Suissa Ronit, Oved Rela, Maan Harsh, Hadad Uzi, Gilhar Omri, Meijler Michael M, Koren Omry, Kolodkin-Gal Ilana
Department of Molecular Genetics, Weizmann Institute of Science, Rehovot, Israel.
Department of Chemistry, Ben-Gurion University of the Negev, Be'er Sheva, Israel.
Front Microbiol. 2022 Oct 24;13:949932. doi: 10.3389/fmicb.2022.949932. eCollection 2022.
Lactobacillaceae are Gram-positive rods, facultative anaerobes, and belong to the lactic acid bacteria (LAB) that frequently serve as probiotics. We systematically compared five LAB strains for the effects of different carbohydrates on their free-living and biofilm lifestyles. We found that fermentable sugars triggered an altered carrying capacity with strain specificity during planktonic growth. In addition, heterogeneous response to fermentable sugar was manifested in microbial aggregation (measured by imaging flow cytometry), colony development, and attachment to mucin. The acid production capacities of the strains were compatible and could not account for heterogeneity in their differential carrying capacity in liquid and on a solid medium. Among tested LAB strains, survived self-imposed acid stress while was extremely sensitive to its own glucose utilization acidic products. The addition of a buffering system during growth on a solid medium significantly improved the survival of most tested probiotic strains during fermentation, but the formation of biofilms and aggregation capacity were responsive to the carbohydrate provided rather than to the acidity. We suggest that the optimal performance of the beneficial microbiota members belonging to Lactobacillaceae varies as a function of the growth model and the dependency on a buffering system.
乳杆菌科是革兰氏阳性杆菌,属于兼性厌氧菌,属于经常用作益生菌的乳酸菌(LAB)。我们系统地比较了五种乳酸菌菌株,以研究不同碳水化合物对其自由生活和生物膜生活方式的影响。我们发现,可发酵糖在浮游生长过程中引发了具有菌株特异性的携带能力变化。此外,在微生物聚集(通过成像流式细胞术测量)、菌落发育和与粘蛋白的附着方面,对可发酵糖表现出异质性反应。这些菌株的产酸能力相当,无法解释它们在液体和固体培养基中不同携带能力的异质性。在测试的乳酸菌菌株中,[具体菌株1]能够在自我施加的酸胁迫下存活,而[具体菌株2]对自身利用葡萄糖产生的酸性产物极其敏感。在固体培养基上生长期间添加缓冲系统显著提高了大多数测试益生菌菌株在发酵过程中的存活率,但生物膜的形成和聚集能力对所提供的碳水化合物而非酸度有反应。我们认为,属于乳杆菌科的有益微生物群成员的最佳性能会因生长模型和对缓冲系统的依赖性而有所不同。