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Ki-Soon Shin

Kyung Hee University · 生化学・遺伝学・分子生物学

研究室紹介

Professor Ki-Soon Shin's research lab specializes in cellular and molecular neurophysiology, focusing on ion channels and their roles in neuronal and muscular excitability. The lab investigates the functional properties and regulatory mechanisms of inwardly rectifying potassium (Kir) channels, hyperpolarization-activated cyclic nucleotide-gated (HCN) channels, and their contributions to neural circuit function, muscle development, and neurological disorders. Key research directions include channelopathies, synaptic plasticity, and the impact of neuromodulators such as nicotine and substance P on neuronal excitability in specific brain regions like the medial habenula. The lab also explores the pathophysiological mechanisms of neurotoxic compounds, such as acromelic acid, in motor neuron degeneration.

ion channelsneuronal excitabilitymuscle developmentneurotoxicitypotassium channels

Research Overview

Papers
79
Total Citations
1,987
Papers (5y)
9
Primary Field
生化学・遺伝学・分子生物学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
9total
2022
2023
2024
2025
2026
Citations per year (5y)
12total
20222023202420252026

Selected Papers

15
1
Article|170 citations·2001
Blocker State Dependence and Trapping in Hyperpolarization-Activated Cation Channels
Ki Soon Shin, Brad S. Rothberg, Gary Yellen
SJR Q1The Journal of General PhysiologyOA

Hyperpolarization-activated cation currents (I(h)) are key determinants of repetitive electrical activity in heart and nerve cells. The bradycardic agent ZD7288 is a selective blocker of these currents. We studied the mechanism for ZD7288 blockade of cloned I(h) channels in excised inside-out patches. ZD7288 blockade of the mammalian mHCN1 channel appeared to require opening of the channel, but strong hyperpolarization disfavored blockade. The steepness of this voltage-dependent effect (an appar

Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|112 citations·2004
Inactivation in HCN Channels Results from Reclosure of the Activation Gate
Ki Soon Shin, Chantal Maertens, Catherine Proenza, Brad S. Rothberg, Gary Yellen
SJR Q1NeuronOA
Cardiology and Cardiovascular MedicineMedicine
3
Article|38 citations·2007
Hyperpolarization-activated currents control the excitability of principal neurons in the basolateral amygdala
Kyungjoon Park, Sukwon Lee, Shin Jung Kang, Sukwoo Choi, Ki Soon Shin
SJR Q2Biochemical and Biophysical Research Communications
Cellular and Molecular NeuroscienceNeuroscience
4
Article|37 citations·2010
HCN channel activity-dependent modulation of inhibitory synaptic transmission in the rat basolateral amygdala
Kyungjoon Park, Jee Hyun Yi, Hyejin Kim, Kyuhyun Choi, Shin Jung Kang, Ki Soon Shin
SJR Q2Biochemical and Biophysical Research Communications
Cellular and Molecular NeuroscienceNeuroscience
5
Article|29 citations·1996
Involvement of KCaChannels and Stretch-Activated Channels in Calcium Influx, Triggering Membrane Fusion of Chick Embryonic Myoblasts
Ki Soon Shin, Jae‐Yong Park, Doo Bong Ha, Chin Ha Chung, Man‐Sik Kang
SJR Q2Developmental Biology
Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|24 citations·2008
Expression of Kir2.1 Channels in Astrocytes Under Pathophysiological Conditions
Shin Jung Kang, Sanghee Cho, Kyungjoon Park, Jihyun Yi, Soon Ji Yoo, Ki Soon Shin
SJR Q1Molecules and CellsOA

Astrocyte ion channels participate in ionic homeostasis in the brain. Inward rectifying potassium channels (Kir channels) in astrocytes have been particularly implicated in K(+) homeostasis because of their high open probability at resting potential and their increased conductance at high concentrations of extracellular K(+). We examined the expression of the Kir2.1 subunit, one of the Kir channel subunits, in the mouse brain by immunohistochemistry. Kir2.1 channels were widely distributed throu

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|24 citations·1997
A possible role of inwardly rectifying K+ channels in chick myoblast differentiation
Ki Soon Shin, Joo‐Young Park, Hataek Kwon, Chan‐Hwa Chung, Mingyeong Kang
SJR Q1American Journal of Physiology-Cell Physiology

We examined the developmental change of inwardly rectifying K+ channels (IRK) and its possible role in myogenesis. Northern blot analysis revealed an increase in the level of IRK mRNA during myogenesis. Accordingly, IRK current was not detectable in replicating myoblasts but first appeared in aligned myoblasts that were competent for fusion and gradually increased thereafter. The time course change of IRK activity was closely related to the increase in resting membrane potential during myogenesi

Molecular BiologyBiochemistry, Genetics and Molecular Biology
8
Article|20 citations·1997
Opposite Effect of Intracellular Ca2+ and Protein Kinase C on the Expression of Inwardly Rectifying K+Channel 1 in Mouse Skeletal Muscle
Ki Soon Shin, Jae‐Yong Park, Hyockman Kwon, Chin Ha Chung, Man‐Sik Kang
SJR Q1Journal of Biological ChemistryOA

The level of inwardly rectifying K+ channel 1 (IRK1) mRNA decreased upon denervation and increased during muscle differentiation in mouse skeletal muscle. To identify the mechanism(s) underlying the regulation of IRK1 mRNA expression, we examined its expression using the well differentiated C2C12 mouse skeletal muscle cell line as a model system. Since nerve-induced muscle activity results in contraction, it was questioned whether the changes in IRK1 expression might be relevant to the increased

Molecular BiologyBiochemistry, Genetics and Molecular Biology
9
Article|15 citations·2018
Chronic social defeat stress-induced enhancement of T-type calcium channels increases burst-firing neurons in the ventral subiculum
Soonje Lee, ChangWoo Lee, Changsu Woo, Shin Jung Kang, Ki Soon Shin
SJR Q2Biochemical and Biophysical Research Communications
Cellular and Molecular NeuroscienceNeuroscience
10
Article|12 citations·2019
Chronic social defeat stress increases burst firing of nucleus accumbens-projecting ventral subicular neurons in stress-susceptible mice
Soonje Lee, ChangWoo Lee, Changsu Woo, Shin Jung Kang, Ki Soon Shin
SJR Q2Biochemical and Biophysical Research Communications
Cellular and Molecular NeuroscienceNeuroscience
11
Article|6 citations·2021
Auditory fear conditioning facilitates neurotransmitter release at lateral amygdala to basal amygdala synapses
Kyuhyun Choi, Kyungjoon Park, Soonje Lee, Jee Hyun Yi, Changsu Woo, Shin Jung Kang, Ki Soon Shin
SJR Q2Biochemical and Biophysical Research Communications
Cognitive NeuroscienceNeuroscience
12
Article|6 citations·2018
Differential regulation of neuronal excitability by nicotine and substance P in subdivisions of the medial habenula
Chang‐Woo Lee, Soonje Lee, Changsu Woo, Shin Jung Kang, Yunhee Kim Kwon, Ki Soon Shin
SJR Q1Animal Cells and SystemsOA

The medial habenula (MHb) plays an important role in nicotine-related behaviors, such as aversion and withdrawal. The MHb is composed of distinct subregions with unique neurotransmitter expression and neuronal connectivity. Here, we showed that nicotine and substance P (SP) differentially regulate neuronal excitability in subdivisions of the MHb (ventrolateral division, MHbVL; dorsal division; MHbD and superior division: MHbS). Nicotine remarkably increased spontaneous neuronal firing in the MHb

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|2 citations·2022
Presynaptic HCN channel activity is required for the expression of long-term potentiation at lateral amygdala to basal amygdala synapses
Kyuhyun Choi, Jee Hyun Yi, Changwoo Lee, Kyungjoon Park, Shin Jung Kang, Ki Soon Shin
SJR Q2Biochemical and Biophysical Research Communications
Cellular and Molecular NeuroscienceNeuroscience
15
Article|0 citations·2023
314P Concordance of somatic variants between circulating tumor DNA and tissue in patients with breast cancer
Ki Soon Shin, M.R. Park, E.H. Cho, Hee Jin Park, H-Y. Woo, M-J. Kwon
SJR Q1Annals of OncologyOA
Cancer ResearchBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyCellular and Molecular NeuroscienceNeurologyOncologyCognitive NeuroscienceBehavioral Neuroscience

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