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纳豆芽孢杆菌对秀丽隐杆线虫寿命和抗逆性的影响。

Impacts of Bacillus subtilis var. natto on the lifespan and stress resistance of Caenorhabditis elegans.

作者信息

Teramoto Nao, Sato Kanae, Wada Takayuki, Nishikawa Yoshikazu, Kage-Nakadai Eriko

机构信息

Graduate School of Human Life Science, Osaka City University, Sugimoto 3-3-138 Sumiyoshi-ku, Osaka 558-8585, Japan.

Graduate School of Human Life and Ecology, Osaka Metropolitan University, Osaka 558-8585, Japan.

出版信息

J Appl Microbiol. 2023 Apr 3;134(4). doi: 10.1093/jambio/lxad082.

Abstract

AIM

Bacillus subtilis var. natto is used in the production of natto, a typical Japanese fermented soybean food. Although the probiotic attributes and health-related effects of B. subtilis var. natto have been reported, the effect on longevity remains unknown. In the present study, the effects of B. subtilis var. natto strains on lifespan extension and the molecular mechanisms governing the prolongevity were examined using Caenorhabditis elegans as a model animal.

METHODS AND RESULTS

Synchronized 3-day-old (young adult) worms were fed Escherichia coli OP50 (control) or a subcloned isolate of B. subtilis var. natto Miyagino strain (MI-OMU01) and subjected to lifespan, survival against pathogens and abiotic stress resistance assays. Notably, the lifespan of worms fed MI-OMU01 was significantly longer than that of the animals fed OP50. Moreover, MI-OMU01 increased the resistance of C. elegans to several stressors, including UV irradiation, H2O2, and Cu2+.

CONCLUSIONS

Genetic and gene expression analyses using mutant animals suggested that MI-OMU01 extended the lifespan of worms in TIR-1/SARM, p38 MAPK, and insulin/IGF-1 signaling pathway-dependent manners.

摘要

目的

纳豆芽孢杆菌用于生产纳豆,这是一种典型的日本发酵大豆食品。尽管已有报道称纳豆芽孢杆菌具有益生菌特性及与健康相关的作用,但其对寿命的影响仍不明确。在本研究中,以秀丽隐杆线虫作为模式动物,研究了纳豆芽孢杆菌菌株对寿命延长的影响以及调控长寿的分子机制。

方法与结果

将同步化的3日龄(年轻成虫)线虫喂食大肠杆菌OP50(对照)或纳豆芽孢杆菌宫城菌株(MI-OMU01)的亚克隆分离株,并进行寿命、抗病原体能力和非生物胁迫抗性测定。值得注意的是,喂食MI-OMU01的线虫寿命明显长于喂食OP50的动物。此外,MI-OMU01增强了秀丽隐杆线虫对多种应激源的抗性,包括紫外线照射、H2O2和Cu2+。

结论

使用突变动物进行的遗传和基因表达分析表明,MI-OMU01以依赖TIR-1/SARM、p38丝裂原活化蛋白激酶和胰岛素/胰岛素样生长因子-1信号通路的方式延长了线虫的寿命。

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