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Jin-Soo Ko

Yonsei University · 神経科学

研究室紹介

Professor Jin-Soo Ko's research lab specializes in developing advanced neuromodulation and neuroprosthetic technologies, focusing on minimally invasive, soft, and implantable neural interfaces for long-term brain-computer interaction. The lab pioneers innovative approaches such as focused ultrasound-mediated blood-brain barrier opening for targeted drug delivery and neurodegenerative disease modulation, while also advancing fully implantable, wireless, and power-integrated neural recording and stimulation systems. Their work emphasizes biocompatible, conformal electronics and 3D/4D printing of functional neural devices that seamlessly integrate with the brain’s anatomy to enable stable, chronic monitoring and control of neural activity. The lab's research bridges neuroscience, biomedical engineering, and materials science to create next-generation neurotechnologies for treating neurological disorders and enhancing neural function.

neural interfacesfocused ultrasoundimplantable neuroprostheticsbiocompatible electronics3D printing in neuroscience

Research Overview

Papers
36
Total Citations
697
Papers (5y)
15
Primary Field
神経科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
15total
2021
2022
2023
2024
2025
Citations per year (5y)
193total
20212022202320242025

Selected Papers

15
1
Article|131 citations·2014
A hybrid NIRS-EEG system for self-paced brain computer interface with online motor imagery
Bonkon Koo, Hwan-Gon Lee, Yunjun Nam, Hyohyeong Kang, Chin Su Koh, Hyung‐Cheul Shin, Seungjin Choi
SJR Q3Journal of Neuroscience Methods
Cognitive NeuroscienceNeuroscience
2
Article|98 citations·2018
Focused ultrasound–mediated noninvasive blood-brain barrier modulation: preclinical examination of efficacy and safety in various sonication parameters
Jaewoo Shin, Chanho Kong, Jae Sung Cho, Jihyeon Lee, Chin Su Koh, Min-Sik Yoon, Young Cheol Na, Won Seok Chang, Jin Woo Chang
SJR Q1Neurosurgical FOCUSOA

OBJECTIVE The application of pharmacological therapeutics in neurological disorders is limited by the ability of these agents to penetrate the blood-brain barrier (BBB). Focused ultrasound (FUS) has recently gained attention for its potential application as a method for locally opening the BBB and thereby facilitating drug delivery into the brain parenchyma. However, this method still requires optimization to maximize its safety and efficacy for clinical use. In the present study, the authors ex

Biomedical EngineeringEngineering
3
Article|94 citations·2019
Focused ultrasound-induced blood-brain barrier opening improves adult hippocampal neurogenesis and cognitive function in a cholinergic degeneration dementia rat model
Jaewoo Shin, Chanho Kong, Jihyeon Lee, Bo Young Choi, Ji-Yeon Sim, Chin Su Koh, Minkyung Park, Young Cheol Na, Sang Won Suh, Won Seok Chang, Jin Woo Chang
SJR Q1Alzheimer s Research & TherapyOA

BACKGROUND: The persistence of adult hippocampal neurogenesis (AHN) is sharply decreased in Alzheimer's disease (AD). The neuropathologies of AD include the presence of amyloid-β deposition in plaques, tau hyperphosphorylation in neurofibrillary tangles, and cholinergic system degeneration. The focused ultrasound (FUS)-mediated blood-brain barrier opening modulates tau hyperphosphorylation, the accumulation of amyloid-β proteins, and increases in AHN. However, it remains unclear whether FUS can

Biomedical EngineeringEngineering
4
Article|53 citations·2024
In-vivo integration of soft neural probes through high-resolution printing of liquid electronics on the cranium
Young‐Geun Park, Yong Won Kwon, Chin Su Koh, Enji Kim, Dong Ha Lee, Sumin Kim, Jongmin Mun, Yeon‐Mi Hong, Sanghoon Lee, Ju‐Young Kim, Jae‐Hyun Lee, Hyun Ho Jung
SJR Q1Nature CommunicationsOA

Current soft neural probes are still operated by bulky, rigid electronics mounted to a body, which deteriorate the integrity of the device to biological systems and restrict the free behavior of a subject. We report a soft, conformable neural interface system that can monitor the single-unit activities of neurons with long-term stability. The system implements soft neural probes in the brain, and their subsidiary electronics which are directly printed on the cranial surface. The high-resolution

Cellular and Molecular NeuroscienceNeuroscience
5
Article|33 citations·2024
Power-integrated, wireless neural recording systems on the cranium using a direct printing method for deep-brain analysis
Yong Won Kwon, David B. Ahn, Young‐Geun Park, Enji Kim, Dong Ha Lee, Sang‐Woo Kim, Kwon‐Hyung Lee, Won‐Yeong Kim, Yeon‐Mi Hong, Chin Su Koh, Hyun Ho Jung, Jin Woo Chang
SJR Q1Science AdvancesOA

Conventional power-integrated wireless neural recording devices suffer from bulky, rigid batteries in head-mounted configurations, hindering the precise interpretation of the subject's natural behaviors. These power sources also pose risks of material leakage and overheating. We present the direct printing of a power-integrated wireless neural recording system that seamlessly conforms to the cranium. A quasi-solid-state Zn-ion microbattery was 3D-printed as a built-in power source geometrically

Cellular and Molecular NeuroscienceNeuroscience
6
Article|32 citations·2019
Remote-Controlled Fully Implantable Neural Stimulator for Freely Moving Small Animal
Seunghyeon Yun, Chin Su Koh, Joonsoo Jeong, Jungmin Seo, Seung-Hee Ahn, Gwang Jin Choi, Shinyong Shim, Jaewoo Shin, Hyun Ho Jung, Jin Woo Chang, Sung June Kim
SJR Q2ElectronicsOA

The application of a neural stimulator to small animals is highly desired for the investigation of electrophysiological studies and development of neuroprosthetic devices. For this purpose, it is essential for the device to be implemented with the capabilities of full implantation and wireless control. Here, we present a fully implantable stimulator with remote controllability, compact size, and minimal power consumption. Our stimulator consists of modular units of (1) a surface-type cortical ar

Cellular and Molecular NeuroscienceNeuroscience
7
Article|29 citations·2018
Cross detection for odor of metabolic waste between breast and colorectal cancer using canine olfaction
Inseok Seo, Hwan-Gon Lee, Bonkon Koo, Chin Su Koh, Hae-Yong Park, Changkyun Im, Hyung‐Cheul Shin
SJR Q1PLoS ONEOA

Although several studies have been performed to detect cancer using canine olfaction, none have investigated whether canine olfaction trained to the specific odor of one cancer is able to detect odor related to other unfamiliar cancers. To resolve this issue, we employed breast and colorectal cancer in vitro, and investigated whether trained dogs to odor related to metabolic waste from breast cancer are able to detect it from colorectal cancer, and vice versa. The culture liquid samples used in

Biomedical EngineeringEngineering
8
Article|25 citations·2023
Laser‐Assisted Structuring of Graphene Films with Biocompatible Liquid Crystal Polymer for Skin/Brain‐Interfaced Electrodes
Rowoon Park, Dong Hyeon Lee, Chin Su Koh, Young Woo Kwon, Seon Yeong Chae, Chang‐Seok Kim, Hyun Ho Jung, Joonsoo Jeong, Suck Won Hong
SJR Q1Advanced Healthcare MaterialsOA

The work presented here introduces a facile strategy for the development of flexible and stretchable electrodes that harness the robust characteristics of carbon nanomaterials through laser processing techniques on a liquid crystal polymer (LCP) film. By utilizing LCP film as a biocompatible electronic substrate, control is demonstrated over the laser irradiation parameters to achieve efficient pattern generation and transfer printing processes, thereby yielding highly conductive laser-induced g

Biomedical EngineeringEngineering
9
Article|24 citations·2025
Implantable Soft Neural Electrodes of Liquid Metals for Deep Brain Stimulation
Yong Won Kwon, Enji Kim, Chin Su Koh, Young‐Geun Park, Yeon‐Mi Hong, Sanghoon Lee, Jakyoung Lee, Tae Jun Kim, Wonki Mun, Seung Hyun Min, Sumin Kim, Jung Ah Lim
SJR Q1ACS Nano

Stimulating large volumes of neural networks using macroelectrodes can modulate disorder-associated brain circuits effectively. However, conventional solid-metal electrodes often cause unwanted brain damage due to their high mechanical stiffness. In contrast, low-modulus liquid metals provide tissue-like stiffness while maintaining macroscale electrode dimensions. Here, we present implantable soft macroelectrodes made from biocompatible liquid metals for brain stimulation. These probes can be ea

Cellular and Molecular NeuroscienceNeuroscience
10
Article|24 citations·2016
Rostral Agranular Insular Cortex Lesion with Motor Cortex Stimulation Enhances Pain Modulation Effect on Neuropathic Pain Model
Hyun Ho Jung, Jaewoo Shin, Jin-Hyung Kim, Seung-Hee Ahn, Sung‐Eun Lee, Chin Su Koh, Jae Sung Cho, Chanho Kong, Hyung-Cheul Shin, Sung June Kim, Jin Woo Chang
SJR Q2Neural PlasticityOA

It is well known that the insular cortex is involved in the processing of painful input. The aim of this study was to evaluate the pain modulation role of the insular cortex during motor cortex stimulation (MCS). After inducing neuropathic pain (NP) rat models by the spared nerve injury method, we made a lesion on the rostral agranular insular cortex (RAIC) unilaterally and compared behaviorally determined pain threshold and latency in 2 groups: Group A (NP + MCS;<mml:math xmlns:mml="http://www.

PhysiologyMedicine
11
Article|22 citations·2017
Manipulation of Rat Movement via Nigrostriatal Stimulation Controlled by Human Visually Evoked Potentials
Bonkon Koo, Chin Su Koh, Hae-Yong Park, Hwan-Gon Lee, Jin Woo Chang, Seungjin Choi, Hyung-Cheul Shin
SJR Q1Scientific ReportsOA

Here, we report that the development of a brain-to-brain interface (BBI) system that enables a human user to manipulate rat movement without any previous training. In our model, the remotely-guided rats (known as ratbots) successfully navigated a T-maze via contralateral turning behaviour induced by electrical stimulation of the nigrostriatal (NS) pathway by a brain- computer interface (BCI) based on the human controller's steady-state visually evoked potentials (SSVEPs). The system allowed huma

Cognitive NeuroscienceNeuroscience
12
Article|19 citations·2024
Interference haptic stimulation and consistent quantitative tactility in transparent electrotactile screen with pressure-sensitive transistors
Kyeonghee Lim, Jakyoung Lee, Sumin Kim, Myoungjae Oh, Chin Su Koh, Hunkyu Seo, Yeon‐Mi Hong, Won Gi Chung, Jiuk Jang, Jung Ah Lim, Hyun Ho Jung, Jang‐Ung Park
SJR Q1Nature CommunicationsOA

Integrating tactile feedback through haptic interfaces enhances experiences in virtual and augmented reality. However, electrotactile systems, which stimulate mechanoreceptors directly, often yield inconsistent tactile results due to variations in pressure between the device and the finger. In this study, we present the integration of a transparent electrotactile screen with pressure-sensitive transistors, ensuring highly consistent quantitative haptic sensations. These transistors effectively c

Cognitive NeuroscienceNeuroscience
13
Article|18 citations·2022
A Fully Implantable Miniaturized Liquid Crystal Polymer (LCP)-Based Spinal Cord Stimulator for Pain Control
Seunghyeon Yun, Chin Su Koh, Jungmin Seo, Shinyong Shim, Minkyung Park, Hyun Ho Jung, Kyungsik Eom, Jin Woo Chang, Sung June Kim
SJR Q1SensorsOA

Spinal cord stimulation is a therapy to treat the severe neuropathic pain by suppressing the pain signal via electrical stimulation of the spinal cord. The conventional metal packaged and battery-operated implantable pulse generator (IPG) produces electrical pulses to stimulate the spinal cord. Despite its stable operation after implantation, the implantation site is limited due to its bulky size and heavy weight. Wireless communications including wireless power charging is also restricted, whic

Anesthesiology and Pain MedicineMedicine
14
Article|13 citations·2017
A convex-shaped, PDMS-parylene hybrid multichannel ECoG-electrode array
Woo‐Ram Lee, Changkyun Im, Chin Su Koh, Jun-Min Kim, Hyung‐Cheul Shin, Jong-Mo Seo

Long-term electrode implant is a challenge for successful brain-computer interfaces (BCIs). It is well known that electrocorticography (ECoG) using flexible planar electrodes is more suitable for long-term implants than intracortical neural recordings using penetrative electrodes. In this study, we propose a convex-shaped, PDMS-parylene hybrid multi-electrode array for long-term stable ECoG recording on the brain or the spinal cord. The electrode array consists of 10 gold recording sites which s

Cellular and Molecular NeuroscienceNeuroscience
15
Article|12 citations·2020
A novel rat robot controlled by electrical stimulation of the nigrostriatal pathway
Chin Su Koh, Hae-Yong Park, Jaewoo Shin, Chanho Kong, Minkyung Park, In-Seok Seo, Bonkon Koo, Hyun Ho Jung, Jin Woo Chang, Hyung-Cheul Shin
SJR Q1Neurosurgical FOCUSOA

OBJECTIVE: Artificial manipulation of animal movement could offer interesting advantages and potential applications using the animal's inherited superior sensation and mobility. Although several behavior control models have been introduced, they generally epitomize virtual reward-based training models. In this model, rats are trained multiple times so they can recall the relationship between cues and rewards. It is well known that activation of one side of the nigrostriatal pathway (NSP) in the

NeurologyNeuroscience

Research Areas

Cellular and Molecular NeuroscienceCognitive NeuroscienceBiomedical EngineeringPhysiologySensory SystemsNeurology

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