Area of research
Sensory Systems · Molecular Biology
Research interest
Research interests include Ion Channels and Receptors, Ion channel regulation and function, Microbial Fuel Cells and Bioremediation, and Microbial Community Ecology and Physiology.
ADAM17 Supports Disinhibition of Pre-sympathetic Glutamatergic Neurons Through Microglial Chemotaxis
Salt-sensitive hypertension promotes neuronal mitochondrial stress and neurodegenerative alterations via neuro-vascular metabolic reprogramming and local RAS signaling
Niabella digestorum sp. nov., a High Cell-Surface Hydrophobic Bacterium Isolated from Waste Digestion System
Exploration and structure–activity relationship research of benzenesulfonamide derivatives as potent TRPV4 inhibitors for treating acute lung injury
Adaptive Responses of <i>Shewanella decolorationis</i> to Toxic Organic Extracellular Electron Acceptor Azo Dyes in Anaerobic Respiration
Preparation and properties of a biomass cellulose-based colorimetric sensor for Ag+ and Cu2+
Long-Term Diabetic Microenvironment Augments the Decay Rate of Capsaicin-Induced Currents in Mouse Dorsal Root Ganglion Neurons
Management of neoplastic pericardial disease
Preparation and properties of pH-responsive reversible-wettability biomass cellulose-based material for controllable oil/water separation
Structure Design of Low-Temperature Regenerative Hyperbranched Polyamine Adsorbent for CO<sub>2</sub> Capture
Primary cilia signaling mediates intraocular pressure sensation
Modified pretreatment method for total microbial DNA extraction from contaminated river sediment
Phosphoinositide Kinases Play Key Roles in Norepinephrine- and Angiotensin II-induced Increase in Phosphatidylinositol 4,5-Bisphosphate and Modulation of Cardiac Function
Bu-shen-he-mai-fang (HMF) Decoction Inhibits Atherosclerosis by Improving Antioxidant and Anti-Inflammatory Activities in ApoE-deficient Mice
Two-Electrode Voltage Clamp
Hydrogen-rich saline attenuates vascular smooth muscle cell proliferation and neointimal hyperplasia by inhibiting reactive oxygen species production and inactivating the Ras-ERK1/2-MEK1/2 and Akt pathways
[Modulation of non-ion channel proteins by membrane potential].
Agonist-Dependent Potentiation of Vanilloid Receptor Transient Receptor Potential Vanilloid Type 1 Function by Stilbene Derivatives