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Min Joo Son

Pohang University of Science and Technology · 生化学・遺伝学・分子生物学

研究室紹介

Professor Min Joo Son's research lab specializes in single-molecule biophysics, focusing on the mechanical and dynamic behaviors of biomolecules such as membrane proteins, DNA, and vesicles. The lab develops advanced nanoscale techniques—particularly magnetic tweezers, force spectroscopy, and fluorescence imaging—to probe molecular folding, protein-DNA interactions, and reactions in confined environments. A key emphasis is on understanding how molecular structure, mechanical forces, and environmental conditions govern biomolecular function at the single-molecule level. The lab also pioneers innovative methods for efficient labeling and manipulation of biological nanoparticles, including extracellular vesicles and lipid membranes.

single-molecule force spectroscopyDNA mechanicsmembrane protein foldingnanoscale confinementmagnetic tweezers

Research Overview

Papers
37
Total Citations
592
Papers (5y)
20
Primary Field
生化学・遺伝学・分子生物学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
20total
2022
2023
2024
2025
2026
Citations per year (5y)
189total
20222023202420252026

Selected Papers

15
1
Article|90 citations·2019
Watching helical membrane proteins fold reveals a common N-to-C-terminal folding pathway
Hyun-Kyu Choi, Duyoung Min, Hyunook Kang, Min Ju Shon, Sang-Hyun Rah, Hak Chan Kim, Hawoong Jeong, Hee‐Jung Choi, James U. Bowie, Tae‐Young Yoon
SJR Q1ScienceOA

A pathway for helical membrane proteins Membrane proteins are inserted into cell membranes while they are being translated and may fold concurrently into their secondary and tertiary structures. Choi et al. describe a single-molecule force microscopy technique that allowed them to monitor folding of helical membrane proteins in vesicles and bicelles. Two helical membrane proteins, the Escherichia coli rhomboid protease GlpG and the human β 2 -adrenergic receptor, both folded from the N to the C

Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|79 citations·2019
Submicrometer elasticity of double-stranded DNA revealed by precision force-extension measurements with magnetic tweezers
Min Ju Shon, Sang-Hyun Rah, Tae‐Young Yoon
SJR Q1Science AdvancesOA

Submicrometer elasticity of double-stranded DNA (dsDNA) governs nanoscale bending of DNA segments and their interactions with proteins. Single-molecule force spectroscopy, including magnetic tweezers (MTs), is an important tool for studying DNA mechanics. However, its application to short DNAs under 1 μm is limited. We developed an MT-based method for precise force-extension measurements in the 100-nm regime that enables in situ correction of the error in DNA extension measurement, and normalize

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Review|78 citations·2022
High-Resolution Single-Molecule Magnetic Tweezers
Hyun-Kyu Choi, Hyun Gyu Kim, Min Ju Shon, Tae‐Young Yoon
SJR Q1Annual Review of BiochemistryOA

Single-molecule magnetic tweezers deliver magnetic force and torque to single target molecules, permitting the study of dynamic changes in biomolecular structures and their interactions. Because the magnetic tweezer setups can generate magnetic fields that vary slowly over tens of millimeters-far larger than the nanometer scale of the single molecule events being observed-this technique can maintain essentially constant force levels during biochemical experiments while generating a biologically

Structural BiologyBiochemistry, Genetics and Molecular Biology
4
Article|68 citations·2012
Mass Action at the Single-Molecule Level
Min Ju Shon, Adam E. Cohen
SJR Q1Journal of the American Chemical Society

We developed a system to reversibly encapsulate small numbers of molecules in an array of nanofabricated "dimples". This system enables highly parallel, long-term, and attachment-free studies of molecular dynamics via single-molecule fluorescence. In studies of bimolecular reactions of small numbers of confined molecules, we see phenomena that, while expected from basic statistical mechanics, are not observed in bulk chemistry. Statistical fluctuations in the occupancy of sealed reaction chamber

Biomedical EngineeringEngineering
5
Article|38 citations·2023
Efficient Labeling of Vesicles with Lipophilic Fluorescent Dyes via the Salt-Change Method
Minkwon Cha, Sang Hyeok Jeong, Seoyoon Bae, Jun Hyuk Park, Yoonjin Baeg, Dong Woo Han, Sang Soo Kim, Jaehyeon Shin, Jeong Eun Park, Seung Wook Oh, Yong Song Gho, Min Ju Shon
SJR Q1Analytical ChemistryOA

Fluorescent labeling allows for imaging and tracking of vesicles down to single-particle level. Among several options to introduce fluorescence, staining of lipid membranes with lipophilic dyes provides a straightforward approach without interfering with vesicle content. However, incorporating lipophilic molecules into vesicle membranes in an aqueous solution is generally not efficient because of their low water solubility. Here, we describe a simple, fast (<30 min), and highly effective procedu

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|33 citations·2015
Nano-mechanical measurements of protein-DNA interactions with a silicon nitride pulley
Min Ju Shon, Adam E. Cohen
SJR Q1Nucleic Acids ResearchOA

Proteins adhere to DNA at locations and with strengths that depend on the protein conformation, the underlying DNA sequence and the ionic content of the solution. A facile technique to probe the positions and strengths of protein-DNA binding would aid in understanding these important interactions. Here, we describe a 'DNA pulley' for position-resolved nano-mechanical measurements of protein-DNA interactions. A molecule of λ DNA is tethered by one end to a glass surface, and by the other end to a

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
7
Article|32 citations·2018
Profiling of protein–protein interactions via single-molecule techniques predicts the dependence of cancers on growth-factor receptors
Hong-Won Lee, Byoungsan Choi, Han Na Kang, Hyunwoo Kim, Ahrum Min, Minkwon Cha, Ji Young Ryu, Sangwoo Park, Jinyoung Sohn, Kihyuk Shin, Mi Ran Yun, Joo Yeun Han
SJR Q1Nature Biomedical EngineeringOA
Radiology, Nuclear Medicine and ImagingMedicine
8
Article|27 citations·2016
Observing Extremely Weak Protein–Protein Interactions with Conventional Single-Molecule Fluorescence Microscopy
Janghyun Yoo, Tae-Sun Lee, Byungsan Choi, Min Ju Shon, Tae‐Young Yoon
SJR Q1Journal of the American Chemical Society

Extremely weak protein-protein interactions (PPIs), signified by micromolar or even millimolar dissociation constants, are one of the keys to understanding the rapid responses of cellular systems. Although single-molecule methods are particularly useful in determining kinetics of biological processes, their application is largely limited to rather strong interactions because of the diffraction-limited observation volume. In this study, we report a single-molecule method that allows the character

BiophysicsBiochemistry, Genetics and Molecular Biology
9
Article|27 citations·2018
Focused clamping of a single neuronal SNARE complex by complexin under high mechanical tension
Min Ju Shon, Haesoo Kim, Tae‐Young Yoon
SJR Q1Nature CommunicationsOA

Neuronal soluble N-ethylmaleimide-sensitive factor attachment protein receptors (SNAREs) catalyze synaptic vesicle fusion with presynaptic membranes through the formation of SNARE complexes. Complexin (Cpx) is the only presynaptic protein that tightly binds to SNAREs and regulates membrane fusion, but how it modulates the energy landscape of SNARE complex assembly, especially under mechanical tension on the complex, remains unclear. Here, using magnetic tweezers, we report how Cpx interacts with

Cell BiologyBiochemistry, Genetics and Molecular Biology
10
Article|22 citations·2021
Extreme parsimony in ATP consumption by 20S complexes in the global disassembly of single SNARE complexes
Chang-Won Kim, Min Ju Shon, Sung Hyun Kim, Gee Sung Eun, Je‐Kyung Ryu, Changbong Hyeon, Reinhard Jahn, Tae‐Young Yoon
SJR Q1Nature CommunicationsOA

Fueled by ATP hydrolysis in N-ethylmaleimide sensitive factor (NSF), the 20S complex disassembles rigid SNARE (soluble NSF attachment protein receptor) complexes in single unraveling step. This global disassembly distinguishes NSF from other molecular motors that make incremental and processive motions, but the molecular underpinnings of its remarkable energy efficiency remain largely unknown. Using multiple single-molecule methods, we found remarkable cooperativity in mechanical connection betw

Cell BiologyBiochemistry, Genetics and Molecular Biology
11
Article|18 citations·2019
Profiling protein–protein interactions of single cancer cells within situlysis and co-immunoprecipitation
Ji Young Ryu, Jihye Kim, Min Ju Shon, Jiashu Sun, Xingyu Jiang, Wonhee Lee, Tae‐Young Yoon
SJR Q1Lab on a Chip

Heterogeneity in a tumor allows a small portion of cancer cells to survive and regrow upon targeted cancer therapy, eventually leading to cancer relapse. Such drug-resistant cells often exhibit dynamic adaptation of their signaling pathways at the level of protein-protein interactions (PPIs). To probe the rewiring of signaling pathways and the heterogeneity across individual cancer cells, we developed a single-cell version of the co-immunoprecipitation (co-IP) analysis that examines the amount a

Radiology, Nuclear Medicine and ImagingMedicine
12
Article|17 citations·2022
Tension exerted on cells by magnetic nanoparticles regulates differentiation of human mesenchymal stem cells
Sung‐Woo Cho, Min Ju Shon, Boram Son, Gee Sung Eun, Tae‐Young Yoon, Tai Hyun Park
SJR Q1Biomaterials Advances
Cell BiologyBiochemistry, Genetics and Molecular Biology
13
Review|11 citations·2022
Nano-Precision Tweezers for Mechanosensitive Proteins and Beyond
Taehyun Yang, Celine Park, Sang-Hyun Rah, Min Ju Shon
SJR Q1Molecules and CellsOA

Mechanical forces play pivotal roles in regulating cell shape, function, and fate. Key players that govern the mechanobiological interplay are the mechanosensitive proteins found on cell membranes and in cytoskeleton. Their unique nanomechanics can be interrogated using single-molecule tweezers, which can apply controlled forces to the proteins and simultaneously measure the ensuing structural changes. Breakthroughs in high-resolution tweezers have enabled the routine monitoring of nanometer-sca

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
14
Review|8 citations·2025
Advancing membrane biology: single-molecule approaches meet model membrane systems
Jaehyeon Shin, Sang Hyeok Jeong, Min Ju Shon
SJR Q1BMB ReportsOA

Model membrane systems have emerged as essential platforms for investigating membrane-associated processes in controlled environments, mimicking biological membranes without the complexity of cellular systems. However, integrating these model systems with single-molecule techniques remains challenging due to the fluidity of lipid membranes, including undulations and the lateral mobility of lipids and proteins. This mini-review explores the evolution of various model membranes ranging from black

Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
Article|8 citations·2023
Quantitative imaging of vesicle–protein interactions reveals close cooperation among proteins
Minkwon Cha, Sang Hyeok Jeong, Jae-Hun Jung, Yoonjin Baeg, Sung‐Soo Park, Seoyoon Bae, Chan Lim, Jun Hyuk Park, Jie‐Oh Lee, Yong Song Gho, Seung Wook Oh, Min Ju Shon
SJR Q1Journal of Extracellular VesiclesOA

Membrane-bound vesicles such as extracellular vesicles (EVs) can function as biochemical effectors on target cells. Docking of the vesicles onto recipient plasma membranes depends on their interaction with cell-surface proteins, but a generalizable technique that can quantitatively observe these vesicle-protein interactions (VPIs) is lacking. Here, we describe a fluorescence microscopy that measures VPIs between single vesicles and cell-surface proteins, either in a surface-tethered or in a memb

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyCell BiologyBiomedical EngineeringAtomic and Molecular Physics, and OpticsBiophysicsRadiology, Nuclear Medicine and Imaging

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