Skip to main content

Geun-Hyung Kim

Sungkyunkwan University · 工学

研究室紹介

Professor Geun-Hyung Kim's research lab specializes in advanced biomaterials and tissue engineering, focusing on the development of biofabrication technologies such as 3D bioprinting, electrospinning, and hybrid rapid prototyping. The lab investigates the design and fabrication of functional, biomimetic scaffolds with controlled micro- and nano-scale topographies to enhance cellular behavior, including adhesion, proliferation, and differentiation. Key research directions include optimizing bioinks for 3D cell printing, improving mechanical and biological properties of electrospun nanofibrous scaffolds, and integrating multiple fabrication techniques to create hierarchical structures that closely mimic the extracellular matrix. The ultimate goal is to engineer patient-specific tissues and implants for regenerative medicine applications.

3D bioprintingelectrospinningbiomimetic scaffoldsbioinkstissue engineering

Research Overview

Papers
320
Total Citations
12,307
Papers (5y)
61
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
61total
2022
2023
2024
2025
2026
Citations per year (5y)
738total
20222023202420252026

Selected Papers

15
1
Review|238 citations·2017
3D bioprinting and itsin vivoapplications
Nhayoung Hong, Gi Hoon Yang, JaeHwan Lee, GeunHyung Kim
SJR Q2Journal of Biomedical Materials Research Part B Applied BiomaterialsOA

The purpose of 3D bioprinting technology is to design and create functional 3D tissues or organs in situ for in vivo applications. 3D cell-printing, or additive biomanufacturing, allows the selection of biomaterials and cells (bioink), and the fabrication of cell-laden structures in high resolution. 3D cell-printed structures have also been used for applications such as research models, drug delivery and discovery, and toxicology. Recently, numerous attempts have been made to fabricate tissues a

Biomedical EngineeringEngineering
2
Article|225 citations·2006
Stability analysis for multi-jets electrospinning process modified with a cylindrical electrode
GeunHyung Kim, Young‐Sam Cho, Wan Doo Kim
SJR Q1European Polymer Journal
BiomaterialsMaterials Science
3
Review|190 citations·2014
A mini‐review: Cell response to microscale, nanoscale, and hierarchical patterning of surface structure
Hojun Jeon, Carl G. Simon, GeunHyung Kim
SJR Q2Journal of Biomedical Materials Research Part B Applied Biomaterials

Cellular behavior can be influenced by the chemical and physical surface characteristics of biomedical substrates. To understand the relationships between various topographical surface patterns and cellular activities, various types of pattern models have been developed and examined in a range of sizes (microscale, nanoscale, and hierarchical structures consisting of both) and shapes (pillar, hole, groove, grate, grid, and island). Here, we review fabrication methods for obtaining physically pat

Biomedical EngineeringEngineering
4
Article|180 citations·2019
Efficient myotube formation in 3D bioprinted tissue construct by biochemical and topographical cues
Won-Jin Kim, Hyeongjin Lee, JiUn Lee, Anthony Atala, James J. Yoo, Sang Jin Lee, GeunHyung Kim
SJR Q1BiomaterialsOA
Biomedical EngineeringEngineering
5
Review|180 citations·2019
Cell-Electrospinning and Its Application for Tissue Engineering
Jiyoung Hong, Miji Yeo, Gi Hoon Yang, GeunHyung Kim
SJR Q1International Journal of Molecular SciencesOA

Electrospinning has gained great interest in the field of regenerative medicine, due to its fabrication of a native extracellular matrix-mimicking environment. The micro/nanofibers generated through this process provide cell-friendly surroundings which promote cellular activities. Despite these benefits of electrospinning, a process was introduced to overcome the limitations of electrospinning. Cell-electrospinning is based on the basic process of electrospinning for producing viable cells encap

BiomaterialsMaterials Science
6
Article|179 citations·2016
Strategy to Achieve Highly Porous/Biocompatible Macroscale Cell Blocks, Using a Collagen/Genipin-bioink and an Optimal 3D Printing Process
Yong Bok Kim, Hyeongjin Lee, GeunHyung Kim
SJR Q1ACS Applied Materials & Interfaces

Recently, a three-dimensional (3D) bioprinting process for obtaining a cell-laden structure has been widely applied because of its ability to fabricate biomimetic complex structures embedded with and without cells. To successfully obtain a cell-laden porous block, the cell-delivering vehicle, bioink, is one of the significant factors. Until now, various biocompatible hydrogels (synthetic and natural biopolymers) have been utilized in the cell-printing process, but a bioink satisfying both biocom

Biomedical EngineeringEngineering
7
Article|172 citations·2008
Hybrid Process for Fabricating 3D Hierarchical Scaffolds Combining Rapid Prototyping and Electrospinning
GeunHyung Kim, Joon-Gon Son, Sua Park, WanDoo Kim
SJR Q1Macromolecular Rapid Communications

Abstract An ideal scaffold should have good mechanical properties and provide a biologically functional implant site. A rapid prototyping system has been introduced as a good method of fabricating 3D scaffolds that mimic the structure in the human body. However, the scaffolds have strands that are too smooth and a pore size that is too large relative to the seeded cells and present unfavorable conditions for initial cell attachment. To overcome these problems, we propose a hybrid technology comb

Biomedical EngineeringEngineering
8
Article|169 citations·2008
Electrospun PCL nanofibers with anisotropic mechanical properties as a biomedical scaffold
GeunHyung Kim
SJR Q2Biomedical Materials

To design an ideal scaffold, various factors should be considered, such as pore size and morphology, mechanical properties versus porosity, surface properties and appropriate biodegradability. Of these factors, the importance of mechanical properties on cell growth is particularly obvious in tissues such as bone, cartilage, blood vessels, tendons and muscles. Although electrospun nanofibers provide easily applicable nano-sized structures which could be used as biomedical scaffolds, the mechanica

BiomaterialsMaterials Science
9
Article|160 citations·2014
Three-dimensional electrospun polycaprolactone (PCL)/alginate hybrid composite scaffolds
Min Seong Kim, GeunHyung Kim
SJR Q1Carbohydrate Polymers
Biomedical EngineeringEngineering
10
Article|154 citations·2016
An Innovative Collagen-Based Cell-Printing Method for Obtaining Human Adipose Stem Cell-Laden Structures Consisting of Core–Sheath Structures for Tissue Engineering
MyungGu Yeo, Ji‐Seon Lee, Wook Chun, GeunHyung Kim
SJR Q1Biomacromolecules

Three-dimensional (3D) cell printing processes have been used widely in various tissue engineering applications due to the efficient embedding of living cells in appropriately designed micro- or macro-structures. However, there are several issues to overcome, such as the limited choice of bioinks and tailor-made fabricating strategies. Here, we suggest a new, innovative cell-printing process, supplemented with a core-sheath nozzle and an aerosol cross-linking method, to obtain multilayered cell-

Biomedical EngineeringEngineering
11
Article|152 citations·2015
A New Approach for Fabricating Collagen/ECM‐Based Bioinks Using Preosteoblasts and Human Adipose Stem Cells
Hyeong Jin Lee, Yong Bok Kim, Seung Hyun Ahn, Ji‐Seon Lee, Chul Ho Jang, Hyeon Yoon, Wook Chun, GeunHyung Kim
SJR Q1Advanced Healthcare Materials

Cell-printing methods have been used widely in tissue regeneration because they enable fabricating biomimetic 3D structures laden with various cells. To achieve a cell-matrix block, various natural hydrogels that are nontoxic, biocompatible, and printable have been combined to obtain "bioinks." Unfortunately, most bioinks, including those with alginates, show low cell-activating properties. Here, a strategy for obtaining highly bioactive ink, which consisted of collagen/extracellular matrix (ECM

Biomedical EngineeringEngineering
12
Article|148 citations·2020
Bone-derived dECM/alginate bioink for fabricating a 3D cell-laden mesh structure for bone tissue engineering
Jiun Lee, Jiyoung Hong, Won-Jin Kim, GeunHyung Kim
SJR Q1Carbohydrate Polymers
Biomedical EngineeringEngineering
13
Review|138 citations·2019
4D Bioprinting: Technological Advances in Biofabrication
Gi Hoon Yang, Miji Yeo, Young Won Koo, GeunHyung Kim
SJR Q1Macromolecular Bioscience

The development of the three-dimensional (3D) printer has resulted in significant advances in a number of fields, including rapid prototyping and biomedical devices. For 3D structures, the inclusion of dynamic responses to stimuli is added to develop the concept of four-dimensional (4D) printing. Typically, 4D printing is useful for biofabrication by reproducing a stimulus-responsive dynamic environment corresponding to physiological activities. Such a dynamic environment can be precisely design

Mechanical EngineeringEngineering
14
Article|134 citations·2019
A Myoblast-Laden Collagen Bioink with Fully Aligned Au Nanowires for Muscle-Tissue Regeneration
Won-Jin Kim, Chul Ho Jang, GeunHyung Kim
SJR Q1Nano Letters

Contact guidance can promote cell alignment and is thus widely employed in tissue regeneration. In particular, skeletal muscle consists of long fibrous bundles of multinucleated myotubes formed by the fusion and differentiation of the satellite cells of myoblasts. Herein, a functional bioink and cell-printing process supplemented with an electric field are proposed for obtaining highly aligned myoblasts in a collagen-based bioink. To achieve the goal, we mixed Au nanowires (GNWs) with the collag

Biomedical EngineeringEngineering
15
Article|134 citations·2017
Fabrication of micro/nanoporous collagen/dECM/silk-fibroin biocomposite scaffolds using a low temperature 3D printing process for bone tissue regeneration
Hyeongjin Lee, Gi Hoon Yang, Minseong Kim, JaeYoon Lee, JunTae Huh, GeunHyung Kim
Materials Science and Engineering C
Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringBiomaterialsElectrical and Electronic EngineeringSurgeryOtorhinolaryngologyMolecular Biology

Geun-Hyung Kimの研究をNubintでさらに深く

この研究室の論文をアプリで開き、AIと共に読み、要約し、引用しましょう。