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Biomedical subjects

C D Hufford

Publications and source records attributed to C D Hufford.

At least 37 records · Page 2Linked to original sources

The metabolism of muzigadial by microorganisms.

1. A total of 114 microorganisms were evaluated for their ability to metabolize the antifungal drimane sesquiterpene, muzigadial. 2. Cryptococcus neoformans was found to convert muzigadial to one major metabolite, identified as a hemiacetal. 3. Streptomyces platensis produced three metabolites: the hemiacetal, its corresponding lactone, and the epoxide of the hemiacetal. 4. Streptomyces spectabilis produced the hemiacetal as well as the epoxy hemiacetal. 5. The proposed structures of all of the metabolites were based on comparisons of the spectroscopic data (1H- and 13C-n.m.r. spectra and mass spectra) between the metabolites and the parent compound. 6. Antimicrobial evaluation of the microbial metabolites indicate that metabolism decreases antifungal activity.

Antifungal Agents↗

Oxoaporphine alkaloids: conversion of lysicamine into liriodendronine and its 2-O-methyl ether, and antifungal activity.

Pschorr reaction of diazonium salt 7 in aqueous methanolic sulfuric acid afforded, besides lysicamine 2, the orange colored sulfate of oxodibenzopyrrocoline (8). The structure is fully supported by an X-ray analysis of its picrate salt. Selective ether cleavage of lysicamine (2) with 48% HBr afforded a hydrobromide of 9, and free betaine 9 on treatment with pyridine-water. Both compounds methylated on treatment with etherial diazomethane on nitrogen to give the known 2-O,N-dimethylliriodendronine (11). Liriodendronine (10) was obtained from lysicamine (2) on heating with pyridine HBr at 189 degrees C, and treatment with pyridine-water, as a dark violet betaine. Betaine 12 was obtained by heating 11.HCl to 200 degrees C. The quaternary salts of lysicamine, lysicamine methiodide (3) and lysicamine methosulfate (4) were comparable in anticandidal activity to liriodenine (1), but were not as active as liriodenine methiodide (13).

Alkaloids↗

Identification of the in vivo metabolites of the antimalarial arteether by thermospray high-performance liquid chromatography/mass spectrometry.

The thermospray mass spectra of arteether and 16 of its potential metabolites all showed strong [M + NH4]+ ions and with only a few exceptions these compounds also showed spectral peaks corresponding to [M + NH4 - HOR]+ and [M + H - HOR]+, where OR represents the alkoxy or hydroxy group at the 12-position. A method for quantifying the metabolites was developed in which the plasma was spiked with an internal standard (the propyl ether analog of arteether), extracted using a C-18 solid-phase cartridge, then subjected to thermospray high-performance liquid chromatographic/mass spectrometric analysis using selected ion monitoring and a C-18 reversed-phase analytical column. Following the intravenous administration of arteether (11.6 mg kg-1), the plasma was found to contain 12 metabolites of arteether in the 10-1000 ng ml-1 range 15 min post-injection, and within 60 min two of these metabolites attained higher concentrations than that of the parent compound, while several other of the metabolites attained concentrations similar to the parent compound. The pseudo-first-order half-life of arteether was found to be 10.0 +/- 0.6 min, while the apparent half-lives of most of the metabolites were in the 15-30 min range. Nine of these metabolites were identified by comparison to authentic reference standards and the structures of three remaining metabolites were tentatively assigned from their spectral and chromatographic properties. The metabolic pathways leading to these 12 metabolites was a rather complex, multiple-step process, but most of the metabolites arose from an enzymatic oxidation at one of three sites; 3 alpha, 9 alpha, or the CH2 of the side-chain. Conversion of the endoperoxide group to an cyclic ether was not a major pathway. The in vitro antimalarial activity of reference standards of several of the metabolites was determined and all of those tested were found to be active in the low nanogram per milliliter range.

Animals↗

Use of microorganisms for the study of drug metabolism: an update.

The use of microorganisms as tools in the study of drug metabolism appears to be gaining popularity. The selected examples cited here provide additional evidence of the utility of these systems as alternative in vitro models for studying drug metabolism in humans. However, as was noted earlier, this model, nor any other in vitro model system could ever replace animals in biomedical research. However, it is apparent from the numerous examples cited here and in the previous review of this area that microorganisms are a reliable, reproducible alternative to small animals as predictive models in drug metabolism studies. The continuing development of techniques that reduce the use of animals in research is encouraged and this procedure appears to be gaining more widespread acceptance for such use.

Animals↗

Anticholinergic activity of bornaprine and its metabolites in the isolated rat atrium.

These studies evaluated the antimuscarinic activity of bornaprine hydrochloride, a synthetic anticholinergic drug utilized in the treatment of parkinsonism. Several of its metabolites were also evaluated. Biological activity was assessed by the ability of the compounds to inhibit the negative inotropic response to carbachol in the isolated left atrium of the rat. Bornaprine showed a pA2 value (concentration required to reduce the agonist response by 50%) of 7.27 +/- 0.21. The exo and endo epimers were approximately equipotent in this regard. One metabolite, the 5-hydroxyl, showed similar activity to the parent compound, whereas 2 other hydroxylated metabolites showed much less effect.

Animals↗

Metabolism of antimalarial sesquiterpene lactones.

Metabolism of artemisinin derivatives, which are antimalarial sesquiterpenes, appeared to lead to the production of the more polar metabolites in general. Presence of the endoperoxide moiety in the A/B ring structure seems crucial for the expression of antimalarial activity of these compounds. Microbial models served as effective predictors for the mammalian metabolism of artemisinin derivatives as well as producing quantities of metabolites for reference standards and structure elucidation studies. Combination of 2D-NMR and Thermospray HPLC/MS techniques was very useful for the structure elucidation of metabolites.

Animals↗

Microbial metabolism studies of the antimalarial drug arteether.

Microbial metabolism studies of the antimalarial drug arteether (1) have shown that arteether is metabolized by a number of microorganisms. Large-scale fermentation with Aspergillus niger (ATCC 10549) and Nocardia corallina (ATCC 19070) have resulted in the isolation of four microbial metabolites which have been characterized using two-dimensional nuclear magnetic resonance (2D-NMR) techniques. These metabolites have been identified as "AEM1" (2), 3 alpha-hydroxydeoxyarteether (3), 3 alpha-hydroxydeoxydihydroartemisinin (4), and deoxydihydroartemisinin (5).

Antimalarials↗

Structure elucidation and thermospray high-performance liquid chromatography/mass spectroscopy (HPLC/MS) of the microbial and mammalian metabolites of the antimalarial arteether.

Microbial metabolism studies of the antimalarial drug arteether (1) have shown that arteether is metabolized to six new metabolites in addition to those previously reported (3). Large-scale fermentations with Cunninghamella elegans (ATCC 9245) and Streptomyces lavendulae (L-105) have resulted in the characterization of these metabolites primarily by two-dimensional nuclear magnetic resonance (2D-NMR) methods as 9 beta-hydroxyarteether (2), a ring rearrangement metabolite (3), 3 alpha-hydroxy-11-epi-deoxydihydroartemisinin (4), 9 alpha-hydroxyarteether (5), 2 alpha-hydroxyarteether (6), and 14-hydroxyarteether (7). Thermospray mass spectroscopy/high-performance liquid chromatographic analyses have shown that four of these metabolites (2, 5, 6, 7) are also present in rat liver microsome preparations.

Animals↗

3-Methoxysampangine, a novel antifungal copyrine alkaloid from Cleistopholis patens.

Further examination of the active ethanolic extract of the root bark of Cleistopholis patens by using bioassay-directed fractionation resulted in the isolation of a new alkaloid, 3-methoxysampangine (compound I), together with three known alkaloids, eupolauridine (compound II), liriodenine (compound III), and eupolauridine N-oxide (compound IV). The proposed structure of compound I was based on its physicochemical properties and spectral data. 3-Methoxysampangine exhibited significant antifungal activity against Candida albicans, Aspergillus fumigatus, and Cryptococcus neoformans. This is the first report of the isolation of liriodenine (compound III) from the root bark of C. patens.

Alkaloids↗

Thermospray mass spectroscopy/high performance liquid chromatographic identification of the metabolites formed from arteether using a rat liver microsome preparation.

Thermospray LC/MS methods with internal standardization were developed for the quantification of the antimalarial arteether and six of its metabolites at the 1-10 micrograms/ml level in liver microsome preparations without the use of solvent extraction. The thermospray mass spectra of arteether and most of its metabolites exhibited strong [M + NH4]+ and [M - OR]+ peaks arising from the molecular ion adduct and the loss of the alkoxy or hydroxy group of the side chain. In addition to the six metabolites for which authentic reference standards were available, three additional metabolites were detected. The major metabolites of arteether were found to be dihydroartemisinin, deoxydihydroartemisinin, 3-hydroxydeoxydihydroartemisinin, two isomers of hydroxyarteether, and 3-hydroxydeoxyarteether. Deoxyartheether was not found at significant concentrations in the microsome preparation.

Animals↗

Photooxidation products of primaquine. Structure, antimalarial activity and hemolytic effects.

Photooxidation of primaquine (1) and 5-hydroxyprimaquine (5) afforded a blue dye for which o-quinone structure 4 was elaborated. Similar oxidation of N-ethoxyacetylprimaquine (10) afforded o-quinone 11. Tissue schizontocidal activity of 4 and 11, and bisquinolylmethine 3 prepared earlier, showed that none of them had noteworthy antimalarial activity, but all three produced methemoglobin.

Animals↗

In vivo efficacy of antifungal oxoaporphine alkaloids in experimental disseminated candidiasis.

The efficacy of three antifungal oxoaporphine alkaloids, liriodenine, liriodenine methiodide, and oxoglaucine methiodide, was determined in a mouse model of disseminated candidiasis. Mice infected with a lethal dose of Candida albicans NIH B311 were administered varying doses of each drug intraperitoneally or intravenously 7 hr postinfection. Reductions in the number of colony-forming units (CFU) recovered per milligram of kidney tissue were observed in drug-treated animals compared to vehicle-treated control mice. Significance was determined by the Wilcoxon nonparametric rank sum test. Intravenous administration of both liriodenine and liriodenine methiodide resulted in a significant reduction in the number of recovered CFU, while there was no significant response to treatment with oxoglaucine methiodide.

Animals↗

Microbial metabolism of bornaprine, 3-(diethylamino)propyl 2-phenylbicyclo[2.2.1]heptane-2-carboxylate.

Metabolism studies of the anticholinergic drug, bornaprine [3-(diethylamino)propyl 2-phenylbicyclo[2.2.1]heptane-2-carboxylate, an epimeric mixture], in rats, dogs, and humans have been conducted previously, but the identities of the metabolites were not established. Using an in vitro microbial system to study the metabolism of bornaprine resulted in the isolation of four metabolites whose structures were rigorously established using spectroscopic techniques, especially 13C NMR. The four metabolites found were hydroxylated at C-5 or C-6 in the bicyclic ring.

Antiparkinson Agents↗

Novel sulfur-containing microbial metabolite of primaquine.

Microbial metabolism studies of the antimalarial drug primaquine, using Streptomyces roseochromogenus (ATCC 13400) have produced an N-acetylated metabolite and a methylene-linked dimeric product, both of which have been previously reported, and a novel sulfur-containing microbial metabolite. The structure of the metabolite as a sulfur-linked dimer was proposed on the basis of spectral and chemical data. The molecular formula C34H44N6O4S was established from field-desorption mass spectroscopy and analytical data. The 1H- and 13C-nuclear magnetic resonance spectral data firmly established that the novel metabolite was a symmetrically substituted dimer of primaquine N-acetate with a sulfur atom linking the two units at C-5. The metabolite has been shown to be a mixture of stereoisomers which can equilibrate in solution. This observation was confirmed by microbial synthesis of the metabolite from optically active primaquine.

Chemical Phenomena↗

Bromo-6-methoxy-8-aminoquinolines: preparation and 13C-NMR assignments.

Preparation of all possible monobromo-6-methoxy-8-aminoquinolines is reported. These materials provided an opportunity to assess the effect of bromine substitution on 13C-NMR chemical shift patterns. An explanation of the isomerization of 5-bromo-6-methoxy-8-acetamidoquinoline to 7-bromo-6-methoxy-8-aminoquinoline during hydrolysis is presented.

Aminoquinolines↗

Microbial transformation of primaquine by Candida tropicalis.

The microbial metabolism of primaquine, a 6-methoxy-8-aminoquinoline antimalarial agent, was investigated. The yeast Candida tropicalis was found to convert primaquine to the previously reported N-acetylated derivative. On continued incubation of C. tropicalis in the presence of the N-acetylated derivative, a minor dimeric metabolite was formed. The proposed structure of the metabolite was based primarily on the analysis of its spectroscopic properties (1H and 13C nuclear magnetic resonance spectra and field-desorption mass spectrum). The structure of the metabolite was proven by direct comparison with an authentic sample of the minor dimeric metabolite prepared by treatment of the N-acetylated derivative with formaldehyde in the presence of formic acid in methanol.

Acetylation↗

Production of a novel dimeric metabolite of primaquine by Streptomyces rimosus.

Primaquine, an 8-amino-6-methoxyquinoline antimalarial agent, was subjected to metabolic studies with microorganisms. Streptomyces rimosus converted primaquine to the previously reported N-acetyl derivative. Continued incubation of S. rimosus resulted in the formation of a minor dimeric metabolite. The structure of the minor dimeric metabolite was proposed based primarily on its spectral data (1H and 13C nuclear magnetic resonance spectra and mass spectrum). The proposed structure of the metabolite was confirmed by synthesis of the dimer by treatment of primaquine-N-acetate with potassium ferricyanide in a biphasic chloroform-aqueous sodium bicarbonate system with a phase-transfer catalyst. Since (+/-)-primaquine was used for both the microbial transformation and synthesis, a diastereomeric mixture of symmetrical dimers was formed in each case. The metabolite sample was identical to the synthetic sample, as shown by direct comparison (thin-layer chromatography, co-thin-layer chromatography, high-pressure liquid chromatography, co-high-pressure liquid chromatography, 1H nuclear magnetic resonance spectra, and mass spectrum).

Chromatography, High Pressure Liquid↗