Faculty of Science and Technology, Free University of Bolzano, Bolzano, 39100, Italy.
Department of Soil, Plant and Food Science, University of Bari Aldo Moro, Bari, 70126, Italy.
Microb Biotechnol. 2022 Mar;15(3):915-930. doi: 10.1111/1751-7915.13846. Epub 2021 Jun 16.
We proposed a novel phenomic approach to track the effect of short-term exposures of Lactiplantibacillus plantarum and Leuconostoc pseudomesenteroides to environmental pressure induced by brewers' spent grain (BSG)-derived saccharides. Water-soluble BSG-based medium (WS-BSG) was chosen as model system. The environmental pressure exerted by WS-BSG shifted the phenotypes of bacteria in species- and strains-dependent way. The metabolic drift was growth phase-dependent and likely underlay the diauxic profile of organic acids production by bacteria in response to the low availability of energy sources. Among pentosans, metabolism of arabinose was preferred by L. plantarum and xylose by Leuc. pseudomesenteroides as confirmed by the overexpression of related genes. Bayesian variance analysis showed that phenotype switching towards galactose metabolism suffered the greatest fluctuation in L. plantarum. All lactic acid bacteria strains utilized more intensively sucrose and its plant-derived isomers. Sucrose-6-phosphate activity in Leuc. pseudomesenteroides likely mediated the increased consumption of raffinose. The increased levels of some phenolic compounds suggested the involvement of 6-phospho-β-glucosidases in β-glucosides degradation. Expression of genes encoding β-glucoside/cellobiose-specific EII complexes and phenotyping highlighted an increased metabolism for cellobiose. Our reconstructed metabolic network will improve the understanding of how lactic acid bacteria may transform BSG into suitable food ingredients.
我们提出了一种新的表型方法来跟踪植物乳杆菌和肠膜明串珠菌短期暴露于由啤酒糟(BSG)衍生糖引起的环境压力的效果。选择水溶性 BSG 基培养基(WS-BSG)作为模型系统。WS-BSG 施加的环境压力以依赖于物种和菌株的方式改变了细菌的表型。代谢漂移与生长阶段有关,可能是细菌对低能量源可用性的响应产生有机酸的双重发酵谱的基础。在戊聚糖中,阿拉伯糖的代谢被植物乳杆菌优先利用,木糖被肠膜明串珠菌优先利用,这一点得到了相关基因过表达的证实。贝叶斯方差分析表明,L. plantarum 中向半乳糖代谢的表型转换波动最大。所有乳酸菌菌株都更有效地利用蔗糖及其植物衍生的同系物。肠膜明串珠菌中的蔗糖 6-磷酸活性可能介导了棉子糖消耗的增加。一些酚类化合物水平的升高表明 6-磷酸-β-葡萄糖苷酶参与了β-葡萄糖苷的降解。编码β-葡萄糖苷/纤维二糖特异性 EII 复合物的基因表达和表型突出了对纤维二糖的代谢增加。我们重建的代谢网络将有助于更好地理解乳酸菌如何将啤酒糟转化为合适的食品成分。