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Biomedical subjects

M Mather

Publications and source records attributed to M Mather.

23 records · Page 2Linked to original sources

Studies of the flavin adenine dinucleotide binding region in Escherichia coli pyruvate oxidase.

Experiments have been performed to probe the flavin adenine dinucleotide (FAD) binding region in Escherichia coli pyruvate oxidase. This enzyme functions as a membrane-associated flavoprotein coupled to the aerobic E. coli respiratory chain. The FAD moiety is noncovalently bound to pyruvate oxidase and can be removed reversibly to form apopyruvate oxidase. The addition of free FAD to apoenzyme results in the stoichiometric re-formation of the active flavoprotein. Using this technique, synthetic analogs of FAD were substituted in the flavin binding site and used as structural probes. Spectral analysis indicates that the benzoquinoid forms of 8-mercapto-FAD and 6-hydroxy-FAD are stabilized in the enzyme-binding site. This is consistent with the fact that the native flavoprotein forms a red (anion) radical upon photoreduction. These data suggest that the isoalloxazine ring may be poised for reduction via position N-5 by a carbanionic intermediate. The alpha-carbanion of hydroxyethylthiamin pyrophosphate, formed following the decarboxylation of pyruvate, is a likely candidate. The highly resolved visible spectrum of the native flavoprotein suggests that the flavin is buried in a hydrophobic environment. Reactivity studies using 8-chloro-FAD-pyruvate oxidase and 2-thio-FAD-pyruvate oxidase suggest that the C-8 position and C-2 position of the isoalloxazine ring may not be accessible to the solvent. Spectral perturbations observed with 6-hydroxy-FAD-pyruvate oxidase indicate, however, that the isoalloxazine C-6 position may be located near the binding site for the cofactor thiamin pyrophosphate. Restrictions to the accessibility of the active site of the enzyme are suggested by the fact that sulfite does not form an adduct with the flavin in the native enzyme.

Binding Sites↗

Conformational studies of Escherichia coli pyruvate oxidase.

Pyruvate oxidase (pyruvate:oxygen oxidoreductase (phosphorylating), EC 1.2.3.3) is a peripheral membrane enzyme from Escherichia coli which utilizes the cofactors thiamin pyrophosphate (TPP) and flavin-adenine dinucleotide (FAD) to catalyze the decarboxylation of pyruvate to acetic acid and carbon dioxide. The specific activity of the oxidase is enhanced 25-fold when assayed in the presence of certain lipids and detergents. Previous studies have demonstrated that the affinity of pyruvate oxidase for phospholipids and detergents is substantially increased when the flavin is reduced. In this paper, several techniques are utilized to probe both the nature of the active site and the conformational changes in the protein which are concomitant with flavin reduction and with the binding of lipids to the enzyme. Analysis of the circular dichroism spectrum in the far ultraviolet region indicates that neither the binding of lipid activators to the oxidase nor reduction of the enzyme-bound flavin by pyruvate has a significant effect on the average secondary structure of the enzyme. High-resolution electron microscopy demonstrates that at low enzyme concentrations, i.e., assay conditions, incubation of the reduced flavoprotein in the presence of an amphiphilic activator does not alter the quaternary structure of pyruvate oxidase. The results indicate that the conformational changes in the protein due either to reduction of the flavin or to the binding of lipid activators are localized.

Circular Dichroism↗

Improved diagnostics: clinical evaluation of a color-coded, polymeric periodontal probe.

The objective of this study was to compare the accuracy, reproducibility and patient comfort of a newly designed, color-coded, polymeric periodontal probe to a traditional, color-coded metal probe. Twenty-four adult subjects with varying degrees of periodontal disease (from slight to severe) reported for two visits, one week apart. A randomization schedule for probe use was adopted over the two visits so that the gingival crevices in two quadrants were probed with the same probe (metal or polymeric) providing reproducibility information for each probe, while the other two quadrants were probed first with one probe then the other for comparison data yielding information on accuracy. A bleeding index was obtained using the same schedule. Clinical scoring was performed by the same examiner. After probing each quadrant, subjects rated discomfort using a visual analog scale (VAS). Results showed no significant difference in depth readings greater than 2 mm between the polymeric and metal probes (3.41 +/- 0.37 mm vs. 3.38 +/- 0.32 mm, p = 0.55). Significantly less discomfort (assessed by VAS) was recorded by patients after polymeric probe use (3.70 +/- 2.40 cm vs. 4.44 +/- 2.49 cm, p = 0.015). The bleeding index indicated significantly less bleeding with the polymeric probe (0.80 +/- 0.56 vs. 1.24 +/- 0.65, p = 0.0001). Both the polymeric and metal probes were found to produce highly reproducible results in all measures across visits.

Adult↗

Clinical evaluation of anticalculus dentifrices.

One hundred and eighty-seven patients participated in a six-month study to evaluate the calculus-inhibiting effect of a zinc citrate dentifrice compared to Crest Tartar Control and a placebo, Crest Regular. The findings demonstrate a statistically significant calculus prevention benefit over Crest Regular for both Crest Tartar Control and a 2% zinc citrate/silica product. Compared to the control, the zinc citrate product reduced calculus formation by 32.3%, and Crest Tartar Control reduced it by 21.4%. These findings also demonstrate no statistically significant difference in stain or soft tissue status among the three dentifrices. All products were found to be safe to oral tissues and acceptable for taste.

Citrates↗