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Genome-scale Modeling and Transcriptome Analysis of Leuconostoc Mesenteroides Unravel the Redox Governed Metabolic States in Obligate Heterofermentative Lactic Acid Bacteria

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Journal Sci Rep
Specialty Science
Date 2017 Nov 18
PMID 29147021
Citations 13
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Abstract

Obligate heterofermentative lactic acid bacteria (LAB) are well-known for their beneficial health effects in humans. To delineate the incompletely characterized metabolism that currently limits their exploitation, at systems-level, we developed a genome-scale metabolic model of the representative obligate heterofermenting LAB, Leuconostoc mesenteroides (iLME620). Constraint-based flux analysis was then used to simulate several qualitative and quantitative phenotypes of L. mesenteroides, thereby evaluating the model validity. With established predictive capabilities, we subsequently employed iLME620 to elucidate unique metabolic characteristics of L. mesenteroides, such as the limited ability to utilize amino acids as energy source, and to substantiate the role of malolactic fermentation (MLF) in the reduction of pH-homeostatic burden on FF-ATPase. We also reported new hypothesis on the MLF mechanism that could be explained via a substrate channelling-like phenomenon mainly influenced by intracellular redox state rather than the intermediary reactions. Model simulations further revealed possible proton-symporter dependent activity of the energy efficient glucose-phosphotransferase system in obligate heterofermentative LAB. Moreover, integrated transcriptomic analysis allowed us to hypothesize transcriptional regulatory bias affecting the intracellular redox state. The insights gained here about the low ATP-yielding metabolism of L. mesenteroides, dominantly controlled by the cellular redox state, could potentially aid strain design for probiotic and cell factory applications.

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References
1.
BLIGH E, Dyer W . A rapid method of total lipid extraction and purification. Can J Biochem Physiol. 1959; 37(8):911-7. DOI: 10.1139/o59-099. View

2.
Kullisaar T, Songisepp E, Aunapuu M, Kilk K, Arend A, Mikelsaar M . Complete glutathione system in probiotic Lactobacillus fermentum ME-3. Prikl Biokhim Mikrobiol. 2010; 46(5):527-31. View

3.
Pastink M, Teusink B, Hols P, Visser S, de Vos W, Hugenholtz J . Genome-scale model of Streptococcus thermophilus LMG18311 for metabolic comparison of lactic acid bacteria. Appl Environ Microbiol. 2009; 75(11):3627-33. PMC: 2687286. DOI: 10.1128/AEM.00138-09. View

4.
Teusink B, Wiersma A, Molenaar D, Francke C, de Vos W, Siezen R . Analysis of growth of Lactobacillus plantarum WCFS1 on a complex medium using a genome-scale metabolic model. J Biol Chem. 2006; 281(52):40041-8. DOI: 10.1074/jbc.M606263200. View

5.
Matsuzaki C, Kamishima K, Matsumoto K, Koga H, Katayama T, Yamamoto K . Immunomodulating activity of exopolysaccharide-producing Leuconostoc mesenteroides strain NTM048 from green peas. J Appl Microbiol. 2013; 116(4):980-9. DOI: 10.1111/jam.12411. View