Effect of Yihefang on lipid metabolism, bone marrow inflammatory factors and intestinal microecology in mice based on 16S rDNA sequencing technology of microbiome
|更新时间:2022-08-03
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Effect of Yihefang on lipid metabolism, bone marrow inflammatory factors and intestinal microecology in mice based on 16S rDNA sequencing technology of microbiome
Shanghai Journal of Traditional Chinese MedicineVol. 55, Issue 5, Pages: 70-76(2021)
Hanbing SONG, Xue LI, Yiwei SHEN, et al. Effect of Yihefang on lipid metabolism, bone marrow inflammatory factors and intestinal microecology in mice based on 16S rDNA sequencing technology of microbiome. [J]. Shanghai Journal of Traditional Chinese Medicine 55(5):70-76(2021)
DOI:
Hanbing SONG, Xue LI, Yiwei SHEN, et al. Effect of Yihefang on lipid metabolism, bone marrow inflammatory factors and intestinal microecology in mice based on 16S rDNA sequencing technology of microbiome. [J]. Shanghai Journal of Traditional Chinese Medicine 55(5):70-76(2021) DOI: 10.16305/j.1007-1334.2021.2005063.
Effect of Yihefang on lipid metabolism, bone marrow inflammatory factors and intestinal microecology in mice based on 16S rDNA sequencing technology of microbiome
Objective,2,To explore the role of Yihefang in regulating the microecological structure of gut microbiota, bone marrow abnormal inflammation and serum lipid metabolism in mice by 16S rDNA sequencing technology.,Methods,2,Thirty male C57BL/6J mice were randomly divided into normal group, high-fat group and Yihefang group. The high-fat group was given a high-fat diet to induce a lipid metabolism disorder model, and the Yihefang group was given the same amount of Yihefang liquid on the basis of the high-fat group. At 12 weeks of the treatment, samples of fresh feces, serum and bone marrow fluid were collected from mice to detect serum cholesterol and triglyceride levels. qPCR and Western blot were used to detect IL-6 levels of inflammatory factors, and 16S rDNA sequencing to detect bacterial diversity of stool samples.,Results,2,Compared with the high-fat group, the body weight, serum cholesterol and triglyceride levels of mice in Yihefang group were significantly reduced (,P,<,0.05,P,<,0.01); IL-6 transcription and protein expression in bone marrow were significantly reduced (,P,<,0.05); and the microecological structure of gut microbiota tended to be normalization.,Conclusion,2,Yihefang can regulate the disorder of lipid metabolism induced by high-fat diet, alleviate the abnormal inflammatory reaction of bone marrow, and also play a positive role in the recovery and reconstruction of intestinal microecological imbalance.
关键词
脂质代谢高脂肪饮食模型小鼠肠道菌群炎症16S测序中药研究
Keywords
lipid metabolismhigh fat dietmodel micegut microbiotainflammation16S rDNA sequencingtraditional Chinese medicine research
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