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김재익 교수

Jae‐Ick Kim

UNIST 생명과학과 · 신경과학

연구실 소개

김재익 교수의 연구실은 신경회로의 기능과 기전을 규명하기 위해 기억 재구성, 도파민 신경세포의 기능 조절, GABA 수용체를 통한 시냅스 억제 메커니즘, 그리고 신경세포 전환 기술을 중심으로 연구를 진행하고 있습니다. 특히 기억의 재활성화 과정에서 단백질 분해와 O-글리코사밀레이션의 역할, 도파민 신경세포에서의 GABA 공방출 메커니즘 등 신경생물학의 핵심 메커니즘을 밝혀내는 데 초점을 맞추고 있습니다. 이와 함께 척수 손상 치료를 위한 인간 운동 뉴런의 유전자 재프로그래밍 기반 생성 기술도 개발하고 있어, 신경질환 치료의 새로운 전망을 제시하고 있습니다.

기억 재구성도파민 신경세포GABA 수용체신경세포 전환O-글리코사밀레이션

연구 현황

논문 수
85
총 인용 수
2,818
최근 5년 논문
31
주요 분야
신경과학

연구 성과 추이

표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.

5개년 연도별 논문 게재 수
31총합
2022
2023
2024
2025
2026
5개년 연도별 피인용 수
144총합
20222023202420252026

주요 논문

15
1
논문|인용수 719·2012
Autistic-like social behaviour in Shank2-mutant mice improved by restoring NMDA receptor function
Hyejung Won, Hye‐Ryeon Lee, Heon Yung Gee, Won Mah, Jae‐Ick Kim, Jiseok Lee, Seungmin Ha, Changuk Chung, Eun Suk Jung, Yi Sul Cho, Sae-Geun Park, Jungsoo Lee
SJR Q1NatureOA
GeneticsBiochemistry, Genetics and Molecular Biology
2
논문|인용수 415·2008
Synaptic Protein Degradation Underlies Destabilization of Retrieved Fear Memory
Sue‐Hyun Lee, Jun‐Hyeok Choi, Nuribalhae Lee, Hye‐Ryeon Lee, Jae‐Ick Kim, Nam‐Kyung Yu, Sun-Lim Choi, Seung‐Hee Lee, Hyoung Kim, Bong‐Kiun Kaang
SJR Q1Science

Reactivated memory undergoes a rebuilding process that depends on de novo protein synthesis. This suggests that retrieval is dynamic and serves to incorporate new information into preexisting memories. However, little is known about whether or not protein degradation is involved in the reorganization of retrieved memory. We found that postsynaptic proteins were degraded in the hippocampus by polyubiquitination after retrieval of contextual fear memory. Moreover, the infusion of proteasome inhibi

Cellular and Molecular NeuroscienceNeuroscience
3
논문|인용수 230·2015
Aldehyde dehydrogenase 1a1 mediates a GABA synthesis pathway in midbrain dopaminergic neurons
Jae‐Ick Kim, Subhashree Ganesan, Sarah Luo, Yu‐Wei Wu, Esther Park, Eric J. Huang, Lu Chen, Jun Ding
SJR Q1Science

Midbrain dopamine neurons are an essential component of the basal ganglia circuitry, playing key roles in the control of fine movement and reward. Recently, it has been demonstrated that γ-aminobutyric acid (GABA), the chief inhibitory neurotransmitter, is co-released by dopamine neurons. Here, we show that GABA co-release in dopamine neurons does not use the conventional GABA-synthesizing enzymes, glutamate decarboxylases GAD65 and GAD67. Our experiments reveal an evolutionarily conserved GABA

Cellular and Molecular NeuroscienceNeuroscience
4
논문|인용수 180·2015
Dynamic rewiring of neural circuits in the motor cortex in mouse models of Parkinson's disease
Lili Guo, Huan Xiong, Jae‐Ick Kim, Yu‐Wei Wu, Rupa R. Lalchandani, Yuting Cui, Yu Shu, Tonghui Xu, Jun Ding
SJR Q1Nature NeuroscienceOA
Cellular and Molecular NeuroscienceNeuroscience
5
논문|인용수 143·2011
PI3Kγ is required for NMDA receptor–dependent long-term depression and behavioral flexibility
Jae‐Ick Kim, Hye‐Ryeon Lee, Su-Eon Sim, Jinhee Baek, Nam‐Kyung Yu, Jun-Hyeok Choi, Hyoung‐Gon Ko, Yong‐Seok Lee, Soowon Park, Chuljung Kwak, Sung-Ji Ahn, So Yoen Choi
SJR Q1Nature Neuroscience
Cellular and Molecular NeuroscienceNeuroscience
6
논문|인용수 93·2020
O-GlcNAcylation regulates dopamine neuron function, survival and degeneration in Parkinson disease
Byeong Eun Lee, Hye Yun Kim, Hyun‐Jin Kim, Hyeongsun Jeong, Byung‐Gyu Kim, Ha-Eun Lee, Ji‐Eun Lee, Han Byeol Kim, Seung Eun Lee, Yong Ryoul Yang, Eugene C. Yi, John A. Hanover
SJR Q1BrainOA

The dopamine system in the midbrain is essential for volitional movement, action selection, and reward-related learning. Despite its versatile roles, it contains only a small set of neurons in the brainstem. These dopamine neurons are especially susceptible to Parkinson's disease and prematurely degenerate in the course of disease progression, while the discovery of new therapeutic interventions has been disappointingly unsuccessful. Here, we show that O-GlcNAcylation, an essential post-translat

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
논문|인용수 46·2020
Sequentially induced motor neurons from human fibroblasts facilitate locomotor recovery in a rodent spinal cord injury model
Hyun-Ah Lee, Hye Yeong Lee, Byeong Eun Lee, Daniela Gerovska, Soo Yong Park, Holm Zaehres, Marcos J. Araúzo‐Bravo, Jae‐Ick Kim, Yoon Ha, Hans R. Schöler, Jeong Beom Kim
SJR Q1eLifeOA

Generation of autologous human motor neurons holds great promise for cell replacement therapy to treat spinal cord injury (SCI). Direct conversion allows generation of target cells from somatic cells, however, current protocols are not practicable for therapeutic purposes since converted cells are post-mitotic that are not scalable. Therefore, therapeutic effects of directly converted neurons have not been elucidated yet. Here, we show that human fibroblasts can be converted into induced motor n

Molecular BiologyBiochemistry, Genetics and Molecular Biology
8
논문|인용수 34·2020
The novel DYRK1A inhibitor KVN93 regulates cognitive function, amyloid-beta pathology, and neuroinflammation
Hyunju Lee, Hanwoong Woo, Ha-Eun Lee, Hyongjun Jeon, Ka‐Young Ryu, Jin Han Nam, Seong Gak Jeon, HyunHee Park, Ji-Soo Lee, Kyung‐Min Han, Sang Min Lee, Jeongyeon Kim
SJR Q1Free Radical Biology and Medicine
PhysiologyMedicine
9
리뷰|인용수 28·2021
The Role of Phospholipase C in GABAergic Inhibition and Its Relevance to Epilepsy
Hye Yun Kim, Pann‐Ghill Suh, Jae‐Ick Kim
SJR Q1International Journal of Molecular SciencesOA

Epilepsy is characterized by recurrent seizures due to abnormal hyperexcitation of neurons. Recent studies have suggested that the imbalance of excitation and inhibition (E/I) in the central nervous system is closely implicated in the etiology of epilepsy. In the brain, GABA is a major inhibitory neurotransmitter and plays a pivotal role in maintaining E/I balance. As such, altered GABAergic inhibition can lead to severe E/I imbalance, consequently resulting in excessive and hypersynchronous neu

Cellular and Molecular NeuroscienceNeuroscience
10
논문|인용수 19·2022
L-Type Ca2+ Channel Inhibition Rescues the LPS-Induced Neuroinflammatory Response and Impairments in Spatial Memory and Dendritic Spine Formation
Ji‐Eun Kim, Seong Gak Jeon, Ha-Ram Jeong, HyunHee Park, Jae‐Ick Kim, Hyang‐Sook Hoe
SJR Q1International Journal of Molecular SciencesOA

Ca2+ signaling is implicated in the transition between microglial surveillance and activation. Several L-type Ca2+ channel blockers (CCBs) have been shown to ameliorate neuroinflammation by modulating microglial activity. In this study, we examined the effects of the L-type CCB felodipine on LPS-mediated proinflammatory responses. We found that felodipine treatment significantly diminished LPS-evoked proinflammatory cytokine levels in BV2 microglial cells in an L-type Ca2+ channel-dependent mann

NeurologyNeuroscience
11
논문|인용수 19·2023
GABAergic-like dopamine synapses in the brain
Hyunjin Kim, Byungjae Hwang, Maria Reva, Ji-Eun Lee, Byeong Eun Lee, Youngeun Lee, Eun Jeong Cho, Minseok Jeong, Seung Eun Lee, Kyungjae Myung, Ja‐Hyun Baik, Jung‐Hoon Park
SJR Q1Cell ReportsOA

Dopamine synapses play a crucial role in volitional movement and reward-related behaviors, while dysfunction of dopamine synapses causes various psychiatric and neurological disorders. Despite this significance, the true biological nature of dopamine synapses remains poorly understood. Here, we show that dopamine transmission is strongly correlated with GABA co-transmission across the brain and dopamine synapses are structured and function like GABAergic synapses with marked regional heterogenei

Cellular and Molecular NeuroscienceNeuroscience
12
논문|인용수 19·2019
Deletion of PLCγ1 in GABAergic neurons increases seizure susceptibility in aged mice
Hye Yun Kim, Yong Ryoul Yang, Hongik Hwang, Haeun Lee, Hyun‐Jun Jang, Jeong-Yeon Kim, Esther Yang, Hyun Kim, Hyewhon Rhim, Pann‐Ghill Suh, Jae‐Ick Kim, Jae‐Ick Kim
SJR Q1Scientific ReportsOA

Abstract Synaptic inhibition plays a fundamental role in the information processing of neural circuits. It sculpts excitatory signals and prevents hyperexcitability of neurons. Owing to these essential functions, dysregulated synaptic inhibition causes a plethora of neurological disorders, including epilepsy, autism, and schizophrenia. Among these disorders, epilepsy is associated with abnormal hyperexcitability of neurons caused by the deficits of GABAergic neuron or decreased GABAergic inhibit

Cellular and Molecular NeuroscienceNeuroscience
13
논문|인용수 19·2024
The dopamine analogue CA140 alleviates AD pathology, neuroinflammation, and rescues synaptic/cognitive functions by modulating DRD1 signaling or directly binding to Abeta
Sehyun Chae, Hyunju Lee, Ha-Eun Lee, Ji‐Eun Kim, Yoo Joo Jeong, Yuxi Lin, Hye Yun Kim, Geoffray Leriche, Rachel S. Ehrlich, Sascha Castro Lingl, Min‐Duk Seo, Young‐Ho Lee
SJR Q1Journal of NeuroinflammationOA

BACKGROUND: We recently reported that the dopamine (DA) analogue CA140 modulates neuroinflammatory responses in lipopolysaccharide-injected wild-type (WT) mice and in 3-month-old 5xFAD mice, a model of Alzheimer's disease (AD). However, the effects of CA140 on Aβ/tau pathology and synaptic/cognitive function and its molecular mechanisms of action are unknown. METHODS: To investigate the effects of CA140 on cognitive and synaptic function and AD pathology, 3-month-old WT mice or 8-month-old (aged

NeurologyNeuroscience
14
논문|인용수 16·2022
mtIF3 is locally translated in axons and regulates mitochondrial translation for axonal growth
So-Yeon Lee, Dongkeun Park, Chunghun Lim, Jae‐Ick Kim, Kyung‐Tai Min
SJR Q1BMC BiologyOA

BACKGROUND: The establishment and maintenance of functional neural connections relies on appropriate distribution and localization of mitochondria in neurites, as these organelles provide essential energy and metabolites. In particular, mitochondria are transported to axons and support local energy production to maintain energy-demanding neuronal processes including axon branching, growth, and regeneration. Additionally, local protein synthesis is required for structural and functional changes i

Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
논문|인용수 7·2023
PLCγ1 in dopamine neurons critically regulates striatal dopamine release via VMAT2 and synapsin III
Hye Yun Kim, Ji-Eun Lee, Hyunjin Kim, Byeong Eun Lee, Jae‐Wook Jeong, Eun Jeong Cho, Hyun‐Jun Jang, Kyeong Jin Shin, Min Ji Kim, Young Chan Chae, Seung Eun Lee, Kyungjae Myung
SJR Q1Experimental & Molecular MedicineOA

Dopamine neurons are essential for voluntary movement, reward learning, and motivation, and their dysfunction is closely linked to various psychological and neurodegenerative diseases. Hence, understanding the detailed signaling mechanisms that functionally modulate dopamine neurons is crucial for the development of better therapeutic strategies against dopamine-related disorders. Phospholipase Cγ1 (PLCγ1) is a key enzyme in intracellular signaling that regulates diverse neuronal functions in th

Cellular and Molecular NeuroscienceNeuroscience

대표 연구 분야

Cellular and Molecular NeuroscienceMolecular BiologySocial PsychologyGeneticsAerospace EngineeringNeurology

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