other species of interferon-beta (IFN-beta) mouse (Mu) IFN-beta has no naturally occurring intramolecular disulfide bond. When expressed in Escherichia coli, MuIFN-beta appears to exhibit instability and low activity. To increase its activity, we engineered a pair of cysteines into recombinant MuIFN-beta to test whether this change would improve its antiviral activity. In the absence of detailed structural data, the optimal placement of cysteines was determined by sequence comparison with other species of IFN-beta. While MuIFN-beta has only a single cysteine (at position 17), other species of IFN-beta have three cysteines, at positions 17, 31, and 141 (numbering based on consensus sequence), a disulfide bond being formed between the latter two residues. Thus, we introduced cysteines into MuIFN-beta at positions 29 and 136, which correspond to positions 31 and 141 of the consensus sequence. When the variant form of MuIFN-beta was expressed in bacteria and purified, we found that the additional cysteines greatly increased the antiviral activity. Further improvement was obtained by replacement of the Cys-17 with a serine. In this manner a specific activity approximately 15-fold that of the wild-type recombinant molecule was achieved.

Animals↗

The nucleotide sequences of wild-type coxsackievirus A9 strains imply that an RGD motif in VP1 is functionally significant.

We have shown previously that, compared to other enteroviruses, the coxsackievirus A9 (CAV-9) prototype strain, Griggs, contains a C-terminal extension to the capsid protein VP1 and that within this extension there is an RGD (arginine-glycine-aspartic acid) motif. To determine whether these features are found in other CAV-9 strains and therefore analyse whether they are likely to be functionally important, we have determined the nucleotide sequence of the appropriate region from five strains, isolated over a 25 year period. The results indicate that there is considerable diversity between the strains and there is little correlation between nucleotide sequence identity and date of isolation. All isolates exhibit the VP1 extension and although its amino acid sequence is otherwise variable, the RGD motif is common to all. This conservation of sequence, within a region which can otherwise vary, implies that the RGD sequence must be functionally significant. The VP1 extension shows similarity to sequences found in foot-and-mouth-disease virus strains and to part of the precursor of the cellular protein, human transforming growth factor beta, and the possible significance of these observations is discussed.

Amino Acid Sequence↗

Effect of metformin on glucose metabolism in the splanchnic bed.

1. Use of the antihyperglycaemic agent, metformin, is often associated with a small rise in circulating lactate. This study investigates the source of the lactate and examines the effect of metformin on glucose metabolism by the intestine and liver of rats. 2. Changes in plasma glucose and lactate were measured in the inferior vena cava (IVC), hepatic portal vein (HPV), hepatic vein (HV) and aorta (A) after intrajejunal administration of metformin (50 and 250 mg kg-1) without and with glucose (2 g kg-1). 3. Metformin 250 mg kg-1 reduced the hyperglycaemic response to a glucose challenge, associated with a greater reduction of glucose concentrations in the HPV (average decrease of 33% at 60 and 120 min) than at other sites. 4. Both doses of metformin increased lactate concentrations in the glucose-loaded state: the highest concentration (2.5 fold increase) was recorded in the HPV 60 min after administration of 250 mg kg-1 metformin, with a high lactate concentration persisting in the HV at 120 min. Metformin 250 mg kg-1 also increased lactate concentrations in the basal state, with highest concentrations (2 fold increase) in the HPV. 5. Two hours after intrajejunal administration of metformin, 50 mg kg-1, rings of tissue from the small intestine showed an average 22% decrease in glucose oxidation ([14C]-glucose conversion to 14CO2) and a 10% increase in lactate production. Since glucose metabolism in the gut is predominantly anaerobic, metformin caused an overall 9.5% increase of intestinal glucose utilization.6. Metformin, 10-6 and I0- mol 1', did not significantly alter glucose oxidation or lactate production by isolated hepatocytes, but a very high concentration of metformin (102 mol 1') increased lactate production by 60%.7. The results support the view that metformin increased intestinal glucose utilization and lactate production by the intestine. Under basal conditions there was net extraction of lactate by the liver but not after an enteral glucose load.

Animals↗