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Mi-Jung Kwon

Ewha Womans University · Biochemistry, Genetics and Molecular Biology

About the Lab

Professor Mi-Jung Kwon's research lab focuses on the molecular mechanisms underlying cancer progression, with a particular emphasis on tumor cell invasion, metastasis, and genomic instability. The lab investigates key regulators of cytoskeletal dynamics, cell adhesion, and nuclear envelope integrity—such as FILIP1L and centrosomal proteins—that influence cancer cell behavior and therapeutic response. Using interdisciplinary approaches including live-cell imaging, Drosophila models, and patient-derived cancer systems, the lab aims to identify novel therapeutic targets in cancer metastasis and angiogenesis. Their work bridges cell biology and translational oncology to uncover fundamental mechanisms driving tumor evolution and dissemination.

cancer metastasiscytoskeleton dynamicsgenomic instabilityFILIP1Lnuclear envelope rupture

Research Overview

Papers
119
Total Citations
3,733
Papers (5y)
63
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
63total
2021
2022
2023
2024
2025
Citations per year (5y)
194total
20212022202320242025

Selected Papers

15
1
Article|665 citations·2008
Mechanisms to suppress multipolar divisions in cancer cells with extra centrosomes
Mijung Kwon, Susana A. Godinho, Namrata S. Chandhok, Neil J. Ganem, Ammar Azioune, Manuel Théry, David Pellman
SJR Q1Genes & DevelopmentOA

Multiple centrosomes in tumor cells create the potential for multipolar divisions that can lead to aneuploidy and cell death. Nevertheless, many cancer cells successfully divide because of mechanisms that suppress multipolar mitoses. A genome-wide RNAi screen in Drosophila S2 cells and a secondary analysis in cancer cells defined mechanisms that suppress multipolar mitoses. In addition to proteins that organize microtubules at the spindle poles, we identified novel roles for the spindle assembly

Cell BiologyBiochemistry, Genetics and Molecular Biology
2
Review|171 citations·2005
S100A10, annexin A2, and annexin a2 heterotetramer as candidate plasminogen receptors
Mijung Kwon
Frontiers in bioscienceOA

The defining characteristic of a tumor cell is its ability to escape the constraints imposed by neighboring cells, invade the surrounding tissue and metastasize to distant sites. This invasive property of tumor cells is dependent on activation of proteinases at the cell surface. The serine proteinase plasmin is one of the key proteinases that participate in the pericellular proteolysis associated with the invasive program of tumor cells. The assembly of plasminogen and tissue plasminogen activat

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Review|140 citations·2020
Small but mighty: the causes and consequences of micronucleus rupture
Mijung Kwon, Mitchell L. Leibowitz, Jae Ho Lee
SJR Q1Experimental & Molecular MedicineOA

Micronuclei are small DNA-containing nuclear structures that are spatially isolated from the main nucleus. They are frequently found in pathologies, including cancer. It was recently shown that these nuclear structures are not only biomarkers of disease but also play an active role in tumor biology. Many consequences of micronucleus formation on tumor biology are dependent on the frequent and irreversible rupture of their nuclear envelopes, which results in the exposure of their DNA contents to

ImmunologyImmunology and Microbiology
4
Article|111 citations·2015
Direct Microtubule-Binding by Myosin-10 Orients Centrosomes toward Retraction Fibers and Subcortical Actin Clouds
Mijung Kwon, Maria Bagonis, Gaudenz Danuser, David Pellman
SJR Q1Developmental Cell
Cell BiologyBiochemistry, Genetics and Molecular Biology
5
Article|70 citations·2013
Filamin A interacting protein 1‐like inhibits WNT signaling and MMP expression to suppress cancer cell invasion and metastasis
Mijung Kwon, Soojin Lee, Yarong Wang, Yevangelina Rybak, Alex Luna, S. Lakshmi Reddy, Asha Adem, Brian T. Beaty, John S. Condeelis, Steven K. Libutti
SJR Q1International Journal of CancerOA

Identifying key mediators of cancer invasion and metastasis is crucial to the development of new and more effective therapies. We previously identified FILamin A Interacting Protein 1-Like (FILIP1L) as an important inhibitor of cell migration and invasion. FILIP1L expression was inversely correlated with the invasive potential of ovarian tumors. In our study, we established an orthotopic ovarian cancer model, wherein FILIP1L expression can be regulated in vivo. Using this model, we observed that

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|66 citations·2003
The Chromokinesin, KLP3A, Drives Mitotic Spindle Pole Separation during Prometaphase and Anaphase and Facilitates Chromatid Motility
Mijung Kwon, Sandra Morales‐Mulia, Ingrid Brust‐Mascher, Gregory C. Rogers, David Sharp, Jonathan M. Scholey
SJR Q2Molecular Biology of the CellOA

Mitosis requires the concerted activities of multiple microtubule (MT)-based motor proteins. Here we examined the contribution of the chromokinesin, KLP3A, to mitotic spindle morphogenesis and chromosome movements in Drosophila embryos and cultured S2 cells. By immunofluorescence, KLP3A associates with nonfibrous punctae that concentrate in nuclei and display MT-dependent associations with spindles. These punctae concentrate in indistinct domains associated with chromosomes and central spindles

Cell BiologyBiochemistry, Genetics and Molecular Biology
7
Review|52 citations·2004
Spindle mechanics and dynamics during mitosis in Drosophila
Mijung Kwon, Jonathan M. Scholey
SJR Q1Trends in Cell Biology
Cell BiologyBiochemistry, Genetics and Molecular Biology
8
Article|47 citations·2008
Functional Characterization of Filamin A Interacting Protein 1–Like, a Novel Candidate for Antivascular Cancer Therapy
Mijung Kwon, Engy Hanna, Dominique Lorang, Mei He, John S. Quick, Asha Adem, Christina E. Stevenson, Joon‐Yong Chung, Stephen M. Hewitt, Enrique Zudaire, Dominic Esposito, Frank Cuttitta
SJR Q1Cancer ResearchOA

Inhibiting angiogenesis has become a major therapeutic strategy for cancer treatment. To identify common intracellular mediators, we previously analyzed gene expression profiles of endothelial cells after treatment with angiogenesis inhibitors. Filamin A interacting protein 1-like (FILIP1L; previously known as down-regulated in ovarian cancer 1) was identified as one of the genes up-regulated in endothelial cells in response to these inhibitors. However, the expression and function of FILIP1L pr

Cell BiologyBiochemistry, Genetics and Molecular Biology
9
Article|42 citations·2002
Identification of Annexin II Heterotetramer as a Plasmin Reductase
Mijung Kwon, Jennifer F. Caplan, Nolan R. Filipenko, Kyu‐Sil Choi, Sandra L. Fitzpatrick, Libo Zhang, David M. Waisman
SJR Q1Journal of Biological ChemistryOA

Annexin II heterotetramer (AIIt) is a Ca(2+)- and phospholipid-binding protein that consists of two copies of a p36 and p11 subunit. AIIt regulates the production and autoproteolysis of plasmin at the cell surface. In addition to its role as a key cellular protease, plasmin also plays a role in angiogenesis as the precursor for antiangiogenic proteins. Recently we demonstrated that the primary antiangiogenic plasmin fragment, called A(61) (Lys(78)-Lys(468)) was released from cultured cells. In t

Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|31 citations·2005
Annexin A2-S100A10 Heterotetramer, a Novel Substrate of Thioredoxin
Mijung Kwon, Chang‐Soon Yoon, Woojin Jeong, Sue Goo Rhee, David M. Waisman
SJR Q1Journal of Biological ChemistryOA

The binding of plasminogen activators and plasminogen to the cell surface results in the rapid generation of the serine protease plasmin. Plasmin is further degraded by an autoproteolytic reaction, resulting in the release of an angiostatin, A61 (Lys78-Lys468). Previously, we demonstrated that the annexin A2-S100A10 heterotetramer (AIIt) stimulates the release of A61 from plasmin by promoting the autoproteolytic cleavage of the Lys468-Gly469 bond and reduction of the plasmin Cys462-Cys541 disulf

Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|30 citations·2011
Downregulation of Filamin A Interacting Protein 1-Like is Associated with Promoter Methylation and Induces an Invasive Phenotype in Ovarian Cancer
Elizabeth R. Burton, Aneesa Gaffar, Soojin Lee, Folashade Adeshuko, Kathleen D. Whitney, Joon‐Yong Chung, Stephen M. Hewitt, Gloria S. Huang, Gary L. Goldberg, Steven K. Libutti, Mijung Kwon
SJR Q1Molecular Cancer ResearchOA

Ovarian cancer is the most lethal gynecologic malignancy with a five-year survival rate below 25% for patients with stages III and IV disease. Identifying key mediators of ovarian cancer invasion and metastasis is critical to the development of more effective therapeutic interventions. We previously identified Filamin A interacting protein 1-like (FILIP1L) as an important mediator of cell proliferation and migration. In addition, targeted expression of FILIP1L in tumors inhibited tumor growth in

Molecular BiologyBiochemistry, Genetics and Molecular Biology
12
Article|26 citations·2016
Reduced expression of FILIP1L, a novel WNT pathway inhibitor, is associated with poor survival, progression and chemoresistance in ovarian cancer
Mijung Kwon, Jae‐Hoon Kim, Yevangelina Rybak, Alex Luna, Chel Hun Choi, Joon‐Yong Chung, Stephen M. Hewitt, Asha Adem, Elizabeth Tubridy, Juan Lin, Steven K. Libutti
SJR Q2OncotargetOA

Filamin A interacting protein 1-like (FILIP1L) is an inhibitor of the canonical WNT pathway. WNT/β-catenin signaling and its downstream pathway, epithelial-to-mesenchymal transition (EMT), play a key role in ovarian cancer metastasis and chemoresistance. To study the clinical implications of FILIP1L in regulating the WNT/β-catenin pathway, the expression of FILIP1L, β-catenin, SNAIL and SLUG was analyzed by immunohistochemistry on tissue microarrays of 369 ovarian samples ranging from normal to

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Review|21 citations·2014
Filamin A interacting protein 1-like as a therapeutic target in cancer.
Mijung Kwon, Steven K. Libutti
PubMed

INTRODUCTION: Filamin A interacting protein 1-like (FILIP1L) is a novel tumor suppressor-like protein that has its expression downregulated in various cancers through promoter hypermethylation. When overexpressed, FILIP1L inhibits cancer cell invasion and metastasis through the inhibition of canonical WNT signaling. AREAS COVERED: This review gives an overview of the structure and isoforms, gene expression and cellular location of FILIP1L, and how FILIP1L inhibits cancer invasion and metastasis.

Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Article|21 citations·2013
Down-Regulation of Filamin Ainteracting protein 1-like Is Associated with Promoter Methylation and an Invasive Phenotype in Breast, Colon, Lung and Pancreatic Cancers
Mijung Kwon, Soojin Lee, S. Lakshmi Reddy, Yevangelina Rybak, Asha Adem, Steven K. Libutti
SJR Q1PLoS ONEOA

Identifying key mediators of cancer cell invasion and metastasis is critical to the development of more effective cancer therapies. We previously identified Filamin A interacting protein 1-like (FILIP1L) as an important inhibitor of cell migration and invasion in ovarian cancer. FILIP1L expression was inversely correlated with the invasive potential of ovarian cancer cell lines and ovarian cancer specimens. We also demonstrated that DNA methylation in the FILIP1L promoter was a mechanism by whic

Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
Article|19 citations·2001
p22 Is a Novel Plasminogen Fragment with Antiangiogenic Activity
Mijung Kwon, Chang‐Soon Yoon, Sandra Fitzpatrick, Geetha Kassam, Kenneth S. Graham, Mary K. Young, David M. Waisman
SJR Q1Biochemistry

Tumor or tumor-associated cells cleave circulating plasminogen into three or four kringle-containing antiangiogenic fragments, collectively referred to as angiostatin. Angiostatin blocks tumor growth and metastasis by preventing the growth of endothelial cells that are critical for tumor vascularization. Here, we show that cancer and normal cells convert plasminogen into a novel 22 kDa fragment (p22). Production of this plasminogen fragment in a cell-free system has allowed characterization of t

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyCell BiologyOrganic ChemistryOncologyEpidemiologyPulmonary and Respiratory Medicine

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