Lee Chul Sang, Kim Sae Hun
College of Life Sciences and Biotechnology, Korea University, Seoul, 02841, Republic of Korea.
Institute of Life Science and Natural Resources, Korea University, Seoul, 02841, Republic of Korea.
Probiotics Antimicrob Proteins. 2020 Jun;12(2):623-634. doi: 10.1007/s12602-019-09577-y.
This study involves an investigation on the probiotic properties of lactic acid bacteria and their potential applications in an in vitro model of lipopolysaccharide (LPS)-stimulated inflammation and dexamethasone-induced osteoporosis. Nine strains were pre-screened from 485 lactic acid bacteria based on their survival at a low pH and in a solution containing bile salts. All candidates were capable of surviving in an environment with low pH and with bile salts and could successfully colonize the intestine. Furthermore, their functional properties, such as anti-oxidation and anti-inflammation, were evaluated. Of the nine probiotic candidates, Lactobacillus plantarum A41 and L. fermentum SRK414 exhibited the highest anti-oxidative capacity. Moreover, only L. plantarum A41 and L. fermentum SRK414 could increase gut barrier function by upregulating the mRNA expression of tight junction proteins and inhibit the expression of inflammatory mediators induced by LPS-stimulated inflammation. Interestingly, these two strains were also capable of regulating several bone metabolism-related markers playing a role in bone homeostasis and osteoblast differentiation. In brief, L. plantarum A41 and L. fermentum SRK414 exhibited high probiotic potential and potentially impact immune-related bone health by modulating pro-inflammatory cytokines and bone metabolism-related markers.
本研究涉及对乳酸菌的益生菌特性及其在脂多糖(LPS)刺激的炎症和地塞米松诱导的骨质疏松症体外模型中的潜在应用进行调查。基于485株乳酸菌在低pH值和含胆盐溶液中的存活率,预先筛选出9株。所有候选菌株都能够在低pH值和含胆盐的环境中存活,并能成功定殖于肠道。此外,还评估了它们的功能特性,如抗氧化和抗炎特性。在这9株候选益生菌中,植物乳杆菌A41和发酵乳杆菌SRK414表现出最高的抗氧化能力。此外,只有植物乳杆菌A41和发酵乳杆菌SRK414能够通过上调紧密连接蛋白的mRNA表达来增强肠道屏障功能,并抑制LPS刺激的炎症诱导的炎症介质的表达。有趣的是,这两种菌株还能够调节几种与骨代谢相关的标志物,这些标志物在骨稳态和成骨细胞分化中发挥作用。简而言之,植物乳杆菌A41和发酵乳杆菌SRK414表现出很高的益生菌潜力,并可能通过调节促炎细胞因子和骨代谢相关标志物来影响与免疫相关的骨骼健康。