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Jinah Jang

Pohang University of Science and Technology · 工学

研究室紹介

Professor Jinah Jang's research lab specializes in advanced 3D bioprinting and biofabrication technologies for engineering functional tissues and organs. The lab focuses on developing patient-specific, biologically relevant tissue constructs using decellularized extracellular matrix (dECM)-based bioinks to mimic native tissue microenvironments. A key research direction involves enhancing the printability and mechanical properties of dECM bioinks through innovative crosslinking strategies, such as light-activated polymerization, to enable precise fabrication of complex, scalable, and physiologically relevant 3D architectures. The lab also explores in vivo priming strategies to improve stem cell survival and function for regenerative therapies, particularly in cardiac repair.

3D bioprintingdECM bioinkstissue engineeringorganoidsstem cell therapy

Research Overview

Papers
235
Total Citations
13,321
Papers (5y)
83
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
83total
2022
2023
2024
2025
2026
Citations per year (5y)
1,143total
20222023202420252026

Selected Papers

15
1
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
2
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
3
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
4
Review|249 citations·2017
Biomaterials-based 3D cell printing for next-generation therapeutics and diagnostics
Jinah Jang, Ju Young Park, Ge Gao, Dong‐Woo Cho
SJR Q1Biomaterials
Biomedical EngineeringEngineering
5
Review|203 citations·2017
Decellularized extracellular matrix: a step towards the next generation source for bioink manufacturing
Byoung Soo Kim, Hyeonji Kim, Ge Gao, Jinah Jang, Dong‐Woo Cho
SJR Q1Biofabrication

In tissue engineering, the need for hierarchical assembly of three-dimensional (3D) tissues has become increasingly important, considering that new technology is essential for advanced tissue fabrication. 3D cell printing has emerged as a powerful technology to recapitulate the microenvironment of native tissue, allowing for the precise deposition of multiple cells onto the pre-defined position. Parallel to these technological advances, the search for an appropriate bioink that can provide a sui

Biomedical EngineeringEngineering
6
Article|159 citations·2016
3D Printed Tissue Models: Present and Future
Jinah Jang, Hee‐Gyeong Yi, Dong‐Woo Cho
SJR Q1ACS Biomaterials Science & Engineering

Three-dimensional (3D) tissue modeling is an emerging field of investigation for disease mechanisms, drug testing, and therapeutic effects for human survival. Various methods have been developed to recapitulate tissue mimetic microenvironments; however, they could mimic only the fragmentary phase of disease. Cells should be tested under two-dimensional (2D) substrate or encapsulated into hydrogels, and thus, they cannot mimic natural tissue behaviors or arrangements in the body. 3D printing tech

Biomedical EngineeringEngineering
7
Article|158 citations·2014
Effects of alginate hydrogel cross-linking density on mechanical and biological behaviors for tissue engineering
Jinah Jang, Young‐Joon Seol, Hyeon Ji Kim, Joydip Kundu, Sung Won Kim, Dong‐Woo Cho
SJR Q2Journal of the mechanical behavior of biomedical materials/Journal of mechanical behavior of biomedical materials
Molecular MedicineBiochemistry, Genetics and Molecular Biology
8
Article|145 citations·2019
Decellularized extracellular matrix bioinks and the external stimuli to enhance cardiac tissue development in vitro
Sanskrita Das, Seok-Won Kim, Yeong‐Jin Choi, Soo‐Yeon Lee, Se‐Hwan Lee, Jeong‐Sik Kong, Hun‐Jun Park, Dong‐Woo Cho, Jinah Jang
SJR Q1Acta Biomaterialia
Biomedical EngineeringEngineering
9
Article|144 citations·2021
Light‐Activated Decellularized Extracellular Matrix‐Based Bioinks for Volumetric Tissue Analogs at the Centimeter Scale
Hyeonji Kim, Byeongmin Kang, Xiaolin Cui, Se‐Hwan Lee, Kwangseok Lee, Dong‐Woo Cho, Woonbong Hwang, Tim B. F. Woodfield, Khoon S. Lim, Jinah Jang
SJR Q1Advanced Functional MaterialsOA

Abstract Tissue engineering requires not only tissue‐specific functionality but also a realistic scale. Decellularized extracellular matrix (dECM) is presently applied to the extrusion‐based 3D printing technology. It has demonstrated excellent efficiency as bioscaffolds that allow engineering of living constructs with elaborate microarchitectures as well as the tissue‐specific biochemical milieu of target tissues and organs. However, dECM bioinks have poor printability and physical properties,

Biomedical EngineeringEngineering
10
Article|141 citations·2020
In vivo priming of human mesenchymal stem cells with hepatocyte growth factor–engineered mesenchymal stem cells promotes therapeutic potential for cardiac repair
Bong‐Woo Park, Soo‐Hyun Jung, Sanskrita Das, Soon Min Lee, Jae-Hyun Park, Hyeok Kim, Ji‐Won Hwang, Sung-Hun Lee, Hyo-Jin Kim, Hey-Yon Kim, Seungman Jung, Dong‐Woo Cho
SJR Q1Science AdvancesOA

The clinical use of human bone marrow-derived mesenchymal stem cells (BM-MSCs) has been hampered by their poor performance after transplantation into failing hearts. Here, to improve the therapeutic potential of BM-MSCs, we developed a strategy termed in vivo priming in which BM-MSCs are primed in vivo in myocardial infarction (MI)-induced hearts through genetically engineered hepatocyte growth factor-expressing MSCs (HGF-eMSCs) that are encapsulated within an epicardially implanted 3D cardiac p

SurgeryMedicine
11
Review|132 citations·2020
3D Bioprinting Strategies for the Regeneration of Functional Tubular Tissues and Organs
Hun‐Jin Jeong, Hyoryung Nam, Jinah Jang, Seung‐Jae Lee
SJR Q2BioengineeringOA

It is difficult to fabricate tubular-shaped tissues and organs (e.g., trachea, blood vessel, and esophagus tissue) with traditional biofabrication techniques (e.g., electrospinning, cell-sheet engineering, and mold-casting) because these have complicated multiple processes. In addition, the tubular-shaped tissues and organs have their own design with target-specific mechanical and biological properties. Therefore, the customized geometrical and physiological environment is required as one of the

Biomedical EngineeringEngineering
12
Article|103 citations·2019
Recent Strategies in Extrusion-Based Three-Dimensional Cell Printing toward Organ Biofabrication
Ge Gao, Byoung Soo Kim, Jinah Jang, Dong‐Woo Cho
SJR Q1ACS Biomaterials Science & Engineering

Reconstructing human organs is one of the ultimate goals of the medical industry. Organ printing utilizing three-dimensional cell printing technology to fabricate artificial living organ equivalents has shed light on the advancement of this field into a new era. Among three currently applied techniques (inkjet, laser-assisted, and extrusion-based), extrusion-based cell printing (ECP) has evoked the majority of interest due to its low cost, wide range of applicable materials, and ease of spatial

Biomedical EngineeringEngineering
13
Article|88 citations·2012
Improving mechanical properties of alginate hydrogel by reinforcement with ethanol treated polycaprolactone nanofibers
Jinah Jang, Jongwan Lee, Young‐Joon Seol, Young Hun Jeong, Dong‐Woo Cho
SJR Q1Composites Part B Engineering
BiomaterialsMaterials Science
14
Article|84 citations·2023
3D bioprinted vascularized lung cancer organoid models with underlying disease capable of more precise drug evaluation
Yoo‐mi Choi, Haram Lee, Minjun Ann, Minyeong Song, Jinguen Rheey, Jinah Jang
SJR Q1BiofabricationOA

cancer models that simultaneously recapitulate the complexity of the tumor microenvironment and its diverse cellular components and genetic properties remain lacking. Here, an advanced vascularized lung cancer (LC) model is proposed, which includes patient-derived LC organoids (LCOs), lung fibroblasts, and perfusable vessels using 3D bioprinting technology. To better recapitulate the biochemical composition of native lung tissues, a porcine lung-derived decellularized extracellular matrix (LudEC

OncologyMedicine
15
Article|80 citations·2020
Multi-layered Free-form 3D Cell-printed Tubular Construct with Decellularized Inner and Outer Esophageal Tissue-derived Bioinks
Hyoryung Nam, Hun‐Jin Jeong, Yeonggwon Jo, Jae Yeon Lee, Dongheon Ha, Ji Hyun Kim, Jae Hee Chung, Young‐Sam Cho, Dong‐Woo Cho, Seung‐Jae Lee, Jinah Jang
SJR Q1Scientific ReportsOA

The incidences of various esophageal diseases (e.g., congenital esophageal stenosis, tracheoesophageal fistula, esophageal atresia, esophageal cancer) are increasing, but esophageal tissue is difficult to be recovered because of its weak regenerative capability. There are no commercialized off-the-shelf alternatives to current esophageal reconstruction and regeneration methods. Surgeons usually use ectopic conduit tissues including stomach and intestine, presumably inducing donor site morbidity

SurgeryMedicine

Research Areas

Biomedical EngineeringSurgeryBiomaterialsImmunologyPulmonary and Respiratory MedicineRadiology, Nuclear Medicine and Imaging

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