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R D Sagers

Publications and source records attributed to R D Sagers.

20 records · Page 2Linked to original sources

Acetate formation in Clostridium acidi-urici: acetokinase.

Sagers, Richard D. (University of Illinois, Urbana), Moshe Benziman, and I. C. Gunsalus. Acetate formation in Clostridium acidiurici: Acetokinase. J. Bacteriol. 82:233-238. 1961.-To define the energy-yielding reaction(s) during fermentation of purines by Clostridium acidi-urici, an eightfold purified acetokinase was obtained by protamine and ammonium sulfate fractionation of crude extracts. Enzyme activity was determined by measuring the disappearance of acetyl phosphate using adenosine diphosphate (ADP) as phosphate acceptor or by following the generation of acetyl phosphate from adenosine triphosphate (ATP) + acetate. The optimal pH for the reaction was observed to be 7.4. K(m) values for acetyl phosphate, ADP, and magnesium ions were shown to be 2.1 x 10(-3)m, 3.2 x 10(-3)m, and 2.4 x 10(-3)m, respectively. Acetyl phosphate disappearance is dependent upon ADP and is stoichiometric with addition of the latter. The acetokinase reaction probably represents the major energy-yielding reaction during purine fermentation by this organism. A pathway for acetate generation from formiminoglycine is proposed, and evidence for a number of enzyme activities intermediate between formiminoglycine degradation and acetate formation is given. The enzyme activities demonstrated are compatible with the over-all purine fermentation rate by whole cells.

Acetate Kinase↗

The effect of ultrasonic frequency upon enhanced killing of P. aeruginosa biofilms.

It is widely recognized that the bacteria sequestered in a biofilm on a medical implant are much more resistant to antibiotics than their planktonic counterparts. Recent studies have shown that application of antibiotic along with low power ultrasound significantly increases the killing of planktonic bacteria by the antibiotic. Herein is reported a similar application of antibiotic and ultrasound to sessile bacteria in biofilms of Pseudomonas aeruginosa on a polyethylene substrate. Biofilm viability was measured after exposure to 12 micrograms/ml gentamicin sulfate and 10 mW/cm2 ultrasound at frequencies of 70 kHz, 500 kHz, 2.25 MHz, and 10 MHz. The results indicate that a significantly greater fraction of the bacteria was killed by gentamicin when they were subjected to ultrasound. However, ultrasound by itself did not have any deleterious effect on the biofilm viability. In addition, lower-frequency insonation is significantly more effective than higher frequency in reducing bacterial viability within the biofilm. The possible mechanisms of synergistic action are discussed.

Anti-Bacterial Agents↗