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Sun Wook Hwang

Korea University · 神経科学

研究室紹介

Professor Sun Wook Hwang's research lab focuses on the molecular mechanisms of sensory transduction, particularly the role of transient receptor potential (TRP) ion channels in pain sensation, thermosensation, and inflammation. The lab investigates endogenous and exogenous ligands that modulate thermoTRPs—such as TRPV3, TRPA1, and TRPV1—exploring their roles in nociception and hyperalgesia. A key direction involves identifying endogenous lipid mediators, including resolvins and metabolites like farnesyl pyrophosphate, as novel activators or inhibitors of TRP channels, with implications for developing targeted analgesics. The lab combines cellular physiology, calcium imaging, and electrophysiology to dissect channel function in sensory neurons and keratinocytes.

TRP channelspain sensationendogenous ligandsresolvinsmechanosensation

Research Overview

Papers
125
Total Citations
14,193
Papers (5y)
20
Primary Field
神経科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
20total
2021
2022
2023
2024
2025
Citations per year (5y)
196total
20212022202320242025

Selected Papers

15
1
Article|1,036 citations·2000
Direct activation of capsaicin receptors by products of lipoxygenases: Endogenous capsaicin-like substances
Sun Wook Hwang, Hawon Cho, Jiyeon Kwak, Soon-Youl Lee, Chang-Joong Kang, Jooyoung Jung, Soohyun Cho, Kyung Hoon Min, Young‐Ger Suh, Donghee Kim, Uhtaek Oh
SJR Q1Proceedings of the National Academy of SciencesOA

Capsaicin, a pungent ingredient of hot peppers, causes excitation of small sensory neurons, and thereby produces severe pain. A nonselective cation channel activated by capsaicin has been identified in sensory neurons and a cDNA encoding the channel has been cloned recently. However, an endogenous activator of the receptor has not yet been found. In this study, we show that several products of lipoxygenases directly activate the capsaicin-activated channel in isolated membrane patches of sensory

Sensory SystemsNeuroscience
2
Article|776 citations·2005
Impaired Thermosensation in Mice Lacking TRPV3, a Heat and Camphor Sensor in the Skin
Aziz Moqrich, Sun Wook Hwang, Taryn J. Earley, Matt Petrus, Amber N. Murray, Kathryn Spencer, Mary Andahazy, Gina M. Story, Ardem Patapoutian
SJR Q1ScienceOA

Environmental temperature is thought to be directly sensed by neurons through their projections in the skin. A subset of the mammalian transient receptor potential (TRP) family of ion channels has been implicated in this process. These "thermoTRPs" are activated at distinct temperature thresholds and are typically expressed in sensory neurons. TRPV3 is activated by heat (>33 degrees C) and, unlike most thermoTRPs, is expressed in mouse keratinocytes. We found that TRPV3 null mice have strong def

Sensory SystemsNeuroscience
3
Article|414 citations·2007
A Role of TRPA1 in Mechanical Hyperalgesia is Revealed by Pharmacological Inhibition
Matt Petrus, Andrea Peier, Michael Bandell, Sun Wook Hwang, Truc T. Huynh, Nicholas Olney, Timothy Jegla, Ardem Patapoutian
SJR Q1Molecular PainOA

Mechanical hyperalgesia is a clinically-relevant form of pain sensitization that develops through largely unknown mechanisms. TRPA1, a Transient Receptor Potential ion channel, is a sensor of pungent chemicals that may play a role in acute noxious mechanosensation and cold thermosensation. We have developed a specific small molecule TRPA1 inhibitor (AP18) that can reduce cinnameldehyde-induced nociception in vivo. Interestingly, AP18 is capable of reversing CFA-induced mechanical hyperalgesia in

Sensory SystemsNeuroscience
4
Article|172 citations·2010
Resolvin D1 attenuates activation of sensory transient receptor potential channels leading to multiple anti‐nociception
Sangsu Bang, Seung-Hyun Yoo, TJ Yang, H Cho, Yong‐Gil Kim, Sun Wook Hwang
SJR Q1British Journal of PharmacologyOA

BACKGROUND AND PURPOSE: Temperature-sensitive transient receptor potential ion channels (thermoTRPs) expressed in primary sensory neurons and skin keratinocytes play a crucial role as peripheral pain detectors. Many natural and synthetic ligands have been found to act on thermoTRPs, but little is known about endogenous compounds that inhibit these TRPs. Here, we asked whether resolvin D1 (RvD1), a naturally occurring anti-inflammatory and pro-resolving lipid molecule is able to affect the TRP ch

Sensory SystemsNeuroscience
5
Article|150 citations·2007
Transient receptor potential V2 expressed in sensory neurons is activated by probenecid
Sangsu Bang, Kyung Yoon Kim, Sungjae Yoo, Sang‐Heon Lee, Sun Wook Hwang
SJR Q2Neuroscience Letters
Sensory SystemsNeuroscience
6
Article|148 citations·2013
tmc-1 encodes a sodium-sensitive channel required for salt chemosensation in C. elegans
Marios Chatzigeorgiou, Sangsu Bang, Sun Wook Hwang, William R Schafer
SJR Q1NatureOA
Endocrine and Autonomic SystemsNeuroscience
7
Article|148 citations·2011
17(R)‐resolvin D1 specifically inhibits transient receptor potential ion channel vanilloid 3 leading to peripheral antinociception
Sangsu Bang, Seung-Hyun Yoo, TJ Yang, Hyeseong Cho, Sun Wook Hwang
SJR Q1British Journal of PharmacologyOA

BACKGROUND AND PURPOSE: Transient receptor potential ion channel vanilloid 3 (TRPV3) is expressed in skin keratinocytes and plays an important role in thermal and chemical nociceptions in the periphery. The presence of TRPV3 inhibitors would improve our understanding of TRPV3 function and help to develop receptor-specific analgesics. However, little is known about physiological substances that specifically inhibit TRPV3 activity. Here, we investigated whether 17(R)-resolvin D1 (17R-RvD1), a natu

Sensory SystemsNeuroscience
8
Article|131 citations·2010
Farnesyl Pyrophosphate Is a Novel Pain-producing Molecule via Specific Activation of TRPV3
Sangsu Bang, Sungjae Yoo, Tae‐Jin Yang, Hawon Cho, Sun Wook Hwang
SJR Q1Journal of Biological ChemistryOA

Temperature-sensitive transient receptor potential ion channels (thermoTRPs) expressed in epidermal keratinocytes and sensory afferents play an important role as peripheral pain detectors for our body. Many natural and synthetic compounds have been found to act on the thermoTRPs leading to altered nociception, but little is known about endogenous painful molecules activating TRPV3. Here, we show that farnesyl pyrophosphate (FPP), an intermediate metabolite in the mevalonate pathway, specifically

Sensory SystemsNeuroscience
9
Article|127 citations·2009
Comparison of growth factor and cytokine expression in patients with degenerated disc disease and herniated nucleus pulposus
S. C. Lee, Chan Sam Moon, Donggeun Sul, Ji‐Young Lee, Minyoung Bae, Youngki Hong, Min Young Lee, Seonyoung Choi, Richard Derby, Byung‐Jo Kim, Juhan Kim, Joon-Sik Yoon
SJR Q2Clinical Biochemistry
Pathology and Forensic MedicineMedicine
10
Article|117 citations·2007
Transient receptor potential A1 mediates acetaldehyde‐evoked pain sensation
Sangsu Bang, Kyung Yoon Kim, Sungjae Yoo, Yoon Gyoon Kim, Sun Wook Hwang
SJR Q2European Journal of Neuroscience

Six transient receptor potential (TRP) ion channels expressed in the sensory afferents play an important role as body thermosensors and also as peripheral pain detectors. It is known that a number of natural compounds specifically activate those sensory neuronal TRP channels, and a well-known example is cinnamaldehyde for TRPA1. Here we show that human and mouse TRPA1 are activated by acetaldehyde, an intermediate substance of ethanol metabolism, in the HEK293T cell heterologous expression syste

Sensory SystemsNeuroscience
11
Article|91 citations·2011
Isopentenyl pyrophosphate is a novel antinociceptive substance that inhibits TRPV3 and TRPA1 ion channels
Sangsu Bang, Sungjae Yoo, Tae‐Jin Yang, Hawon Cho, Sun Wook Hwang
SJR Q1Pain

Transient receptor potential ion channels (TRPs) expressed in the periphery sense and electrically transduce noxious stimuli to transmit the signals to the brain. Many natural and synthetic ligands for the sensory TRPs have been found, but little is known about endogenous inhibitors of these TRP channels. Recently, we reported that farnesyl pyrophosphate, an endogenous substance produced in the mevalonate pathway, is a specific activator for TRPV3. Here, we show that isopentenyl pyrophosphate (I

Sensory SystemsNeuroscience
12
Review|64 citations·2002
Hot channels in airways: pharmacology of the vanilloid receptor
Sun Wook Hwang
SJR Q1Current Opinion in Pharmacology
Sensory SystemsNeuroscience
13
Review|58 citations·2018
Depolarizing Effectors of Bradykinin Signaling in Nociceptor Excitation in Pain Perception
Seung-In Choi, Sun Wook Hwang
SJR Q1Biomolecules & TherapeuticsOA

Inflammation is one of the main causes of pathologic pain. Knowledge of the molecular links between inflammatory signals and pain-mediating neuronal signals is essential for understanding the mechanisms behind pain exacerbation. Some inflammatory mediators directly modulate the excitability of pain-mediating neurons by contacting the receptor molecules expressed in those neurons. For decades, many discoveries have accumulated regarding intraneuronal signals from receptor activation through elect

Sensory SystemsNeuroscience
14
Article|57 citations·2012
Nociceptive and pro‐inflammatory effects of dimethylallyl pyrophosphate via TRPV4 activation
Sangsu Bang, Seung-Hyun Yoo, TJ Yang, Hyeseong Cho, Sun Wook Hwang
SJR Q1British Journal of PharmacologyOA

BACKGROUND AND PURPOSE: Sensory neuronal and epidermal transient receptor potential ion channels (TRPs) serve an important role as pain sensor molecules. While many natural and synthetic ligands for sensory TRPs have been identified, little is known about the endogenous activator for TRPV4. Recently, we reported that endogenous metabolites produced by the mevalonate pathway regulate the activities of sensory neuronal TRPs. Here, we show that dimethylallyl pyrophosphate (DMAPP), a substance produ

Sensory SystemsNeuroscience
15
Review|54 citations·2015
Biological Roles of Resolvins and Related Substances in the Resolution of Pain
Ji Yeon Lim, Chul‐Kyu Park, Sun Wook Hwang
SJR Q2BioMed Research InternationalOA

Endogenous pain-inhibitory substances have rarely been found. A group of powerful pain suppressor molecules that are endogenously generated are now emerging: resolvins and related compounds including neuroprotectins and maresins. These molecules began to be unveiled in a series of inflammation studies more than a decade ago, rapidly shifting the paradigm that explains the mechanism for the inflammatory phase switch. The resolution phase was considered a passive process as proinflammatory mediato

Nutrition and DieteticsNursing

Research Areas

Sensory SystemsPhysiologyMolecular BiologyCellular and Molecular NeurosciencePublic Health, Environmental and Occupational HealthDermatology

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