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Tae-In Kam

Korea Advanced Institute of Science and Technology · 医学

研究室紹介

Professor Tae-In Kam's research lab focuses on the molecular mechanisms underlying neurodegenerative diseases, particularly Parkinson’s disease (PD), with a central emphasis on protein aggregation, cellular stress responses, and neuroinflammation. The lab investigates the roles of key proteins such as α-synuclein, PARP-1, and AIF in neuronal death pathways, including parthanatos, and explores how autophagy and glial cell dysfunction contribute to disease progression. Using genetic, biochemical, and in vivo models, the lab aims to identify novel therapeutic targets for neurodegenerative disorders.

Parkinson’s diseaseα-synucleinPARP-1neuroinflammationautophagy

Research Overview

Papers
75
Total Citations
7,986
Papers (5y)
27
Primary Field
医学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
27total
2022
2023
2024
2025
2026
Citations per year (5y)
790total
20222023202420252026

Selected Papers

15
1
Article|1,373 citations·2019
Transneuronal Propagation of Pathologic α-Synuclein from the Gut to the Brain Models Parkinson’s Disease
Sangjune Kim, Seung‐Hwan Kwon, Tae‐In Kam, Nikhil Panicker, Senthilkumar S. Karuppagounder, Saebom Lee, Jun Hee Lee, Wonjoong Richard Kim, Minjee Kook, Catherine A. Foss, Chen‐Tian Shen, Hojae Lee
SJR Q1NeuronOA
NeurologyMedicine
2
Article|1,135 citations·2018
Block of A1 astrocyte conversion by microglia is neuroprotective in models of Parkinson’s disease
Seung Pil Yun, Tae‐In Kam, Nikhil Panicker, Sang‐Min Kim, Yumin Oh, Jong Sung Park, Seung‐Hwan Kwon, Yong Joo Park, Senthilkumar S. Karuppagounder, Hyejin Park, Sangjune Kim, Nayeon Oh
SJR Q1Nature Medicine
NeurologyNeuroscience
3
Article|740 citations·2016
Pathological α-synuclein transmission initiated by binding lymphocyte-activation gene 3
Xiaobo Mao, Michael T. Ou, Senthilkumar S. Karuppagounder, Tae‐In Kam, Xiling Yin, Yulan Xiong, Preston Ge, George K. E. Umanah, Saurav Brahmachari, Joo‐Ho Shin, Ho Chul Kang, Jianmin Zhang
SJR Q1Science

INTRODUCTION Parkinson’s disease (PD) is the second most common neurodegenerative disorder and leads to slowness of movement, tremor, rigidity, and, in the later stages of PD, cognitive impairment. Pathologically, PD is characterized by the accumulation of α-synuclein in Lewy bodies and neurites. There is degeneration of neurons throughout the nervous system, with the degeneration of dopamine neurons in the substantia nigra pars compacta leading to the major symptoms of PD. RATIONALE In the brai

NeurologyMedicine
4
Article|708 citations·2013
Overexpression of Atg5 in mice activates autophagy and extends lifespan
Jong-Ok Pyo, Seung-Min Yoo, Hye-Hyun Ahn, Jihoon Nah, Se-Hoon Hong, Tae‐In Kam, Sunmin Jung, Yong‐Keun Jung
SJR Q1Nature CommunicationsOA

Autophagy has been implicated in the ageing process, but whether autophagy activation extends lifespan in mammals is unknown. Here we show that ubiquitous overexpression of Atg5, a protein essential for autophagosome formation, extends median lifespan of mice by 17.2%. We demonstrate that moderate overexpression of Atg5 in mice enhances autophagy, and that Atg5 transgenic mice showed anti-ageing phenotypes, including leanness, increased insulin sensitivity and improved motor function. Furthermor

EpidemiologyMedicine
5
Article|465 citations·2018
Poly(ADP-ribose) drives pathologic α-synuclein neurodegeneration in Parkinson’s disease
Tae‐In Kam, Xiaobo Mao, Hyejin Park, Shih-Ching Chou, Senthilkumar S. Karuppagounder, George K. E. Umanah, Seung Pil Yun, Saurav Brahmachari, Nikhil Panicker, Rong Chen, Shaida A. Andrabi, Chen Qi
SJR Q1Science

The pathologic accumulation and aggregation of α-synuclein (α-syn) underlies Parkinson's disease (PD). The molecular mechanisms by which pathologic α-syn causes neurodegeneration in PD are not known. Here, we found that pathologic α-syn activates poly(adenosine 5'-diphosphate-ribose) (PAR) polymerase-1 (PARP-1), and PAR generation accelerates the formation of pathologic α-syn, resulting in cell death via parthanatos. PARP inhibitors or genetic deletion of PARP-1 prevented pathologic α-syn toxici

NeurologyMedicine
6
Article|409 citations·2016
A nuclease that mediates cell death induced by DNA damage and poly(ADP-ribose) polymerase-1
Yingfei Wang, Ran An, George K. E. Umanah, Hyejin Park, Kalyani Nambiar, Stephen Eacker, BongWoo Kim, Lei Bao, Maged M. Harraz, Calvin Chang, Rong Chen, Jennifer E. Wang
SJR Q1Science

Inhibition or genetic deletion of poly(ADP-ribose) (PAR) polymerase-1 (PARP-1) is protective against toxic insults in many organ systems. The molecular mechanisms underlying PARP-1-dependent cell death involve release of mitochondrial apoptosis-inducing factor (AIF) and its translocation to the nucleus, which results in chromatinolysis. We identified macrophage migration inhibitory factor (MIF) as a PARP-1-dependent AIF-associated nuclease (PAAN). AIF was required for recruitment of MIF to the n

ImmunologyImmunology and Microbiology
7
Review|361 citations·2020
Microglia and astrocyte dysfunction in parkinson's disease
Tae‐In Kam, Jared T. Hinkle, Ted M. Dawson, Valina L. Dawson
SJR Q1Neurobiology of DiseaseOA

While glia are essential for regulating the homeostasis in the normal brain, their dysfunction contributes to neurodegeneration in many brain diseases, including Parkinson's disease (PD). Recent studies have identified that PD-associated genes are expressed in glial cells as well as neurons and have crucial roles in microglia and astrocytes. Here, we discuss the role of microglia and astrocytes dysfunction in relation to PD-linked mutations and their implications in PD pathogenesis. A better und

NeurologyNeuroscience
8
Article|249 citations·2019
Fyn kinase regulates misfolded α-synuclein uptake and NLRP3 inflammasome activation in microglia
Nikhil Panicker, Souvarish Sarkar, Dilshan S. Harischandra, Matthew Neal, Tae‐In Kam, Huajun Jin, Hariharan Saminathan, Monica R. Langley, Adhithiya Charli, Manikandan Samidurai, Dharmin Rokad, Shivani Ghaisas
SJR Q1The Journal of Experimental Medicine

Persistent microglia-mediated neuroinflammation is a major pathophysiological contributor to the progression of Parkinson's disease (PD), but the cell-signaling mechanisms governing chronic neuroinflammation are not well understood. Here, we show that Fyn kinase, in conjunction with the class B scavenger receptor CD36, regulates the microglial uptake of aggregated human α-synuclein (αSyn), which is the major component of PD-associated Lewy bodies. αSyn can effectively mediate LPS-independent pri

NeurologyNeuroscience
9
Article|201 citations·2017
PINK1 Primes Parkin-Mediated Ubiquitination of PARIS in Dopaminergic Neuronal Survival
Yunjong Lee, Daniel A. Stevens, Sung-Ung Kang, Haisong Jiang, Yun-Il Lee, Han Seok Ko, Leslie A. Scarffe, George K. E. Umanah, Hojin Kang, Sangwoo Ham, Tae‐In Kam, Kathleen Allen
SJR Q1Cell ReportsOA

Mutations in PTEN-induced putative kinase 1 (PINK1) and parkin cause autosomal-recessive Parkinson's disease through a common pathway involving mitochondrial quality control. Parkin inactivation leads to accumulation of the parkin interacting substrate (PARIS, ZNF746) that plays an important role in dopamine cell loss through repression of proliferator-activated receptor gamma coactivator-1-alpha (PGC-1α) promoter activity. Here, we show that PARIS links PINK1 and parkin in a common pathway that

NeurologyMedicine
10
Article|190 citations·2022
Neuronal NLRP3 is a parkin substrate that drives neurodegeneration in Parkinson’s disease
Nikhil Panicker, Tae‐In Kam, Hu Wang, Stewart Neifert, Shih-Ching Chou, Manoj Kumar, Saurav Brahmachari, Aanishaa Jhaldiyal, Jared T. Hinkle, Fatih Akkentli, Xiaobo Mao, Enquan Xu
SJR Q1NeuronOA
NeurologyNeuroscience
11
Article|188 citations·2021
Blocking microglial activation of reactive astrocytes is neuroprotective in models of Alzheimer’s disease
Jong Sung Park, Tae‐In Kam, Saebom Lee, Hyejin Park, Yumin Oh, Seung‐Hwan Kwon, Jae‐Jin Song, Donghoon Kim, Hyunhee Kim, Aanishaa Jhaldiyal, Dong Hee Na, Kang Choon Lee
SJR Q1Acta Neuropathologica CommunicationsOA

Abstract Alzheimer’s disease (AD) is the most common cause of age-related dementia. Increasing evidence suggests that neuroinflammation mediated by microglia and astrocytes contributes to disease progression and severity in AD and other neurodegenerative disorders. During AD progression, resident microglia undergo proinflammatory activation, resulting in an increased capacity to convert resting astrocytes to reactive astrocytes. Therefore, microglia are a major therapeutic target for AD and bloc

NeurologyNeuroscience
12
Article|123 citations·2013
FcγRIIb mediates amyloid-β neurotoxicity and memory impairment in Alzheimer’s disease
Tae‐In Kam, Sungmin Song, Youngdae Gwon, Hyejin Park, Ji-Jing Yan, Isak Im, Ji-Woo Choi, Tae-Yong Choi, Jeongyeon Kim, Dong‐Keun Song, Toshiyuki Takai, Yong‐Chul Kim
SJR Q1Journal of Clinical InvestigationOA

Amyloid-β (Aβ) induces neuronal loss and cognitive deficits and is believed to be a prominent cause of Alzheimer's disease (AD); however, the cellular pathology of the disease is not fully understood. Here, we report that IgG Fcγ receptor II-b (FcγRIIb) mediates Aβ neurotoxicity and neurodegeneration. We found that FcγRIIb is significantly upregulated in the hippocampus of AD brains and neuronal cells exposed to synthetic Aβ. Neuronal FcγRIIb activated ER stress and caspase-12, and Fcgr2b KO pri

PhysiologyMedicine
13
Article|122 citations·2022
Amelioration of pathologic α-synuclein-induced Parkinson’s disease by irisin
Tae‐In Kam, Hyejin Park, Shih-Ching Chou, Jonathan G. Van Vranken, Melanie J. Mittenbühler, Hyeonwoo Kim, Mu A, Yu Ree Choi, Devanik Biswas, Justin Wang, Yu Jung Shin, Alexis K Loder
SJR Q1Proceedings of the National Academy of SciencesOA

Physical activity provides clinical benefit in Parkinson's disease (PD). Irisin is an exercise-induced polypeptide secreted by skeletal muscle that crosses the blood-brain barrier and mediates certain effects of exercise. Here, we show that irisin prevents pathologic α-synuclein (α-syn)-induced neurodegeneration in the α-syn preformed fibril (PFF) mouse model of sporadic PD. Intravenous delivery of irisin via viral vectors following the stereotaxic intrastriatal injection of α-syn PFF cause a re

NeurologyMedicine
14
Article|63 citations·2021
PARIS farnesylation prevents neurodegeneration in models of Parkinson’s disease
Areum Jo, Yunjong Lee, Yunjong Lee, Tae‐In Kam, Sung-Ung Kang, Stewart Neifert, Senthilkumar S. Karuppagounder, Rin Khang, Hojin Kang, Hyejin Park, Shih-Ching Chou, Sungtaek Oh
SJR Q1Science Translational MedicineOA

promoter. Farnesol prevented dopaminergic neuronal loss and behavioral deficits via farnesylation of PARIS in PARIS transgenic mice, ventral midbrain transduction of AAV-PARIS, adult conditional parkin KO mice, and the α-synuclein preformed fibril model of sporadic PD. PARIS farnesylation is decreased in the substantia nigra of patients with PD, suggesting that reduced farnesylation of PARIS may play a role in PD. Thus, farnesol may be beneficial in the treatment of PD by enhancing the farnesyla

NeurologyMedicine
15
Article|59 citations·2022
MEK1/2 inhibition rescues neurodegeneration by TFEB-mediated activation of autophagic lysosomal function in a model of Alzheimer’s Disease
Yoon S. Chun, Mi‐Yeon Kim, Sun‐Young Lee, Mi Jeong Kim, Tae-Joon Hong, Jae Kyong Jeon, Dulguun Ganbat, Hyoung Tae Kim, Sang Seong Kim, Tae‐In Kam, Sungho Han
SJR Q1Molecular PsychiatryOA

Alzheimer's Disease (AD) is a progressive neurodegenerative disorder, which is characterized by cognitive deficit due to synaptic loss and neuronal death. Extracellular amyloid β plaques are one of the pathological hallmarks of AD. The autophagic lysosomal pathway is the essential mechanism to maintain cellular homeostasis by driving clearance of protein aggregates and is dysfunctional in AD. Here, we showed that inhibiting MEK/ERK signaling using a clinically available MEK1/2 inhibitor, trameti

EpidemiologyMedicine

Research Areas

NeurologyPhysiologyMolecular BiologyOncologyImmunologyCellular and Molecular Neuroscience

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