核糖核酸酶P
鼠李糖乳杆菌
生物
微生物学
外体
细菌
微泡
核糖核酸
细胞生物学
乳酸菌
生物化学
基因
小RNA
遗传学
作者
Chao Lei,Yun Teng,Liqing He,Mohammed Sayed,Jingyao Mu,Fangyi Xu,Xiangcheng Zhang,Anil Kumar,Kumaran Sundaram,Mukesh K. Sriwastva,Lifeng Zhang,Shao-yu Chen,Wenke Feng,Shuangqin Zhang,Jun Yan,Juw Won Park,Michael L. Merchant,Xiang Zhang,Huang‐Ge Zhang
出处
期刊:iScience
[Elsevier]
日期:2021-05-05
卷期号:24 (6): 102511-102511
被引量:49
标识
DOI:10.1016/j.isci.2021.102511
摘要
Diet and bile play critical roles in shaping gut microbiota, but the molecular mechanism underlying interplay with intestinal microbiota is unclear. Here, we showed that lemon-derived exosome-like nanoparticles (LELNs) enhance lactobacilli toleration to bile. To decipher the mechanism, we used Lactobacillus rhamnosus GG (LGG) as proof of concept to show that LELNs enhance LGG bile resistance via limiting production of Msp1 and Msp3, resulting in decrease of bile accessibility to cell membrane. Furthermore, we found that decline of Msps protein levels was regulated through specific tRNAserUCC and tRNAserUCG decay. We identified RNase P, an essential housekeeping endonuclease, being responsible for LELNs-induced tRNAserUCC and tRNAserUCG decay. We further identified galacturonic acid-enriched pectin-type polysaccharide as the active factor in LELNs to increase bile resistance and downregulate tRNAserUCC and tRNAserUCG level in the LGG. Our study demonstrates a tRNA-based gene expression regulation mechanism among lactobacilli to increase bile resistance.
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