1996Journal of Basic MicrobiologyRequires access

Low energy gain from formate oxidation during bacterial growth on 2,4‐dichlorophenoxyacetic acid

Roland Müller, W. Babel

Open publisher page 1 citations

Abstract

Abstract Alcaligenes eutrophus JMP 134 was chemostatically grown on 2,4‐dichlorophenoxyacetic acid (2,4‐D) at a dilution rate of 0.06 h−1; formate was fed as an auxiliary energy source. The simultaneous utilization of both components resulted in an increase in growth yield. As an example, this figure increased from 0.18 g dry mass/g 2,4‐D to 0.25 g dry mass/g 2,4‐D during growth on 1 g/l 2,4‐D plus 3 g/l sodium formate. The increase was correlated to energy generated from formate oxidation. Accordingly, a P/O‐quotient of 1 was derived for the energy transduction of NADH obtained from formate oxidation as it was for the overall efficiency during growth on 2,4‐D itself. This low energy yield was attributed to uncoupling exerted by 2,4‐D. The theoretical maximum yield coefficient of 0.69 g/g could not be reached due to the limiting activity of formate dehydrogenase in the conversion of the required quantities of formate.

About this research paper

What this paper is about

Abstract Alcaligenes eutrophus JMP 134 was chemostatically grown on 2,4‐dichlorophenoxyacetic acid (2,4‐D) at a dilution rate of 0.06 h−1; formate was fed as an auxiliary energy source. The simultaneous utilization of both components resulted in an increase in growth yield. As an example, this figure increased from 0.18 g dry mass/g 2,4‐D to 0.25 g dry mass/g 2,4‐D during growth on 1 g/l 2,4‐D plus 3 g/l sodium formate. The increase was correlated to energy generated from formate oxidation. Accordingly, a P/O‐quotient of 1 was derived for the energy transduction of NADH obtained from formate oxidation as it was for the overall efficiency during growth on 2,4‐D itself. This low energy yield was attributed to uncoupling exerted by 2,4‐D. The theoretical maximum yield coefficient of 0.69 g/g could not be reached due to the limiting activity of formate dehydrogenase in the conversion of the required quantities of formate.

Why it matters

OpenAlex reports 1 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract Alcaligenes eutrophus JMP 134 was chemostatically grown on 2,4‐dichlorophenoxyacetic acid (2,4‐D) at a dilution rate of 0.06 h−1; formate was fed as an auxiliary energy source. The simultaneous utilization of both components resulted in an increase in growth yield. As an example, this figure increased from 0.18 g dry mass/g 2,4‐D to 0.25 g dry mass/g 2,4‐D during growth on 1 g/l 2,4‐D plus 3 g/l sodium formate. The increase was correlated to energy generated from formate oxidation. Accordingly, a P/O‐quotient of 1 was derived for the energy transduction of NADH obtained from formate oxidation as it was for the overall efficiency during growth on 2,4‐D itself. This low energy yield was attributed to uncoupling exerted by 2,4‐D. The theoretical maximum yield coefficient of 0.69 g/g could not be reached due to the limiting activity of formate dehydrogenase in the conversion of the required quantities of formate.

Key concepts: Formate, Sodium formate, Formate dehydrogenase, Yield (engineering), Chemistry, 2,4-Dichlorophenoxyacetic acid, Nuclear chemistry, Dilution

Related papers

Back to paper searchBrowse research topicsOriginal source
Low energy gain from formate oxidation during bacterial growth on 2,4‐dichlorophenoxyacetic acid — Research Paper | ScholarLens