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Sang Hoon Lee

Hanyang University · Biochemistry, Genetics and Molecular Biology

About the Lab

Professor Sang Hoon Lee's research lab focuses on stem cell biology and molecular mechanisms underlying neurodevelopment and neurodegenerative diseases, particularly Parkinson’s disease. The lab investigates the differentiation of human embryonic stem cells into midbrain dopamine neurons, exploring the roles of key factors such as vitamin C, transcriptional regulators, and DNA replication machinery in neuronal fate determination. A central theme is understanding how epigenetic modifications—like 5-hydroxymethylcytosine and histone methylation—control the development of dopamine neurons, with translational applications in regenerative medicine and disease modeling. The lab also examines fundamental mechanisms of DNA replication, including the roles of PCNA, Activator 1, and DNA polymerases in genomic stability and cell proliferation.

stem cell differentiationdopamine neuronsepigenetic regulationvitamin CDNA replication machinery

Research Overview

Papers
455
Total Citations
13,441
Papers (5y)
78
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
78total
2022
2023
2024
2025
2026
Citations per year (5y)
282total
20222023202420252026

Selected Papers

15
1
Article|1,253 citations·2000
Efficient generation of midbrain and hindbrain neurons from mouse embryonic stem cells
Sang‐Hun Lee, Nadya Lumelsky, Lorenz Studer, Jonathan M. Auerbach, Ron McKay
SJR Q1Nature Biotechnology
Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|269 citations·2005
In vitroandin vivoanalyses of human embryonic stem cell‐derived dopamine neurons
Chang‐Hwan Park, Yang‐Ki Minn, Ji‐Yeon Lee, Dong Ho Choi, Mi‐Yoon Chang, Jaewon Shim, Ji‐Yun Ko, Koh H, Min Jeong Kang, Jin Sun Kang, Duck‐Joo Rhie, Yong‐Sung Lee
SJR Q1Journal of NeurochemistryOA

Human embryonic stem (hES) cells, due to their capacity of multipotency and self-renewal, may serve as a valuable experimental tool for human developmental biology and may provide an unlimited cell source for cell replacement therapy. The purpose of this study was to assess the developmental potential of hES cells to replace the selectively lost midbrain dopamine (DA) neurons in Parkinson's disease. Here, we report the development of an in vitro differentiation protocol to derive an enriched pop

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|250 citations·1991
Studies on the activator 1 protein complex, an accessory factor for proliferating cell nuclear antigen-dependent DNA polymerase delta.
Sang‐Hun Lee, Ann D. Kwong, Zheng Pan, J Hurwitz
SJR Q1Journal of Biological ChemistryOA

Activator 1 (A1) is a multiprotein complex which is essential for proliferating cell nuclear antigen (PCNA)-dependent DNA polymerase delta (pol delta) activity and efficient in vitro DNA synthesis in the SV40 dipolymerase replication system. In this report, we describe the isolation of A1 from HeLa cytosolic extracts. A1 stimulated pol delta activity in singly primed phi X174 DNA or (dA)4500.oligo(dT)12-18 in reactions containing PCNA, single-stranded DNA binding protein (SSB), and ATP. Using th

Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|204 citations·1991
Synthesis of DNA by DNA polymerase epsilon in vitro.
Sang‐Hun Lee, Zhen‐Qiang Pan, Ann D. Kwong, Peter Burgers, J Hurwitz
SJR Q1Journal of Biological ChemistryOA

The isolation of DNA polymerase (Pol) epsilon from extracts of HeLa cells is described. The final fractions contained two major subunits of 210 and 50 kDa which cosedimented with Pol epsilon activity, similar to those described previously (Syvaoja, J., and Linn, S. (1989) J. Biol. Chem. 264, 2489-2497). The properties of the human Pol epsilon and the yeast Pol epsilon were compared. Both enzymes elongated singly primed single-stranded circular DNA templates. Yeast Pol epsilon required the presen

Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
Article|203 citations·1990
Mechanism of elongation of primed DNA by DNA polymerase delta, proliferating cell nuclear antigen, and activator 1.
Sang‐Hun Lee, J Hurwitz
SJR Q1Proceedings of the National Academy of SciencesOA

In the presence of a single-stranded-DNA-binding protein (SSB), the elongation of primed DNA templates by DNA polymerase delta (pol delta) is dependent on ATP and two protein factors, activator 1 (A1) and proliferating cell nuclear antigen (PCNA). We have examined the interaction of these proteins with (dA)4500.(dT)12-18 by measuring their ability to form stable complexes with this DNA. In the presence of ATP, A1, PCNA, and pol delta formed a stable complex with DNA that could be isolated by gel

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|138 citations·2021
Neurodevelopmental defects and neurodegenerative phenotypes in human brain organoids carrying Parkinson’s disease-linked DNAJC6 mutations
Noviana Wulansari, Wahyu Handoko Wibowo Darsono, Hye-Ji Woo, Mi‐Yoon Chang, Jinil Kim, Eun-Jin Bae, Woong Sun, Ju‐Hyun Lee, Il‐Joo Cho, Hyogeun Shin, Seung‐Jae Lee, Sang‐Hun Lee
SJR Q1Science AdvancesOA

-PD recapitulates disease phenotypes and reveals mechanisms underlying disease pathology, providing a platform for assessing therapeutic interventions.

Cellular and Molecular NeuroscienceNeuroscience
7
Article|118 citations·2014
Vitamin C Facilitates Dopamine Neuron Differentiation in Fetal Midbrain Through TET1- and JMJD3-Dependent Epigenetic Control Manner
Xi‐Biao He, Mirang Kim, Seon‐Young Kim, Sang‐Hoon Yi, Yong-Hee Rhee, Taeho Kim, Eun Hye Lee, Chang‐Hwan Park, Shilpy Dixit, Fiona E. Harrison, Sang‐Hun Lee
SJR Q1Stem CellsOA

Intracellular Vitamin C (VC) is maintained at high levels in the developing brain by the activity of sodium-dependent VC transporter 2 (Svct2), suggesting specific VC functions in brain development. A role of VC as a cofactor for Fe(II)-2-oxoglutarate-dependent dioxygenases has recently been suggested. We show that VC supplementation in neural stem cell cultures derived from embryonic midbrains greatly enhanced differentiation toward midbrain-type dopamine (mDA) neurons, the neuronal subtype ass

Cellular and Molecular NeuroscienceNeuroscience
8
Article|118 citations·2011
Mimicking the human smell sensing mechanism with an artificial nose platform
Sang‐Hun Lee, Oh Seok Kwon, Hyun Seok Song, Seon Joo Park, Jong Hwan Sung, Jyongsik Jang, Tai Hyun Park
SJR Q1Biomaterials
Sensory SystemsNeuroscience
9
Article|107 citations·2004
Rapid accumulation of hydrogen peroxide in cucumber roots due to exposure to low temperature appears to mediate decreases in water transport
Sang‐Hun Lee
SJR Q1Journal of Experimental BotanyOA

Water transport across root systems of young cucumber (Cucumis sativus L.) seedlings was measured following exposure to low temperature (LT, 8-13 degrees C) for varying periods of time. In addition, the amount of water transported through the stems was evaluated using a heat-balance sap-flow gauge. Following LT treatment, hydrogen peroxide was localized cytochemically in root tissue by the oxidation of cerium (III) chloride. The effects of hydrogen peroxide on the hydraulic conductivity of singl

Plant ScienceAgricultural and Biological Sciences
10
Article|106 citations·2010
Foxa2 and Nurr1 Synergistically Yield A9 Nigral Dopamine Neurons Exhibiting Improved Differentiation, Function, and Cell Survival
Hyun‐Seob Lee, Eun‐Ji Bae, Sang‐Hoon Yi, Jaewon Shim, A-Young Jo, Jin-Sun Kang, Eun-Hye Yoon, Yong‐Hee Rhee, Chang‐Hwan Park, Koh H, Hyun‐Jung Kim, Hueng‐Sik Choi
SJR Q1Stem CellsOA

Effective dopamine (DA) neuron differentiation from neural precursor cells (NPCs) is prerequisite for precursor/stem cell-based therapy of Parkinson's disease (PD). Nurr1, an orphan nuclear receptor, has been reported as a transcription factor that can drive DA neuron differentiation from non-dopaminergic NPCs in vitro. However, Nurr1 alone neither induces full neuronal maturation nor expression of proteins found specifically in midbrain DA neurons. In addition, Nurr1 expression is inefficient i

Cellular and Molecular NeuroscienceNeuroscience
11
Article|100 citations·2021
SGK1 inhibition in glia ameliorates pathologies and symptoms in Parkinson disease animal models
Oh‐Chan Kwon, Jae‐Jin Song, Yunseon Yang, Seong‐Hoon Kim, Ji Young Kim, Min‐Jong Seok, Inhwa Hwang, Je‐Wook Yu, Jenisha Karmacharya, Han‐Joo Maeng, J. S. Kim, Eek‐hoon Jho
SJR Q1EMBO Molecular MedicineOA

Astrocytes and microglia are brain-resident glia that can establish harmful inflammatory environments in disease contexts and thereby contribute to the progression of neuronal loss in neurodegenerative disorders. Correcting the diseased properties of glia is therefore an appealing strategy for treating brain diseases. Previous studies have shown that serum/ glucocorticoid related kinase 1 (SGK1) is upregulated in the brains of patients with various neurodegenerative disorders, suggesting its inv

Cellular and Molecular NeuroscienceNeuroscience
12
Article|97 citations·2011
Bioelectronic nose with high sensitivity and selectivity using chemically functionalized carbon nanotube combined with human olfactory receptor
Sang‐Hun Lee, Hye Jin, Hyun Seok Song, Seunghun Hong, Tai Hyun Park
SJR Q2Journal of Biotechnology
Sensory SystemsNeuroscience
13
Article|95 citations·2007
Generation of Functional Dopamine Neurons from Neural Precursor Cells Isolated from the Subventricular Zone and White Matter of the Adult Rat Brain Using Nurr1 Overexpression
Jaewon Shim, Chang‐Hwan Park, Yong-Chul Bae, Jin-Young Bae, Seungsoo Chung, Mi‐Yoon Chang, Koh H, Hyun‐Seob Lee, Se-Jin Hwang, Ki-Hwan Lee, Yong‐Sung Lee, Cha‐Yong Choi
SJR Q1Stem CellsOA

Neural precursor (NP) cells from adult mammalian brains can be isolated, expanded in vitro, and potentially used as cell replacement source material for treatment of intractable brain disorders. Reduced ethical concerns, lack of teratoma formation, and possible ex vivo autologous transplantation are critical advantages to using adult NP donor cells over cells from fetal brain tissue or embryonic stem cells. However, the usage of adult NP cells is limited by the ability to induce specific neuroch

Cellular and Molecular NeuroscienceNeuroscience
14
Article|94 citations·2015
Combined Nurr1 and Foxa2 roles in the therapy of Parkinson's disease
Sang‐Min Oh, Mi‐Yoon Chang, Jae‐Jin Song, Yong‐Hee Rhee, Eun-hye Joe, Hyun‐Seob Lee, Sang‐Hoon Yi, Sang‐Hun Lee
SJR Q1EMBO Molecular MedicineOA

Use of the physiological mechanisms promoting midbrain DA (mDA) neuron survival seems an appropriate option for developing treatments for Parkinson's disease (PD). mDA neurons are specifically marked by expression of the transcription factors Nurr1 and Foxa2. We show herein that Nurr1 and Foxa2 interact to protect mDA neurons against various toxic insults, but their expression is lost during aging and degenerative processes. In addition to their proposed cell-autonomous actions in mDA neurons, f

Cellular and Molecular NeuroscienceNeuroscience
15
Article|87 citations·2008
Interaction Between Warfarin and Panax ginseng in Ischemic Stroke Patients
Sang‐Hun Lee, Young-min Ahn, Se-young Ahn, Ho-Kyung Doo, Byung-Cheol Lee
The Journal of Alternative and Complementary Medicine

BACKGROUND: Today, the combined use of Oriental herbal medicines and Western biomedical medicines has been a prevalent yet controversial practice. Case reports and healthy volunteer trials have had conflicting results on the effect Panax ginseng has on warfarin's pharmacologic action, some reporting a reductive and others a potentiating influence. OBJECTIVE: This study investigated the interaction between warfarin and P. ginseng by observing the prothrombin time (PT) and the international normal

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyCellular and Molecular NeurosciencePlant ScienceDevelopmental NeuroscienceNeurologyApplied Mathematics

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