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Spyros A Svoronos

Publications and source records attributed to Spyros A Svoronos.

3 recordsLinked to original sources

Effect of carbon substrate on electron acceptor diauxic lag and anoxic maximum specific growth rate in species with and without periplasmic enzyme.

The effect of oxidation state of carbon substrate on the diauxic lag of facultative anaerobic denitrifying bacteria growing aerobically upon switching to anoxic growth was studied. Also studied was the effect on the anoxic maximum specific growth rate. Two pure bacteria cultures were used, Paracoccus pantotrophus, denitrifying bacteria containing a periplasmic nitrate reductase (Nap), and Pseudomonas denitrificans, denitrifying bacteria lacking the periplasmic nitrate reductase. The anoxic maximum specific growth rate of both cultures following a period of aerobic growth with identical dilution up to steady-state was indeed affected by the oxidation state of the carbon, with the most oxidized substrate yielding the highest anoxic maximum specific growth rate. The diauxic lags for Paracoccus pantotrophus were considerably shorter than those for Pseudomonas denitrificans, something expected due to the presence of Nap, an enzyme not affected by aerobiosis. Since the activity of Nap in Paracoccus pantotrophus under aerobic conditions has been shown to increase with the extent of reduction of the carbon substrate, it was also expected that the diauxic lag length for these bacteria would decrease as the reduction state of the carbon substrate increased. This could not be demonstrated, as no significant lags were observed for this species. Pseudomonas denitrificans exhibited a shorter diauxic lag with the more oxidized carbon source.

Aerobiosis↗

Structured model for denitrifier diauxic growth.

We present a model for diauxic growth of denitrifying bacteria in which nitrate reductase synthesis kinetics dominate the overall growth kinetics. The model is based on the assumption of the existence of a nitrate respiration operon, thereby linking the rate of nitrate uptake to the activity of nitrate reductase. We show that this approach can model diauxic growth of Pseudomonas denitrificans by conducting experiments in which nitrate reductase activity was measured during both lag and ensuing exponential growth phases. We consistently observed the pattern of low nitrate reductase enzyme activity during the lag phase, increasing before the onset of growth. By fitting model parameters we were able to successfully match experimental data for growth, nitrate uptake, and enzyme activity level.

Models, Biological↗

A simple model for diauxic growth of denitrifying bacteria.

A simple model has been formulated to simulate diauxic growth of denitrifying bacteria. It is capable of fitting the experimental results of batch growth experiments with Pseudomonas denitrificans under various conditions. It successfully predicts the observed lags when a pure culture of this bacterium switches from oxygen to nitrate as terminal electron acceptor. The model includes the effect of carbon substrate limitation and length of aerobic phase and does not run into problems when switching from anoxic to aerobic conditions, unlike prior models of diauxic growth.

Aerobiosis↗