Skip to main content

Tae-Eun Park

Ulsan National Institute of Science and Technology · Biochemistry, Genetics and Molecular Biology

About the Lab

Professor Tae-Eun Park's research lab specializes in developing advanced human microphysiological systems, particularly organ-on-a-chip platforms, to model complex biological barriers such as the blood-brain barrier and gastric mucosal barrier. The lab focuses on enhancing drug delivery efficiency by identifying novel biological shuttles—such as aptamers and endogenous pathways—capable of crossing these barriers, with applications in treating neurodegenerative and gastrointestinal diseases. Using stem cell-derived cells and dynamic microfluidic environments, the lab integrates disease modeling, real-time monitoring, and precision drug testing to improve preclinical translation.

organ-on-a-chipblood-brain barrierdrug deliverymicrophysiological systemsaptamers

Research Overview

Papers
111
Total Citations
4,241
Papers (5y)
64
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
64total
2022
2023
2024
2025
2026
Citations per year (5y)
675total
20222023202420252026

Selected Papers

15
1
Article|592 citations·2019
Hypoxia-enhanced Blood-Brain Barrier Chip recapitulates human barrier function and shuttling of drugs and antibodies
Tae‐Eun Park, Nur Mustafaoğlu, Anna Herland, Ryan Hasselkus, Robert Mannix, Edward A. Fitzgerald, Rachelle Prantil‐Baun, Alexander L. Watters, Olivier Henry, Maximilian A. Benz, Henry Sanchez, Heather J. McCrea
SJR Q1Nature CommunicationsOA

The high selectivity of the human blood-brain barrier (BBB) restricts delivery of many pharmaceuticals and therapeutic antibodies to the central nervous system. Here, we describe an in vitro microfluidic organ-on-a-chip BBB model lined by induced pluripotent stem cell-derived human brain microvascular endothelium interfaced with primary human brain astrocytes and pericytes that recapitulates the high level of barrier function of the in vivo human BBB for at least one week in culture. The endothe

NeurologyNeuroscience
2
Article|128 citations·2014
Enhanced BBB permeability of osmotically active poly(mannitol-co-PEI) modified with rabies virus glycoprotein via selective stimulation of caveolar endocytosis for RNAi therapeutics in Alzheimer's disease
Tae‐Eun Park, Bijay Singh, Hui-Shan Li, Jun-Yeong Lee, Sang‐Kee Kang, Yun‐Jaie Choi, Chong‐Su Cho
SJR Q1Biomaterials
Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Review|56 citations·2023
Intestinal Peyer’s Patches: Structure, Function, and In Vitro Modeling
Jung In Park, Seung Woo Cho, Joo H. Kang, Tae‐Eun Park
SJR Q1Tissue Engineering and Regenerative MedicineOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Review|47 citations·2023
Integrated technologies for continuous monitoring of organs-on-chips: Current challenges and potential solutions
Jonathan Sabaté del Río, Jooyoung Ro, Heejeong Yoon, Tae‐Eun Park, Yoon‐Kyoung Cho
SJR Q1Biosensors and Bioelectronics
Biomedical EngineeringEngineering
5
Article|44 citations·2012
Selective stimulation of caveolae-mediated endocytosis by an osmotic polymannitol-based gene transporter
Tae‐Eun Park, Bitna Kang, You-Kyoung Kim, Qiankun Zhang, Won‐Seok Lee, Mohammad Ariful Islam, Sang‐Kee Kang, Myung‐Haing Cho, Yun‐Jaie Choi, Chong‐Su Cho
SJR Q1Biomaterials
Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|41 citations·2023
Aptamer Nanoconstructs Crossing Human Blood–Brain Barrier Discovered via Microphysiological System-Based SELEX Technology
Jeong-Won Choi, Minwook Seo, Kyunghwan Kim, A-Ru Kim, Hakmin Lee, Hyung-Seok Kim, Chun Gwon Park, Seung Woo Cho, Joo H. Kang, Jinmyoung Joo, Tae‐Eun Park
SJR Q1ACS Nano

Blood-brain barrier (BBB) remains one of the critical challenges in developing neurological therapeutics. Short single-stranded DNA/RNA nucleotides forming a three-dimensional structure, called aptamers, have received increasing attention as BBB shuttles for efficient brain drug delivery owing to their practical advantages over Trojan horse antibodies or peptides. Aptamers are typically obtained by combinatorial chemical technology, termed Systemic Evolution of Ligands by EXponential Enrichment

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|37 citations·2022
Human iPS-derived blood-brain barrier model exhibiting enhanced barrier properties empowered by engineered basement membrane
Jeong-Won Choi, Jaeseung Youn, Dong Sung Kim, Tae‐Eun Park
SJR Q1Biomaterials
NeurologyNeuroscience
8
Article|29 citations·2024
Organ-on-a-Chip Approach for Accelerating Blood–Brain Barrier Nanoshuttle Discovery
Jeong-Won Choi, Kyungha Kim, Karakoz Mukhambetiyar, Na Kyeong Lee, Jonathan Sabaté del Río, Jinmyoung Joo, Chun Gwon Park, Taejoon Kwon, Tae‐Eun Park
SJR Q1ACS Nano

Organ-on-a-chip, which recapitulates the dynamics of in vivo vasculature, has emerged as a promising platform for studying organ-specific vascular beds. However, its practical advantages in identifying vascular-targeted drug delivery systems (DDS) over traditional in vitro models remain underexplored. This study demonstrates the reliability and efficacy of the organ-on-a-chip in screening efficient DDS by comparing its performance with that of a conventional transwell, both designed to simulate

Biomedical EngineeringEngineering
9
Article|28 citations·2024
Lubricant‐Coated Organ‐on‐a‐Chip for Enhanced Precision in Preclinical Drug Testing
Tae Young Kim, Jeong‐Won Choi, Kijun Park, SeungHwan Kim, Jeong F. Kim, Tae‐Eun Park, Jungmok Seo
SJR Q1SmallOA

In drug discovery, human organ-on-a-chip (organ chip) technology has emerged as an essential tool for preclinical testing, offering a realistic representation of human physiology, real-time monitoring, and disease modeling. Polydimethylsiloxane (PDMS) is commonly used in organ chip fabrication owing to its biocompatibility, flexibility, transparency, and ability to replicate features down to the nanoscale. However, the porous nature of PDMS leads to unintended absorption of small molecules, crit

Biomedical EngineeringEngineering
10
Article|26 citations·2018
Investigation on vascular cytotoxicity and extravascular transport of cationic polymer nanoparticles using perfusable 3D microvessel model
Jungho Ahn, Chong‐Su Cho, Seong Woo Cho, Joo H. Kang, Sung‐Yon Kim, Dal‐Hee Min, Joon Myong Song, Tae‐Eun Park, Noo Li Jeon
SJR Q1Acta Biomaterialia
BiomaterialsMaterials Science
11
Article|20 citations·2020
LSM12-EPAC1 defines a neuroprotective pathway that sustains the nucleocytoplasmic RAN gradient
Jongbo Lee, Jumin Park, Ji-hyung Kim, Giwook Lee, Tae‐Eun Park, Ki‐Jun Yoon, Yoon Ki Kim, Chunghun Lim
SJR Q1PLoS BiologyOA

Nucleocytoplasmic transport (NCT) defects have been implicated in neurodegenerative diseases such as C9ORF72-associated amyotrophic lateral sclerosis and frontotemporal dementia (C9-ALS/FTD). Here, we identify a neuroprotective pathway of like-Sm protein 12 (LSM12) and exchange protein directly activated by cyclic AMP 1 (EPAC1) that sustains the nucleocytoplasmic RAN gradient and thereby suppresses NCT dysfunction by the C9ORF72-derived poly(glycine-arginine) protein. LSM12 depletion in human ne

Molecular BiologyBiochemistry, Genetics and Molecular Biology
12
Article|20 citations·2023
Organoid‐Based Human Stomach Micro‐Physiological System to Recapitulate the Dynamic Mucosal Defense Mechanism
Hye‐Jin Jeong, Ji‐Hyeon Park, Joo H. Kang, Jonathan Sabaté del Río, Seong‐Ho Kong, Tae‐Eun Park
SJR Q1Advanced ScienceOA

Several stomach diseases are attributed to the dysregulation of physiological function of gastric mucosal barrier by pathogens. Gastric organoids are a promising tool to develop treatment strategies for gastric infections. However, their functional features of in vivo gastric mucosal barrier and host-microbe interactions are limited due to the lack of physiological stimuli. Herein, a human stomach micro-physiological system (hsMPS) with physiologically relevant gastric mucosal defense system is

SurgeryMedicine
13
Article|18 citations·2023
Microphysiological system recapitulating the pathophysiology of adipose tissue in obesity
Heejeong Yoon, Jeong Kon Seo, Tae‐Eun Park
SJR Q1Acta Biomaterialia
PhysiologyMedicine
14
Article|16 citations·2025
Bioprinted Patient‐Derived Organoid Arrays Capture Intrinsic and Extrinsic Tumor Features for Advanced Personalized Medicine
Jonghyeuk Han, Hye‐Jin Jeong, Jeonghan Choi, Hyeonseo Kim, Taejoon Kwon, Kyungjae Myung, Kyemyung Park, Jung In Park, Samuel Sánchez, Deok‐Beom Jung, Chang Sik Yu, In Ho Song
SJR Q1Advanced ScienceOA

Heterogeneity and the absence of a tumor microenvironment (TME) in traditional patient-derived organoid (PDO) cultures limit their effectiveness for clinical use. Here, Embedded Bioprinting-enabled Arrayed PDOs (Eba-PDOs) featuring uniformly arrayed colorectal cancer (CRC) PDOs within a recreated TME is presented. This model faithfully reproduces critical TME attributes, including elevated matrix stiffness (≈7.5 kPa) and hypoxic conditions found in CRC. Transcriptomic and immunofluorescence micr

Biomedical EngineeringEngineering
15
Article|15 citations·2021
Condensed ECM-based nanofilms on highly permeable PET membranes for robust cell-to-cell communications with improved optical clarity
Brian Choi, Jeong-Won Choi, Hyungwon Jin, Hye-Rim Sim, Jung‐Hoon Park, Tae‐Eun Park, Joo H. Kang
SJR Q1BiofabricationOA

Abstract The properties of a semipermeable porous membrane, including pore size, pore density, and thickness, play a crucial role in creating a tissue interface in a microphysiological system (MPS) because it dictates multicellular interactions between different compartments. The small pore-sized membrane has been preferentially used in an MPS for stable cell adhesion and the formation of tissue barriers on the membrane. However, it limited the applicability of the MPS because of the hindered ce

Biomedical EngineeringEngineering

Research Areas

Molecular BiologyBiomedical EngineeringNeurologyBiomaterialsSurgeryOncology

Dive deeper into Tae-Eun Park's research on Nubint

Open this lab's papers in the app to read with AI, summarize, and cite in your writing.