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전지시 교수

Jessie Sungyun Jeon

KAIST 기계공학과 · 공학

연구실 소개

전지시 교수의 연구실은 주로 마이크로유체 기반의 3차원 인 비트로 모델을 활용해 암 전이, 혈관 형성 및 세포 상호작용의 생물학적 메커니즘을 규명하고 있습니다. 특히 뼈와 근육과 유사한 미세환경에서의 암세포 혈관외출( extravasation )과 면역세포, 내피세포, 뮌달 세포 간의 상호작용을 정밀하게 분석하며, 암 전이의 기전을 이해하고 새로운 치료 전략을 모색하고 있습니다. 또한 항생제 조합의 효과를 실시간으로 평가할 수 있는 마이크로유체 스크리닝 플랫폼 개발을 통해 다제내성 박테리아 문제에도 기여하고 있습니다.

마이크로유체암 전이혈관 형성3D 인 비트로 모델항생제 조합 스크리닝

연구 현황

논문 수
116
총 인용 수
3,527
최근 5년 논문
37
주요 분야
공학

연구 성과 추이

표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.

5개년 연도별 논문 게재 수
37총합
2022
2023
2024
2025
2026
5개년 연도별 피인용 수
362총합
20222023202420252026

주요 논문

15
1
논문|인용수 729·2014
Human 3D vascularized organotypic microfluidic assays to study breast cancer cell extravasation
Jessie S. Jeon, Simone Bersini, Mara Gilardi, Gabriele Dubini, Joseph L. Charest, Matteo Moretti, Roger D. Kamm
SJR Q1Proceedings of the National Academy of SciencesOA

A key aspect of cancer metastases is the tendency for specific cancer cells to home to defined subsets of secondary organs. Despite these known tendencies, the underlying mechanisms remain poorly understood. Here we develop a microfluidic 3D in vitro model to analyze organ-specific human breast cancer cell extravasation into bone- and muscle-mimicking microenvironments through a microvascular network concentrically wrapped with mural cells. Extravasation rates and microvasculature permeabilities

OncologyMedicine
2
논문|인용수 232·2014
Generation of 3D functional microvascular networks with human mesenchymal stem cells in microfluidic systems
Jessie S. Jeon, Simone Bersini, Jordan A. Whisler, Michelle B. Chen, Gabriele Dubini, Joseph L. Charest, Matteo Moretti, Roger D. Kamm
SJR Q3Integrative BiologyOA

The generation of functional microvascular networks is critical for the development of advanced in vitro models to replicate pathophysiological conditions. Mural cells provide structural support to blood vessels and secrete biomolecules contributing to vessel stability and functionality. We investigated the role played by two endothelium-related molecules, angiopoietin (Ang-1) and transforming growth factor (TGF-β1), on bone marrow-derived human mesenchymal stem cell (BM-hMSC) phenotypic transit

Biomedical EngineeringEngineering
3
논문|인용수 228·2013
In Vitro Model of Tumor Cell Extravasation
Jessie S. Jeon, Ioannis K. Zervantonakis, Seok Chung, Roger D. Kamm, Joseph L. Charest
SJR Q1PLoS ONEOA

Tumor cells that disseminate from the primary tumor and survive the vascular system can eventually extravasate across the endothelium to metastasize at a secondary site. In this study, we developed a microfluidic system to mimic tumor cell extravasation where cancer cells can transmigrate across an endothelial monolayer into a hydrogel that models the extracellular space. The experimental protocol is optimized to ensure the formation of an intact endothelium prior to the introduction of tumor ce

Biomedical EngineeringEngineering
4
리뷰|인용수 158·2017
Vasculature-On-A-Chip for In Vitro Disease Models
Seunggyu Kim, Wanho Kim, Seongjin Lim, Jessie S. Jeon
SJR Q2BioengineeringOA

Vascularization, the formation of new blood vessels, is an essential biological process. As the vasculature is involved in various fundamental physiological phenomena and closely related to several human diseases, it is imperative that substantial research is conducted on characterizing the vasculature and its related diseases. A significant evolution has been made to describe the vascularization process so that in vitro recapitulation of vascularization is possible. The current microfluidic sys

Biomedical EngineeringEngineering
5
논문|인용수 113·2010
Hot embossing for fabrication of a microfluidic 3D cell culture platform
Jessie S. Jeon, Seok Chung, Roger D. Kamm, Joseph L. Charest
SJR Q2Biomedical MicrodevicesOA
Biomedical EngineeringEngineering
6
논문|인용수 37·2019
On-chip phenotypic investigation of combinatory antibiotic effects by generating orthogonal concentration gradients
Seunggyu Kim, Fahim Masum, Ju-Kang Kim, Hyun Jung Chung, Jessie S. Jeon
SJR Q1Lab on a Chip

Combinatory therapy using two or more kinds of antibiotics is attracting considerable attention for inhibiting multi-drug resistant pathogenic bacteria. Although the therapy mostly leads to more powerful antimicrobial effects than using a single antibiotic (synergy), interference may arise from certain antibiotic combinations, resulting in the antimicrobial effect being suppressed (antagonism). Here, we present a microfluidic-based phenotypic screening chip to investigate combinatory antibiotic

Biomedical EngineeringEngineering
7
논문|인용수 35·2019
Recent Developments of Chip-based Phenotypic Antibiotic Susceptibility Testing
Seunggyu Kim, Fahim Masum, Jessie S. Jeon
SJR Q1BioChip Journal
Clinical BiochemistryBiochemistry, Genetics and Molecular Biology
8
논문|인용수 32·2018
Visual Estimation of Bacterial Growth Level in Microfluidic Culture Systems
Kyukwang Kim, Seunggyu Kim, Jessie S. Jeon
SJR Q1SensorsOA

Microfluidic devices are an emerging platform for a variety of experiments involving bacterial cell culture, and has advantages including cost and convenience. One inevitable step during bacterial cell culture is the measurement of cell concentration in the channel. The optical density measurement technique is generally used for bacterial growth estimation, but it is not applicable to microfluidic devices due to the small sample volumes in microfluidics. Alternately, cell counting or colony-form

Media TechnologyEngineering
9
논문|인용수 31·2020
Cancer cell migration and cancer drug screening in oxygen tension gradient chip
Hyeono Nam, Kenichi Funamoto, Jessie S. Jeon
SJR Q2BiomicrofluidicsOA

Cancer metastasis, which is prevalent in malignant tumors, is present in a variety of cases depending on the primary tumor and metastatic site. The cancer metastasis is affected by various factors that surround and constitute a tumor microenvironment. One of the several factors, oxygen tension, can affect cancer cells and induce changes in many ways, including motility, directionality, and viability. In particular, the oxygen tension gradient is formed within a tumor cluster and oxygen is lower

Biomedical EngineeringEngineering
10
논문|인용수 30·2022
Acoustofluidic Stimulation of Functional Immune Cells in a Microreactor
Seunggyu Kim, Hyeono Nam, Beomseok Cha, Jinsoo Park, Hyung Jin Sung, Jessie S. Jeon
SJR Q1Advanced ScienceOA

Abstract The cytotoxic response of natural killer (NK) cells in a microreactor to surface acoustic waves (SAWs) is investigated, where the SAWs produce an acoustic streaming flow. The Rayleigh‐type SAWs form by an interdigital transducer propagated along the surface of a piezoelectric substrate in order to allow the dynamic stimulation of functional immune cells in a noncontact and rotor‐free manner. The developed acoustofluidic microreactor enables a dynamic cell culture to be set up in a minia

Biomedical EngineeringEngineering
11
논문|인용수 28·2020
Lipopolysaccharide-Induced Vascular Inflammation Model on Microfluidic Chip
Ungsig Nam, Seunggyu Kim, Joonha Park, Jessie S. Jeon
SJR Q2MicromachinesOA

Inflammation is the initiation of defense of our body against harmful stimuli. Lipopolysaccharide (LPS), originating from outer membrane of Gram-negative bacteria, causes inflammation in the animal's body and can develop several diseases. In order to study the inflammatory response to LPS of blood vessels in vitro, 2D models have been mainly used previously. In this study, a microfluidic device was used to investigate independent inflammatory response of endothelial cells by LPS and interaction

Biomedical EngineeringEngineering
12
논문|인용수 28·2022
Enabling perfusion through multicellular tumor spheroids promoting lumenization in a vascularized cancer model
Joonha Park, Seunggyu Kim, Ji‐Man Hong, Jessie S. Jeon
SJR Q1Lab on a Chip

A tumor is composed of heterogeneous cell population, which is known as tumor stroma. In particular, blood vessels have an indispensable role in the tumor microenvironment acting as a key player in anti-cancer drug delivery. Recently, efforts have been made to accurately recapitulate the microenvironment by employing distinct cell types, however, the proper formation of perfusable tumor tissue is challenging. Here, perfusable tumor tissue is engineered by implanting multicellular tumor spheroids

OncologyMedicine
13
논문|인용수 26·2018
Development of Microfluidic Stretch System for Studying Recovery of Damaged Skeletal Muscle Cells
Wan‐Ho Kim, Jae-Sang Kim, Hyung‐Soon Park, Jessie S. Jeon
SJR Q2MicromachinesOA

The skeletal muscle occupies about 40% mass of the human body and plays a significant role in the skeletal movement control. Skeletal muscle injury also occurs often and causes pain, discomfort, and functional impairment in daily living. Clinically, most studies observed the recovery phenomenon of muscle by massage or electrical stimulation, but there are limitations on quantitatively analyzing the effects on recovery. Although additional efforts have been made within in vitro biochemical resear

Biomedical EngineeringEngineering
14
논문|인용수 25·2021
Microfluidic Tumor Vasculature Model to Recapitulate an Endothelial Immune Barrier Expressing FasL
Seunggyu Kim, Joonha Park, Jeongsik Kim, Jessie S. Jeon
SJR Q1ACS Biomaterials Science & Engineering

Fas ligand (FasL, CD178) is known to bind to its receptor (Fas, CD95) and mediate cellular apoptosis to maintain immune homeostasis. Recently, it has been recognized that tumor cells and their microenvironments allow an adjacent vascular endothelium to express the FasL on its cell membrane, utilizing the endothelium as an immune barrier to kill antitumor cytotoxic T cells. Here, a microfluidic tumor vasculature model is presented, which enables the recapitulation of an endothelial immune barrier

OncologyMedicine
15
논문|인용수 24·2021
Label-free three-dimensional observations and quantitative characterisation of on-chip vasculogenesis using optical diffraction tomography
Chungha Lee, Seunggyu Kim, Hervé Hugonnet, Moosung Lee, Weisun Park, Jessie S. Jeon, YongKeun Park
SJR Q1Lab on a Chip

Label-free, three-dimensional (3D) quantitative observations of on-chip vasculogenesis were achieved using optical diffraction tomography. Exploiting 3D refractive index maps as an intrinsic imaging contrast, the vascular structures, multicellular activities, and subcellular organelles of endothelial cells were imaged and analysed throughout vasculogenesis to characterise mature vascular networks without exogenous labelling.

Atomic and Molecular Physics, and OpticsPhysics and Astronomy

대표 연구 분야

Biomedical EngineeringMolecular BiologyOncologyClinical BiochemistryAtomic and Molecular Physics, and OpticsElectronic, Optical and Magnetic Materials

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