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Hana Cho

Sungkyunkwan University · 生化学・遺伝学・分子生物学

研究室紹介

Professor Hana Cho's research lab focuses on cellular and molecular mechanisms underlying physiological regulation in the cardiovascular, gastrointestinal, and nervous systems. Key research directions include the role of reactive oxygen species (e.g., H2O2, HOCl) in vascular and gut homeostasis, ion channel modulation by neurotransmitters like serotonin and adrenergic agonists, and the emerging role of low-complexity domains and phase separation in subcellular organization. The lab integrates electrophysiology, live imaging, and molecular biology to dissect signaling pathways in disease-relevant contexts such as fibrosis, inflammation, and vascular tone regulation.

ion channelsreactive oxygen speciesphase separationvascular toneneurotransmitter signaling

Research Overview

Papers
90
Total Citations
2,151
Papers (5y)
17
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)
17total
2021
2022
2023
2024
2025
Citations per year (5y)
166total
20212022202320242025

Selected Papers

15
1
Article|84 citations·2016
TrpA1 Regulates Defecation of Food-Borne Pathogens under the Control of the Duox Pathway
Eun Jo Du, Tae Jung Ahn, Ilmin Kwon, Ji Hye Lee, Jeong-Ho Park, Sun Hwa Park, Tong Mook Kang, Hana Cho, Tae Jin Kim, Hyung-Wook Kim, Youngsoo Jun, Hee Jae Lee
SJR Q1PLoS GeneticsOA

Pathogen expulsion from the gut is an important defense strategy against infection, but little is known about how interaction between the intestinal microbiome and host immunity modulates defecation. In Drosophila melanogaster, dual oxidase (Duox) kills pathogenic microbes by generating the microbicidal reactive oxygen species (ROS), hypochlorous acid (HOCl) in response to bacterially excreted uracil. The physiological function of enzymatically generated HOCl in the gut is, however, unknown asid

ImmunologyImmunology and Microbiology
2
Article|66 citations·2017
Cdon deficiency causes cardiac remodeling through hyperactivation of WNT/β-catenin signaling
Myong‐Ho Jeong, Hyun-Ji Kim, Jung-Hoon Pyun, Kyu-Sil Choi, Dong I. Lee, Soroosh Solhjoo, Brian O’Rourke, Gordon F. Tomaselli, Dong Seop Jeong, Hana Cho, Jong-Sun Kang
SJR Q1Proceedings of the National Academy of SciencesOA

hearts exhibit hyperactive Wnt signaling as evident by β-catenin accumulation and Axin2 up-regulation. On the other hand, the treatment of rat cardiomyocytes with a Wnt activator TWS119 reduces Cdon levels and aberrant Cx43 activities, similarly to Cdon-deficient cardiomyocytes, suggesting a negative feedback between Cdon and Wnt signaling. Finally, inhibition of Wnt/β-catenin signaling by XAV939, IWP2 or dickkopf (DKK)1 prevented Cdon depletion-induced up-regulation of collagen 1a and Cx43. Tak

Cardiology and Cardiovascular MedicineMedicine
3
Article|65 citations·2001
Phosphatidylinositol 4,5-Bisphosphate Is Acting as a Signal Molecule in α1-Adrenergic Pathway via the Modulation of Acetylcholine-activated K+ Channels in Mouse Atrial Myocytes
Hana Cho, Gi‐Byoung Nam, Suk‐Ho Lee, Yung E. Earm, Won‐Kyung Ho
SJR Q1Journal of Biological ChemistryOA

We have investigated the effect of alpha(1)-adrenergic agonist phenylephrine (PE) on acetylcholine-activated K(+) currents (I(KACh)). I(KACh) was recorded in mouse atrial myocytes using the patch clamp technique. I(KACh) was activated by 10 microm ACh and the current decreased by 44.27 +/- 2.38% (n = 12) during 4 min due to ACh-induced desensitization. When PE was applied with ACh, the extent of desensitization was markedly increased to 69.34 +/- 2.22% (n = 9), indicating the presence of PE-indu

Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|56 citations·2014
Hydrogen peroxide induces vasorelaxation by enhancing 4-aminopyridine-sensitive Kv currents through S-glutathionylation
Sang Woong Park, Hyun Ju Noh, Dong Jun Sung, Jae Gon Kim, Jeong‐Min Kim, Shin‐Young Ryu, KyeongJin Kang, Bokyung Kim, Young Min Bae, Hana Cho
SJR Q1Pflügers Archiv - European Journal of PhysiologyOA

Hydrogen peroxide (H2O2) is an endothelium-derived hyperpolarizing factor. Since opposing vasoactive effects have been reported for H2O2 depending on the vascular bed and experimental conditions, this study was performed to assess whether H2O2 acts as a vasodilator in the rat mesenteric artery and, if so, to determine the underlying mechanisms. H2O2 elicited concentration-dependent relaxation in mesenteric arteries precontracted with norepinephrine. The vasodilatory effect of H2O2 was reversed b

PhysiologyMedicine
5
Review|55 citations·2022
Phase separation of low-complexity domains in cellular function and disease
Jiwon Lee, Hana Cho, Ilmin Kwon
SJR Q1Experimental & Molecular MedicineOA

In this review, we discuss the ways in which recent studies of low-complexity (LC) domains have challenged our understanding of the mechanisms underlying cellular organization. LC sequences, long believed to function in the absence of a molecular structure, are abundant in the proteomes of all eukaryotic organisms. Over the past decade, the phase separation of LC domains has emerged as a fundamental mechanism driving dynamic multivalent interactions of many cellular processes. We review the key

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|53 citations·2013
Serotonin contracts the rat mesenteric artery by inhibiting 4-aminopyridine-sensitive Kv channels via the 5-HT2A receptor and Src tyrosine kinase
Dong Jun Sung, Hyun Ju Noh, Jae Gon Kim, Sang Woong Park, Bokyung Kim, Hana Cho, Young Min Bae
SJR Q1Experimental & Molecular MedicineOA

Serotonin (5-hydroxytryptamine (5-HT)) is a neurotransmitter that regulates a variety of functions in the nervous, gastrointestinal and cardiovascular systems. Despite such importance, 5-HT signaling pathways are not entirely clear. We demonstrated previously that 4-aminopyridine (4-AP)-sensitive voltage-gated K+ (Kv) channels determine the resting membrane potential of arterial smooth muscle cells and that the Kv channels are inhibited by 5-HT, which depolarizes the membranes. Therefore, we hyp

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|40 citations·2001
Inhibition of acetylcholine‐activated K+ currents by U73122 is mediated by the inhibition of PIP2‐channel interaction
Hana Cho, Jae Boum Youm, Shin Young Ryu, Yung E. Earm, Won‐Kyung Ho
SJR Q1British Journal of PharmacologyOA

1. We have investigated the effect of U73122, a specific inhibitor of phospholipase C (PLC), on acetylcholine-activated K(+) currents (I(KACh)) in mouse atrial myocytes. 2. In perforated patch clamp mode, I(KACh) was activated by 10 microM acetylcholine. When atrial myocytes were pretreated with U73122 or U73343, I(KACh) was inhibited dose-dependently (half-maximal inhibition at 0.12+/-0.0085 and 0.16+/-0.0176 microM, respectively). The current-voltage relationships for I(KACh) in the absence an

Cardiology and Cardiovascular MedicineMedicine
8
Article|38 citations·2013
A KCNQ1 mutation causes age-dependant bradycardia and persistent atrial fibrillation
Chang‐Seok Ki, Chae Lim Jung, Hyunji Kim, Kwan‐Hyuck Baek, Seung‐Jung Park, Young Keun On, Ki‐Suk Kim, Su Jin Noh, Jae Boum Youm, June Soo Kim, Hana Cho
SJR Q1Pflügers Archiv - European Journal of Physiology
Cardiology and Cardiovascular MedicineMedicine
9
Article|31 citations·2018
Estrogen modulates serotonin effects on vasoconstriction through Src inhibition
Jae Gon Kim, Young-Eun Leem, Ilmin Kwon, Jong‐Sun Kang, Young Min Bae, Hana Cho
SJR Q1Experimental & Molecular MedicineOA

Estrogen has diverse effects on cardiovascular function, including regulation of the contractile response to vasoactive substances such as serotonin. The serotonin system recently emerged as an important player in the regulation of vascular tone in humans. However, hyperreactivity to serotonin appears to be a critical factor for the pathophysiology of hypertension. In this study, we examined the modulatory mechanisms of estrogen in serotonin-induced vasoconstriction by using a combinatory approa

Endocrinology, Diabetes and MetabolismMedicine
10
Article|31 citations·2002
Acetylcholine-induced Phosphatidylinositol 4,5-Bisphosphate Depletion Does Not Cause Short-term Desensitization of G Protein-gated Inwardly Rectifying K+ Current in Mouse Atrial Myocytes
Hana Cho, Ji Young Hwang, Daesoo Kim, Hee‐Sup Shin, Yangmi Kim, Yung E. Earm, Won‐Kyung Ho, Yung E. Earm, Won‐Kyung Ho
SJR Q1Journal of Biological ChemistryOA

Depletion of phosphatidylinositol 4,5-bisphosphate (PIP(2)) induced by phenylephrine or endothelin causes the inhibition of acetylcholine-activated K(+) current (I(KACh)) in atrial myocytes. In the present study, we have investigated the hypothesis that muscarinic receptor induced PIP(2) depletion also causes inhibition of I(KACh), resulting in desensitization. We confirmed the expression of G(q)-coupled muscarinic receptors in mouse atrial myocytes using reverse transcriptase-polymerase chain r

Cardiology and Cardiovascular MedicineMedicine
11
Review|31 citations·2012
Basic Science of Cardiac Resynchronization Therapy
Hana Cho, Andreas S. Barth, Gordon F. Tomaselli
SJR Q1Circulation Arrhythmia and ElectrophysiologyOA
Cardiology and Cardiovascular MedicineMedicine
12
Article|29 citations·2019
Methylation determines the extracellular calcium sensitivity of the leak channel NALCN in hippocampal dentate granule cells
Seul Yi Lee, Tuan Anh Vuong, Xianlan Wen, Hyeon‐Ju Jeong, Hyun-Kyung So, Ilmin Kwon, Jong‐Sun Kang, Hana Cho
SJR Q1Experimental & Molecular MedicineOA

Abstract The sodium leak channel NALCN is a key player in establishing the resting membrane potential (RMP) in neurons and transduces changes in extracellular Ca 2+ concentration ([Ca 2+ ] e ) into increased neuronal excitability as the downstream effector of calcium-sensing receptor (CaSR). Gain-of-function mutations in the human NALCN gene cause encephalopathy and severe intellectual disability. Thus, understanding the regulatory mechanisms of NALCN is important for both basic and translationa

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|28 citations·2010
Cholesterol Inhibits M-type K+ Channels via Protein Kinase C-dependent Phosphorylation in Sympathetic Neurons
Seul Yi Lee, Hyun‐Kyung Choi, Seong‐Tae Kim, Sungkwon Chung, Myoung Kyu Park, Jung-Hwa Cho, Won‐Kyung Ho, Hana Cho
SJR Q1Journal of Biological ChemistryOA

M-type (KCNQ) potassium channels play an important role in regulating the action potential firing in neurons. Here, we investigated the effect of cholesterol on M current in superior cervical ganglion (SCG) sympathetic neurons, using the patch clamp technique. M current was inhibited in a dose-dependent manner by cholesterol loading with a methyl-beta-cyclodextrin-cholesterol complex. This effect was prevented when membrane cholesterol level was restored by including empty methyl-beta-cyclodextr

Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Article|25 citations·2001
Inhibition of acetylcholine-activated K+ current by chelerythrine and bisindolylmaleimide I in atrial myocytes from mice
Hana Cho, Jae Boum Youm, Yung E. Earm, Won-Kyung Ho
SJR Q1European Journal of Pharmacology
Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
Article|25 citations·2019
The inhibition of chloride intracellular channel 1 enhances Ca2+ and reactive oxygen species signaling in A549 human lung cancer cells
Jae-Rin Lee, Jong-Yoon Lee, Hyun‐Ji Kim, Myong‐Joon Hahn, Jong‐Sun Kang, Hana Cho
SJR Q1Experimental & Molecular MedicineOA

Abstract Chloride intracellular channel 1 (CLIC1) is a promising therapeutic target in cancer due to its intrinsic characteristics; it is overexpressed in specific tumor types and its localization changes from cytosolic to surface membrane depending on activities and cell cycle progression. Ca 2+ and reactive oxygen species (ROS) are critical signaling molecules that modulate diverse cellular functions, including cell death. In this study, we investigated the function of CLIC1 in Ca 2+ and ROS s

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyCardiology and Cardiovascular MedicineCellular and Molecular NeuroscienceCell BiologyCognitive NeurosciencePhysiology

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