Area of research
Cellular and Molecular Neuroscience · Endocrine and Autonomic Systems
Research interest
Research interests include Hepcidin, Neuroscience, DMT1, Transferrin, Subthalamic nucleus, and Antidromic.
HMGB1 Mediates Inflammation-Induced DMT1 Increase and Dopaminergic Neurodegeneration in the Early Stage of Parkinsonism
5‐HT<sub>3</sub><sub>A</sub> receptors maintain hippocampal LTP in a CB<sub>1</sub> and GABA<sub>A</sub> receptor‐ dependent manner for spatial memory
Therapeutic effect of a histone demethylase inhibitor in Parkinson’s disease
Brain Hepcidin Suppresses Major Pathologies in Experimental Parkinsonism
Tissue iron is negatively correlated with TERC or TERT mRNA expression: a heterochronic parabiosis study in mice
Refinement of learned skilled movement representation in motor cortex deep output layer
Bi-directionally protective communication between neurons and astrocytes under ischemia
Expression of Iron Transporters and Pathological Hallmarks of Parkinson’s and Alzheimer’s Diseases in the Brain of Young, Adult, and Aged Rats
Differential interaction between iron and mutant alpha-synuclein causes distinctive Parkinsonian phenotypes in Drosophila
A combination of serum iron, ferritin and transferrin predicts outcome in patients with intracerebral hemorrhage
Pre-treatment of rats with ad-hepcidin prevents iron-induced oxidative stress in the brain
Hepcidin Suppresses Brain Iron Accumulation by Downregulating Iron Transport Proteins in Iron-Overloaded Rats
Lipopolysaccharides Upregulate Hepcidin in Neuron via Microglia and the IL-6/STAT3 Signaling Pathway
Reducing iron in the brain: a novel pharmacologic mechanism of huperzine A in the treatment of Alzheimer's disease
Cortical Effects of Deep Brain Stimulation
Therapeutic Deep Brain Stimulation in Parkinsonian Rats Directly Influences Motor Cortex