Area of research
Epidemiology · Physiology
Research interest
Research interests include Lipid metabolism, Steatosis, Biology, Internal medicine, Endocrinology, and Chemistry.
HLF and PPARα axis regulates metabolic‐associated fatty liver disease through extracellular vesicles derived from the intestinal microbiota
Linarin alleviates high-fat diet-induced hepatic steatosis by inhibiting PDE4D and activating the cAMP/PKA/CREB pathway
Profiling of RNA N6-Methyladenosine methylation reveals the critical role of m6A in betaine alleviating hepatic steatosis
Deletion of the mitochondrial calcium uniporter in adipose tissue promotes energy expenditure and alleviates diet-induced obesity
The landscape of super-enhancer regulates remote target gene transcription through loop domains in adipose tissue of pig
Translatomics reveals the role of dietary calcium addition in regulating muscle fat deposition in pigs
Rhynchophylline relieves nonalcoholic fatty liver disease by activating lipase and increasing energy metabolism
Transcriptome-Wide Study Revealed That N6-Methyladenosine Participates in Regulation Meat Production in Goats
Small Intestine-specific Knockout of CIDEC Improves Obesity and Hepatic Steatosis by Inhibiting Synthesis of Phosphatidic Acid
Genome-Wide Analysis of Long Non-coding RNAs Involved in Nodule Senescence in Medicago truncatula
The Roles of Natural Alkaloids and Polyphenols in Lipid Metabolism:Therapeutic Implications and Potential Targets in Metabolic Diseases
Hesperidin methyl chalcone ameliorates lipid metabolic disorders by activating lipase activity and increasing energy metabolism
A New lncRNA, <i>lnc-LLMA</i> , Regulates Lipid Metabolism in Pig Hepatocytes
Translatome analysis reveals the regulatory role of betaine in high fat diet (HFD)-induced hepatic steatosis
Translatomics Probes Into the Role of Lycopene on Improving Hepatic Steatosis Induced by High-Fat Diet