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源自酸菜的乳酸菌菌株作为调节碳水化合物消化的潜在益生菌候选物,其细菌有机酸谱与抗糖尿病活性有关。

Sauerkraut-derived LAB strains as potential probiotic candidates for modulating carbohydrate digestion attributing bacterial organic acid profiling to antidiabetic activity.

作者信息

Huligere Sujay S, Kumari V B Chandana, Patil Shashank M, M K Jayanthi, Wong Ling Shing, Kijsomporn Jureerat, Al-Tamimi Jameel H, Ramu Ramith

机构信息

Department of Biotechnology and Bioinformatics JSS Academy of Higher Education & Research Mysuru India.

Department of Pharmacology, JSS Medical College JSS Academy of Higher Education & Research Mysuru India.

出版信息

Food Sci Nutr. 2024 Oct 23;12(11):9682-9701. doi: 10.1002/fsn3.4444. eCollection 2024 Nov.

Abstract

Sauerkraut-derived lactic acid bacterial (LAB) strains have gained attention due to their potential health benefits. This study focuses on evaluating seven Sauerkraut-derived RAMULAB strains isolated from sauerkraut, aiming to identify promising candidates for modulating α-glucosidase (AG) and α-amylase (AM) enzymatic functions. RAMULAB strains with remarkable probiotic potential can contribute to the digestive health and manage conditions like diabetes. Identifying robust candidates from sauerkraut, a fermented food, holds promise for natural and cost-effective probiotic sources. The RAMULAB strains underwent extensive characterization, including identification through 16S ribosomal RNA (rRNA) sequencing. Their tolerance to harsh conditions, adherence properties, antimicrobial activity, antioxidant potential, and inhibition of AG and AM were assessed. In silico analyses explored their molecular interactions, particularly with hydroxycitric acid, a potential antidiabetic compound. Among the RAMULAB strains, RAMULAB48 emerged as a standout candidate. It displayed exceptional resilience to acidic bile (≥97%), and simulated gastrointestinal conditions (≥95%), highlighting its suitability for probiotic applications. RAMULAB48 exhibited robust adherence properties, including cell-surface hydrophobicity (80%), autoaggregation (42%), coaggregation with pathogens (≥33%), and adhesion to epithelial cells. Additionally, all seven isolates demonstrated gamma-hemolysis and resistance to antibiotics (Kanamycin, Methicillin, and Vancomycin), while displaying strong antibacterial properties against foodborne pathogens. These RAMULAB strains also exhibited varying degrees of antioxidant activity, with RAMULAB48 displaying the highest potential (≥41%). In terms of antidiabetic activity, cell-free supernatant (CS) obtained from RAMULAB48 expressed the highest inhibition levels, notably inhibiting yeast AG by an impressive 59.55% and AM being by a remarkable 67.42%. RAMULAB48 produced organic acids, including hydroxycitric acid (28.024 mg/mL), which showed promising antidiabetic properties through in silico analyses, indicating favorable interactions with the target enzymes. This study identifies RAMULAB48, a Sauerkraut-derived RAMULAB strain, as a promising probiotic candidate with exceptional tolerance, adherence properties, antimicrobial activity, antioxidant potential, and antidiabetic effects. The presence of hydroxycitric acid further underscores its potential in managing diabetes.

摘要

源自酸菜的乳酸菌(LAB)菌株因其潜在的健康益处而受到关注。本研究着重评估从酸菜中分离出的7株源自酸菜的RAMULAB菌株,旨在识别出在调节α-葡萄糖苷酶(AG)和α-淀粉酶(AM)酶功能方面有潜力的候选菌株。具有显著益生菌潜力的RAMULAB菌株有助于消化健康并控制糖尿病等病症。从发酵食品酸菜中识别出强大的候选菌株,有望成为天然且经济高效的益生菌来源。对RAMULAB菌株进行了广泛的特性分析,包括通过16S核糖体RNA(rRNA)测序进行鉴定。评估了它们对恶劣条件的耐受性、黏附特性、抗菌活性、抗氧化潜力以及对AG和AM的抑制作用。计算机模拟分析探索了它们的分子相互作用,特别是与潜在的抗糖尿病化合物羟基柠檬酸的相互作用。在RAMULAB菌株中,RAMULAB48脱颖而出成为候选菌株。它对酸性胆汁(≥97%)和模拟胃肠道条件(≥95%)表现出极强的耐受性,凸显了其在益生菌应用方面的适用性。RAMULAB48表现出强大的黏附特性,包括细胞表面疏水性(80%)、自聚集(42%)、与病原体的共聚集(≥33%)以及对上皮细胞的黏附。此外,所有7株分离株均表现出γ-溶血和对抗生素(卡那霉素、甲氧西林和万古霉素)的抗性,同时对食源性病原体具有强大的抗菌特性。这些RAMULAB菌株还表现出不同程度的抗氧化活性,其中RAMULAB48的潜力最高(≥41%)。在抗糖尿病活性方面,从RAMULAB48获得的无细胞上清液(CS)表现出最高的抑制水平,尤其对酵母AG的抑制率高达59.55%,对AM的抑制率高达67.42%。RAMULAB48产生有机酸,包括羟基柠檬酸(28.024mg/mL),计算机模拟分析表明其具有有前景的抗糖尿病特性,显示出与靶酶的良好相互作用。本研究确定源自酸菜的RAMULAB菌株RAMULAB48是一种有潜力的益生菌候选菌株,具有卓越的耐受性、黏附特性、抗菌活性、抗氧化潜力和抗糖尿病作用。羟基柠檬酸的存在进一步突出了其在控制糖尿病方面的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a6b/11606886/745c9050c8a3/FSN3-12-9682-g004.jpg

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