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Won‐Ki Cho

Korea Advanced Institute of Science and Technology · Biochemistry, Genetics and Molecular Biology

About the Lab

Professor Won-Ki Cho's research lab focuses on the dynamic organization of transcription machinery in living mammalian cells, with a central emphasis on how phase-separated condensates and protein clustering regulate gene expression. The lab employs cutting-edge live-cell super-resolution imaging and CRISPR-based genome editing to study the spatiotemporal dynamics of RNA polymerases (Pol I, Pol II) and regulatory proteins like CTCF and BRD4. By integrating quantitative image analysis tools such as qSR, the lab uncovers how transient, multivalent interactions drive the formation of functional transcriptional hubs and their coupling to chromatin architecture. Their work reveals fundamental principles of genome regulation through the lens of biomolecular condensation and cellular organization.

transcriptional condensatesphase separationsuper-resolution imaginglive-cell dynamicschromatin organization

Research Overview

Papers
54
Total Citations
2,712
Papers (5y)
28
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
28total
2022
2023
2024
2025
2026
Citations per year (5y)
313total
20222023202420252026

Selected Papers

15
1
Article|1,508 citations·2018
Mediator and RNA polymerase II clusters associate in transcription-dependent condensates
Won‐Ki Cho, Jan-Hendrik Spille, Micca Hecht, Choongman Lee, Charles H. Li, Valentin Grube, Ibrahim I. Cissé
SJR Q1ScienceOA

Phase separation and gene control Many components of eukaryotic transcription machinery—such as transcription factors and cofactors including BRD4, subunits of the Mediator complex, and RNA polymerase II—contain intrinsically disordered low-complexity domains. Now a conceptual framework connecting the nature and behavior of their interactions to their functions in transcription regulation is emerging (see the Perspective by Plys and Kingston). Chong et al. found that low-complexity domains of tr

BiophysicsBiochemistry, Genetics and Molecular Biology
2
Article|301 citations·2016
RNA Polymerase II cluster dynamics predict mRNA output in living cells
Won‐Ki Cho, Namrata Jayanth, Brian P. English, Takuma Inoue, J Owen Andrews, William F. Conway, Jonathan B. Grimm, Jan-Hendrik Spille, Luke D. Lavis, Timothée Lionnet, Ibrahim I. Cissé
SJR Q1eLifeOA

Protein clustering is a hallmark of genome regulation in mammalian cells. However, the dynamic molecular processes involved make it difficult to correlate clustering with functional consequences in vivo. We developed a live-cell super-resolution approach to uncover the correlation between mRNA synthesis and the dynamics of RNA Polymerase II (Pol II) clusters at a gene locus. For endogenous β-actin genes in mouse embryonic fibroblasts, we observe that short-lived (~8 s) Pol II clusters correlate

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|161 citations·2024
Direct observation of a condensate effect on super-enhancer controlled gene bursting
Manyu Du, Simon Hendrik Stitzinger, Jan-Hendrik Spille, Won‐Ki Cho, Choongman Lee, Mohammed Hijaz, Andrea Quintana, Ibrahim I. Cissé
SJR Q1CellOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|135 citations·2011
MutS switches between two fundamentally distinct clamps during mismatch repair
Cherlhyun Jeong, Won‐Ki Cho, Kyung-Mi Song, Christopher Cook, Tae‐Young Yoon, Changill Ban, Richard Fishel, Jong‐Bong Lee
SJR Q1Nature Structural & Molecular Biology
Pathology and Forensic MedicineMedicine
5
Article|129 citations·2021
CTCF-mediated chromatin looping provides a topological framework for the formation of phase-separated transcriptional condensates
Ryanggeun Lee, Moo-Koo Kang, Yong-Jin Kim, Bobae Yang, Hwanyong Shim, Sugyung Kim, Kyungwoo Kim, Chul Min Yang, Byeonggyu Min, Woong-Jae Jung, Eun-Chong Lee, Jung-Sik Joo
SJR Q1Nucleic Acids ResearchOA

CTCF is crucial to the organization of mammalian genomes into loop structures. According to recent studies, the transcription apparatus is compartmentalized and concentrated at super-enhancers to form phase-separated condensates and drive the expression of cell-identity genes. However, it remains unclear whether and how transcriptional condensates are coupled to higher-order chromatin organization. Here, we show that CTCF is essential for RNA polymerase II (Pol II)-mediated chromatin interaction

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|100 citations·2012
ATP Alters the Diffusion Mechanics of MutS on Mismatched DNA
Won‐Ki Cho, Cherlhyun Jeong, Daehyung Kim, Minhyeok Chang, Kyung-Mi Song, Jeungphill Hanne, Changill Ban, Richard Fishel, Jong‐Bong Lee
SJR Q1StructureOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|73 citations·2016
Super-resolution imaging of fluorescently labeled, endogenous RNA Polymerase II in living cells with CRISPR/Cas9-mediated gene editing
Won‐Ki Cho, Namrata Jayanth, Susan Mullen, Tzer Han Tan, Yoon J. Jung, Ibrahim I. Cissé
SJR Q1Scientific ReportsOA

Live cell imaging of mammalian RNA polymerase II (Pol II) has previously relied on random insertions of exogenous, mutant Pol II coupled with the degradation of endogenous Pol II using a toxin, α-amanitin. Therefore, it has been unclear whether over-expression of labeled Pol II under an exogenous promoter may have played a role in reported Pol II dynamics in vivo. Here we label the endogenous Pol II in mouse embryonic fibroblast (MEF) cells using the CRISPR/Cas9 gene editing system. Using single

Molecular BiologyBiochemistry, Genetics and Molecular Biology
8
Review|43 citations·2014
Single-molecule views of MutS on mismatched DNA
Jong‐Bong Lee, Won‐Ki Cho, Jong‐Hyun Park, Yongmoon Jeon, Daehyung Kim, Seung Hwan Lee, Richard Fishel
SJR Q1DNA repairOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
9
Review|41 citations·2024
Emerging insights into transcriptional condensates
Kwangmin Ryu, Gunhee Park, Won‐Ki Cho
SJR Q1Experimental & Molecular MedicineOA

Eukaryotic transcription, a fundamental process that governs cell-specific gene expression, has long been the subject of extensive investigations in the fields of molecular biology, biochemistry, and structural biology. Recent advances in microscopy techniques have led to a fascinating concept known as "transcriptional condensates." These dynamic assemblies are the result of a phenomenon called liquid‒liquid phase separation, which is driven by multivalent interactions between the constituent pr

Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|36 citations·2018
qSR: a quantitative super-resolution analysis tool reveals the cell-cycle dependent organization of RNA Polymerase I in live human cells
J Owen Andrews, William F. Conway, Won‐Ki Cho, Arjun Narayanan, Jan-Hendrik Spille, Namrata Jayanth, Takuma Inoue, Susan Mullen, Jesse Thaler, Ibrahim I. Cissé
SJR Q1Scientific ReportsOA

We present qSR, an analytical tool for the quantitative analysis of single molecule based super-resolution data. The software is created as an open-source platform integrating multiple algorithms for rigorous spatial and temporal characterizations of protein clusters in super-resolution data of living cells. First, we illustrate qSR using a sample live cell data of RNA Polymerase II (Pol II) as an example of highly dynamic sub-diffractive clusters. Then we utilize qSR to investigate the organiza

BiophysicsBiochemistry, Genetics and Molecular Biology
11
erratum|32 citations·2024
Direct observation of a condensate effect on super-enhancer controlled gene bursting
Manyu Du, Simon Hendrik Stitzinger, Jan-Hendrik Spille, Won‐Ki Cho, Choongman Lee, Mohammed Hijaz, Andrea Quintana, Ibrahim I. Cissé
SJR Q1CellOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
12
Article|20 citations·2022
Effects of Transcription-Dependent Physical Perturbations on the Chromosome Dynamics in Living Cells
Hyeyeong Ku, Gunhee Park, Jiyoung Goo, Jeongmin Lee, Tae Lim Park, Hwanyong Shim, Jeong Hee Kim, Won‐Ki Cho, Cherlhyun Jeong
SJR Q1Frontiers in Cell and Developmental BiologyOA

Recent studies with single-particle tracking in live cells have revealed that chromatin dynamics are directly affected by transcription. However, how transcription alters the chromatin movements followed by changes in the physical properties of chromatin has not been elucidated. Here, we measured diffusion characteristics of chromatin by targeting telomeric DNA repeats with CRISPR-labeling. We found that transcription inhibitors that directly block transcription factors globally increased the mo

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|14 citations·2014
Loading Dynamics of a Sliding DNA Clamp
Won‐Ki Cho, Slobodan Jergic, Daehyung Kim, Nicholas E. Dixon, Jong‐Bong Lee
SJR Q1Angewandte Chemie International EditionOA

Sliding DNA clamps are loaded at a ss/dsDNA junction by a clamp loader that depends on ATP binding for clamp opening. Sequential ATP hydrolysis results in closure of the clamp so that it completely encircles and diffuses on dsDNA. We followed events during loading of an E. coli β clamp in real time by using single-molecule FRET (smFRET). Three successive FRET states were retained for 0.3 s, 0.7 s, and 9 min: Hydrolysis of the first ATP molecule by the γ clamp loader resulted in closure of the cl

Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Article|14 citations·2023
YTHDF2 facilitates aggresome formation via UPF1 in an m6A-independent manner
Hyun Jung Hwang, Tae Lim Park, H. Kim, Yeonkyoung Park, Geunhee Kim, Chiyeol Song, Won‐Ki Cho, Yoon Ki Kim
SJR Q1Nature CommunicationsOA

Abstract YTHDF2 has been extensively studied and typified as an RNA-binding protein that specifically recognizes and destabilizes RNAs harboring N 6 -methyladenosine (m 6 A), the most prevalent internal modification found in eukaryotic RNAs. In this study, we unravel the m 6 A-independent role of YTHDF2 in the formation of an aggresome, where cytoplasmic protein aggregates are selectively sequestered upon failure of protein homeostasis mediated by the ubiquitin-proteasome system. Downregulation

Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
Article|9 citations·2024
Loss of Katnal2 leads to ependymal ciliary hyperfunction and autism-related phenotypes in mice
Ryeonghwa Kang, Kyungdeok Kim, Yewon Jung, Sang‐Han Choi, Chanhee Lee, Geun Ho Im, Miram Shin, Kwangmin Ryu, Subin Choi, Esther Yang, Wangyong Shin, Seungjoon Lee
SJR Q1PLoS BiologyOA

Autism spectrum disorders (ASD) frequently accompany macrocephaly, which often involves hydrocephalic enlargement of brain ventricles. Katnal2 is a microtubule-regulatory protein strongly linked to ASD, but it remains unclear whether Katnal2 knockout (KO) in mice leads to microtubule- and ASD-related molecular, synaptic, brain, and behavioral phenotypes. We found that Katnal2-KO mice display ASD-like social communication deficits and age-dependent progressive ventricular enlargements. The latter

GeneticsBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyBiophysicsGeneticsPathology and Forensic MedicineCell BiologyPlant Science

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