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Hyuk-Jin Cha

Seoul National University · Biochemistry, Genetics and Molecular Biology

About the Lab

Professor Hyuk-Jin Cha's research lab focuses on cellular signaling mechanisms underlying DNA damage response, cancer metastasis, and stem cell senescence. The lab investigates key molecular players such as gamma-H2AX, E-cadherin, and MAP kinase pathways (including ERK and p38) in maintaining genomic stability, regulating epithelial-mesenchymal transition (EMT), and controlling cell cycle progression. A central theme is the functional significance of post-translational modifications—particularly phosphorylation—on protein activity and cellular fate in both normal and disease states. The lab employs advanced techniques like phospho-specific antibodies, immunofluorescence, and synchronized cell systems to dissect dynamic signaling events in real time.

DNA damage responseepithelial-mesenchymal transitionMAP kinase signalingphosphorylation dynamicsstem cell senescence

Research Overview

Papers
210
Total Citations
3,232
Papers (5y)
83
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
83total
2022
2023
2024
2025
2026
Citations per year (5y)
253total
20222023202420252026

Selected Papers

15
1
Article|151 citations·2010
Wip1 Directly Dephosphorylates γ-H2AX and Attenuates the DNA Damage Response
Hyuk‐Jin Cha, Julie M. Lowe, Heng‐Hong Li, Ji‐Seon Lee, Galina I. Belova, Dmitry V. Bulavin, Albert J. Fornace
SJR Q1Cancer ResearchOA

The integrity of DNA is constantly challenged throughout the life of a cell by both endogenous and exogenous stresses. A well-organized rapid damage response and proficient DNA repair, therefore, become critically important for maintaining genomic stability and cell survival. When DNA is damaged, the DNA damage response (DDR) can be initiated by alterations in chromosomal structure and histone modifications, such as the phosphorylation of the histone H2AX (the phosphorylated form is referred to

Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|146 citations·2013
Loss of E-cadherin activates EGFR-MEK/ERK signaling, which promotes invasion via the ZEB1/MMP2 axis in non-small cell lung cancer
Gab-Yong Bae, So‐Jung Choi, Ji‐Seon Lee, Jisuk Jo, Jinseon Lee, Young Tae Kim, Hyuk‐Jin Cha
SJR Q2OncotargetOA

Loss of E-cadherin, a hallmark of epithelial-mesenchymal transition (EMT), can significantly affect metastatic dissemination. However, the molecular mechanism of EMT-associated metastatic dissemination by loss of E-cadherin still remains unclear in non-small cell lung cancers (NSCLCs). In the present study, we show that the knockdown of E-cadherin was sufficient to convert A549 NSCLC cells into mesenchymal type with the concurrent up-regulation of typical EMT inducers such as ZEB1 and TWIST1. In

OncologyMedicine
3
Article|89 citations·2009
Senescent Growth Arrest in Mesenchymal Stem Cells Is Bypassed by Wip1-Mediated Downregulation of Intrinsic Stress Signaling Pathways
Ji‐Seon Lee, Mi‐Ok Lee, Bo‐Hyun Moon, Sung Han Shim, Albert J. Fornace, Hyuk‐Jin Cha
SJR Q1Stem CellsOA

Human mesenchymal stem cells (hMSCs) have been widely studied as a source of primary adult stem cells for cell therapy because of their multidifferentiation potential; however, the growth arrest (also known as "premature senescence") often found in hMSCs cultured in vitro has been a major obstacle to the in-depth characterization of these cells. In addition, the inability to maintain constant cell growth hampers the development of additional genetic modifications aimed at achieving desired level

PhysiologyMedicine
4
Article|67 citations·2001
Tyrosine-Phosphorylated Extracellular Signal–Regulated Kinase Associates with the Golgi Complex during G2/M Phase of the Cell Cycle
Hyuk‐Jin Cha, Paul Shapiro
SJR Q1The Journal of Cell BiologyOA

Phosphorylation of the extracellular signal-regulated kinases (ERKs) on tyrosine and threonine residues within the TEY tripeptide motif induces ERK activation and targeting of substrates. Although it is recognized that phosphorylation of both residues is required for ERK activation, it is not known if a single phosphorylation of either residue regulates physiological functions. In light of recent evidence indicating that ERK proteins regulate substrate function in the absence of ERK enzymatic ac

Cell BiologyBiochemistry, Genetics and Molecular Biology
5
Article|64 citations·2007
A Functional Role for p38 MAPK in Modulating Mitotic Transit in the Absence of Stress
Hyuk‐Jin Cha, Xuetao Wang, Heng‐Hong Li, Albert J. Fornace
SJR Q1Journal of Biological ChemistryOA

Although p38 MAPK is known to be activated in response to various environmental stresses and to have inhibitory roles in cell proliferation and tumor progression, its role in cell cycle progression in the absence of stress is unknown in most cell types. In the case of G(2)/M cell cycle control, p38 activation has been shown to trigger a rapid G(2)/M cell cycle checkpoint after DNA damage stress and a spindle checkpoint after microtubule disruption. In the course of our studies, we observed that

Cell BiologyBiochemistry, Genetics and Molecular Biology
6
Article|52 citations·2004
Phosphorylation regulates nucleophosmin targeting to the centrosome during mitosis as detected by cross-reactive phosphorylation-specific MKK1/MKK2 antibodies
Hyuk‐Jin Cha, Chad N. Hancock, Surabhi Dangi, Dony Maiguel, France Carrier, Paul Shapiro
SJR Q1Biochemical JournalOA

Phosphorylation-specific antibodies provide a powerful tool for analysing the regulation and activity of proteins in the MAP (mitogen-activated protein) kinase and other signalling pathways. Using synchronized cells, it was observed that phosphorylation-specific antibodies developed against the active form of MKK1/MKK2 (MAP kinase kinase-1 and -2) reacted with a protein that was approx. 35 kDa during G2/M-phase of the cell cycle. Failure of the 35 kDa protein to react with phosphorylation-indepe

Cell BiologyBiochemistry, Genetics and Molecular Biology
7
Article|42 citations·2020
Systematic identification of a nuclear receptor-enriched predictive signature for erastin-induced ferroptosis
Ok-Seon Kwon, Eun-Ji Kwon, Hyeon-Joon Kong, Jeong-Yoon Choi, Yun Jeong Kim, Eun‐Woo Lee, Wankyu Kim, Haeseung Lee, Hyuk‐Jin Cha
SJR Q1Redox BiologyOA

Erastin, a synthetic lethal compound against cancer expressing an oncogenic RAS, inhibits cystine/glutamate antiporters and causes ferroptosis. However, despite recent evidence for the mechanisms underlying ferroptosis, molecular biomarkers of erastin-dependent ferroptosis have not been identified. Here, we employed isogenic lung cancer cell models to show that a redox imbalance leads to glutathione depletion and ferroptosis. Subsequent transcriptome analysis of pan-cancer cell lines revealed th

Pulmonary and Respiratory MedicineMedicine
8
Article|41 citations·2016
Induction of MiR-21 by Stereotactic Body Radiotherapy Contributes to the Pulmonary Fibrotic Response
Ok-Seon Kwon, Keun-Tae Kim, Eunioo Lee, Myoungjae Kim, Seo-Hyun Choi, Heng‐Hong Li, Albert J. Fornace, Jae-Ho Cho, Yun‐Sil Lee, Yun‐Sil Lee, Ji-Seon Lee, Yoon‐Jin Lee
SJR Q1PLoS ONEOA

Radiation-induced lung fibrosis, the most serious effect of lung cancer radiotherapy on normal tissue, remains a major technical obstacle to the broader application of radiotherapy to patients with lung cancer. This study describes the use of an image-guided irradiation system in mice mimicking stereotactic body radiotherapy (SBRT) to examine the molecular features of chronic fibrotic response after radiation injury. MicroRNA (miR) array analysis of injured pulmonary tissue identified a set of m

Cancer ResearchBiochemistry, Genetics and Molecular Biology
9
Article|37 citations·2020
Connectivity map-based drug repositioning of bortezomib to reverse the metastatic effect of GALNT14 in lung cancer
Ok-Seon Kwon, Haeseung Lee, Hyeon-Joon Kong, Eun-Ji Kwon, Ji Eun Park, Wooin Lee, Seungmin Kang, Mirang Kim, Wankyu Kim, Hyuk‐Jin Cha
SJR Q1Oncogene
Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Review|34 citations·2013
The accumulation of DNA repair defects is the molecular origin of carcinogenesis
Hyuk‐Jin Cha, Hyungshin Yim
SJR Q3Tumor Biology
Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|33 citations·2010
Zap70 Functions to Maintain Stemness of Mouse Embryonic Stem Cells by Negatively Regulating Jak1/Stat3/c-Myc Signaling
Young Cha, Bo‐Hyun Moon, Mi-Ok Lee, Hee-Jin Ahn, Hye-Jin Lee, Kyung-ah Lee, Albert J. Fornace, Kwang‐Soo Kim, Hyuk‐Jin Cha, Kyung‐Soon Park
SJR Q1Stem CellsOA

Zeta-chain-associated protein kinase-70 (Zap70), a Syk family tyrosine kinase, has been reported to be present exclusively in normal T-cells, natural killer cells, and B cells, serving as a pivotal regulator of antigen-mediated receptor signaling and development. In this study, we report that Zap70 is expressed in undifferentiated mouse embryonic stem cells (mESCs) and may critically regulate self-renewal and pluripotency in mESCs. We found that Zap70 knocked-down mESCs (Zap70KD) show sustained

OncologyMedicine
12
Review|32 citations·2015
GalNAc-T14 promotes metastasis through Wnt dependentHOXB9expression in lung adenocarcinoma
Ok‐Seon Kwon, Ensel Oh, Jeongrak Park, Ji‐Seon Lee, Gab-Yong Bae, JaeHyung Koo, Seokjoong Kim, Yoon‐La Choi, Young Soo Choi, Jhingook Kim, Hyuk‐Jin Cha
SJR Q2OncotargetOA

While metastasis, the main cause of lung cancer-related death, has been extensively studied, the underlying molecular mechanism remains unclear. A previous clinicogenomic study revealed that expression of N-acetylgalactosaminyltransferase (GalNAc-T14), is highly inversely correlated with recurrence-free survival in those with non-small cell lung cancer (NSCLC). However, the underlying molecular mechanism(s) has not been determined. Here, we showed that GalNAc-T14 expression was positively associ

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|31 citations·2015
Repair of Ischemic Injury by Pluripotent Stem Cell Based Cell Therapy without Teratoma through Selective Photosensitivity
Seung-Ju Cho, Soyeon Kim, Ho‐Chang Jeong, Hyeonsik Cheong, Doseok Kim, Soon‐Jung Park, Jong-Jin Choi, Seokjoong Kim, Hyung‐Min Chung, Sung‐Hwan Moon, Hyuk‐Jin Cha
SJR Q1Stem Cell ReportsOA

Stem-toxic small molecules have been developed to induce selective cell death of pluripotent stem cells (PSCs) to lower the risk of teratoma formation. However, despite their high efficacies, chemical-based approaches may carry unexpected toxicities on specific differentiated cell types. Herein, we took advantage of KillerRed (KR) as a suicide gene, to selectively induce phototoxicity using visible light via the production of reactive oxygen species. PSCs in an undifferentiated state that exclus

Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Article|31 citations·2023
Partial in vivo reprogramming enables injury-free intestinal regeneration via autonomous Ptgs1 induction
Jumee Kim, Somi Kim, Seungyeon Lee, Beom‐Ki Jo, J. Y. Oh, Eun‐Ji Kwon, Keun-Tae Kim, Anish Ashok Adpaikar, Eun‐Jung Kim, Han‐Sung Jung, Hwa-Ryeon Kim, Jae‐Seok Roe
SJR Q1Science AdvancesOA

Tissue regeneration after injury involves the dedifferentiation of somatic cells, a natural adaptive reprogramming that leads to the emergence of injury-responsive cells with fetal-like characteristics. However, there is no direct evidence that adaptive reprogramming involves a shared molecular mechanism with direct cellular reprogramming. Here, we induced dedifferentiation of intestinal epithelial cells using OSKM (Oct4, Sox2, Klf4, and c-Myc) in vivo. The OSKM-induced forced dedifferentiation

SurgeryMedicine
15
Article|30 citations·2004
Phosphorylation of golgin-160 by mixed lineage kinase 3
Hyuk‐Jin Cha, Barbara L. Smith, Kathleen A. Gallo, Carolyn E. Machamer, Paul Shapiro
SJR Q2Journal of Cell Science

Golgin-160 is a member of the coiled-coil family of golgin proteins, which are proposed to regulate the structure of the Golgi complex. The C-terminal two-thirds of golgin-160 is predicted to form a coiled-coil domain and the N-terminal head domain contains several putative binding domains, regulatory motifs and phosphorylation sites. Recently, it has been demonstrated that caspase-dependent cleavage of the golgin-160 head domain occurs rapidly after induction of apoptosis. The role of golgin-16

Cell BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyCell BiologyOncologyPulmonary and Respiratory MedicineCancer ResearchGenetics

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