Biogas Biocatalysis: Methanotrophic Bacterial Cultivation, Metabolite Profiling, and Bioconversion to Lactic Acid

Биокатализ биогаза: культивирование метанотрофных бактерий, профилирование метаболитов и биоконверсия в молочную кислоту
Calvin A. Henard, Tyler G. Franklin, Batool Youhenna, Sergey Y. But, Danny Alexander, Marina Kalyuzhnaya, Michael T. Guarnieri
2018-10-31

anaerobic digestion biogasbiogas-to-lactic acid conversionmetabolite profilingmethanotrophic bacteriapyruvate dehydrogenase mutant
Anaerobic digestion (AD) of waste substrates, and renewable biomass and crop residues offers a means to generate energy-rich biogas. However, at present, AD-derived biogas is primarily flared or used for combined heat and power (CHP), in part due to inefficient gas-to-liquid conversion technologies. Methanotrophic bacteria are capable of utilizing methane as a sole carbon and energy source, offering promising potential for biological gas-to-liquid conversion of AD-derived biogas. Here, we report cultivation of three phylogenetically diverse methanotrophic bacteria on biogas streams derived from AD of a series of energy crop residues. Strains maintained comparable central metabolic activity and displayed minimal growth inhibition when cultivated under batch configuration on AD biogas streams relative to pure methane, although metabolite analysis suggested biogas streams increase cellular oxidative stress. In contrast to batch cultivation, growth arrest was observed under continuous cultivation configuration, concurrent with increased biosynthesis and excretion of lactate. We examined the potential for enhanced lactate production via the employ of a pyruvate dehydrogenase mutant strain, ultimately achieving 0.027 g lactate/g DCW/h, the highest reported lactate specific productivity from biogas to date.
1
A pyruvate dehydrogenase mutant achieved 0.027 g lactate/g DCW/h, the highest reported lactate specific productivity from biogas.
2
Continuous cultivation caused growth arrest while simultaneously increasing lactate biosynthesis and excretion.
3
Metabolite profiles indicated that anaerobic-digestion biogas increased cellular oxidative stress in methanotrophic cultures.
4
Three phylogenetically diverse methanotrophic bacteria were successfully cultivated using anaerobic-digestion biogas derived from multiple energy-crop residues.
5
Under batch cultivation, biogas supported comparable central metabolic activity and caused minimal growth inhibition relative to pure methane.
6
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Methanotrophic bacteria cultivated on anaerobic-digestion-derived biogas

Growth, central metabolic activity, oxidative stress, and lactate biosynthesis and excretion during biogas-based cultivation, including enhanced lactate productivity

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2018-10-31
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Calvin A. Henard
Tyler G. Franklin
Batool Youhenna
Sergey Y. But
Danny Alexander
Marina Kalyuzhnaya
Michael T. Guarnieri
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