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Sang-Jung Kim

Seoul National University · 神経科学

研究室紹介

Professor Sang-Jung Kim's research lab focuses on the neural and molecular mechanisms underlying brain function, particularly in the context of social behavior, neurovascular regulation, and synaptic plasticity. The lab investigates how early-life experiences shape prefrontal cortical circuits and their subcortical connections, with a focus on the medial prefrontal cortex and nucleus accumbens in social recognition. It also explores the role of calcium signaling in neural progenitor cell differentiation and the function of ion channels such as TRPC in neuronal development. Additionally, the lab contributes to advanced semiconductor device technology, particularly in high-performance InP-based FETs for optoelectronic applications.

neural circuitssocial behaviorcalcium signalingTRPC channelsInP FETs

Research Overview

Papers
251
Total Citations
5,554
Papers (5y)
61
Primary Field
神経科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
61total
2022
2023
2024
2025
2026
Citations per year (5y)
296total
20222023202420252026

Selected Papers

15
1
Article|351 citations·2003
Activation of the TRPC1 cation channel by metabotropic glutamate receptor mGluR1
Sang Jeong Kim, Yu Shin Kim, Joseph P. Yuan, Ronald S. Petralia, Paul F. Worley, David J. Linden
SJR Q1Nature
Cellular and Molecular NeuroscienceNeuroscience
2
Review|195 citations·2007
Ubiquitous Plasticity and Memory Storage
Sang Jeong Kim, David J. Linden
SJR Q1NeuronOA
Cellular and Molecular NeuroscienceNeuroscience
3
Article|105 citations·2021
Social isolation impairs the prefrontal-nucleus accumbens circuit subserving social recognition in mice
Gaeun Park, Changhyeon Ryu, Soobin Kim, Se Jin Jeong, Ja Wook Koo, Yong‐Seok Lee, Sang Jeong Kim
SJR Q1Cell ReportsOA

Although medial prefrontal cortex (mPFC) is known to play important roles in social behaviors, how early social experiences affect the mPFC and its subcortical circuit remains unclear. We report that mice singly housed (SH) for 8 weeks after weaning show a social recognition deficit, even after 4 weeks of resocialization. In SH mice, prefrontal infralimbic (IL) neurons projecting to the shell region of nucleus accumbens (NAcSh) show decreased excitability compared with group-housed (GH) mice. NA

Social PsychologyPsychology
4
Article|83 citations·2011
Lobule‐specific membrane excitability of cerebellar Purkinje cells
Chang‐Hee Kim, Seung Ha Oh, Jun Ho Lee, Sun O Chang, Jun Kim, Sang Jeong Kim
SJR Q1The Journal of PhysiologyOA

Cerebellar Purkinje cells (PCs) are the sole output of the cerebellar cortex and function as key to a variety of learning-related behaviours by integrating multimodal afferent inputs. Intrinsic membrane excitability of neurons determines the input-output relationship, and therefore governs the functions of neural circuits. Cerebellar vermis consists of ten lobules (lobules I-X), and each lobule receives different sensory information. However, lobule-specific differences of electrophysiological p

NeurologyNeuroscience
5
Article|70 citations·2009
Decreased level and defective function of circulating endothelial progenitor cells in children with moyamoya disease
Jin Hyun Kim, Ji‐Hye Jung, Ji Hoon Phi, Hyun‐Seung Kang, Jeong Eun Kim, Jong‐Hee Chae, Sang Jeong Kim, Sang‐Jeong Kim, Young‐Hoon Kim, Young Yim Kim, Byung‐Kyu Cho, Kyu‐Chang Wang
SJR Q2Journal of Neuroscience Research

Circulating endothelial progenitor cells (EPCs) play an important role in physiological and pathological neovascularization and may be involved in attenuating ischemic diseases. This study aimed to characterize circulating EPCs in moyamoya disease (MMD), one of the most common pediatric cerebrovascular diseases. Twenty-eight children with MMD prior to any surgical treatment and 12 healthy volunteers were recruited. Peripheral blood mononuclear cells (PBMNCs) were isolated and cultured in endothe

RheumatologyMedicine
6
Article|67 citations·2017
Dysfunction of Microglial STAT3 Alleviates Depressive Behavior via Neuron–Microglia Interactions
Sun‐Ho Kwon, Jeong-Kyu Han, Moonseok Choi, Yong-Jin Kwon, Sung Joon Kim, Eun Hee Yi, Jae-Cheon Shin, Ik-Hyun Cho, Byung‐Hak Kim, Sang Jeong Kim, Sang‐Kyu Ye, Sang Jeong Kim
SJR Q1NeuropsychopharmacologyOA

Neuron–microglia interactions have a crucial role in maintaining the neuroimmune system. The balance of neuroimmune system has emerged as an important process in the pathophysiology of depression. However, how neuron–microglia interactions contribute to major depressive disorders has been poorly understood. Herein, we demonstrated that microglia-derived synaptic changes induced antidepressive-like behavior by using microglia-specific signal transducer and activator of transcription 3 (STAT3) kno

NeurologyNeuroscience
7
Article|55 citations·1995
Contribution of L- and N-type calcium currents to exocytosis in rat adrenal medullary chromaffin cells
Sang Jeong Kim, Wonil Lim, Jun Kim
SJR Q2Brain Research
Molecular BiologyBiochemistry, Genetics and Molecular Biology
8
Article|44 citations·1988
Monolithic integration of InGaAs p-i-n photodetector with full ion-implanted InP JFET amplifier
Sang Jeong Kim, G. D. Guth, G. P. Vella‐Coleiro, C.W. Seabury, W.A. Sponsler, Bruce J. Rhoades
SJR Q1IEEE Electron Device Letters

A monolithically integrated p-i-n FET amplifier, fabricated using ion-planted indium-phosphide (InP) JFETs, is described. The vertically integrated structure consists of a vapor-phase epitaxy (VPE)-grown InGaAs photoabsorption layer and a metal-organic-chemical-vapor-disposition (MOCVD)-grown Fe-doped semi-insulating layer. A Zn diffusion was performed to complete the p-i-n photodiode. High-performance fully implanted InP JFETS were used to form the integrated amplifier with a symmetrical design

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
9
Article|43 citations·2005
Effects of mushroom, Pleurotus eryngii, extracts on bone metabolism
Sang Jeong Kim, Hyun Soo Kim, Bor‐Shiunn Lee, H HWANG, D BAEK, S KO
SJR Q1Clinical Nutrition
Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|43 citations·2010
A Role of Canonical Transient Receptor Potential 5 Channel in Neuronal Differentiation from A2B5 Neural Progenitor Cells
Hye Young Shin, Yun Hwa Hong, Sung-Soo Jang, Hong Gu Chae, Seung Leal Paek, Seung Leal Paek, Hyo Eun Moon, Dong Gyu Kim, Jun Kim, Sun Ha Paek, Sun Ha Paek, Sang Jeong Kim
SJR Q1PLoS ONEOA

Store-operated Ca(2+) entry (SOCE) channels are the main pathway of Ca(2+) entry in non-excitable cells such as neural progenitor cells (NPCs). However, the role of SOCE channels has not been defined in the neuronal differentiation from NPCs. Here, we show that canonical transient receptor potential channel (TRPC) as SOCE channel influences the induction of the neuronal differentiation of A2B5(+) NPCs isolated from postnatal-12-day rat cerebrums. The amplitudes of SOCE were significantly higher

Sensory SystemsNeuroscience
11
Article|43 citations·2007
Long-Term Depression of mGluR1 Signaling
Yunju Jin, Sang Jeong Kim, Jun Kim, Paul F. Worley, David J. Linden
SJR Q1NeuronOA
Cellular and Molecular NeuroscienceNeuroscience
12
Article|43 citations·2018
TNF-α increases the intrinsic excitability of cerebellar Purkinje cells through elevating glutamate release in Bergmann Glia
Hyun Geun Shim, Sung-Soo Jang, Seung Ha Kim, Eun Mi Hwang, Joo-Ok Min, Hye Yun Kim, Yoo Sung Kim, Changhyeon Ryu, Geehoon Chung, Young Soo Kim, Bo-Eun Yoon, Sang Jeong Kim
SJR Q1Scientific ReportsOA

For decades, the glial function has been highlighted not only as the 'structural glue', but also as an 'active participant' in neural circuits. Here, we suggest that tumor necrosis factor α (TNF-α), a key inflammatory cytokine, alters the neural activity of the cerebellar Purkinje cells (PCs) by facilitating gliotransmission in the juvenile male rat cerebellum. A bath application of TNF-α (100 ng/ml) in acute cerebellar slices elevates spiking activity of PCs with no alterations in the regularit

Cellular and Molecular NeuroscienceNeuroscience
13
Article|36 citations·1987
A low-power high-speed ion-implanted JFET for InP-based monolithic optoelectronic IC's
Sang Jeong Kim, K.W. Wang, G. P. Vella‐Coleiro, J. Lutze, Yusuke Ota, G. D. Guth
SJR Q1IEEE Electron Device Letters

We describe a high-performance fully ion-implanted planar InP junction FET fabricated by a shallow (4000-Å) n-channel implant, an n <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">+</sup> source-drain implant to reduce FET series resistance, and a p-gate implant to form a shallow (2000-Å) abrupt p-n junction, followed by a rapid thermal activation. From FET's with gates 2 µm long, a transconductance of 50 mS/mm and an output impedance of 400 Ω.mm ar

Electrical and Electronic EngineeringEngineering
14
Article|35 citations·2002
Postsynaptic action mechanism of somatostatin on the membrane excitability in spinal substantia gelatinosa neurons of juvenile rats
Sang Jeong Kim, Won-Soon Chung, Hyewhon Rhim, Su‐Yong Eun, Sung Jun Jung, Jung I Kim
SJR Q2Neuroscience
Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
Article|32 citations·2013
Identifying neuropathic pain using 18F-FDG micro-PET: A multivariate pattern analysis
Chang-Eop Kim, Yu Kyeong Kim, Geehoon Chung, Hyung Jun Im, Dong Soo Lee, Jun Kim, Sang Jeong Kim
SJR Q1NeuroImage
PhysiologyMedicine

Research Areas

NeurologyMolecular BiologyCellular and Molecular NeurosciencePhysiologyCognitive NeuroscienceSensory Systems

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