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Biomedical subjects

J A Edgar

Publications and source records attributed to J A Edgar.

30 records · Page 2Linked to original sources

Isolation of toxic metabolites of Phomopsis leptostromiformis responsible for lupinosis.

Two metabolites of P. leptostromiformis (phomopsins A and B) have been isolated as a crystalline mixture from a culture of the fungus on lupin seed. The mixture has been shown to be capable of inducing lupinosis in sheep and in young rats. Key steps in the isolation were the transfer of the phomopsins from crude aqueous solution to tetrahydrofuran and chromatography on macroreticular polystyrene resin. The bioassays used in monitoring fractions were based on inhibition of cell cultures and the mitosis-arresting effect of the metabolites on liver cells in vivo.

Animals↗

Hepato- and pneumotoxicity of pyrrolizidine alkaloids and derivatives in relation to molecular structure.

62 pyrrolizidine alkaloids and derivatives have been screened for acute and chronic hepato- and pneumotoxicity by the single dose method previously described. This procedure is satisfactory for the compounds of medium to high hepatotoxicity but failed to detect toxicity in certain other compounds of known, low hepatotoxicity. New findings significant in relation to hepatotoxicity are as follows: (i) On a molar basis, diesters of heliotridine and retronecine are about 4 times as toxic as the respective mono-esters and heliotridine esters are 2-4 times as toxic as retronecine esters. (ii) Crotanecine esters are less toxic than retronecine esters, and the 6,9-diester madurensine, 2-4 times less toxic than the 7,9-diester anacrotine (the difference being ascribed to there being only one reactive alkylating centre in the toxic metabolite from madurensine). (iii) Hepatotoxicity was confirmed for 7-angelylheliotridine but not observed for 9-angelyheliotridine and 7- and 9-angelylretronecine. (iv) Other significant compounds failing to induce hepatotoxicity were 9-pivalyl- and 7,9-dipivalyheliotridine, the alpha- and beta-epoxides of monocrotaline, 7-angelyl-1-methylenepyrrolizidine and the methiodides of monocrotaline and senecionine. The following compounds are readily converted by rat liver microsomes in vitro into dehydroheliotridine (or dehydroretronecine): 7- and 9-angelyheliotridine, 7- and 9-angelylretronecine, 7,9-dipivalylheliotridine and otosenine. 7,9-Divalerylheliotridine, the alpha- and beta-epoxides of monocrotaline, and retusamine yield pyrrolic metabolites more slowly. The preparation and characterisation of several alkaloid derivatives are described. Chronic lung lesions were produced by most compounds which gave chronic liver lesions, although a higher dose was required in some instances. This requirement may sometimes mean that chronic lung lesions cannot be induced because of the intervention of acute or peracute deaths. Apart from this factor, structure activity requirements for pneumotoxicity are the same as for hepatotoxicity, consistent with their being both caused by the same toxic metabolites.

Acute Disease↗

The binding of dehydroheliotridine to DNA and the effect of it and other compounds on repair synthesis in main and satellite band DNA.

This study was aimed at elucidating the mechanisms of the preferential depression of satellite DNA synthesis by dehydroheliotridine (DHH). DHH was found to induce repair synthesis to the same extent in both main and satellite band DNA in cultured sheep lymphocytes. This was also the case with acridine orange, nitrogen mustard (HN2) and ethyl methane-sulphonate (EMS). Using analytical equilibrium ultracentrifugation no difference was found between the extents of in vitro binding of DHH by main and satellite band DNA. From these results it was concluded that the depression of the synthesis of satellite DNA could not be explained by either its preferential binding of DHH or by less effective repair mechanisms. Radiolabelled DHH when added to synchronized cultures of ovine kidney cells was found to be preferentially bound to the satellite DNA (one DHH molecule to 6000 nucleotides) compared with the main band DNA (one to 10 000). When 5-bromodeoxyuridine (BUdR) was added to the cultures no DHH label was found in the heavy, semiconservatively replicated DNA band. From these findings it is suggested that attack may occur during mitosis where all of the satellite DNA may be undergoing synthesis at the same time, thus explaining the increased amount of DHH bound to the satellite.

Animals↗