Development of a workflow for the selection, identification and optimization of lactic acid bacteria with high γ-aminobutyric acid production

被引:7
|
作者
Rehman, Ateequr [1 ]
Di Benedetto, Giulio [2 ]
Bird, Julia K. [3 ]
Dabene, Valentina [2 ]
Vadakumchery, Lisa [4 ]
May, Ali [5 ]
Schyns, Ghislain [1 ]
Sybesma, Wilbert [1 ,6 ]
Mak, Tim N. [1 ]
机构
[1] Dsm Firmenich, Kaiseraugst, Switzerland
[2] FGen Ginkgo Bioworks, Basel, Switzerland
[3] Bird Sci Writing, Wassenaar, Netherlands
[4] Eidgenoss TH ETH Zurich, Inst Microbiol, Zurich, Switzerland
[5] Dsm Firmenich, Biodata & Translat Sci, Delft, Netherlands
[6] Microbiome Solut GmbH, Munsingen, Switzerland
关键词
GAMMA-AMINOBUTYRIC-ACID; LACTOBACILLUS; FERMENTATION; STRAINS; GENES; GABA;
D O I
10.1038/s41598-023-40808-z
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Lactic acid bacteria produce & gamma;-aminobutyric acid (GABA) as an acid stress response. GABA is a neurotransmitter that may improve sleep and resilience to mental stress. This study focused on the selection, identification and optimization of a bacterial strain with high GABA production, for development as a probiotic supplement. The scientific literature and an industry database were searched for probiotics and potential GABA producers. In silico screening was conducted to identify genes involved in GABA production. Subsequently, 17 candidates were screened for in vitro GABA production using thin layer chromatography, which identified three candidate probiotic strains Levilactobacillus brevis DSM 20054, Lactococcus lactis DS75843and Bifidobacterium adolescentis DSM 24849 as producing GABA. Two biosensors capable of detecting GABA were developed: 1. a transcription factor-based biosensor characterized by the interaction with the transcriptional regulator GabR was developed in Corynebacterium glutamicum; and 2. a growth factor-based biosensor was built in Escherichia coli, which used auxotrophic complementation by expressing 4-aminobutyrate transaminase (GABA-T) that transfers the GABA amino group to pyruvate, hereby forming alanine. Consequently, the feasibility of developing a workflow based on co-culture with producer strains and a biosensor was tested. The three GABA producers were identified and the biosensors were encapsulated in nanoliter reactors (NLRs) as alginate beads in defined gut-like conditions. The E. coli growth factor-based biosensor was able to detect changes in GABA concentrations in liquid culture and under gut-like conditions. L. brevis and L. lactis were successfully encapsulated in the NLRs and showed growth under miniaturized intestinal conditions.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] γ-Aminobutyric acid production by selected lactic acid bacteria isolate of an Indonesian indigenous fermented buffalo milk (dadih) origin
    Harnentis, Harnentis
    Nurmiati, Nurmiati
    Marlida, Yetti
    Adzitey, Frederick
    Huda, Nurul
    VETERINARY WORLD, 2019, 12 (08) : 1352 - 1357
  • [32] Optimization of gamma-aminobutyric acid production using sea tangle extract by lactic acid bacterial fermentation
    Kim, Deok-Hoon
    Dasagrandhi, Chakradhar
    Park, Seul-Ki
    Eom, Sung-Hwan
    Huh, Man-Kyu
    Mok, Jong-Soo
    Kim, Young-Mog
    LWT-FOOD SCIENCE AND TECHNOLOGY, 2018, 90 : 636 - 642
  • [33] Screening of Lactic Acid Bacteria with Production of у - aminobutyric Acid from Traditional Pickled Vegetables in Northeast China and Their Biological Properties
    Lit X.
    Li X.
    Tong X.
    Bai F.
    Li J.
    Tan X.
    Cui F.
    Yu Z.
    Shen R.
    Journal of Chinese Institute of Food Science and Technology, 2023, 23 (12) : 61 - 69
  • [34] Lactic acid bacteria in fermented dairy foods: Gamma-aminobutyric acid (GABA) production and its therapeutic implications
    Jena, Rajashree
    Choudhury, Prasanta Kumar
    FOOD BIOSCIENCE, 2024, 62
  • [35] Synthesis of γ-aminobutyric acid by lactic acid bacteria isolated from a variety of Italian cheeses
    Siragusa, S.
    De Angelis, M.
    Di Cagno, R.
    Rizzello, C. G.
    Coda, R.
    Gobbetti, M.
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2007, 73 (22) : 7283 - 7290
  • [36] Identification, characterization and selection of autochthonous lactic acid bacteria as probiotic for feedlot cattle
    Maldonado, Natalia C.
    Aristimuno Ficoseco, Cecilia
    Mansilla, Flavia I.
    Melian, Constanza
    Maria Hebert, Elvira
    Vignolo, Graciela M.
    Fatima Nader-Macias, Maria E.
    LIVESTOCK SCIENCE, 2018, 212 : 99 - 110
  • [37] Sustainable production of D-/L-lactic acid by lactic acid bacteria-analysis and optimization of the bioprocess
    Slavica, Anita
    Trontel, Antonija
    Santek, Bozidar
    Novak, Srdjan
    CURRENT OPINION IN BIOTECHNOLOGY, 2013, 24 : S26 - S27
  • [38] Identification and Selection of Lactic Acid Bacteria Resistance to Acid and Bile Salt Isolated from Corn Silage
    Li, L.
    Zhang, N.
    Kong, L.
    Zhao, W. C.
    Xiao, Y. N.
    Li, B. X.
    Han, X. R.
    JOURNAL OF PURE AND APPLIED MICROBIOLOGY, 2015, 9 : 13 - 23
  • [39] Detection and development of lactic acid bacteria bacteriocins - A hint on the screening of bacteriocins of lactic acid bacteria
    Xu, Jue
    Wang, Zhicheng
    Shi, Zihang
    Liu, Mingzhen
    Fan, Xiankang
    Zhang, Tao
    Wu, Zhen
    Zhu, Mingzi
    Tu, Maolin
    Pan, Daodong
    LWT-FOOD SCIENCE AND TECHNOLOGY, 2025, 222
  • [40] Screening and Identification of Lactic Acid Bacteria Fermenting Prunes and Studies on Their Antioxidant Properties,lactic acid bacteria
    Dai Z.
    Kong L.
    Liu W.
    Zhang Y.
    Yang G.
    Aireti Y.
    Journal of Chinese Institute of Food Science and Technology, 2022, 22 (07): : 310 - 318