Area of research
Molecular Biology · Biological Psychiatry
Research interest
Research interests include Chemistry, Biology, Gut flora, Neuroinflammation, Medical microbiology, and Cognition.
Inactivation mechanism of microwave non-thermal effects on Aspergillus niger in low-water activity foods
Discovery of dimeric guaianolides with all carbon linkers as potential antihepatoma agents
Synthesis and discovery of guaianolide ‐ eudesmanolide heterodimers as CDK2 inhibitors for the treatment of hepatocellular carcinoma
Enhanced inactivation of Aspergillus niger in low water activity raisins by microwave processing: evidence of non-thermal effects
Underlying mechanism of the microwave non-thermal effect as additional microbial inactivation on Clostridium sporogenes at pasteurization temperature level
Overexpression of forebrain PTP1B leads to synaptic and cognitive impairments in obesity
Olanzapine attenuates 5-HT2cR and GHSR1a interaction to increase orexigenic hypothalamic NPY: Implications for neuronal molecular mechanism of metabolic side effects of antipsychotics
Dimethyl itaconate ameliorates cognitive impairment induced by a high-fat diet via the gut-brain axis in mice
Correction: Dimethyl itaconate ameliorates cognitive impairment induced by a high-fat diet via the gut-brain axis in mice
Three Different Types of β-Glucans Enhance Cognition: The Role of the Gut-Brain Axis
A fiber-deprived diet causes cognitive impairment and hippocampal microglia-mediated synaptic loss through the gut microbiota and metabolites
β-Glucan from Lentinula edodes prevents cognitive impairments in high-fat diet-induced obese mice: involvement of colon-brain axis
Resveratrol prevents haloperidol-induced mitochondria dysfunction through the induction of autophagy in SH-SY5Y cells
β-glucan attenuates cognitive impairment via the gut-brain axis in diet-induced obese mice
Curdlan Prevents the Cognitive Deficits Induced by a High-Fat Diet in Mice via the Gut-Brain Axis
N-acetylcysteine prevents olanzapine-induced oxidative stress in mHypoA-59 hypothalamic neurons
Aripiprazole and haloperidol protect neurite lesions via reducing excessive D2R-DISC1 complex formation
Propionate Protects Haloperidol-Induced Neurite Lesions Mediated by Neuropeptide Y