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Yeon Jong Lee

Sungkyunkwan University · Medicine

About the Lab

Professor Yeon Jong Lee's research lab focuses on the molecular mechanisms underlying neurodegenerative diseases, particularly Parkinson’s disease (PD), with an emphasis on mitochondrial quality control, protein homeostasis, and neuronal survival. The lab investigates key pathways involving PINK1, parkin, PARIS (ZNF746), and PGC-1α in dopaminergic neuron degeneration, as well as the role of post-translational modifications such as farnesylation in disease progression. Using genetically engineered mouse models, viral vector-mediated gene delivery, and neurotoxin-induced PD models, the lab explores potential therapeutic strategies, including farnesol-based interventions to restore neuronal function.

Parkinson’s diseasemitochondrial quality controlPARISfarnesylationneurodegeneration

Research Overview

Papers
95
Total Citations
6,239
Papers (5y)
23
Primary Field
Medicine

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
23total
2022
2023
2024
2025
2026
Citations per year (5y)
137total
20222023202420252026

Selected Papers

15
1
Article|215 citations·2013
Parthanatos mediates AIMP2-activated age-dependent dopaminergic neuronal loss
Yunjong Lee, Senthilkumar S. Karuppagounder, Joo‐Ho Shin, Yun-Il Lee, Han Seok Ko, Debbie Swing, Haisong Jiang, Sung-Ung Kang, Byoung Dae Lee, Ho Chul Kang, Donghoon Kim, Lino Tessarollo
SJR Q1Nature NeuroscienceOA
OncologyMedicine
2
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
3
Review|172 citations·2018
Phytochemical and Pharmacological Role of Liquiritigenin and Isoliquiritigenin From Radix Glycyrrhizae in Human Health and Disease Models
Mahesh Ramalingam, Hyojung Kim, Yunjong Lee, Yun‐Il Lee
SJR Q1Frontiers in Aging NeuroscienceOA

The increasing lifespan in developed countries results in age-associated chronic diseases. Biological aging is a complex process associated with accumulated cellular damage by environmental or genetic factors with increasing age. Aging results in marked changes in brain structure and function. Age-related neurodegenerative diseases and disorders (NDDs) represent an ever-growing socioeconomic challenge and lead to an overall reduction in quality of life around the world. Alzheimer’s disease (AD)

PharmacologyPharmacology, Toxicology and Pharmaceutics
4
Article|133 citations·2018
α-Synuclein accumulation and GBA deficiency due to L444P GBA mutation contributes to MPTP-induced parkinsonism
Seung Pil Yun, Donghoon Kim, Sangjune Kim, Sang‐Min Kim, Senthilkumar S. Karuppagounder, Seung‐Hwan Kwon, Saebom Lee, Tae‐In Kam, Su-Hyun Lee, Sangwoo Ham, Jae Hong Park, Valina L. Dawson
SJR Q1Molecular NeurodegenerationOA

Mutations in glucocerebrosidase (GBA) cause Gaucher disease (GD) and increase the risk of developing Parkinson’s disease (PD) and Dementia with Lewy Bodies (DLB). Since both genetic and environmental factors contribute to the pathogenesis of sporadic PD, we investigated the susceptibility of nigrostriatal dopamine (DA) neurons in L444P GBA heterozygous knock-in (GBA +/L444P ) mice to 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP), a selective dopaminergic mitochondrial neurotoxin. We used G

PhysiologyMedicine
5
Review|131 citations·2012
Animal Models of Parkinson's Disease: Vertebrate Genetics
Yunjong Lee, Valina L. Dawson, Ted M. Dawson
SJR Q1Cold Spring Harbor Perspectives in MedicineOA

Parkinson's disease (PD) is a complex genetic disorder that is associated with environmental risk factors and aging. Vertebrate genetic models, especially mice, have aided the study of autosomal-dominant and autosomal-recessive PD. Mice are capable of showing a broad range of phenotypes and, coupled with their conserved genetic and anatomical structures, provide unparalleled molecular and pathological tools to model human disease. These models used in combination with aging and PD-associated tox

NeurologyMedicine
6
Article|119 citations·2005
Painful Channels in Sensory Neurons
Yunjong Lee, Chang‐Hun Lee, Uhtaek Oh
SJR Q1Molecules and CellsOA

Pain is an unpleasant sensation experienced when tissues are damaged. Thus, pain sensation in some way protects body from imminent threat or injury. Peripheral sensory nerves innervated to peripheral tissues initially respond to multiple forms of noxious or strong stimuli, such as heat, mechanical and chemical stimuli. In response to these stimuli, electrical signals for conducting the nociceptive neural signals through axons are generated. These action potentials are then conveyed to specific a

PhysiologyMedicine
7
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
8
Review|49 citations·2014
Poly (ADP-ribose) in the pathogenesis of Parkinson's disease
Yunjong Lee, Ho Chul Kang, Byoung Dae Lee, Yun-Il Lee, Young Pil Kim, Joo‐Ho Shin
SJR Q1BMB ReportsOA

The defining feature of Parkinson's disease is a progressive and selective demise of dopaminergic neurons. A recent report on Parkinson's disease animal model demonstrates that poly (ADP-ribose) (PAR) dependent cell death, also named parthanatos, is accountable for selective dopaminergic neuronal loss. Parthanatos is a programmed necrotic cell death, characterized by PARP1 activation, apoptosis inducing factor (AIF) nuclear translocation, and large scale DNA fragmentation. Besides cell death reg

OncologyMedicine
9
Article|46 citations·2020
Brain Endothelial P-Glycoprotein Level Is Reduced in Parkinson’s Disease via a Vitamin D Receptor-Dependent Pathway
Hyojung Kim, Jeong‐Yong Shin, Yun‐Song Lee, Yun‐Song Lee, Seung Pil Yun, Han‐Joo Maeng, Yunjong Lee, Yunjong Lee
SJR Q1International Journal of Molecular SciencesOA

The progressive neurodegeneration in Parkinson’s disease (PD) is accompanied by neuroinflammation and endothelial vascular impairment. Although the vitamin D receptor (VDR) is expressed in both dopamine neurons and brain endothelial cells, its role in the regulation of endothelial biology has not been explored in the context of PD. In a 6-hydroxydopamine (6-OHDA)-induced PD mouse model, we observed reduced transcription of the VDR and its downstream target genes, CYP24 and MDR1a. The 6-OHDA-indu

NeurologyMedicine
10
Article|45 citations·2020
Activation of the Akt1-CREB pathway promotes RNF146 expression to inhibit PARP1-mediated neuronal death
Hyojung Kim, Jisoo Park, Hojin Kang, Seung Pil Yun, Yun‐Song Lee, Yun‐Il Lee, Yunjong Lee
SJR Q1Science SignalingOA

Akt1-activating compounds such as the polyphenol chlorogenic acid may prevent neuronal death in Parkinson’s disease.

OncologyMedicine
11
Article|30 citations·2017
CRISPR-Cas9 Mediated Telomere Removal Leads to Mitochondrial Stress and Protein Aggregation
Hyojung Kim, Sangwoo Ham, Minkyung Jo, Gum Hwa Lee, Yun‐Song Lee, Yun‐Song Lee, Joo‐Ho Shin, Yunjong Lee, Yunjong Lee
SJR Q1International Journal of Molecular SciencesOA

Aging is considered the major risk factor for neurodegenerative diseases including Parkinson's disease (PD). Telomere shortening is associated with cellular senescence. In this regard, pharmacological or genetic inhibition of telomerase activity has been used to model cellular aging. Here, we employed CRISPR-Cas9 technology to instantly remove the telomere to induce aging in a neuroblastoma cell line. Expression of both Cas9 and guide RNA targeting telomere repeats ablated the telomere, leading

PhysiologyMedicine
12
Article|28 citations·2020
Amyloid-like oligomerization of AIMP2 contributes to α-synuclein interaction and Lewy-like inclusion
Sangwoo Ham, Seung Pil Yun, Hyojung Kim, Donghoon Kim, Bo Am Seo, Heejeong Kim, Jeong‐Yong Shin, Mohammad Aasif Dar, Gum Hwa Lee, Yun Il Lee, Yun Il Lee, Doyeun Kim
SJR Q1Science Translational MedicineOA

deletion, or oxidative stress triggered a redistribution of both AIMP2 and α-synuclein into insoluble fraction in cells and in vivo. Supporting the pathogenic role of AIMP2, AIMP2 knockdown ameliorated the α-synuclein aggregation and dopaminergic cell death in response to PFF or 6-hydroxydopamine treatment. Together, our results suggest that AIMP2 plays a pathological role in the aggregation of α-synuclein in mice. Because AIMP2 insolubility and coaggregation with α-synuclein have been seen in t

NeurologyMedicine
13
Article|26 citations·2017
VPS35 regulates parkin substrate AIMP2 toxicity by facilitating lysosomal clearance of AIMP2
Seung Pil Yun, Hyojung Kim, Sangwoo Ham, Seung‐Hwan Kwon, Gum Hwa Lee, Joo‐Ho Shin, Sang Hun Lee, Han Seok Ko, Yunjong Lee
SJR Q1Cell Death and DiseaseOA

Vacuolar protein sorting-associated protein 35 (VPS35) is involved in retrograde transport of proteins from endosomes to trans-Golgi network. Gene mutations in VPS35 are linked to autosomal dominant late-onset Parkinson's disease (PD). Although the identification of VPS35 mutations has provided novel insight about its interactions with several PD-associated genes including leucine-rich repeat kinase 2 (LRRK2) and α-synuclein, little information is available about the molecular mechanisms of cell

NeurologyMedicine
14
Article|26 citations·2021
Parkin interacting substrate phosphorylation by c-Abl drives dopaminergic neurodegeneration
Hyojung Kim, Jeong‐Yong Shin, Areum Jo, Ji-Hun Kim, Sangwook Park, Jeong‐Yun Choi, Ho Chul Kang, Valina L. Dawson, Ted M. Dawson, Joo‐Ho Shin, Yunjong Lee
SJR Q1BrainOA

Aberrant activation of the non-receptor kinase c-Abl is implicated in the development of pathogenic hallmarks of Parkinson's disease, such as α-synuclein aggregation and progressive neuronal loss. c-Abl-mediated phosphorylation and inhibition of parkin ligase function lead to accumulation of parkin interacting substrate (PARIS) that mediates α-synuclein pathology-initiated dopaminergic neurodegeneration. Here we show that, in addition to PARIS accumulation, c-Abl phosphorylation of PARIS is requ

NeurologyMedicine
15
Article|19 citations·2014
Poly (ADP-ribose) in the pathogenesis of Parkinson's disease
이연종, 강호철, 이병대, 이윤일, 김영필, 신주호

The defining feature of Parkinson’s disease is a progressive andselective demise of dopaminergic neurons. A recent report onParkinson’s disease animal model demonstrates that poly(ADP-ribose) (PAR) dependent cell death, also namedparthanatos, is accountable for selective dopaminergic neuronalloss. Parthanatos is a programmed necrotic cell death,characterized by PARP1 activation, apoptosis inducing factor(AIF) nuclear translocation, and large scale DNA fragmentation. Besides cell death regulation

Research Areas

NeurologyMolecular BiologyPhysiologyCellular and Molecular NeuroscienceOncologyPharmacology

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