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Seog Bae Oh

Seoul National University · Medicine

About the Lab

Professor Seog Bae Oh's research lab specializes in neurobiology and pain mechanisms, with a focus on sensory neuron signaling, glial cell activation in neuropathic pain, and the role of immune cells such as NK cells in peripheral nerve injury. The lab investigates ion channels—including TRPV1 and voltage-gated sodium channels—as key mediators of pain sensation, particularly in orofacial and peripheral neuropathic pain models. Using a combination of electrophysiology, immunohistochemistry, and genetic approaches, the lab explores endogenous and exogenous modulators of pain, including chemokines, lipid mediators, and natural compounds like eugenol. Their work bridges molecular mechanisms with translational applications in dental and chronic pain.

neuropathic painTRPV1 channelglial activationsensory neuronsion channels

Research Overview

Papers
195
Total Citations
6,766
Papers (5y)
33
Primary Field
Medicine

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
33total
2022
2023
2024
2025
2026
Citations per year (5y)
109total
20222023202420252026

Selected Papers

15
1
Article|464 citations·2001
Chemokines and Glycoprotein120 Produce Pain Hypersensitivity by Directly Exciting Primary Nociceptive Neurons
Seog Bae Oh, Phuong B. Tran, Samantha Gillard, Robert W. Hurley, Donna L. Hammond, Richard J. Miller
SJR Q1Journal of NeuroscienceOA

Human immunodeficiency virus-1 (HIV-1) infection is associated with numerous effects on the nervous system, including pain and peripheral neuropathies. We now demonstrate that cultured rat dorsal root ganglion (DRG) neurons express a wide variety of chemokine receptors, including those that are thought to act as receptors for the HIV-1 coat protein glycoprotein120 (gp120). Chemokines that activate all of the known chemokine receptors increased [Ca(2+)](i) in subsets of cultured DRG cells. Many n

Cellular and Molecular NeuroscienceNeuroscience
2
Article|210 citations·2006
Activation of glia and microglial p38 MAPK in medullary dorsal horn contributes to tactile hypersensitivity following trigeminal sensory nerve injury
Zheng Gen Piao, Ik‐Hyun Cho, Chul Kyu Park, Jin Pyo Hong, Se‐Young Choi, Sung Joong Lee, Seungbok Lee, Kyungpyo Park, Joong Soo Kim, Seog Bae Oh
SJR Q1Pain

Glial activation is known to contribute to pain hypersensitivity following spinal sensory nerve injury. In this study, we investigated mechanisms by which glial cell activation in medullary dorsal horn (MDH) would contribute to tactile hypersensitivity following inferior alveolar nerve and mental nerve transection (IAMNT). Activation of microglia and astrocytes was monitored at 2 h, 1, 3, 7, 14, 28, and 60 days using immunohistochemical analysis with OX-42 and GFAP antibodies, respectively. Tact

PhysiologyMedicine
3
Article|154 citations·2012
TRPV1 in GABAergic Interneurons Mediates Neuropathic Mechanical Allodynia and Disinhibition of the Nociceptive Circuitry in the Spinal Cord
Yong Ho Kim, Seung Keun Back, Alexander J. Davies, Hee-Jin Jeong, Hyun Jung Jo, Geehoon Chung, Heung Sik Na, Yong Chul Bae, Sang Jeong Kim, Joong Soo Kim, Sung Jun Jung, Seog Bae Oh
SJR Q1NeuronOA
PhysiologyMedicine
4
Article|150 citations·2019
Natural Killer Cells Degenerate Intact Sensory Afferents following Nerve Injury
Alexander J. Davies, Hyoung Woo Kim, Rafael González‐Cano, Jahyang Choi, Seung Keun Back, Seung Eon Roh, Errin Johnson, Mélanie Gabriac, Mi-Sun Kim, Jaehee Lee, Jeong Eun Lee, Yun‐Sook Kim
SJR Q1CellOA

Sensory axons degenerate following separation from their cell body, but partial injury to peripheral nerves may leave the integrity of damaged axons preserved. We show that an endogenous ligand for the natural killer (NK) cell receptor NKG2D, Retinoic Acid Early 1 (RAE1), is re-expressed in adult dorsal root ganglion neurons following peripheral nerve injury, triggering selective degeneration of injured axons. Infiltration of cytotoxic NK cells into the sciatic nerve by extravasation occurs with

ImmunologyImmunology and Microbiology
5
Article|132 citations·2006
Functional Expression of Thermo-transient Receptor Potential Channels in Dental Primary Afferent Neurons
Chul‐Kyu Park, Mi Sun Kim, Zhi Fang, Hai Ying Li, Sung Jun Jung, Se‐Young Choi, Sung Joong Lee, Kyungpyo Park, Joong Soo Kim, Seog Bae Oh
SJR Q1Journal of Biological ChemistryOA

Temperature signaling can be initiated by members of transient receptor potential family (thermo-TRP) channels. Hot and cold substances applied to teeth usually elicit pain sensation. This study investigated the expression of thermo-TRP channels in dental primary afferent neurons of the rat identified by retrograde labeling with a fluorescent dye in maxillary molars. Single cell reverse transcription-PCR and immunohistochemistry revealed expression of TRPV1, TRPM8, and TRPA1 in subsets of such n

Sensory SystemsNeuroscience
6
Article|121 citations·2009
Molecular mechanism for local anesthetic action of eugenol in the rat trigeminal system
Chul‐Kyu Park, Kihwan Kim, Sung Jun Jung, Min Ji Kim, Dong Kuk Ahn, Seong‐Doo Hong, Joong Soo Kim, Seog Bae Oh
SJR Q1Pain

Eugenol is widely used in dentistry as a local analgesic agent, because of its ability to allay tooth pain. Interestingly, eugenol shares several pharmacological actions with local anesthetics which include inhibition of voltage-gated sodium channel (VGSC) and activation of transient receptor potential vanilloid subtype 1 (TRPV1). In the present study, we investigated the effects of eugenol on pain behaviors in orofacial area, and as an attempt to elucidate its mechanism we characterized inhibit

PhysiologyMedicine
7
Article|112 citations·2008
Direct Activation of Transient Receptor Potential Vanilloid 1(TRPV1) by Diacylglycerol (DAG)
Dong Ho Woo, Sung Jun Jung, Mei Zhu, Chul-Kyu Park, Yong Ho Kim, Seog Bae Oh, C. Justin Lee
SJR Q1Molecular PainOA

The capsaicin receptor, known as transient receptor potential channel vanilloid subtype 1 (TRPV1), is activated by a wide range of noxious stimulants and putative ligands such as capsaicin, heat, pH, anandamide, and phosphorylation by protein kinase C (PKC). However, the identity of endogenous activators for TRPV1 under physiological condition is still debated. Here, we report that diacylglycerol (DAG) directly activates TRPV1 channel in a membrane-delimited manner in rat dorsal root ganglion (D

Sensory SystemsNeuroscience
8
Review|100 citations·2010
Role of TRP Channels in Pain Sensation
Man‐Kyo Chung, Sung Jun Jung, Seog Bae Oh
SJR Q3Advances in experimental medicine and biology
Sensory SystemsNeuroscience
9
Review|95 citations·2013
Cellular and Molecular Mechanisms of Dental Nociception
Gehoon Chung, Sung Jun Jung, Seog Bae Oh
SJR Q1Journal of Dental Research

Due, in part, to the unique structure of the tooth, dental pain is initiated via distinct mechanisms. Here we review recent advances in our understanding of inflammatory tooth pain and discuss 3 hypotheses proposed to explain dentinal hypersensitivity: The first hypothesis, supported by functional expression of temperature-sensitive transient receptor potential channels, emphasizes the direct transduction of noxious temperatures by dental primary afferent neurons. The second hypothesis, known as

Sensory SystemsNeuroscience
10
Article|83 citations·2002
Regulation of calcium currents by chemokines and their receptors
Seog Bae Oh, Takayuki Endoh, Arthur A. Simen, Dongjun Ren, Richard J. Miller
SJR Q2Journal of Neuroimmunology
Cellular and Molecular NeuroscienceNeuroscience
11
Review|69 citations·2020
Cytotoxic Immunity in Peripheral Nerve Injury and Pain
Alexander J. Davies, Simon Rinaldi, Michael Costigan, Seog Bae Oh
SJR Q2Frontiers in NeuroscienceOA

Cytotoxicity and consequent cell death pathways are a critical component of the immune response to infection, disease or injury. While numerous examples of inflammation causing neuronal sensitization and pain have been described, there is a growing appreciation of the role of cytotoxic immunity in response to painful nerve injury. In this review we highlight the functions of cytotoxic immune effector cells, focusing in particular on natural killer (NK) cells, and describe the consequent action o

PhysiologyMedicine
12
Article|65 citations·2006
Systemic administration of minocycline inhibits formalin-induced inflammatory pain in rat
Ik‐Hyun Cho, Young‐Min Chung, Chul‐Kyu Park, Seong-Hae Park, Haiying Li, Dong‐Hoon Kim, Zheng Gen Piao, Se‐Young Choi, Sung Joong Lee, Kyungpyo Park, Joong Soo Kim, Sung Jun Jung
SJR Q2Brain Research
PhysiologyMedicine
13
Article|57 citations·2014
Activation of transient receptor potential ankyrin 1 by eugenol
Gehoon Chung, Sang-Taek Im, Young‐Hee Kim, Sung Jun Jung, Mee‐Ra Rhyu, Seog Bae Oh
SJR Q2Neuroscience
Sensory SystemsNeuroscience
14
Article|56 citations·2014
σ1 receptors activate astrocytes via p38 MAPK phosphorylation leading to the development of mechanical allodynia in a mouse model of neuropathic pain
Ji Young Moon, Dae‐Hyun Roh, Seo Yeon Yoon, Sheu‐Ran Choi, Soon Gu Kwon, Han-Kyu Choi, Soojin Kang, Ho Jae Han, Alvin J. Beitz, Seog Bae Oh, Jang‐Hern Lee
SJR Q1British Journal of PharmacologyOA

BACKGROUND AND PURPOSE: Spinal astrocytes have emerged as important mechanistic contributors to the genesis of mechanical allodynia (MA) in neuropathic pain. We recently demonstrated that the spinal sigma non-opioid intracellular receptor 1 (σ1 receptor) modulates p38 MAPK phosphorylation (p-p38), which plays a critical role in the induction of MA in neuropathic rats. However, the histological and physiological relationships among σ1, p-p38 and astrocyte activation is unclear. EXPERIMENTAL APPRO

Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
Article|52 citations·2017
Piezo2 Expression in Mechanosensitive Dental Primary Afferent Neurons
Juneseok Won, Hue Vang, P.R. Lee, Y.H. Kim, H.W. Kim, Youngnam Kang, Seog Bae Oh
SJR Q1Journal of Dental Research

Mechanosensitive ion channels have been suggested to be expressed in dental primary afferent (DPA) neurons to transduce the movement of dentinal fluid since the proposal of hydrodynamic theory. Piezo2, a mechanosensitive, rapidly inactivating (RI) ion channel, has been recently identified in dorsal root ganglion (DRG) neurons to mediate tactile transduction. Here, we examined the expression of Piezo2 in DPA neurons by in situ hybridization, single-cell reverse transcriptase polymerase chain reac

PhysiologyMedicine

Research Areas

PhysiologySensory SystemsMolecular BiologyCellular and Molecular NeuroscienceOncologyImmunology

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