Human diet-derived polyphenolic compounds and hepatic diseases: From therapeutic mechanisms to clinical utilization.
Qichao HuWenwen ZhangFeng WeiMeilan HuangMengyao ShuDan SongJian-Xia WenJundong WangQing NianXiao MaJinhao ZengYanling ZhaoPublished in: Phytotherapy research : PTR (2023)
This review focuses on the potential ameliorative effects of polyphenolic compounds derived from human diet on hepatic diseases. It discusses the molecular mechanisms and recent advancements in clinical applications. Edible polyphenols have been found to play a therapeutic role, particularly in liver injury, liver fibrosis, NAFLD/NASH, and HCC. In the regulation of liver injury, polyphenols exhibit anti-inflammatory and antioxidant effects, primarily targeting the TGF-β, NF-κB/TLR4, PI3K/AKT, and Nrf2/HO-1 signaling pathways. In the regulation of liver fibrosis, polyphenolic compounds effectively reverse the fibrotic process by inhibiting the activation of hepatic stellate cells (HSC). Furthermore, polyphenolic compounds show efficacy against NAFLD/NASH by inhibiting lipid oxidation and accumulation, mediated through the AMPK, SIRT, and PPARγ pathways. Moreover, several polyphenolic compounds exhibit anti-HCC activity by suppressing tumor cell proliferation and metastasis. This inhibition primarily involves blocking Akt and Wnt signaling, as well as inhibiting the epithelial-mesenchymal transition (EMT). Additionally, clinical trials and nutritional evidence support the notion that certain polyphenols can improve liver disease and associated metabolic disorders. However, further fundamental research and clinical trials are warranted to validate the efficacy of dietary polyphenols.
Keyphrases
- signaling pathway
- pi k akt
- liver injury
- epithelial mesenchymal transition
- liver fibrosis
- drug induced
- induced apoptosis
- cell cycle arrest
- cell proliferation
- clinical trial
- transforming growth factor
- endothelial cells
- anti inflammatory
- oxidative stress
- weight loss
- physical activity
- induced pluripotent stem cells
- immune response
- cell cycle
- inflammatory response
- type diabetes
- pluripotent stem cells
- toll like receptor
- open label
- lps induced
- phase ii
- endoplasmic reticulum stress