A prospective randomized trial of autologous platelet-derived wound healing factors for treatment of chronic nonhealing wounds: a preliminary report.
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Biomedical subjects
Publications and source records attributed to R G Duff.
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Hematoporphyrin (HP), at concentrations as low as 0.5 microgram/ml, was found to inhibit the in vitro replication of influenza A and herpes simplex viruses, but not of several other viruses. The effect required exposure of the viruses or cells to visible light and was demonstrable when HP was administered shortly before virus inoculation or during the infection. In studies on the mechanism of action of HP, we found that in the presence of light, HP caused decomposition of GMP but not of various other nucleosides. It caused breakdown of yeast tRNA and inhibited polymerization of RNA and DNA by influenza virus and HSV-1-specific polymerases as well as some other polymerases isolated from bacterial and mammalian sources. Protective effects of HP and light were demonstrable in embryonated eggs infected with the WSN and PR8 strains of influenza A virus and in mice infected with the WSN strain. HSV-1-induced keratitis in rabbits and HSV-2-induced dermatitis in mice were not responsive to HP treatment.
Phosphonoacetic acid is a selective antiherpesvirus agent. More than 100 congeners of phosphonoacetic acid were evaluated in vitro and in vivo to understand structure-activity relationships in the hope of designing a superior analog. Results showed that the antiherpesvirus activity had highly specific structural requirements. Neither the carboxylic nor the phosphono groups could be replaced. The distance between these two groups is important. Increase of this distance caused complete loss of activity. However, if this distance was maintained, the addition of groups to the methylene carbon resulted in a reduction, but not loss, of activity. On the other hand, decrease of the carbon chain to formic acid did not deteriorate its antiherpes activity. All analogs tested had lower activity than the parent compound. However, some compounds with decreased activity in vitro appeared to have favorable pharmacological properties in vivo.
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Herpes simplex virus (HSV), which was partially resistant to the inhibitory effect of disodium phosphonoacetate (PAA), could be recovered following four virus passages in the presence of 100 microgram/ml PAA. Resistant strains were isolated from both HSV type 1 and HSV type 2. Virus resistance to PAA was not complete, and in most isolations a significant proportion of the virus stock remained susceptible to the drug. Resistance was shown to be heritable and persisted through virus passage and cloning experiments. PAA inhibited the replication of virus-specific DNA in sensitive strains of HSV but not in resistant strains of HSV. In vitro experiments directly demonstrated that PAA inhibited the activity of the virus-specific DNA polymerase 10 times more effectively in PAA-susceptible HSV than in PAA-resistant HSV. The treatment of HSV-infected mice with high levels of PAA did not induce the formation of resistant virus strains.
Phosphonoacetate has been found to inhibit specifically the replication of herpes-viruses. A partial inhibition of vaccinia virus represents the only activity outside the herpesvirus class. The drug was found to be a specific inhibitor of the virus-induced DNA polymerases. Normal cellular polymerases were relatively insensitive to phosphonoacetate, resulting in low cellular toxicity. Our working hypothesis is that the drug binds to the enzyme and that initiation of polynucleotide synthesis occurs in the presence of the drug and the required template, substrates, and cations. However, addition of deoxynucleosides to the elongating nascent chain is prevented by the enzyme-bound drug. Kinetic analyses indicated that phosphonoacetate did not interfere with the binding of DNA template to polymerase; and it did not compete with nucleotide substrate binding. The highly specific inhibitory effects of phosphonoacetate allowed for the selection of partially resistant strains of HSV. Resistance of virus to the drug in cell culture was directly correlated with the same relative resistance of the corresponding cell-free DNA polymerases. Phosphonoacetate was also effective therapeutically in herpesvirus skin and ocular infections in animals. Intraperitoneal administration of the drug reduced death and severity of disease in experimental encephalitis in hamsters. High specificity, low toxicity, and reproducible efficacy in lower animals suggested that phosphonoacetate could be a useful new antiviral drug. Sensitivity to phosphonoacetate also is a useful research tool as a genetic marker for herpesviruses.
The characteristics of infectious measles virus released from latently infected hamster embryo fibroblast cells are described. Low levels of virus were released spontaneously when the cultures were incubated at 37 C; this phenomenon was observed 19 passages after the cells had been exposed to the virus and has continued through cell passage 45. The virus yield could be significantly increased by cocultivation of the hamster cells with BSC-1 cells or incubation of the latently infected cells at 33.5 C rather than at 37 C. Measles virus released after cocultivation demonstrated increased cytopathology in cell culture and reduced temperature sensitivity when compared to the virus released at 33.5 C. After cell passage 45, there was an increase in spontaneous release of virus. However, the viruses recovered by cocultivation or temperature release after cell passage 45 were nearly identical. These observations suggest a possible mechanism for measles virus activation in cells latently infected with this virus.
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