Physicochemical properties of N4 virus solutions. I. Viscosity--temperature behavior.
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Biomedical subjects
Publications and source records attributed to G Rialdi.
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1. The iodination of insulin was studied under various experimental conditions in aqueous media and in some organic solvents, by measuring separately the uptake of iodine by the four tyrosyl groups and the relative amounts of monoiodotyrosine and di-iodotyrosine that are formed. In aqueous media from pH1 to pH9 the iodination occurs predominantly on the tyrosyl groups of the A chain. Some organic solvents increase the iodine uptake of the B-chain tyrosyl groups. Their efficacy in promoting iodination of Tyr-B-16 and Tyr-B-26 is in the order: ethylene glycol and propylene glycol approximately methanol and ethanol>dioxan>8m-urea. 2. It is suggested that each of the four tyrosyl groups in insulin has a different environment: Tyr-A-14 is fully exposed to the solvent; Tyr-A-19 is sterically influenced by the environmental structure, possibly by the vicinity of a disulphide interchain bond; Tyr-B-16 is embedded into a non-polar area whose stability is virtually independent of the molecular conformation; Tyr-B-26 is probably in a situation similar to Tyr-B-16 with the difference that its non-polar environment depends on the preservation of the native structure.
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The heat produced by neutrophils was measured with a flow microcalorimeter. 02 consumption, ATP concentration, lactic acid production and 14CO2 production from oxidation of [1-(14)C]-glucose [6-(14)C]-glucose and [U-14C]-glucose were evaluated. Experiments were also carried out in the presence of the metabolic inhibitors, N-ethylmaleimide and NaF. Heat effects were correlated to the enthalpy change of aerobic and anaerobic glucose catabolism. Two different heat contributions related to two different nonmitochondrial 02 reduction pathways are present during the metabolic burst. Theoretical and experimental data indicate that the reducing power is derived from the catabolism of glucose both through the hexose monophosphate shunt and glycolysis.
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