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Sok Jeong

Korea University · Engineering

About the Lab

Professor Sok Jeong's research lab specializes in developing advanced microfluidic and 3D cell culture platforms to model complex physiological microenvironments, with a focus on angiogenesis, tumor microenvironments, and islet physiology. The lab integrates precise control of biochemical gradients, mechanical cues, and dynamic flow conditions within hydrogel-embedded 3D systems to study cell behavior at single-cell resolution. Key research directions include vascular morphogenesis, cancer-stroma interactions, and functional tissue engineering for regenerative medicine and drug testing.

microfluidics3D cell cultureangiogenesistumor microenvironmentorganoid

Research Overview

Papers
335
Total Citations
9,874
Papers (5y)
91
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
91total
2022
2023
2024
2025
2026
Citations per year (5y)
805total
20222023202420252026

Selected Papers

15
1
Article|519 citations·2008
Cell migration into scaffolds under co-culture conditions in a microfluidic platform
Seok Chung, Ryo Sudo, Peter J. Mack, Chen-rei Wan, Vernella Vickerman, Roger D. Kamm
SJR Q1Lab on a Chip

Capillary morphogenesis is a complex cellular process that occurs in response to external stimuli. A number of assays have been used to study critical regulators of the process, but those assays are typically limited by the inability to control biochemical gradients and to obtain images on the single cell level. We have recently developed a new microfluidic platform that has the capability to control the biochemical and biomechanical forces within a three dimensional scaffold coupled with access

Biomedical EngineeringEngineering
2
Article|272 citations·2016
Co-Culture of Tumor Spheroids and Fibroblasts in a Collagen Matrix-Incorporated Microfluidic Chip Mimics Reciprocal Activation in Solid Tumor Microenvironment
Su-Yeong Jeong, Ji Hyun Lee, Yoojin Shin, Seok Chung, Hyo‐Jeong Kuh
SJR Q1PLoS ONEOA

Multicellular 3D culture and interaction with stromal components are considered essential elements in establishing a 'more clinically relevant' tumor model. Matrix-embedded 3D cultures using a microfluidic chip platform can recapitulate the microscale interaction within tumor microenvironments. As a major component of tumor microenvironment, cancer-associated fibroblasts (CAFs) play a role in cancer progression and drug resistance. Here, we present a microfluidic chip-based tumor tissue culture

Biomedical EngineeringEngineering
3
Article|163 citations·2011
In vitro 3D collective sprouting angiogenesis under orchestrated ANG-1 and VEGF gradients
Yoojin Shin, Jessie S. Jeon, Sewoon Han, Gi-Seok Jung, Sehyun Shin, Sang‐Hoon Lee, Ryo Sudo, Roger D. Kamm, Seok Chung
SJR Q1Lab on a Chip

Sprouting angiogenesis requires a coordinated guidance from a variety of angiogenic factors. Here, we have developed a unique hydrogel incorporating microfluidic platform which mimics the physiological microenvironment in 3D under a precisely orchestrated gradient of soluble angiogenic factors, VEGF and ANG-1. The system enables the quantified investigation in chemotactic response of endothelial cells during the collective angiogenic sprouting process. While the presence of a VEGF gradient alone

Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|153 citations·2010
Microfluidic Platforms for Studies of Angiogenesis, Cell Migration, and Cell–Cell Interactions
Seok Chung, Ryo Sudo, Vernella Vickerman, Ioannis K. Zervantonakis, Roger D. Kamm
SJR Q2Annals of Biomedical EngineeringOA
Biomedical EngineeringEngineering
5
Article|148 citations·2019
In vivo–mimicking microfluidic perfusion culture of pancreatic islet spheroids
Yesl Jun, Jae-Seo Lee, Seongkyun Choi, Ji Yang, Maike Sander, Seok Chung, Sang‐Hoon Lee
SJR Q1Science AdvancesOA

Native pancreatic islets interact with neighboring cells by establishing three-dimensional (3D) structures, and are surrounded by perfusion at an interstitial flow level. However, flow effects are generally ignored in islet culture models, although cell perfusion is known to improve the cell microenvironment and to mimic in vivo physiology better than static culture systems. Here, we have developed functional islet spheroids using a microfluidic chip that mimics interstitial flow conditions with

SurgeryMedicine
6
Article|134 citations·2008
Non‐Lithographic Wrinkle Nanochannels for Protein Preconcentration
Seok Chung, Jeong Hoon Lee, Myoung‐Woon Moon, Jongyoon Han, Roger D. Kamm
SJR Q1Advanced Materials

A simple, non-lithographic method to create a nanofluidic channel array that exploits wrinkles is demonstrated. The dimension and position of the wrinkles can be precisely controlled, producing wrinkle nanochannels (WNCs) that range in size from several tens of nanometers to micrometers. The usefulness of the WNCs is demonstrated by preconcentration of a protein, which is shown to vary linearly. Preconcentration levels of more than 100 can be achieved within 10 minutes.

Biomedical EngineeringEngineering
7
Article|118 citations·2011
Sprouting Angiogenesis under a Chemical Gradient Regulated by Interactions with an Endothelial Monolayer in a Microfluidic Platform
Gi Seok Jeong, Sewoon Han, Yoojin Shin, Gu Han Kwon, Roger D. Kamm, Sang‐Hoon Lee, Seok Chung
SJR Q1Analytical Chemistry

Microfluidic cell culture assays are versatile tools for studying cell migration, particularly angiogenesis. Such assays can deliver precisely controlled linear gradients of chemical stimuli to cultured cells in a microfluidic channel, offering excellent optical resolution and in situ monitoring of cellular morphogenesis in response to a gradient. Microfluidic cell culture assays provide a chemical gradient subject to molecular diffusion, although cellular metabolism can perturb it. The actual g

Biomedical EngineeringEngineering
8
Article|117 citations·2019
Macrophages‐Triggered Sequential Remodeling of Endothelium‐Interstitial Matrix to Form Pre‐Metastatic Niche in Microfluidic Tumor Microenvironment
Hyunho Kim, Hyewon Chung, Jaehoon Kim, Dong‐Hee Choi, Yoojin Shin, Yong Guk Kang, Beop‐Min Kim, Sang‐Uk Seo, Seok Chung, Seung Hyeok Seok
SJR Q1Advanced ScienceOA

The primed microenvironment of future metastatic sites, called the pre-metastatic niche, is a prerequisite for overt metastasis. However, a mechanistic understanding of the contributions of recruited cells to the niche is hindered by complex in vivo systems. Herein, a microfluidic platform that incorporates endothelial cells and extracellular matrix (ECM) scaffolds is developed, and the distinct role of recruited monocytes and macrophages in establishing pre-metastatic niches is delineated. It i

Biomedical EngineeringEngineering
9
Article|100 citations·2012
A versatile assay for monitoring in vivo-like transendothelial migration of neutrophils
Sewoon Han, Ji-Jing Yan, Yoojin Shin, Jessie S. Jeon, Jihee Won, Hyo Eun Jeong, Roger D. Kamm, Young‐Joon Kim, Seok Chung
SJR Q1Lab on a Chip

Spatiotemporal analysis of the inflammatory response has been limited by the difficulties of in vivo imaging and reconstitution of inflammation in vitro. Here, we present a novel method for establishing in vivo-like inflammatory models in a microfluidic device and quantitatively measuring the three-dimensional transmigration of neutrophils during the inflammatory process. This enabled us to concurrently characterize transendothelial migration behaviors of neutrophils under the influence of vario

Immunology and AllergyMedicine
10
Article|93 citations·2009
Surface‐Treatment‐Induced Three‐Dimensional Capillary Morphogenesis in a Microfluidic Platform
Seok Chung, Ryo Sudo, Ioannis K. Zervantonakis, Tharathorn Rimchala, Roger D. Kamm
SJR Q1Advanced Materials

Robust induction of realistic angiogenesis into a 3D matrix material under simultaneous imaging and a stably controlled concentration gradient of chemoattractants is presented. The formation of a 3D vascular network is demonstrated to be a direct consequence of surface treatment of the region of the device-containing matrix material. Detailed facts of importance to specialist readers are published as ”Supporting Information”. Such documents are peer-reviewed, but not copy-edited or typeset. They

Biomedical EngineeringEngineering
11
Article|69 citations·2012
Three-dimensional extracellular matrix-mediated neural stem cell differentiation in a microfluidic device
Sewoon Han, Kisuk Yang, Yoojin Shin, Jung Seung Lee, Roger D. Kamm, Seok Chung, Seung‐Woo Cho
SJR Q1Lab on a Chip

Here, we report a unique method to quantify the effects of in vivo-like extracellular matrix (ECM) for guiding differentiation of neural stem cells (NSCs) in three-dimensional (3D) microenvironments using quantitative real-time polymerase chain reaction (qRT-PCR). We successfully monitored and quantified differentiation of NSCs in small volume ECMs and found that differentiation of NSCs, especially those differentiating towards neuronal and oligodendrocytic lineages, is significantly enhanced by

Biomedical EngineeringEngineering
12
Article|69 citations·2003
Plastic microchip flow cytometer based on 2- and 3-dimensional hydrodynamic flow focusing
Seok Chung, Sangjin Park, Jung Kyung Kim, Chih‐Ching Chung, Dong Han, Jeng‐Kuei Chang
SJR Q3Microsystem Technologies
Biomedical EngineeringEngineering
13
Article|67 citations·2013
Hydrodynamic effects on bacterial biofilm development in a microfluidic environment
Junghyun Kim, Han-Shin Kim, Sewoon Han, Ji-Yun Lee, Jae-Eung Oh, Seok Chung, Hee‐Deung Park
SJR Q1Lab on a Chip

In aquatic environments, microorganisms tend to form biofilms on surfaces to protect them from harsh conditions. The biofilms then accumulate into multilayered mat-like structures. In this study, we evaluated the effects of the hydrodynamic conditions on the ecology of biofilms produced by Pseudomonas aeruginosa (PA14). In microfluidic channels, we found that the development of biofilms was regulated by hydrodynamic conditions, but the developed biofilms also changed flow velocity by narrowing f

Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Article|66 citations·2014
Reconstituting Vascular Microenvironment of Neural Stem Cell Niche in Three‐Dimensional Extracellular Matrix
Yoojin Shin, Kisuk Yang, Sewoon Han, Hyun‐Ji Park, Yun Seok Heo, Seung‐Woo Cho, Seok Chung
SJR Q1Advanced Healthcare MaterialsOA

Neural stem cells (NSCs) reside in a vascular microenvironment termed the "NSC niche." Blood vessels in the NSC niche play an important role in maintaining an appropriate balance between NSC self-renewal and differentiation that serves to maintain homeostasis. Understanding the role of brain vessels in the NSC niche will facilitate basic research in neurogenesis and vasculogenesis as well as aid the development of potential therapies for degenerative disorders. Here, an in vitro-reconstituted NS

Developmental NeuroscienceNeuroscience
15
Article|58 citations·2017
Battery operated preconcentration-assisted lateral flow assay
Cheonjung Kim, Yong Kyoung Yoo, Sung Il Han, Junwoo Lee, Junwoo Lee, Dohwan Lee, Kyungjae Lee, Kyo Seon Hwang, Kyu Hyoung Lee, Seok Chung, Jeong Hoon Lee, Jeong Hoon Lee
SJR Q1Lab on a Chip

Paper-based analytical devices (e.g. lateral flow assays) are highly advantageous as portable diagnostic systems owing to their low costs and ease of use. Because of their low sensitivity and detection limits for biomolecules, these devices have several limitations in applications for real-field diagnosis. Here, we demonstrate a paper-based preconcentration enhanced lateral flow assay using a commercial β-hCG-based test. Utilizing a simple 9 V battery operation with a low power consumption of ap

Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringMolecular BiologyOncologySurgeryNeurologyCellular and Molecular Neuroscience

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