Metabolic Profiling and Cold-Starvation Stress Response of Oxygen-Tolerant <i>Lactobacillus gasseri</i> Strains Cultured in Batch Bioreactor

Phenotypic and genotypic evidence indicates that many LAB strains can grow in presence of oxygen and can shift from fermentative to aerobic and/or respiratory metabolism. The aerobic and respiratory growth of several LAB species have been studied, allowing the selection of strains showing improved b...

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Main Authors: Diamante Maresca, Francesca De Filippis, Alessandro Robertiello, Gianluigi Mauriello
Format: Article
Language:English
Published: MDPI AG 2019-07-01
Series:Microorganisms
Subjects:
Online Access:https://www.mdpi.com/2076-2607/7/7/200
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spelling doaj-a562802b5afe4ccea96e3c6c1476dc952020-11-24T22:11:20ZengMDPI AGMicroorganisms2076-26072019-07-017720010.3390/microorganisms7070200microorganisms7070200Metabolic Profiling and Cold-Starvation Stress Response of Oxygen-Tolerant <i>Lactobacillus gasseri</i> Strains Cultured in Batch BioreactorDiamante Maresca0Francesca De Filippis1Alessandro Robertiello2Gianluigi Mauriello3Department of Agricultural Sciences, University of Naples Federico II, 80055 Portici, NA, ItalyDepartment of Agricultural Sciences, University of Naples Federico II, 80055 Portici, NA, ItalyDepartment of Agricultural Sciences, University of Naples Federico II, 80055 Portici, NA, ItalyDepartment of Agricultural Sciences, University of Naples Federico II, 80055 Portici, NA, ItalyPhenotypic and genotypic evidence indicates that many LAB strains can grow in presence of oxygen and can shift from fermentative to aerobic and/or respiratory metabolism. The aerobic and respiratory growth of several LAB species have been studied, allowing the selection of strains showing improved biomass production, long-term survival, and resistance under oxygen and stress conditions. The aim of this work was to observe the adaptation of two <i>Lactobacillus gasseri</i> strains, described in a previous work, to aerobic (air injection) and respiratory (air injection plus hemin and menaquionone) conditions obtained in a batch bioreactor. One strain showed the higher biomass production and oxygen consumption as well as the lower acidification in respiratory condition. Instead, the other one grew better in aerobic condition, even though the higher resistance to cold-starvation stress was registered in respiratory condition. In silico analysis revealed notable differences between AL3 and AL5 genomes and that of the type strain. This work contributes to understanding the adaptation response of lactobacilli to aerobic and respiratory metabolism. We demonstrated that the supposed activation of respiratory metabolism may provide several modifications to cell physiology. These features may be relevant in some technological and health-promoting applications, including starter and probiotic formulations.https://www.mdpi.com/2076-2607/7/7/200aerobic and respiratory metabolismlactic acid bacteriacold-starvation stresstricarboxylic acid cyclein silico analysis
collection DOAJ
language English
format Article
sources DOAJ
author Diamante Maresca
Francesca De Filippis
Alessandro Robertiello
Gianluigi Mauriello
spellingShingle Diamante Maresca
Francesca De Filippis
Alessandro Robertiello
Gianluigi Mauriello
Metabolic Profiling and Cold-Starvation Stress Response of Oxygen-Tolerant <i>Lactobacillus gasseri</i> Strains Cultured in Batch Bioreactor
Microorganisms
aerobic and respiratory metabolism
lactic acid bacteria
cold-starvation stress
tricarboxylic acid cycle
in silico analysis
author_facet Diamante Maresca
Francesca De Filippis
Alessandro Robertiello
Gianluigi Mauriello
author_sort Diamante Maresca
title Metabolic Profiling and Cold-Starvation Stress Response of Oxygen-Tolerant <i>Lactobacillus gasseri</i> Strains Cultured in Batch Bioreactor
title_short Metabolic Profiling and Cold-Starvation Stress Response of Oxygen-Tolerant <i>Lactobacillus gasseri</i> Strains Cultured in Batch Bioreactor
title_full Metabolic Profiling and Cold-Starvation Stress Response of Oxygen-Tolerant <i>Lactobacillus gasseri</i> Strains Cultured in Batch Bioreactor
title_fullStr Metabolic Profiling and Cold-Starvation Stress Response of Oxygen-Tolerant <i>Lactobacillus gasseri</i> Strains Cultured in Batch Bioreactor
title_full_unstemmed Metabolic Profiling and Cold-Starvation Stress Response of Oxygen-Tolerant <i>Lactobacillus gasseri</i> Strains Cultured in Batch Bioreactor
title_sort metabolic profiling and cold-starvation stress response of oxygen-tolerant <i>lactobacillus gasseri</i> strains cultured in batch bioreactor
publisher MDPI AG
series Microorganisms
issn 2076-2607
publishDate 2019-07-01
description Phenotypic and genotypic evidence indicates that many LAB strains can grow in presence of oxygen and can shift from fermentative to aerobic and/or respiratory metabolism. The aerobic and respiratory growth of several LAB species have been studied, allowing the selection of strains showing improved biomass production, long-term survival, and resistance under oxygen and stress conditions. The aim of this work was to observe the adaptation of two <i>Lactobacillus gasseri</i> strains, described in a previous work, to aerobic (air injection) and respiratory (air injection plus hemin and menaquionone) conditions obtained in a batch bioreactor. One strain showed the higher biomass production and oxygen consumption as well as the lower acidification in respiratory condition. Instead, the other one grew better in aerobic condition, even though the higher resistance to cold-starvation stress was registered in respiratory condition. In silico analysis revealed notable differences between AL3 and AL5 genomes and that of the type strain. This work contributes to understanding the adaptation response of lactobacilli to aerobic and respiratory metabolism. We demonstrated that the supposed activation of respiratory metabolism may provide several modifications to cell physiology. These features may be relevant in some technological and health-promoting applications, including starter and probiotic formulations.
topic aerobic and respiratory metabolism
lactic acid bacteria
cold-starvation stress
tricarboxylic acid cycle
in silico analysis
url https://www.mdpi.com/2076-2607/7/7/200
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