Back to results

University of South Wales

Optimising the Wider Energy Metabolome of Microbes Using Targeted UHPLC-MS/MS Present in Bio-Electrochemical Systems for Carbon Dioxide Conversion to Platform Chemicals

Abstract

dc:description.abstract

This thesis addresses a major analytical gap in microbial biotechnology by developing and validating a rapid, sensitive UHPLC-MS/MS platform for simultaneous quantification of the key intracellular energy metabolites that govern redox balance, energy charge, and carbon flux in industrial microorganisms. The method was designed to improve and optimise quenching, extraction, and analysis of yeast and bacterial cultures, enabling robust measurement of NAD+, NADH, NADP+, NADPH, FAD, AMP, ADP, and ATP in a single analytical run using Zwitterionic Hydrophilic Interaction Chromatography (Z-HILIC) coupled to tandem mass spectrometry. The resulting workflow offers high sensitivity, strong reproducibility, and low limits of detection and quantification, making it suitable for the analysis of low-biomass microbial samples and dynamic physiological transitions.<br/><br/>The importance of this method was demonstrated through its application to Saccharomyces cerevisiae and Escherichia coli, where it was used to investigate how environmental conditions and targeted metabolite supplementation influence intracellular redox state and platform chemical production. Application of the method to S. cerevisiae and E. coli showed that timed environmental and nutritional interventions can significantly reshape redox balance and energy status, leading to improved ethanol and lactate production without genetic modification. <br/><br/>In S. cerevisiae, aerobic and anaerobic growth conditions, oxygen-shift experiments, and AMP supplementation were used to examine their effects on ethanol production, showing that timed AMP addition at the onset of stationary phase substantially increased ethanol output without genetic modification. In E. coli, aerobic and anaerobic conditions, oxygen-shift experiments, and dextrose spiking were used to assess lactate formation, demonstrating that timed dextrose addition during oxygen transition increased lactic acid production.<br/><br/>Overall, this work shows that quantitative energy metabolomics can do more than describe microbial physiology, it can identify actionable process interventions that improve product formation in a non-genetic manner. The thesis therefore provides both a validated analytical platform and new biological insight into how energy and redox metabolism can be manipulated to enhance industrial bioprocesses. These findings are relevant to biorefinery development, where improving carbon conversion efficiency, reducing by-product formation, and maximising platform chemical yields are central goals. The approach also has broader potential in microbial biotechnology, biofuel production, and bio-electrochemical systems where intracellular cofactor dynamics influence product formation.

Degree

thesis:*
Name dc:type.qualificationname
Doctoral Thesis
Level dc:type.qualificationlevel
Student thesis
Year dc:date.issued
2026

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Oliver, Jordan
Advisors dc:contributor.advisor
  • Dinsdale, Richard
  • Davies, Antony

Rights

Language dc:language
eng

Identifiers

dc:identifier.*
Identifier
oai:pure.atira.dk:studenttheses/77786460-92a5-41bb-8c21-d54efcd6ed6c
OAI identifier oai:identifier
oai:pure.atira.dk:studenttheses/77786460-92a5-41bb-8c21-d54efcd6ed6c

Chain of custody

source
Harvested from
University of South Wales
Base URL
pure.southwales.ac.uk/ws/oai
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
citation

Oliver, Jordan. Optimising the Wider Energy Metabolome of Microbes Using Targeted UHPLC-MS/MS Present in Bio-Electrochemical Systems for Carbon Dioxide Conversion to Platform Chemicals. Student thesis thesis, 2026. https://pure.southwales.ac.uk/en/studentTheses/77786460-92a5-41bb-8c21-d54efcd6ed6c