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Hak‐Joon Sung

Yonsei University · Medicine

About the Lab

Professor Hak-Joon Sung's research lab specializes in the design and application of smart biomaterials for regenerative medicine and implantable therapeutics. The lab focuses on developing stimuli-responsive materials—particularly those responsive to reactive oxygen species (ROS) and oxidative stress—that enable site-specific drug delivery, tissue regeneration, and immune modulation. Key research directions include engineering 3D scaffolds using graphene foams and shape-memory polymers to enhance stem cell differentiation, vascularization, and graft integration, while addressing challenges such as rapid degradation and hemodynamic complications in small-diameter vascular grafts.

stimuli-responsive biomaterialsvascular regenerationROS-responsive polymers3D tissue engineeringimplantable scaffolds

Research Overview

Papers
152
Total Citations
5,177
Papers (5y)
25
Primary Field
Medicine

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
25total
2022
2023
2024
2025
2026
Citations per year (5y)
116total
20222023202420252026

Selected Papers

15
1
Article|781 citations·2004
The effect of scaffold degradation rate on three-dimensional cell growth and angiogenesis
Hak‐Joon Sung, Carson Meredith, Chad Johnson, Zorina S. Galis
SJR Q1Biomaterials
Biomedical EngineeringEngineering
2
Review|347 citations·2013
Current Progress in Reactive Oxygen Species (ROS)‐Responsive Materials for Biomedical Applications
Sue Hyun Lee, Mukesh Kumar Gupta, Jae Beum Bang, Hojae Bae, Hak‐Joon Sung
SJR Q1Advanced Healthcare MaterialsOA

Recently, significant progress has been made in developing “stimuli-sensitive” biomaterials as a new therapeutic approach to interact with dynamic physiological conditions. Reactive oxygen species (ROS) production has been implicated in important pathophysiological events, such as atherosclerosis,aging, and cancer. ROS are often overproduced locally in diseased cells and tissues, and they individually and synchronously contribute to many of the abnormalities associated with local pathogenesis. T

Biomedical EngineeringEngineering
3
Article|248 citations·2013
Three-dimensional graphene foams promote osteogenic differentiation of human mesenchymal stem cells
Spencer W. Crowder, Dhiraj Prasai, Rutwik Rath, Daniel A. Balikov, Hojae Bae, Kirill I. Bolotin, Hak‐Joon Sung
SJR Q1Nanoscale

Graphene is a novel material whose application in biomedical sciences has only begun to be realized. In the present study, we have employed three-dimensional graphene foams as culture substrates for human mesenchymal stem cells and provide evidence that these materials can maintain stem cell viability and promote osteogenic differentiation.

Biomedical EngineeringEngineering
4
Article|109 citations·2011
Physiologically Relevant Oxidative Degradation of Oligo(proline) Cross-Linked Polymeric Scaffolds
Shann S. Yu, Rachel L. Koblin, Angela L. Zachman, Daniel S. Perrien, Lucas Hofmeister, Todd D. Giorgio, Hak‐Joon Sung
SJR Q1Biomacromolecules

Chronic inflammation-mediated oxidative stress is a common mechanism of implant rejection and failure. Therefore, polymer scaffolds that can degrade slowly in response to this environment may provide a viable platform for implant site-specific, sustained release of immunomodulatory agents over a long time period. In this work, proline oligomers of varying lengths (P(n)) were synthesized and exposed to oxidative environments, and their accelerated degradation under oxidative conditions was verifi

Biomedical EngineeringEngineering
5
Article|82 citations·2014
In Situ Crosslinkable Gelatin Hydrogels for Vasculogenic Induction and Delivery of Mesenchymal Stem Cells
Sue Hyun Lee, Yunki Lee, Young Wook Chun, Spencer W. Crowder, Pampee P. Young, Ki Dong Park, Hak‐Joon Sung
SJR Q1Advanced Functional Materials

Clinical trials utilizing mesenchymal stem cells (MSCs) for severe vascular diseases have highlighted the need to effectively engraft cells and promote pro‐angiogenic activity. A functional material accomplishing these two goals is an ideal solution as spatiotemporal and batch‐to‐batch variability in classical therapeutic delivery can be minimized, and tissue regeneration would begin rapidly at the implantation site. Gelatin may serve as a promising biomaterial due to its excellent biocompatibil

BiomaterialsMaterials Science
6
Article|82 citations·2015
Combinatorial polymer matrices enhance in vitro maturation of human induced pluripotent stem cell-derived cardiomyocytes
Young Wook Chun, Daniel A. Balikov, Tromondae K. Feaster, Charles H. Williams, Calvin C. Sheng, Lee Jung-Bok, Timothy C. Boire, M. Diana Neely, Leon M. Bellan, Kevin C. Ess, Aaron B. Bowman, Hak‐Joon Sung
SJR Q1Biomaterials
SurgeryMedicine
7
Article|77 citations·2020
Microchannel network hydrogel induced ischemic blood perfusion connection
Jung Bok Lee, Dae‐Hyun Kim, Jeong‐Kee Yoon, Dan Bi Park, Hye-Seon Kim, Young Min Shin, Wooyeol Baek, Mi‐Lan Kang, Hyun Jung Kim, Hak‐Joon Sung
SJR Q1Nature CommunicationsOA

Angiogenesis induction into damaged sites has long been an unresolved issue. Local treatment with pro-angiogenic molecules has been the most common approach. However, this approach has critical side effects including inflammatory coupling, tumorous vascular activation, and off-target circulation. Here, the concept that a structure can guide desirable biological function is applied to physically engineer three-dimensional channel networks in implant sites, without any therapeutic treatment. Micro

Biomedical EngineeringEngineering
8
Article|59 citations·2019
Development of a Shape‐Memory Tube to Prevent Vascular Stenosis
Yong Cheol Shin, Jung Bok Lee, Dae‐Hyun Kim, Tae Young Kim, Grant C. Alexander, Young Min Shin, Ju Young Park, Sewoom Baek, Jeong‐Kee Yoon, Yong Jae Lee, Gyeung Mi Seon, Mi Hee Lee
SJR Q1Advanced MaterialsOA

Inserting a graft into vessels with different diameters frequently causes severe damage to the host vessels. Poor flow patency is an unresolved issue in grafts, particularly those with diameters less than 6 mm, because of vessel occlusion caused by disturbed blood flow following fast clotting. Herein, successful patency in the deployment of an ≈2 mm diameter graft into a porcine vessel is reported. A new library of property-tunable shape-memory polymers that prevent vessel damage by expanding th

BiomaterialsMaterials Science
9
Article|57 citations·2014
ROS-cleavable proline oligomer crosslinking of polycaprolactone for pro-angiogenic host response
Sue Hyun Lee, Timothy C. Boire, Jung Bok Lee, Mukesh Kumar Gupta, Angela L. Zachman, Rutwik Rath, Hak‐Joon Sung
SJR Q1Journal of Materials Chemistry B

When carboxylated poly(ε-caprolactone) (PCL) is crosslinked with ROS-degradable peptide KP<sub>7</sub>K oligomers and fabricated into porous scaffolds for tissue engineering applications, the scaffolds exhibit excellent physiological ROS-mediated degradation with induction of new blood vessel growth from the host.

BiomaterialsMaterials Science
10
Article|55 citations·2014
Cancer Stem Cells Under Hypoxia as a Chemoresistance Factor in the Breast and Brain
Spencer W. Crowder, Daniel A. Balikov, Yu‐Shik Hwang, Hak‐Joon Sung
SJR Q2Current Pathobiology ReportsOA
OncologyMedicine
11
Article|52 citations·2011
Combinatorial Polymer Electrospun Matrices Promote Physiologically-Relevant Cardiomyogenic Stem Cell Differentiation
Mukesh Kumar Gupta, Joel M. Walthall, Raghav Venkataraman, Spencer W. Crowder, Dae Kwang Jung, Shann S. Yu, Tromondae K. Feaster, Xintong Wang, Todd D. Giorgio, Charles C. Hong, Franz Baudenbacher, Antonis K. Hatzopoulos
SJR Q1PLoS ONEOA

Myocardial infarction results in extensive cardiomyocyte death which can lead to fatal arrhythmias or congestive heart failure. Delivery of stem cells to repopulate damaged cardiac tissue may be an attractive and innovative solution for repairing the damaged heart. Instructive polymer scaffolds with a wide range of properties have been used extensively to direct the differentiation of stem cells. In this study, we have optimized the chemical and mechanical properties of an electrospun polymer me

BiomaterialsMaterials Science
12
Article|52 citations·2020
Hydrogel cross-linking–programmed release of nitric oxide regulates source-dependent angiogenic behaviors of human mesenchymal stem cell
Mi‐Lan Kang, Hye-Seon Kim, Jin You, Young Sik Choi, Byeong‐Ju Kwon, Chan Hee Park, Wooyeol Baek, Min Sup Kim, Yong Jae Lee, Gun‐Il Im, Jeong‐Kee Yoon, Jung Bok Lee
SJR Q1Science AdvancesOA

Angiogenesis is stimulated by nitric oxide (NO) production in endothelial cells (ECs). Although proangiogenic actions of human mesenchymal stem cells (hMSCs) have been extensively studied, the mechanistic role of NO in this action remains obscure. Here, we used a gelatin hydrogel that releases NO upon crosslinking by a transglutaminase reaction ("NO gel"). Then, the source-specific behaviors of bone marrow versus adipose tissue-derived hMSCs (BMSCs versus ADSCs) were monitored in the NO gels. NO

GeneticsMedicine
13
Article|50 citations·2005
Oxidative Stress Produced with Cell Migration Increases Synthetic Phenotype of Vascular Smooth Muscle Cells
Hak‐Joon Sung, Suzanne G. Eskin, Yumiko Sakurai, Andrew Yee, Noriyuki Kataoka, Larry V. McIntire
SJR Q2Annals of Biomedical Engineering
Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Article|49 citations·2016
Directing lineage specification of human mesenchymal stem cells by decoupling electrical stimulation and physical patterning on unmodified graphene
Daniel A. Balikov, Brian Fang, Young Wook Chun, Spencer W. Crowder, Dhiraj Prasai, Jung Bok Lee, Kiril I. Bolotin, Hak‐Joon Sung
SJR Q1NanoscaleOA

The organization and composition of the extracellular matrix (ECM) have been shown to impact the propagation of electrical signals in multiple tissue types. To date, many studies with electroactive biomaterial substrates have relied upon passive electrical stimulation of the ionic media to affect cell behavior. However, development of cell culture systems in which stimulation can be directly applied to the material - thereby isolating the signal to the cell-material interface and cell-cell contr

Biomedical EngineeringEngineering
15
Article|47 citations·2007
Cyclic strain and motion control produce opposite oxidative responses in two human endothelial cell types
Hak‐Joon Sung, Andrew Yee, Suzanne G. Eskin, Larry V. McIntire
SJR Q1American Journal of Physiology-Cell Physiology

The phenotype of endothelial cells (ECs) is specific to the vascular bed from which they originate. To examine how mechanical forces alter the phenotype of different ECs, we compared the effects of cyclic strain and motion control on reactive oxygen species (ROS) production and metabolism and cell adhesion molecule expression in human umbilical vein endothelial cells (HUVEC) vs. human aortic endothelial cells (HAEC). HUVEC and HAEC were subjected to cyclic strain (10% or 20%, 1 Hz), to a motion

PhysiologyMedicine

Research Areas

Biomedical EngineeringSurgeryBiomaterialsMolecular BiologyOphthalmologyCancer Research

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