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Jong‐Woo Sohn

Korea Advanced Institute of Science and Technology · Neuroscience

About the Lab

Professor Jong-Woo Sohn's research lab focuses on the neural and cellular mechanisms underlying energy balance, metabolism, and neurological disorders, with a central emphasis on hypothalamic neuronal circuits. The lab investigates how specific neuronal populations—particularly POMC and NPY/AgRP neurons—in the arcuate nucleus regulate appetite and energy homeostasis, and how disruptions in ciliary function, signaling pathways (e.g., PI3K, G(q)PCR), and genetic mosaicism contribute to obesity and metabolic syndrome. The lab also explores the pathophysiological mechanisms of drug-induced metabolic side effects, such as those caused by atypical antipsychotics, and their impact on neural circuitry and glucose metabolism. Using a combination of electrophysiology, optogenetics, transcriptomics, and in vivo behavioral models, the lab aims to uncover molecular and circuit-level targets for treating metabolic and neuropsychiatric disorders.

hypothalamic circuitsmetabolic regulationprimary cilianeuronal excitabilitydrug-induced obesity

Research Overview

Papers
87
Total Citations
3,864
Papers (5y)
27
Primary Field
Neuroscience

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
27total
2022
2023
2024
2025
2026
Citations per year (5y)
223total
20222023202420252026

Selected Papers

15
1
Review|317 citations·2015
Network of hypothalamic neurons that control appetite
Jong‐Woo Sohn
SJR Q1BMB ReportsOA

The central nervous system (CNS) controls food intake and energy expenditure via tight coordinations between multiple neuronal populations. Specifically, two distinct neuronal populations exist in the arcuate nucleus of hypothalamus (ARH): the anorexigenic (appetite-suppressing) pro-opiomelanocortin (POMC) neurons and the orexigenic (appetite-increasing) neuropeptide Y (NPY)/agouti-related peptide (AgRP) neurons. The coordinated regulation of neuronal circuit involving these neurons is essential

Endocrine and Autonomic SystemsNeuroscience
2
Review|269 citations·2013
Neuronal circuits that regulate feeding behavior and metabolism
Jong‐Woo Sohn, Joel K. Elmquist, Kevin W. Williams
SJR Q1Trends in Neurosciences
Endocrine and Autonomic SystemsNeuroscience
3
Article|209 citations·2013
Melanocortin 4 Receptors Reciprocally Regulate Sympathetic and Parasympathetic Preganglionic Neurons
Jong‐Woo Sohn, Louise E. Harris, Eric D. Berglund, Tiemin Liu, Linh Vong, Bradford B. Lowell, Nina Balthasar, Kevin W. Williams, Joel K. Elmquist
SJR Q1CellOA
Endocrine and Autonomic SystemsNeuroscience
4
Article|188 citations·2011
Serotonin 2C Receptor Activates a Distinct Population of Arcuate Pro-opiomelanocortin Neurons via TRPC Channels
Jong‐Woo Sohn, Yong Xu, Juli E. Jones, Kevin Wickman, Kevin W. Williams, Joel K. Elmquist
SJR Q1NeuronOA
Endocrine and Autonomic SystemsNeuroscience
5
Article|53 citations·2007
Receptor‐specific inhibition of GABAB‐activated K+ currents by muscarinic and metabotropic glutamate receptors in immature rat hippocampus
Jong‐Woo Sohn, Doyun Lee, Hana Cho, Wonil Lim, Hee‐Sup Shin, Suk‐Ho Lee, Won‐Kyung Ho
SJR Q1The Journal of PhysiologyOA

It has been shown that the activation of G(q)-coupled receptors (G(q)PCRs) in cardiac myocytes inhibits the G protein-gated inwardly rectifying K(+) current (I(GIRK)) via receptor-specific depletion of phosphatidylinositol 4,5-bisphosphate (PIP(2)). In this study, we investigated the mechanism of the receptor-mediated regulation of I(GIRK) in acutely isolated hippocampal CA1 neurons by the muscarinic receptor agonist, carbachol (CCh), and the group I metabotropic glutamate receptor (mGluR) agoni

Cellular and Molecular NeuroscienceNeuroscience
6
Article|52 citations·2020
Primary cilia mediate early life programming of adiposity through lysosomal regulation in the developing mouse hypothalamus
Chan Hee Lee, Do Kyeong Song, Chae Beom Park, Jeewon Choi, Gil Myoung Kang, Sung Shin, Ijoo Kwon, So‐Young Park, Seong‐Jun Kim, Jee Ye Kim, Hong Dugu, Jae-Woo Park
SJR Q1Nature CommunicationsOA

Hypothalamic neurons including proopiomelanocortin (POMC)-producing neurons regulate body weights. The non-motile primary cilium is a critical sensory organelle on the cell surface. An association between ciliary defects and obesity has been suggested, but the underlying mechanisms are not fully understood. Here we show that inhibition of ciliogenesis in POMC-expressing developing hypothalamic neurons, by depleting ciliogenic genes IFT88 and KIF3A, leads to adulthood obesity in mice. In contrast

GeneticsBiochemistry, Genetics and Molecular Biology
7
Article|50 citations·2021
Non–Cell Autonomous Epileptogenesis in Focal Cortical Dysplasia
Hyun Yong Koh, Jaeson Jang, Sang Hyeon Ju, Ryunhee Kim, Gyu‐Bon Cho, Dong Seok Kim, Jong‐Woo Sohn, Se‐Bum Paik, Jeong Ho Lee
SJR Q1Annals of NeurologyOA

OBJECTIVE: Low-level somatic mosaicism in the brain has been shown to be a major genetic cause of intractable focal epilepsy. However, how a relatively few mutation-carrying neurons are able to induce epileptogenesis at the local network level remains poorly understood. METHODS: To probe the origin of epileptogenesis, we measured the excitability of neurons with MTOR mutation and nearby nonmutated neurons recorded by whole-cell patch-clamp and array-based electrodes comparing the topographic dis

Psychiatry and Mental healthMedicine
8
Article|49 citations·2016
Leptin and insulin engage specific PI3K subunits in hypothalamic SF1 neurons
Jong‐Woo Sohn, Youjin Oh, Ki Woo Kim, Syann Lee, Kevin W. Williams, Joel K. Elmquist
SJR Q1Molecular MetabolismOA

Our results demonstrate that specific PI3K catalytic subunits are responsible for the acute effects of leptin and insulin on VMH SF1 neurons, and provide insights into the cellular mechanisms of leptin and insulin action on VMH SF1 neurons that regulate energy balance and glucose homeostasis.

Endocrine and Autonomic SystemsNeuroscience
9
Review|44 citations·2020
Cellular and systemic mechanisms for glucose sensing and homeostasis
Jong‐Woo Sohn, Won‐Kyung Ho
SJR Q1Pflügers Archiv - European Journal of Physiology
SurgeryMedicine
10
Review|43 citations·2012
Functional Heterogeneity of Arcuate Nucleus Pro-Opiomelanocortin Neurons: Implications for Diverging Melanocortin Pathways
Jong‐Woo Sohn, Kevin W. Williams
SJR Q1Molecular Neurobiology
Endocrine and Autonomic SystemsNeuroscience
11
Review|34 citations·2018
Understanding melanocortin-4 receptor control of neuronal circuits: Toward novel therapeutics for obesity syndrome
Sang Hyeon Ju, Gyu‐Bon Cho, Jong‐Woo Sohn
SJR Q1Pharmacological Research
Endocrine and Autonomic SystemsNeuroscience
12
Article|34 citations·2020
A neural basis for tonic suppression of sodium appetite
S. Park, Kevin W. Williams, Chen Liu, Jong‐Woo Sohn
SJR Q1Nature NeuroscienceOA
Nutrition and DieteticsNursing
13
Article|34 citations·2021
The atypical antipsychotic risperidone targets hypothalamic melanocortin 4 receptors to cause weight gain
Li Li, Eun-Seon Yoo, Xiujuan Li, Steven C. Wyler, Xiameng Chen, Rong Wan, Amanda G. Arnold, Shari G. Birnbaum, Lin Jia, Jong‐Woo Sohn, Chen Liu
SJR Q1The Journal of Experimental MedicineOA

Atypical antipsychotics such as risperidone cause drug-induced metabolic syndrome. However, the underlying mechanisms remain largely unknown. Here, we report a new mouse model that reliably reproduces risperidone-induced weight gain, adiposity, and glucose intolerance. We found that risperidone treatment acutely altered energy balance in C57BL/6 mice and that hyperphagia accounted for most of the weight gain. Transcriptomic analyses in the hypothalamus of risperidone-fed mice revealed that rispe

Endocrine and Autonomic SystemsNeuroscience
14
Article|33 citations·2007
Decrease in PIP2–channel interactions is the final common mechanism involved in PKC‐ and arachidonic acid‐mediated inhibitions of GABAB‐activated K+current
Jong‐Woo Sohn, Ajin Lim, Suk‐Ho Lee, Won‐Kyung Ho
SJR Q1The Journal of PhysiologyOA

We showed in our previous study that in hippocampal CA1 neurons the stimulation of muscarinic receptors inhibited the GIRK current (I(GIRK)) via a PLC/PKC pathway, whereas group I metabotropic glutamate receptors (mGluR) inhibited I(GIRK) via a PLA(2)/arachidonic acid pathway. In this study, we present evidence that receptor-mediated signalling pathways activated by the two G(q)-coupled receptors (G(q)PCRs) converge on the inhibition of GIRK channel-PIP(2) interaction. I(GIRK) was activated in a

Cellular and Molecular NeuroscienceNeuroscience
15
Article|15 citations·2021
Gαi/o-coupled Htr2c in the paraventricular nucleus of the hypothalamus antagonizes the anorectic effect of serotonin agents
Eun-Seon Yoo, Li Li, Lin Jia, Caleb C. Lord, Charlotte E. Lee, Shari G. Birnbaum, Cláudia R. Vianna, Eric D. Berglund, Kathryn A. Cunningham, Yong Xu, Jong‐Woo Sohn, Chen Liu
SJR Q1Cell ReportsOA

conductance, a mechanism of action not identified previously in the mammalian nervous system.

Endocrine and Autonomic SystemsNeuroscience

Research Areas

Endocrine and Autonomic SystemsCellular and Molecular NeuroscienceSurgeryMolecular BiologyPhysiologyBehavioral Neuroscience

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