Baicalin ameliorates high fat diet‐induced nonalcoholic fatty liver disease in mice via adenosine monophosphate‐activated protein kinase‐mediated regulation of SREBP1/Nrf2/NF‐κB signaling pathways

Author:

Gao Yanxia12ORCID,Liu Jingbo3,Hao Zhili4,Sun Na1,Guo Jianhua5,Zheng Xiaozhong6,Sun Panpan17,Yin Wei1,Fan Kuohai17,Li Hongquan1ORCID

Affiliation:

1. Shanxi Key Lab for Modernization of TCVM, College of Veterinary Medicine Shanxi Agricultural University Taigu China

2. College of Life Science Shandong First Medical University & Shandong Academy of Medical Sciences Tai'an China

3. College of Biological and Brewing Engineering Taishan University Tai'an China

4. College of Veterinary Medicine Jilin University Changchun China

5. Department of Veterinary Pathobiology, Schubot Exotic Bird Health Center Texas A&M University College Station Texas USA

6. Centre for Inflammation Research, Queen's Medical Research Institute The University of Edinburgh Edinburgh UK

7. Laboratory Animal Center Shanxi Agricultural University Taigu China

Abstract

AbstractNonalcoholic fatty liver disease (NAFLD) is a prevalent chronic liver disease around the world, imposing severe threats on human health. Unfortunately, no clinically approved drugs are available for use as yet. Baicalin (BA) is reported to have hepatoprotective effects, and it is not clear whether BA can treat NAFLD and how. Here, a high‐fat diet (HFD)‐induced NAFLD mouse model was established to explore the protective roles and mechanisms of BA against HFD‐induced NAFLD. Physiochemical results showed that BA exhibited significantly protective effects against HFD‐induced NAFLD in mice. Liver transcriptomic analysis revealed that BA attenuated HFD‐induced NAFLD via activating AMPK pathway, which was confirmed by the AMPK inhibitor Compound C. Additionally, the expression changes of AMPK downstream genes demonstrated that BA exerted ameliorative effects against NAFLD through AMPK‐mediated inhibition of SREBP1 and NF‐κB pathways, and activation of Nrf2 pathway. Taken together, our study reveals the protective roles of BA against HFD‐caused NAFLD through AMPK‐mediated modulation of SREBP1/Nrf2/NF‐κB pathways, suggesting that BA has potential drug development implications. Most importantly, our study creates a paradigm through the combination of molecular biology and bioinformatics for further studies of action mechanisms of biomolecules combating diseases.

Funder

Natural Science Foundation of Shandong Province

Shanxi Provincial Key Research and Development Project

Publisher

Wiley

Subject

Pharmacology

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