4.6 Article

Identifying Energy Extraction Optimisation Strategies of Actinobacillus succinogenes

Journal

CATALYSTS
Volume 11, Issue 8, Pages -

Publisher

MDPI
DOI: 10.3390/catal11081016

Keywords

Actinobacillus succinogenes; fermentation; energy; succinic acid

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A. succinogenes is known for utilizing different catabolic pathways and adjusting its metabolism according to external environment. The microbe optimizes its energy extraction pathways and exhibits an energy-efficient survival strategy. The organism may utilize mechanisms such as pyruvate overflow to regulate the production of acetic and formic acid, showing sensitivity to external concentrations.
A. succinogenes is well known for utilising various catabolic pathways. A multitude of batch fermentation studies confirm flux shifts in the catabolism as time proceeds. It has also been shown that continuous cultures exhibit flux variation as a function of dilution rate. This indicates a direct influence of the external environment on the proteome of the organism. In this work, ATP production efficiency was explored to evaluate the extent of bio-available energy on the production behaviour of A. succinogenes. It was found that the microbe successively utilised its most-to-least efficient energy extraction pathways, providing evidence of an energy optimisation survival strategy. Moreover, data from this study suggest a pyruvate overflow mechanism as a means to throttle acetic and formic acid production, indicating a scenario in which the external concentration of these acids play a role in the energy extraction capabilities of the organism. Data also indicates a fleeting regime where A. succinogenes utilises an oxidised environment to its advantage for ATP production. Here it is postulated that the energy gain and excretion cost of catabolites coupled to the changing environment is a likely mechanism responsible for the proteome alteration and its ensuing carbon flux variation. This offers valuable insights into the microbe's metabolic logic gates, providing a foundation to understand how to exploit the system.

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