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Chang-Wook Lee

Korea University · Biochemistry, Genetics and Molecular Biology

About the Lab

Professor Chang-Wook Lee's research lab focuses on cellular organelle communication, particularly the molecular mechanisms underlying endoplasmic reticulum-mitochondria contact sites (ERMCS) and their roles in cellular homeostasis, metabolism, and disease. The lab investigates the structural and functional basis of key proteins such as MIGA2, TRAP1, and ERMES components in regulating lipid trafficking, mitochondrial function, and cell survival. A central theme is the development of targeted therapeutics, especially mitochondria-specific inhibitors for cancer therapy, by elucidating protein-ligand interactions and subcellular targeting mechanisms. The lab integrates structural biology, biochemistry, and translational neuroscience to explore organelle dynamics in neurodegenerative and malignant diseases.

organelle contact sitesmitochondrial protein regulationTRAP1 inhibitorslipid transportstructural pharmacology

Research Overview

Papers
48
Total Citations
4,436
Papers (5y)
19
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
19total
2020
2021
2022
2023
2025
Citations per year (5y)
2,993total
20202021202220232025

Selected Papers

15
1
Article|2,629 citations·2021
Guidelines for the use and interpretation of assays for monitoring autophagy (4th edition)1
Daniel J. Klionsky, Amal Kamal Abdel‐Aziz, Sara Abdelfatah, Mahmoud Abdellatif, Asghar Abdoli, Steffen Abel, Hagai Abeliovich, Marie H. Abildgaard, Yakubu Princely Abudu, Abraham Acevedo‐Arozena, Iannis E. Adamopoulos, Khosrow Adeli
SJR Q1AutophagyOA

autophagic responses. Here, we critically discuss current methods of assessing autophagy and the information they can, or cannot, provide. Our ultimate goal is to encourage intellectual and technical innovation in the field.

EpidemiologyMedicine
2
Article|188 citations·2010
Structure of Coatomer Cage Proteins and the Relationship among COPI, COPII, and Clathrin Vesicle Coats
Changwook Lee, Jonathan M. Goldberg
SJR Q1CellOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|163 citations·2002
Structural basis for the recognition of the E2F transactivation domain by the retinoblastoma tumor suppressor
Changwook Lee, Jeong Ho Chang, Hyun Sook Lee, Yunje Cho
SJR Q1Genes & DevelopmentOA

Repression of E2F transcription activity by the retinoblastoma (Rb) tumor suppressor through its interaction with the transactivation domain of the E2F transcription factor is one of the central features of G1/S arrest in the mammalian cell cycle. Deregulation of the Rb-E2F interaction results in hyperproliferation, lack of differentiation, and apoptosis, and can lead to cancer. The 2.2-A crystal structure of the Rb pocket complexed with an 18-residue transactivation-domain peptide of E2F-2 reve

OncologyMedicine
4
Article|147 citations·2004
Structural basis for inhibition of the replication licensing factor Cdt1 by geminin
Changwook Lee, Bum‐Soo Hong, Jung Min Choi, Yugene Kim, Saori Watanabe, Yukio Ishimi, Takemi Enomoto, Shusuke Tada, Youngchang Kim, Yunje Cho
SJR Q1Nature
Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
Article|129 citations·2015
Development of a Mitochondria-Targeted Hsp90 Inhibitor Based on the Crystal Structures of Human TRAP1
Changwook Lee, Hye‐Kyung Park, Hanbin Jeong, Jaehwa Lim, An‐Jung Lee, Keun Young Cheon, Chul-Su Kim, Ajesh P. Thomas, Boram Bae, Nam Doo Kim, Seong Heon Kim, Pann‐Ghill Suh
SJR Q1Journal of the American Chemical Society

The mitochondrial pool of Hsp90 and its mitochondrial paralogue, TRAP1, suppresses cell death and reprograms energy metabolism in cancer cells; therefore, Hsp90 and TRAP1 have been suggested as target proteins for anticancer drug development. Here, we report that the actual target protein in cancer cell mitochondria is TRAP1, and current Hsp90 inhibitors cannot effectively inactivate TRAP1 because of their insufficient accumulation in the mitochondria. To develop mitochondrial TRAP1 inhibitors,

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|113 citations·2017
Crystal structures of Mmm1 and Mdm12–Mmm1 reveal mechanistic insight into phospholipid trafficking at ER-mitochondria contact sites
Hanbin Jeong, Jumi Park, Youngsoo Jun, Changwook Lee
SJR Q1Proceedings of the National Academy of SciencesOA

The endoplasmic reticulum (ER)-mitochondria encounter structure (ERMES) comprises mitochondrial distribution and morphology 12 (Mdm12), maintenance of mitochondrial morphology 1 (Mmm1), Mdm34, and Mdm10 and mediates physical membrane contact sites and nonvesicular lipid trafficking between the ER and mitochondria in yeast. Herein, we report two crystal structures of the synaptotagmin-like mitochondrial lipid-binding protein (SMP) domain of Mmm1 and the Mdm12-Mmm1 complex at 2.8 Å and 3.8 Å resol

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|79 citations·1996
Observation of Metabolic Changes in Chronic Schizophrenia After Neuroleptic Treatment by In Vivo Hydrogen Magnetic Resonance Spectroscopy
Bo‐Young Choe, Tae‐Suk Suh, Kyung-Sub Shinn, Changwook Lee, Chul Lee, In‐Ho Paik
SJR Q1Investigative Radiology

The current follow-up 1H MR spectroscopy study shows a significant correlation between alterations of (GABA + Glu)/Cr ratio and BPRS, and supports a hypofrontality hypothesis in chronic schizophrenia. The reduction of (GABA + Glu)/Cr ratio after neuroleptic treatment may implicate the recovery of normal neuronal function in neurotransmitters. In vivo 1H MR spectroscopy may be a useful modality in follow-up evaluation of neuroleptic treatment in chronic schizophrenia.

Radiology, Nuclear Medicine and ImagingMedicine
8
Article|78 citations·2016
Crystal structure of Mdm12 reveals the architecture and dynamic organization of the ERMES complex
Hanbin Jeong, Jumi Park, Changwook Lee
SJR Q1EMBO Reports
Renewable Energy, Sustainability and the EnvironmentEnergy
9
Article|74 citations·2022
Structural basis for mitoguardin-2 mediated lipid transport at ER-mitochondrial membrane contact sites
Hyunwoo Kim, Seowhang Lee, Youngsoo Jun, Changwook Lee
SJR Q1Nature CommunicationsOA

ions between these organelles. Mitoguardin-2 (MIGA2), a mitochondrial outer membrane protein, forms the ERMCS in higher eukaryotic cells. Here, we report the crystal structures of the MIGA2 Lipid Droplet (LD) targeting domain and the ER membrane protein VAPB bound to the phosphorylated FFAT motif of MIGA2. These structures reveal that the MIGA2 LD targeting domain has a large internal hydrophobic pocket that accommodates phospholipids and that two phosphorylations of the FFAT motif are required

Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|59 citations·2005
Structure of a peptide: N -glycanase-Rad23 complex: Insight into the deglycosylation for denatured glycoproteins
Jung‐Hoon Lee, Jung Min Choi, Changwook Lee, Ki Joung Yi, Yunje Cho
SJR Q1Proceedings of the National Academy of SciencesOA

In eukaryotes, misfolded proteins must be distinguished from correctly folded proteins during folding and transport processes by quality control systems. Yeast peptide:N-glycanase (yPNGase) specifically deglycosylates the denatured form of N-linked glycoproteins in the cytoplasm and assists proteasome-mediated glycoprotein degradation by forming a complex with 26S proteasome through DNA repair protein, yRad23. Here, we describe the crystal structures of a yPNGase and XPC-binding domain of yRad23

Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|59 citations·2016
LPS-induced NFκB enhanceosome requires TonEBP/NFAT5 without DNA binding
Hwan Hee Lee, Satoru Sanada, Seung Min An, Byeong Jin Ye, Jun Ho Lee, Young‐Kyo Seo, Changwook Lee, Whaseon Lee‐Kwon, Christoph Küper, Wolfgang Neuhofer, Soo Youn Choi, Hyug Moo Kwon
SJR Q1Scientific ReportsOA

NFκB is a central mediator of inflammation. Present inhibitors of NFκB are mostly based on inhibition of essential machinery such as proteasome and protein kinases, or activation of nuclear receptors; as such, they are of limited therapeutic use due to severe toxicity. Here we report an LPS-induced NFκB enhanceosome in which TonEBP is required for the recruitment of p300. Increased expression of TonEBP enhances the NFκB activity and reduced TonEBP expression lowers it. Recombinant TonEBP molecul

Cell BiologyBiochemistry, Genetics and Molecular Biology
12
Article|56 citations·2016
Proximity-Directed Labeling Reveals a New Rapamycin-Induced Heterodimer of FKBP25 and FRB in Live Cells
Song-Yi Lee, Hakbong Lee, Hye-Kyeong Lee, Seung-Won Lee, Sung Chul Ha, Taejoon Kwon, Jeong Kon Seo, Changwook Lee, Hyun‐Woo Rhee
SJR Q1ACS Central ScienceOA

Mammalian target of rapamycin (mTOR) signaling is a core pathway in cellular metabolism, and control of the mTOR pathway by rapamycin shows potential for the treatment of metabolic diseases. In this study, we employed a new proximity biotin-labeling method using promiscuous biotin ligase (pBirA) to identify unknown elements in the rapamycin-induced interactome on the FK506-rapamycin binding (FRB) domain in living cells. FKBP25 showed the strongest biotin labeling by FRB-pBirA in the presence of

Cell BiologyBiochemistry, Genetics and Molecular Biology
13
Article|56 citations·2017
Paralog Specificity Determines Subcellular Distribution, Action Mechanism, and Anticancer Activity of TRAP1 Inhibitors
Hye‐Kyung Park, Hanbin Jeong, Eunhwa Ko, Geumwoo Lee, Ji‐Eun Lee, Sang Kwang Lee, An-Jung Lee, Jin Young Im, S Hu, Seong Heon Kim, Ji Hoon Lee, Changwook Lee
SJR Q1Journal of Medicinal ChemistryOA

Although Hsp90 inhibitors can inhibit multiple tumorigenic pathways in cancer cells, their anticancer activity has been disappointingly modest. However, by forcing Hsp90 inhibitors into the mitochondria with mitochondrial delivery vehicles, they were converted into potent drugs targeting the mitochondrial Hsp90 paralog TRAP1. Here, to improve mitochondrial drug accumulation without using the mitochondrial delivery vehicle, we increased freely available drug concentrations in the cytoplasm by red

Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Article|52 citations·2020
Bright ligand-activatable fluorescent protein for high-quality multicolor live-cell super-resolution microscopy
Jiwoong Kwon, Jong Seok Park, Minsu Kang, Soobin Choi, Jumi Park, Gyeong Tae Kim, Changwook Lee, Sangwon Cha, Hyun‐Woo Rhee, Sang‐Hee Shim
SJR Q1Nature CommunicationsOA

We introduce UnaG as a green-to-dark photoswitching fluorescent protein capable of high-quality super-resolution imaging with photon numbers equivalent to the brightest photoswitchable red protein. UnaG only fluoresces upon binding of a fluorogenic metabolite, bilirubin, enabling UV-free reversible photoswitching with easily controllable kinetics and low background under Epi illumination. The on- and off-switching rates are controlled by the concentration of the ligand and the excitation light i

BiophysicsBiochemistry, Genetics and Molecular Biology
15
Article|48 citations·2017
Mechanistic insight into the nucleus–vacuole junction based on the Vac8p–Nvj1p crystal structure
Hanbin Jeong, Jumi Park, Hyein Kim, Miriam Lee, Young‐Joon Ko, Sang-Hwa Lee, Youngsoo Jun, Changwook Lee
SJR Q1Proceedings of the National Academy of SciencesOA

Significance Organelle contact sites are specialized intracellular zones called membrane contact sites (MCS), in which two distinct suborganelles are closely apposed in eukaryotic cells. The nucleus–vacuole junction (NVJ) is the first identified interorganellar MCS in the budding yeast Saccharomyces cerevisiae , and its formation depends on the nuclear membrane protein Nvj1p and vacuolar membrane protein Vac8p. We present the crystal structure of Vac8p–Nvj1p complex at 2.4-Å resolution. Based on

Cell BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyCell BiologyOncologyNeurologyRheumatologyEpidemiology

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