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Young-Ho Jin

Kyung Hee University · Medicine

About the Lab

Professor Young-Ho Jin's research lab specializes in neural mechanisms underlying autonomic regulation, with a focus on the nucleus tractus solitarius (NTS) as a key integration center for visceral afferent signals. The lab investigates ion channels—particularly TRP channels (TRPA1, VR1) and purinergic receptors (P2X)—in sensory neurons and their roles in modulating synaptic transmission related to satiety, cardiovascular control, and nociception. Using electrophysiological techniques in brainstem slices and primary neuron cultures, the lab explores how neurotransmitters and endogenous ligands regulate synaptic efficacy and neuronal excitability in second-order NTS neurons. A central theme is understanding how peripheral signals from the gastrointestinal and cardiovascular systems are processed at the first synapse in the brainstem to maintain homeostasis.

nucleus tractus solitariusTRP channelssynaptic transmissionautonomic regulationvisceral afferents

Research Overview

Papers
116
Total Citations
3,230
Papers (5y)
16
Primary Field
Medicine

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
16total
2019
2020
2022
2023
2024
Citations per year (5y)
100total
20192020202220232024

Selected Papers

15
1
Article|193 citations·2005
Proopiomelanocortin Neurons in Nucleus Tractus Solitarius Are Activated by Visceral Afferents: Regulation by Cholecystokinin and Opioids
Suzanne M. Appleyard, Timothy W. Bailey, Mark Doyle, Young‐Ho Jin, James L. Smart, Malcolm J. Low, Michael Andresen
SJR Q1Journal of NeuroscienceOA

The nucleus tractus solitarius (NTS) receives dense terminations from cranial visceral afferents, including those from the gastrointestinal (GI) system. Although the NTS integrates peripheral satiety signals and relays this signal to central feeding centers, little is known about which NTS neurons are involved or what mechanisms are responsible. Proopiomelanocortin (POMC) neurons are good candidates for GI integration, because disruption of the POMC gene leads to severe obesity and hyperphagia.

Endocrine and Autonomic SystemsNeuroscience
2
Article|190 citations·2001
Intestinal bacterial β-glucuronidase activity of patients with colon cancer
Dong‐Hyun Kim, Youngho Jin
SJR Q1Archives of Pharmacal Research
Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|181 citations·2004
Purinergic and Vanilloid Receptor Activation Releases Glutamate from Separate Cranial Afferent Terminals in Nucleus Tractus Solitarius
Young‐Ho Jin, Timothy W. Bailey, Bai‐Yan Li, John H. Schild, Michael Andresen
SJR Q1Journal of NeuroscienceOA

Vanilloid (VR1) and purinergic (P2X) receptors are found in cranial afferent neurons in nodose ganglia and their central terminations within the solitary tract nucleus (NTS), but little is known about their function. We mechanically dissociated dorsomedial NTS neurons to preserve attached native synapses and tested for VR1 and P2X function primarily in spindle-shaped neurons resembling intact second-order neurons. All neurons (n = 95) exhibited spontaneous glutamate (EPSCs) and GABA (IPSCs)-medi

Endocrine and Autonomic SystemsNeuroscience
4
Review|155 citations·2015
Production and applications of rosmarinic acid and structurally related compounds
Gun‐Dong Kim, Yong Seek Park, Young‐Ho Jin, Cheung‐Seog Park
SJR Q1Applied Microbiology and Biotechnology
BiochemistryMedicine
5
Article|136 citations·2002
Vanilloid Receptors Presynaptically Modulate Cranial Visceral Afferent Synaptic Transmission in Nucleus Tractus Solitarius
Mark Doyle, Timothy W. Bailey, Young‐Ho Jin, Michael Andresen
SJR Q1Journal of NeuroscienceOA

Although the central terminals of cranial visceral afferents express vanilloid receptor 1 (VR1), little is known about their functional properties at this first synapse within the nucleus tractus solitarius (NTS). Here, we examined whether VR1 modulates afferent synaptic transmission. In horizontal brainstem slices, solitary tract (ST) activation evoked EPSCs. Monosynaptic EPSCs had low synaptic jitter (SD of latency to successive shocks) averaging 84.03 +/- 3.74 microsec (n = 72) and were compl

Sensory SystemsNeuroscience
6
Article|88 citations·2011
Isoliquiritigenin, a chalcone compound, is a positive allosteric modulator of GABAA receptors and shows hypnotic effects
Suengmok Cho, Sojin Kim, Zhenhua Jin, Hye-Jin Yang, Daeseok Han, Nam‐In Baek, Jin-Ho Jo, Chang‐Won Cho, Ji-Hae Park, Makoto Shimizu, Young‐Ho Jin
SJR Q2Biochemical and Biophysical Research Communications
PharmacologyPharmacology, Toxicology and Pharmaceutics
7
Article|57 citations·2004
Cranial Afferent Glutamate Heterosynaptically Modulates GABA Release onto Second-Order Neurons via Distinctly Segregated Metabotropic Glutamate Receptors
Young‐Ho Jin, Timothy W. Bailey, Michael Andresen
SJR Q1Journal of NeuroscienceOA

The balance between excitation and inhibition dictates central integration. Glutamatergic and GABAergic neurotransmission dominate this process. Cranial primary afferents enter the brainstem to release glutamate (Glu) onto second-order neurons within the caudal nucleus tractus solitarius (NTS) to initiate autonomic reflexes. The simplest pathways for these reflexes contain as few as two central neurons, but display robust frequency-dependent behavior. Within NTS, multiple metabotropic Glu recept

Endocrine and Autonomic SystemsNeuroscience
8
Article|36 citations·2009
Transient receptor potential A1 increase glutamate release on brain stem neurons
Boram Sun, Sung-Il Bang, Young‐Ho Jin
SJR Q3Neuroreport

Low temperature and noxious chemicals activate transient receptor potential (TRP) A1 channel in spinal nociceptive neurons. TRPA1 ligands are found as common ingredients of pungent spices and can trigger autonomic reflexes and alter blood pressure. Recent discovery of TRPA1 on visceral afferent pathway suggests such nonnociceptive responses may be closely related to TRPA1. To understand potential contributions of TRPA1 on autonomic response, we have tested TRPA1 agonist allyl isothiocyanate (AIT

Sensory SystemsNeuroscience
9
Article|36 citations·2003
Ketamine Differentially Blocks Sensory Afferent Synaptic Transmission in Medial Nucleus Tractus Solitarius (mNTS)
Young‐Ho Jin, Timothy W. Bailey, Mark Doyle, Bai‐Yan Li, Kyoung S. K. Chang, John H. Schild, David Mendelowitz, Michael Andresen
SJR Q1AnesthesiologyOA

BACKGROUND: Ketamine increases blood pressure and heart rate by unknown mechanisms, but studies suggest that an intact central nervous system and arterial baroreceptors are required. In the brain stem, medial nucleus tractus solitarius receives afferents from nodose neurons that initiate cardiovascular autonomic reflexes. Here, the authors assessed ketamine actions on afferent medial nucleus tractus solitarius synaptic transmission. METHODS: Ketamine was applied to horizontally sliced brain stem

Endocrine and Autonomic SystemsNeuroscience
10
Article|31 citations·2009
Presynaptic actions of propofol enhance inhibitory synaptic transmission in isolated solitary tract nucleus neurons
Young‐Ho Jin, Zhenxiong Zhang, David Mendelowitz, Michael Andresen
SJR Q2Brain Research
Cellular and Molecular NeuroscienceNeuroscience
11
Article|30 citations·2020
Bee Venom Acupuncture Attenuates Oxaliplatin-Induced Neuropathic Pain by Modulating Action Potential Threshold in A-Fiber Dorsal Root Ganglia Neurons
Ji Hwan Lee, Juan Gang, Eunhee Yang, Woojin Kim, Young‐Ho Jin
SJR Q1ToxinsOA

Oxaliplatin is a third-generation platinum-based chemotherapeutic drug widely used in colorectal cancer treatment. Although potent against this tumor, it can induce cold and mechanical allodynia even after a single injection. The currently used drugs to attenuate this allodynia can also cause unwanted effects, which limit their use. Bee venom acupuncture (BVA) is widely used in Korean medicine to treat pain. Although the effect of BVA on oxaliplatin-induced neuropathic pain has been addressed in

PharmacologyMedicine
12
Article|17 citations·2008
Isolated bilateral vocal cord paralysis with intermediate syndrome after organophosphate poisoning
Youngho Jin, Tae-O Jeong, Jae-baek Lee
SJR Q1Clinical Toxicology

INTRODUCTION: Muscular weakness affecting predominantly the proximal limb muscles and neck flexors is the cardinal feature of intermediate syndrome with cranial nerve palsies occasionally accompanied. Following acute cholinergic phase of organophosphate poisoning (OPP), only a few isolated cases of vocal cord paralysis have been reported in the past. We describe a case of bilateral vocal cord paralysis which occurred in the wake of a clinical recovery from acute cholinergic crisis in OPP. CASE R

Plant ScienceAgricultural and Biological Sciences
13
Article|17 citations·2011
Transient receptor potential (TRP) A1 activated currents in TRPV1 and cholecystokinin-sensitive cranial visceral afferent neurons
Myung-Jin Choi, Zhenhua Jin, Yong Seek Park, Young Kyoung Rhee, Young‐Ho Jin
SJR Q2Brain Research
Sensory SystemsNeuroscience
14
Article|16 citations·2011
Propofol facilitated excitatory postsynaptic currents frequency on nucleus tractus solitarii (NTS) neurons
Zhenhua Jin, Myung-Jin Choi, Cheung‐Seog Park, Young Seek Park, Young‐Ho Jin
SJR Q2Brain Research
Endocrine and Autonomic SystemsNeuroscience
15
Article|14 citations·1998
Tandospirone‐induced K+ current in acutely dissociated rat dorsal raphe neurones
Young‐Ho Jin, Norio Akaike
SJR Q1British Journal of PharmacologyOA

1. The effects of tandospirone (TDS) on dissociated rat dorsal raphe neurones were investigated using the patch-clamp method. 2. Under current-clamp conditions, TDS hyperpolarized the cell membrane, resulting in the reduction of firing rates. 3. Under voltage-clamp conditions, TDS induced an inward rectifying K+ current in a concentration-dependent manner. 4. The TDS-induced K+ currents (I(TDS)) were mimicked by 8-OH-DPAT, a 5-HT1A agonist. The I(TDS) was blocked by spiperone, a 5-HT1A receptor

Cellular and Molecular NeuroscienceNeuroscience

Research Areas

Molecular BiologyCellular and Molecular NeurosciencePharmacologyEpidemiologyEndocrine and Autonomic SystemsAerospace Engineering

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