School of Biological Sciences, The University of Hong Kong, Pokfulam Road, Hong Kong.
School of Biological Sciences, The University of Hong Kong, Pokfulam Road, Hong Kong.
Food Microbiol. 2018 Feb;69:151-158. doi: 10.1016/j.fm.2017.08.006. Epub 2017 Aug 16.
Lactobacillus brevis is an efficient cell factory for producing bioactive γ-aminobutyric acid (GABA) by its gad operon-encoded glutamic acid decarboxylase (GAD) system. However, little mechanistic insights have been reported on the effects of carbohydrate, oxygen and early acidification on GABA production machinery in Lb. brevis. In the present study, GABA production from Lb. brevis was enhanced by accessible carbohydrates. Fast growth of this organism was stimulated by maltose and xylose. However, its GABA production was highly suppressed by oxygen exposure, but was fully restored by anaerobiosis that up-regulated the expression of gad operon in Lb. brevis cells. Although the level of cytosolic acidity was suitable for the functioning of GadA and GadB, early acidification of the medium (ipH 5 and ipH 4) restored GABA synthesis strictly in aerated cells of Lb. brevis because the expression of gad operon was not up-regulated in them. We conclude that GABA production machinery in Lb. brevis could be restored by accessible carbohydrates, anaerobiosis and early acidification. This will be of interest for controlling fermentation for synthesis of GABA and manufacturing GABA-rich fermented vegetables.
短乳杆菌是一种高效的细胞工厂,能够通过其 gad 操纵子编码的谷氨酸脱羧酶(GAD)系统生产生物活性γ-氨基丁酸(GABA)。然而,关于碳水化合物、氧气和早期酸化对短乳杆菌 GABA 生产机制的影响,目前还鲜有报道。在本研究中,可利用的碳水化合物可增强短乳杆菌的 GABA 生产。该菌的快速生长受到麦芽糖和木糖的刺激。然而,氧气的暴露会强烈抑制其 GABA 的生产,但通过无氧条件可完全恢复,这上调了短乳杆菌细胞中 gad 操纵子的表达。虽然细胞溶质酸度水平适合 GadA 和 GadB 的功能,但培养基的早期酸化(ipH5 和 ipH4)严格恢复了通气细胞中 GABA 的合成,因为 gad 操纵子在这些细胞中没有上调表达。我们得出结论,短乳杆菌中的 GABA 生产机制可以通过可利用的碳水化合物、厌氧条件和早期酸化来恢复。这将有助于控制 GABA 的发酵合成和 GABA 丰富的发酵蔬菜的生产。