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Junmin Lee

Pohang University of Science and Technology · 工学

研究室紹介

Professor Junmin Lee's research lab specializes in bioengineering and regenerative medicine, focusing on developing advanced in vitro tissue models and biomaterial platforms to study disease mechanisms and cell fate decisions. The lab integrates dynamic biophysical cues, such as substrate stiffness and electrical conductivity, with stem cell differentiation and organ-on-a-chip technologies to model complex physiological and pathological conditions, including cardiac toxicity, neurogenesis, and liver steatosis. A key emphasis is placed on creating scalable, sensitive biosensors and functional 3D tissue constructs that mimic native tissue microenvironments for improved disease modeling and drug screening.

organ-on-a-chipstem cell differentiationbiomaterialscardiotoxicity3D tissue models

Research Overview

Papers
203
Total Citations
6,495
Papers (5y)
88
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
88total
2022
2023
2024
2025
2026
Citations per year (5y)
1,058total
20222023202420252026

Selected Papers

15
1
Article|260 citations·2013
Directing stem cell fate on hydrogel substrates by controlling cell geometry, matrix mechanics and adhesion ligand composition
Junmin Lee, Amr A. Abdeen, Douglas Zhang, K. Kilian
SJR Q1Biomaterials
Cell BiologyBiochemistry, Genetics and Molecular Biology
2
Article|198 citations·2016
Interfacial geometry dictates cancer cell tumorigenicity
Junmin Lee, Amr A. Abdeen, Kathryn L. Wycislo, Timothy M. Fan, K. Kilian
SJR Q1Nature Materials
Cell BiologyBiochemistry, Genetics and Molecular Biology
3
Article|146 citations·2014
Rewiring mesenchymal stem cell lineage specification by switching the biophysical microenvironment
Junmin Lee, Amr A. Abdeen, K. Kilian
SJR Q1Scientific ReportsOA

The propensity of stem cells to specify and commit to a particular lineage program is guided by dynamic biophysical and biochemical signals that are temporally regulated. However, most in vitro studies rely on "snapshots" of cell state under static conditions. Here we asked whether changing the biophysical aspects of the substrate could modulate the degree of mesenchymal stem cell (MSC) lineage specification. We chose to explore two diverse differentiation outcomes: MSC osteogenesis and trans-di

Cell BiologyBiochemistry, Genetics and Molecular Biology
4
Article|140 citations·2019
Nanoparticle-Based Hybrid Scaffolds for Deciphering the Role of Multimodal Cues in Cardiac Tissue Engineering
Junmin Lee, Vijayan Manoharan, Louis Cheung, Seungkyu Lee, Byung Hwa Hyun, Peter Newman, Razieh Farzad, Shreya Mehrotra, Kaizhen Zhang, Fazal Khan, Masoumeh Ghaderi, Yi‐Dong Lin
SJR Q1ACS NanoOA

Myocardial microenvironment plays a decisive role in guiding the function and fate of cardiomyocytes, and engineering this extracellular niche holds great promise for cardiac tissue regeneration. Platforms utilizing hybrid hydrogels containing various types of conductive nanoparticles have been a critical tool for constructing engineered cardiac tissues with outstanding mechanical integrity and improved electrophysiological properties. However, there has been no attempt to directly compare the e

SurgeryMedicine
5
Article|138 citations·2011
Highly Mobile Palladium Thin Films on an Elastomeric Substrate: Nanogap‐Based Hydrogen Gas Sensors
Junmin Lee, Wooyoung Shim, Eunyeong Lee, Jin‐Seo Noh, Wooyoung Lee
SJR Q1Angewandte Chemie International Edition

MOTIFE chemical sensors: A novel, low-cost, scalable, and lithography-free but nanogap-based chemical sensing method is presented. This method, termed highly-mobile thin film on elastomer (MOTIFE), utilizes crack formation in a Pd and PdNi thin film generated by stretching the film on an elastomeric substrate to reliably and reproducibly provide highly sensitive H2 sensors.

BioengineeringChemical Engineering
6
Article|138 citations·2020
A Heart‐Breast Cancer‐on‐a‐Chip Platform for Disease Modeling and Monitoring of Cardiotoxicity Induced by Cancer Chemotherapy
Junmin Lee, Shreya Mehrotra, Elaheh Zare‐Eelanjegh, Raquel O. Rodrigues, Alireza Akbarinejad, David H. Ge, L. Amato, Kiavash Kiaee, Yongcong Fang, Aliza Rosenkranz, Wendy Keung, Biman B. Mandal
SJR Q1SmallOA

Cardiotoxicity is one of the most serious side effects of cancer chemotherapy. Current approaches to monitoring of chemotherapy-induced cardiotoxicity (CIC) as well as model systems that develop in vivo or in vitro CIC platforms fail to notice early signs of CIC. Moreover, breast cancer (BC) patients with preexisting cardiac dysfunctions may lead to different incident levels of CIC. Here, a model is presented for investigating CIC where not only induced pluripotent stem cell (iPSC)-derived cardi

Cardiology and Cardiovascular MedicineMedicine
7
Article|108 citations·2020
Biofabrication of endothelial cell, dermal fibroblast, and multilayered keratinocyte layers for skin tissue engineering
Natan Roberto de Barros, Han‐Jun Kim, Marcus J Gouidie, KangJu Lee, Praveen Bandaru, Ethan A. Banton, Einollah Sarikhani, Wujin Sun, Shiming Zhang, Hyun‐Jong Cho, Martin C. Hartel, Serge Ostrovidov
SJR Q1BiofabricationOA

The skin serves a substantial number of physiological purposes and is exposed to numerous biological and chemical agents owing to its large surface area and accessibility. Yet, current skin models are limited in emulating the multifaceted functions of skin tissues due to a lack of effort on the optimization of biomaterials and techniques at different skin layers for building skin frameworks. Here, we use biomaterial-based approaches and bioengineered techniques to develop a 3D skin model with la

Biomedical EngineeringEngineering
8
Article|90 citations·2015
Geometric guidance of integrin mediated traction stress during stem cell differentiation
Junmin Lee, Amr A. Abdeen, Xin Tang, Taher A. Saif, K. Kilian
SJR Q1Biomaterials
Cell BiologyBiochemistry, Genetics and Molecular Biology
9
Article|84 citations·2014
Controlling cell geometry on substrates of variable stiffness can tune the degree of osteogenesis in human mesenchymal stem cells
Junmin Lee, Amr A. Abdeen, Tiffany Huang, K. Kilian
SJR Q2Journal of the mechanical behavior of biomedical materials/Journal of mechanical behavior of biomedical materials
Cell BiologyBiochemistry, Genetics and Molecular Biology
10
Article|82 citations·2019
A Human Liver‐on‐a‐Chip Platform for Modeling Nonalcoholic Fatty Liver Disease
Soufian Lasli, Han‐Jun Kim, KangJu Lee, Ceri‐Anne E. Suurmond, Marcus J. Goudie, Praveen Bandaru, Wujin Sun, Shiming Zhang, Ni‐Yuan Zhang, Samad Ahadian, Mehmet R. Dokmeci, Junmin Lee
Advanced BiosystemsOA

The liver possesses a unique microenvironment with a complex internal vascular system and cell-cell interactions. Nonalcoholic fatty liver disease (NAFLD) is the most common form of chronic liver disease, and although much effort has been dedicated to building models to target NAFLD, most in vitro systems rely on simple models failing to recapitulate complex liver functions. Here, an in vitro system is presented to study NAFLD (steatosis) by coculturing human hepatocellular carcinoma (HepG2) cel

EpidemiologyMedicine
11
Article|69 citations·2012
Design Rules for Nanogap‐Based Hydrogen Gas Sensors
Junmin Lee, Wooyoung Shim, Jin‐Seo Noh, Wooyoung Lee
SJR Q2ChemPhysChem

Nanoscale gaps, which enable many research applications in fields such as chemical sensors, single-electron transistors, and molecular switching devices, have been extensively investigated over the past decade and have witnessed the evolution of related technologies. Importantly, nanoscale gaps employed in hydrogen-gas (H(2)) sensors have been used to reversibly detect H(2) in an On-Off manner, and function as platforms for enhancing sensing performance. Herein, we review recent advances in nano

Electrical and Electronic EngineeringEngineering
12
Article|65 citations·2016
Matrix directed adipogenesis and neurogenesis of mesenchymal stem cells derived from adipose tissue and bone marrow
Junmin Lee, Amr A. Abdeen, Xin Tang, Taher A. Saif, K. Kilian
SJR Q1Acta BiomaterialiaOA
GeneticsMedicine
13
Article|64 citations·2020
Combinatorial screening of biochemical and physical signals for phenotypic regulation of stem cell–based cartilage tissue engineering
Junmin Lee, Oju Jeon, Ming Kong, Amr A. Abdeen, Jung‐Youn Shin, Ha Neul Lee, Yu Bin Lee, Wujin Sun, Praveen Bandaru, Daniel S. Alt, KangJu Lee, Han‐Jun Kim
SJR Q1Science AdvancesOA

Despite great progress in biomaterial design strategies for replacing damaged articular cartilage, prevention of stem cell-derived chondrocyte hypertrophy and resulting inferior tissue formation is still a critical challenge. Here, by using engineered biomaterials and a high-throughput system for screening of combinatorial cues in cartilage microenvironments, we demonstrate that biomaterial cross-linking density that regulates matrix degradation and stiffness-together with defined presentation o

RheumatologyMedicine
14
Review|58 citations·2021
Bioengineered Multicellular Liver Microtissues for Modeling Advanced Hepatic Fibrosis Driven Through Non‐Alcoholic Fatty Liver Disease
Hyun‐Jong Cho, Han‐Jun Kim, KangJu Lee, Soufian Lasli, Aly Ung, Tyler Hoffman, Rohollah Nasiri, Praveen Bandaru, Samad Ahadian, Mehmet R. Dokmeci, Junmin Lee, Ali Khademhosseini
SJR Q1SmallOA

Despite considerable efforts in modeling liver disease in vitro, it remains difficult to recapitulate the pathogenesis of the advanced phases of non-alcoholic fatty liver disease (NAFLD) with inflammation and fibrosis. Here, a liver-on-a-chip platform with bioengineered multicellular liver microtissues is developed, composed of four major types of liver cells (hepatocytes, endothelial cells, Kupffer cells, and stellate cells) to implement a human hepatic fibrosis model driven by NAFLD: i) lipid

HepatologyMedicine
15
Article|55 citations·2019
In Vitro Human Liver Model of Nonalcoholic Steatohepatitis by Coculturing Hepatocytes, Endothelial Cells, and Kupffer Cells
Ceri‐Anne E. Suurmond, Soufian Lasli, Floor W. van den Dolder, Aly Ung, Han‐Jun Kim, Praveen Bandaru, KangJu Lee, Hyun‐Jong Cho, Samad Ahadian, Nureddin Ashammakhi, Mehmet R. Dokmeci, Junmin Lee
SJR Q1Advanced Healthcare MaterialsOA

The liver has a complex and unique microenvironment with multiple cell-cell interactions and internal vascular networks. Although nonalcoholic fatty liver disease (NAFLD) is the most common chronic liver disease with multiple phases, no proper model could fully recapitulate the in vivo microenvironment to understand NAFLD progression. Here, an in vitro human liver model of NAFLD by coculturing human hepatocytes, umbilical vein endothelial cells (HUVECs), and Kupffer cells (KCs) into spheroids is

EpidemiologyMedicine

Research Areas

Biomedical EngineeringElectrical and Electronic EngineeringCell BiologyPharmaceutical ScienceMolecular BiologyMaterials Chemistry

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