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Ji-Hye Seong

Seoul National University · Biochemistry, Genetics and Molecular Biology

About the Lab

Professor Ji-Hye Seong's research lab specializes in cellular mechanotransduction and dynamic signaling regulation, focusing on how mechanical forces and biochemical cues are integrated at the molecular level to control cell behavior. The lab develops and applies advanced optical biosensors—particularly genetically encoded FRET-based sensors—to visualize real-time activity of key signaling molecules such as focal adhesion kinase (FAK) and platelet-derived growth factor receptor (PDGFR) in live cells. Their work elucidates the mechanical regulation of integrin-ECM interactions and receptor signaling in membrane microdomains, with implications for understanding cancer progression and inflammatory diseases. The lab also pioneers optobiochemical tools to spatiotemporally control protein functions using light, enabling precise dissection of signaling dynamics.

mechanotransductionbiosensorsFRETsignaling dynamicsoptogenetics

Research Overview

Papers
83
Total Citations
2,104
Papers (5y)
23
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
23total
2022
2023
2024
2025
2026
Citations per year (5y)
185total
20222023202420252026

Selected Papers

15
1
Article|196 citations·2013
Distinct biophysical mechanisms of focal adhesion kinase mechanoactivation by different extracellular matrix proteins
Jihye Seong, Arash Tajik, Jie Sun, Jun‐Lin Guan, Martin J. Humphries, Susan E. Craig, Asha Shekaran, Andrés J. Garcı́a, Shaoying Lu, Michael Z. Lin, Ning Wang, Yingxiao Wang
SJR Q1Proceedings of the National Academy of Sciences

Matrix mechanics controls cell fate by modulating the bonds between integrins and extracellular matrix (ECM) proteins. However, it remains unclear how fibronectin (FN), type 1 collagen, and their receptor integrin subtypes distinctly control force transmission to regulate focal adhesion kinase (FAK) activity, a crucial molecular signal governing cell adhesion/migration. Here we showed, using a genetically encoded FAK biosensor based on fluorescence resonance energy transfer, that FN-mediated FAK

Cell BiologyBiochemistry, Genetics and Molecular Biology
2
Article|128 citations·2011
Detection of focal adhesion kinase activation at membrane microdomains by fluorescence resonance energy transfer
Jihye Seong, Mingxing Ouyang, Tae‐Jin Kim, Jie Sun, Po‐Chao Wen, Shaoying Lu, Yue Zhuo, Nicholas M. Llewellyn, David D. Schlaepfer, Jun‐Lin Guan, Shu Chien, Yingxiao Wang
SJR Q1Nature CommunicationsOA
Immunology and AllergyMedicine
3
Review|78 citations·2013
Mechanotransduction at focal adhesions: from physiology to cancer development
Jihye Seong, Ning Wang, Yingxiao Wang
SJR Q2Journal of Cellular and Molecular MedicineOA

Living cells are continuously exposed to mechanical cues, and can translate these signals into biochemical information (e.g. mechanotransduction). This process is crucial in many normal cellular functions, e.g. cell adhesion, migration, proliferation, and survival, as well as the progression of diseases such as cancer. Focal adhesions are the major sites of interactions between extracellular mechanical environments and intracellular biochemical signalling molecules/cytoskeleton, and hence focal

Cell BiologyBiochemistry, Genetics and Molecular Biology
4
Article|74 citations·2009
Visualization of Src Activity at Different Compartments of the Plasma Membrane by FRET Imaging
Jihye Seong, Shaoying Lu, Mingxing Ouyang, He Huang, Jin Zhang, Margaret C. Frame, Yingxiao Wang
Chemistry & BiologyOA
Cell BiologyBiochemistry, Genetics and Molecular Biology
5
Review|60 citations·2021
Genetically Encoded Biosensors Based on Fluorescent Proteins
Hyunbin Kim, Jeong-Min Ju, Hae Nim Lee, Hyeyeon Chun, Jihye Seong
SJR Q1SensorsOA

Genetically encoded biosensors based on fluorescent proteins (FPs) allow for the real-time monitoring of molecular dynamics in space and time, which are crucial for the proper functioning and regulation of complex cellular processes. Depending on the types of molecular events to be monitored, different sensing strategies need to be applied for the best design of FP-based biosensors. Here, we review genetically encoded biosensors based on FPs with various sensing strategies, for example, transloc

BiophysicsBiochemistry, Genetics and Molecular Biology
6
Review|45 citations·2021
Optobiochemistry: Genetically Encoded Control of Protein Activity by Light
Jihye Seong, Michael Z. Lin
SJR Q1Annual Review of BiochemistryOA

Optobiochemical control of protein activities allows the investigation of protein functions in living cells with high spatiotemporal resolution. Over the last two decades, numerous natural photosensory domains have been characterized and synthetic domains engineered and assembled into photoregulatory systems to control protein function with light. Here, we review the field of optobiochemistry, categorizing photosensory domains by chromophore, describing photoregulatory systems by mechanism of ac

Plant ScienceAgricultural and Biological Sciences
7
Article|39 citations·2005
Polyethylenimine‐based antisense oligodeoxynucleotides of IL‐4 suppress the production of IL‐4 in a murine model of airway inflammation
Jihye Seong, Kyung‐Mi Lee, Sung Tae Kim, Su‐Eon Jin, Chong‐Kook Kim
SJR Q2The Journal of Gene Medicine

BACKGROUND: Interleukin-4 (IL-4) plays a crucial role as an inflammatory mediator in allergic asthma via inducing Th2 inflammation and IgE synthesis. To develop an effective therapeutic agent which specifically inhibits production of IL-4, antisense oligodeoxynucleotides (AS-ODNs) against murine IL-4 mRNA were generated and complexed with polyethylenimine (PEI) to improve intracellular delivery. METHODS: AS-ODNs were generated against the translation initiation region of murine IL-4 mRNA, and co

Molecular BiologyBiochemistry, Genetics and Molecular Biology
8
Article|28 citations·2017
FRET-based Visualization of PDGF Receptor Activation at Membrane Microdomains
Jihye Seong, Min Huang, Kyoung Mi Sim, Hyunbin Kim, Yingxiao Wang
SJR Q1Scientific ReportsOA

Platelet-derived growth factor receptor (PDGFR) senses extracellular growth factors and transfer the signals inside the cells regulating cell proliferation, migration and survival. It has been controversial at which membrane microdomains PDGFRs reside and how they control such diverse intracellular signaling pathways. Here, we developed a novel PDGFR biosensor based on fluorescence resonance energy transfer (FRET), which can detect the real-time PDGFR activity in live cells with high spatiotempo

Molecular BiologyBiochemistry, Genetics and Molecular Biology
9
Article|23 citations·2017
Identification of actin as a direct proteomic target of berberine using an affinity-based chemical probe and elucidation of its modulatory role in actin assembly
Chae-Min Yi, Jihyun Yu, Hyunbin Kim, Na‐Rae Lee, Sang Won Kim, Noh-Jin Lee, Jun Lee, Jihye Seong, Nam‐Jung Kim, Kyung‐Soo Inn
SJR Q1Chemical Communications

Despite the diverse pharmacological activities of berberine, including anti-cancer and anti-inflammatory effects, the direct proteomic targets of berberine have remained largely unknown. Here, we have identified actin as a direct proteomic target of berberine using an affinity-based chemical probe. In addition, we found that actin assembly was significantly modulated by berberine in vitro at the biochemical level and cellular level.

PharmacologyMedicine
10
Review|22 citations·2022
Genetically encoded fluorescent biosensors for GPCR research
Hyunbin Kim, In-Yeop Baek, Jihye Seong
SJR Q1Frontiers in Cell and Developmental BiologyOA

G protein-coupled receptors (GPCRs) regulate a wide range of physiological and pathophysiological cellular processes, thus it is important to understand how GPCRs are activated and function in various cellular contexts. In particular, the activation process of GPCRs is dynamically regulated upon various extracellular stimuli, and emerging evidence suggests the subcellular functions of GPCRs at endosomes and other organelles. Therefore, precise monitoring of the GPCR activation process with high

Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|21 citations·2011
Live Cell Imaging of Src/FAK Signaling by FRET
Jihye Seong, Shaoying Lu, Yingxiao Wang
SJR Q2Cellular and Molecular Bioengineering
Immunology and AllergyMedicine
12
Article|21 citations·2019
Aβ modulates actin cytoskeleton via SHIP2-mediated phosphoinositide metabolism
Hae Nim Lee, Kyoung Mi Sim, Hyunbin Kim, Jeong-Min Ju, Ae Nim Pae, Jae‐Bong Park, Hoon Ryu, Jihye Seong
SJR Q1Scientific ReportsOA

Abstract Emerging evidences suggest that phospholipid metabolism is altered in Alzheimer’s disease (AD), but molecular mechanisms on how this affects neurodegeneration in AD is poorly understood. SHIP2 is a phosphoinositide-metabolizing enzyme, which dephosphorylates PI(3,4,5)P 3 resulting to PI(3,4)P 2 , and it has been recently shown that Aβ directly increases the activity of SHIP2. Here we monitored, utilizing fluorescent SHIP2 biosensor, real-time increase of PI(3,4)P 2 -containing vesicles

Cell BiologyBiochemistry, Genetics and Molecular Biology
13
Article|20 citations·2022
Optical regulation of endogenous RhoA reveals selection of cellular responses by signal amplitude
Jeong-Min Ju, Hae Nim Lee, Ning Lin, Hyunjoo Ryu, Xin Zhou, Hyeyeon Chun, Yong Woo Lee, Austin I. Lee-Richerson, Cherlhyun Jeong, Michael Z. Lin, Jihye Seong
SJR Q1Cell ReportsOA

How protein signaling networks respond to different input strengths is an important but poorly understood problem in cell biology. For example, RhoA can promote focal adhesion (FA) growth or disassembly, but how RhoA activity mediates these opposite outcomes is not clear. Here, we develop a photoswitchable RhoA guanine nucleotide exchange factor (GEF), psRhoGEF, to precisely control endogenous RhoA activity. Using this optical tool, we discover that peak FA disassembly selectively occurs upon ac

Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Article|17 citations·2020
Visualization of Autophagy Progression by a Red–Green–Blue Autophagy Sensor
Heejung Kim, Hyunbin Kim, Jaesik Choi, Kyung‐Soo Inn, Jihye Seong
SJR Q1ACS Sensors

Autophagy is a major degradation process of cytosolic components and misfolded proteins that is crucial for cellular homeostasis and for the pathogenesis of diverse diseases. Autophagy is initiated by the formation of phagophores, which mature to autophagosomes. The autophagosomes then fuse to lysosomes to form autolysosomes. Different stages of autophagy can be deregulated to cause autophagy-related diseases, and thus, an accurate detection of each stage of autophagy progression is critical for

EpidemiologyMedicine
15
Article|17 citations·2022
Visualization of differential GPCR crosstalk in DRD1-DRD2 heterodimer upon different dopamine levels
Hyunbin Kim, Min‐Ho Nam, Sohyeon Jeong, Hyowon Lee, Soo‐Jin Oh, Jeong-Jin Kim, Nakwon Choi, Jihye Seong
SJR Q1Progress in NeurobiologyOA

Dopaminergic signaling is regulated by transient micromolar (phasic) and background nanomolar (tonic) dopamine releases in the brain. These dopamine signals can be differentially translated by dopamine receptor type 1 and type 2, DRD1 and DRD2, which are G protein-coupled receptors (GPCRs). In response to dopamine, DRD1 and DRD2 are known to mediate opposite functions on cAMP production via Gs and Gi protein signaling. Interestingly, they can form a heterodimer. However, receptor crosstalk betwe

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyCell BiologyCellular and Molecular NeuroscienceBiophysicsOncologyImmunology and Allergy

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