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Dongwoo Cho

Pohang University of Science and Technology · Engineering

About the Lab

Professor Dongwoo Cho's research lab specializes in advanced biofabrication technologies, focusing on 3D bioprinting and regenerative medicine. The lab develops innovative bioinks—particularly decellularized extracellular matrix (dECM) based formulations—to create biomimetic microenvironments that support complex tissue morphogenesis and function. Key research directions include the fabrication of patient-specific, multi-cellular, and multi-tissue constructs such as ear cartilage, osteochondral interfaces, and organ-on-a-chip systems using thermoplastic polymers (e.g., PCL) and functional hydrogels. The lab emphasizes structural fidelity, mechanical stability, and biological functionality in engineered tissues through novel printing strategies like sacrificial molding and multi-head deposition systems.

3D bioprintingdECM bioinkorgan-on-a-chiptissue engineeringsacrificial templating

Research Overview

Papers
439
Total Citations
27,769
Papers (5y)
67
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
67total
2021
2022
2023
2024
2025
Citations per year (5y)
2,168total
20212022202320242025

Selected Papers

15
1
Article|1,884 citations·2014
Printing three-dimensional tissue analogues with decellularized extracellular matrix bioink
Falguni Pati, Jinah Jang, Dong-Heon Ha, Sung Won Kim, Jong‐Won Rhie, Jin‐Hyung Shim, Deok‐Ho Kim, Dong‐Woo Cho
SJR Q1Nature CommunicationsOA

The ability to print and pattern all the components that make up a tissue (cells and matrix materials) in three dimensions to generate structures similar to tissues is an exciting prospect of bioprinting. However, the majority of the matrix materials used so far for bioprinting cannot represent the complexity of natural extracellular matrix (ECM) and thus are unable to reconstitute the intrinsic cellular morphologies and functions. Here, we develop a method for the bioprinting of cell-laden cons

Biomedical EngineeringEngineering
2
Article|664 citations·2016
3D printed complex tissue construct using stem cell-laden decellularized extracellular matrix bioinks for cardiac repair
Jinah Jang, Park Hun-Jun, Seok-Won Kim, Hee‐Jin Kim, Ju Young Park, Soo Jin Na, Hyeon Ji Kim, Moon Nyeo Park, Seung Hyun Choi, Sun Hwa Park, Sung Won Kim, Sang‐Mo Kwon
SJR Q1Biomaterials
Biomedical EngineeringEngineering
3
Article|615 citations·2019
A bioprinted human-glioblastoma-on-a-chip for the identification of patient-specific responses to chemoradiotherapy
Hee‐Gyeong Yi, Young Hun Jeong, Yona Kim, Yeong‐Jin Choi, Hyo Eun Moon, Sung‐Hye Park, Kyung Shin Kang, Mihyeon Bae, Jinah Jang, Hyewon Youn, Sun Ha Paek, Dong‐Woo Cho
SJR Q1Nature Biomedical Engineering
Biomedical EngineeringEngineering
4
Article|547 citations·2014
Bioprintable, cell-laden silk fibroin–gelatin hydrogel supporting multilineage differentiation of stem cells for fabrication of three-dimensional tissue constructs
Sanskrita Das, Falguni Pati, Yeong‐Jin Choi, Girdhari Rijal, Jin‐Hyung Shim, Sung Won Kim, Alok R. Ray, Dong‐Woo Cho, Sourabh Ghosh
SJR Q1Acta Biomaterialia
Biomedical EngineeringEngineering
5
Article|537 citations·2013
An additive manufacturing-based PCL-alginate-chondrocyte bioprinted scaffold for cartilage tissue engineering
Joydip Kundu, Jin‐Hyung Shim, Jinah Jang, Sungwon Kim, Dong‐Woo Cho
SJR Q2Journal of Tissue Engineering and Regenerative MedicineOA

Regenerative medicine is targeted to improve, restore or replace damaged tissues or organs using a combination of cells, materials and growth factors. Both tissue engineering and developmental biology currently deal with the process of tissue self-assembly and extracellular matrix (ECM) deposition. In this investigation, additive manufacturing (AM) with a multihead deposition system (MHDS) was used to fabricate three-dimensional (3D) cell-printed scaffolds using layer-by-layer (LBL) deposition o

Biomedical EngineeringEngineering
6
Article|498 citations·2018
3D cell printing of in vitro stabilized skin model and in vivo pre-vascularized skin patch using tissue-specific extracellular matrix bioink: A step towards advanced skin tissue engineering
Byoung Soo Kim, Yang Woo Kwon, Jeong‐Sik Kong, Gyu Tae Park, Ge Gao, Wonil Han, Moon‐Bum Kim, Hyungseok Lee, Jae Ho Kim, Dong‐Woo Cho
SJR Q1Biomaterials
Biomedical EngineeringEngineering
7
Review|435 citations·2020
Decellularized Extracellular Matrix-based Bioinks for Engineering Tissue- and Organ-specific Microenvironments
Byoung Soo Kim, Sanskrita Das, Jinah Jang, Dong‐Woo Cho
SJR Q1Chemical Reviews

Biomaterials-based biofabrication methods have gained much attention in recent years. Among them, 3D cell printing is a pioneering technology to facilitate the recapitulation of unique features of complex human tissues and organs with high process flexibility and versatility. Bioinks, combinations of printable hydrogel and cells, can be utilized to create 3D cell-printed constructs. The bioactive cues of bioinks directly trigger cells to induce tissue morphogenesis. Among the various printable h

Biomedical EngineeringEngineering
8
Article|404 citations·2014
3D printing of composite tissue with complex shape applied to ear regeneration
Jung‐Seob Lee, Jung Min Hong, Jin Woo Jung, Jin‐Hyung Shim, Jeong‐Hoon Oh, Dong‐Woo Cho
SJR Q1Biofabrication

In the ear reconstruction field, tissue engineering enabling the regeneration of the ear's own tissue has been considered to be a promising technology. However, the ear is known to be difficult to regenerate using traditional methods due to its complex shape and composition. In this study, we used three-dimensional (3D) printing technology including a sacrificial layer process to regenerate both the auricular cartilage and fat tissue. The main part was printed with poly-caprolactone (PCL) and ce

SurgeryMedicine
9
Article|378 citations·2012
Bioprinting of a mechanically enhanced three-dimensional dual cell-laden construct for osteochondral tissue engineering using a multi-head tissue/organ building system
Jin‐Hyung Shim, Jung‐Seob Lee, Jong Young Kim, Dong‐Woo Cho
SJR Q2Journal of Micromechanics and Microengineering

The aim of this study was to build a mechanically enhanced three-dimensional (3D) bioprinted construct containing two different cell types for osteochondral tissue regeneration. Recently, the production of 3D cell-laden structures using various scaffold-free cell printing technologies has opened up new possibilities. However, ideal 3D complex tissues or organs have not yet been printed because gel-state hydrogels have been used as the principal material and are unable to maintain the desired 3D

Biomedical EngineeringEngineering
10
Article|361 citations·2015
Biomimetic 3D tissue printing for soft tissue regeneration
Falguni Pati, Dongheon Ha, Jinah Jang, Hyun Ho Han, Jong‐Won Rhie, Dong‐Woo Cho
SJR Q1Biomaterials
Biomedical EngineeringEngineering
11
Article|358 citations·2016
One-step fabrication of an organ-on-a-chip with spatial heterogeneity using a 3D bioprinting technology
Hyungseok Lee, Dong‐Woo Cho
SJR Q1Lab on a ChipOA

Although various types of organs-on-chips have been introduced recently as tools for drug discovery, the current studies are limited in terms of fabrication methods. The fabrication methods currently available not only need a secondary cell-seeding process and result in severe protein absorption due to the material used, but also have difficulties in providing various cell types and extracellular matrix (ECM) environments for spatial heterogeneity in the organs-on-chips. Therefore, in this resea

Biomedical EngineeringEngineering
12
Article|355 citations·2014
Ornamenting 3D printed scaffolds with cell-laid extracellular matrix for bone tissue regeneration
Falguni Pati, Tae-Ha Song, Girdhari Rijal, Jinah Jang, Sung Won Kim, Dong‐Woo Cho
SJR Q1Biomaterials
SurgeryMedicine
13
Article|339 citations·2016
Tailoring mechanical properties of decellularized extracellular matrix bioink by vitamin B2-induced photo-crosslinking
Jinah Jang, Taek Gyoung Kim, Byoung Soo Kim, Seok-Won Kim, Sang‐Mo Kwon, Dong‐Woo Cho
SJR Q1Acta Biomaterialia
Biomedical EngineeringEngineering
14
Article|332 citations·2017
Tissue Engineered Bio‐Blood‐Vessels Constructed Using a Tissue‐Specific Bioink and 3D Coaxial Cell Printing Technique: A Novel Therapy for Ischemic Disease
Ge Gao, Jun Hee Lee, Jinah Jang, Dong‐Han Lee, Jeong‐Sik Kong, Byoung Soo Kim, Yeong‐Jin Choi, Woong Bi Jang, Young Joon Hong, Sang‐Mo Kwon, Dong‐Woo Cho
SJR Q1Advanced Functional MaterialsOA

Endothelial progenitor cells (EPCs) are a promising cell source for the treatment of several ischemic diseases for their potentials in neovascularization. However, the application of EPCs in cell‐based therapy has shown low therapeutic efficacy due to hostile tissue conditions after ischemia. In this study, a bio‐blood‐vessel (BBV) is developed, which is produced using a novel hybrid bioink (a mixture of vascular‐tissue‐derived decellularized extracellular matrix (VdECM) and alginate) and a vers

Biomedical EngineeringEngineering
15
Article|322 citations·2017
Development of Liver Decellularized Extracellular Matrix Bioink for Three-Dimensional Cell Printing-Based Liver Tissue Engineering
Hyungseok Lee, Wonil Han, Hyeonji Kim, Dongheon Ha, Jinah Jang, Byoung Soo Kim, Dong‐Woo Cho
SJR Q1Biomacromolecules

The liver is an important organ and plays major roles in the human body. Because of the lack of liver donors after liver failure and drug-induced liver injury, much research has focused on developing liver alternatives and liver in vitro models for transplantation and drug screening. Although numerous studies have been conducted, these systems cannot faithfully mimic the complexity of the liver. Recently, three-dimensional (3D) cell printing technology has emerged as one of a number of innovativ

Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringSurgeryMechanical EngineeringBiomaterialsAutomotive EngineeringPulmonary and Respiratory Medicine

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