Molina Diana, Angamarca Evelyn, Marinescu George Cătălin, Popescu Roua Gabriela, Tenea Gabriela N
Biofood and Nutraceutics Research and Development Group, Faculty of Engineering in Agricultural and Environmental Sciences, Universidad Técnica del Norte, Ibarra 100150, Ecuador.
Asociația Independent Research, 58 Timișului, Sector 1, 012416 Bucharest, Romania.
Antibiotics (Basel). 2025 Jan 24;14(2):123. doi: 10.3390/antibiotics14020123.
: Lactic acid bacteria (LAB) produce several diverse metabolites during fermentation that play key roles in enhancing health and food quality. These metabolites include peptides, organic acids, exopolysaccharides, and antimicrobial compounds, which contribute to gut health, immune system modulation, and pathogen inhibition. This study analyzed the intracellular (Met-Int) and extracellular metabolites (Met-Ext-CFS; cell-free supernatant) of UTNGt2, a probiotic strain isolated from . : The assessment was performed using capillary LC-MS/MS metabolomics with a SWATH-based data-independent acquisition approach to identify molecules associated with antimicrobial activity. : The integration of metabolomic data with whole-genome annotation enabled the identification of several key metabolites, including amino acids, nucleotides, organic acids, oligopeptides, terpenes, and flavonoids, many of which were associated with the antimicrobial activity of UTNGt2. Pathway analysis reveals critical processes such as secondary metabolite biosynthesis, nucleotide and galactose metabolism, and cofactor biosynthesis. By integrating RiPP (ribosomally synthesized and post-translationally modified peptide) cluster gene predictions with LC-MS data, this study validates the production of specific RiPPs and uncovers novel bioactive compounds encoded within the UTNGt2 genome. The oligopeptide val-leu-pro-val-pro-gln found in both Met-Int (ESI+) and Met-Ext-CFS (ESI+) may contribute to the strain's antimicrobial strength. It could also enhance probiotic and fermentation-related functions. : While genome-based predictions highlight the strain's biosynthetic potential, the actual metabolite profile is influenced by factors like transcriptional regulation, post-transcriptional and post-translational modifications, and environmental conditions. These findings emphasize the value of multi-omics approaches in providing a holistic understanding of metabolite production and its role in antimicrobial activity.
乳酸菌(LAB)在发酵过程中产生多种不同的代谢产物,这些代谢产物在促进健康和提高食品质量方面发挥着关键作用。这些代谢产物包括肽、有机酸、胞外多糖和抗菌化合物,它们有助于肠道健康、免疫系统调节和病原体抑制。本研究分析了UTNGt2的细胞内代谢产物(Met-Int)和细胞外代谢产物(Met-Ext-CFS;无细胞上清液),UTNGt2是一种从……分离出的益生菌菌株。:使用基于SWATH的数据非依赖采集方法的毛细管LC-MS/MS代谢组学进行评估,以鉴定与抗菌活性相关的分子。:代谢组学数据与全基因组注释的整合使得能够鉴定出几种关键代谢产物,包括氨基酸、核苷酸、有机酸、寡肽、萜类化合物和黄酮类化合物,其中许多与UTNGt2的抗菌活性有关。通路分析揭示了关键过程,如次生代谢物生物合成、核苷酸和半乳糖代谢以及辅因子生物合成。通过将核糖体合成和翻译后修饰肽(RiPP)簇基因预测与LC-MS数据整合,本研究验证了特定RiPP的产生,并揭示了UTNGt2基因组中编码的新型生物活性化合物。在Met-Int(ESI+)和Met-Ext-CFS(ESI+)中均发现的寡肽val-leu-pro-val-pro-gln可能有助于该菌株的抗菌强度。它还可以增强益生菌和发酵相关功能。:虽然基于基因组的预测突出了该菌株的生物合成潜力,但实际的代谢产物谱受到转录调控、转录后和翻译后修饰以及环境条件等因素的影响。这些发现强调了多组学方法在全面理解代谢产物产生及其在抗菌活性中的作用方面的价值。