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Kyungmi Lee

Korea University · Medicine

About the Lab

Professor Kyungmi Lee's research lab specializes in the development and application of transient and biocompatible electronic materials, with a focus on silicon-based nanomembranes and 2D materials such as MoS₂. The lab investigates the controlled dissolution, biocompatibility, and bioabsorption of these materials in physiological environments, aiming to advance resorbable biomedical implants and eco-friendly electronics. Key research directions include the molecular mechanisms of material degradation, in vitro and in vivo biocompatibility assessments, and the integration of these materials into functional electronic systems. The lab also explores immune modulation in T cells and NK cells, particularly through receptors like CTLA-4 and 2B4, linking immunology with materials science.

transient electronicsbiocompatible materialsnanomembranes2D materialsbioabsorption

Research Overview

Papers
416
Total Citations
14,594
Papers (5y)
51
Primary Field
Medicine

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
51total
2022
2023
2024
2025
2026
Citations per year (5y)
403total
20222023202420252026

Selected Papers

15
1
Article|688 citations·1998
Molecular Basis of T Cell Inactivation by CTLA-4
Kyung‐Mi Lee, Ellen Chuang, Matthew D. Griffin, Roli Khattri, David K. Hong, Weiguo Zhang, David B. Straus, Lawrence E. Samelson, Craig B. Thompson, Jeffrey A. Bluestone
SJR Q1Science

CTLA-4, a negative regulator of T cell function, was found to associate with the T cell receptor (TCR) complex zeta chain in primary T cells. The association of TCRzeta with CTLA-4, reconstituted in 293 transfectants, was enhanced by p56(lck)-induced tyrosine phosphorylation. Coexpression of the CTLA-4-associated tyrosine phosphatase, SHP-2, resulted in dephosphorylation of TCRzeta bound to CTLA-4 and abolished the p56(lck)-inducible TCRzeta-CTLA-4 interaction. Thus, CTLA-4 inhibits TCR signal t

ImmunologyImmunology and Microbiology
2
Article|246 citations·2018
CVD-grown monolayer MoS2 in bioabsorbable electronics and biosensors
Xiang Chen, Yong Ju Park, Minpyo Kang, Seung‐Kyun Kang, Jahyun Koo, Sachin M. Shinde, Jiho Shin, Seunghyun Jeon, Gayoung Park, Yan Yan, Matthew R. MacEwan, Wilson Z. Ray
SJR Q1Nature CommunicationsOA

Abstract Transient electronics represents an emerging technology whose defining feature is an ability to dissolve, disintegrate or otherwise physically disappear in a controlled manner. Envisioned applications include resorbable/degradable biomedical implants, hardware-secure memory devices, and zero-impact environmental sensors. 2D materials may have essential roles in these systems due to their unique mechanical, thermal, electrical, and optical properties. Here, we study the bioabsorption of

Materials ChemistryMaterials Science
3
Article|206 citations·2004
2B4 Acts As a Non–Major Histocompatibility Complex Binding Inhibitory Receptor on Mouse Natural Killer Cells
Kyung‐Mi Lee, Megan E. McNerney, Susan E. Stepp, Porunelloor A. Mathew, John D. Schatzle, Michael Bennett, Vinay Kumar
SJR Q1The Journal of Experimental MedicineOA

Natural killer (NK) cells are critical in the immune response to tumor cells, virally infected cells, and bone marrow allografts. 2B4 (CD244) is expressed on all NK cells and the ligand for 2B4, CD48, is expressed on hematopoietic cells. Cross-linking 2B4 on NK cells with anti-2B4 monoclonal antibody leads to NK cell activation in vitro. Therefore, 2B4 is considered to be an activating receptor. Surprisingly, we have found, using antibody-blocking and 2B4-deficient NK cells, that NK lysis of CD4

ImmunologyImmunology and Microbiology
4
Article|200 citations·1993
Inhibition of bradykinin- and thapsigargin-induced Ca2+ entry by tyrosine kinase inhibitors
Kyung‐Mi Lee, K. Toscas, M L Villereal
SJR Q1Journal of Biological ChemistryOA

We examined the involvement of tyrosine kinase activity in the bradykinin (BK)-mediated signal transduction process. Immunoblots with anti-phosphotyrosine antibodies following BK stimulation of human fibroblasts showed tyrosine phosphorylation of specific proteins that could be inhibited by the tyrosine kinase inhibitors genistein and tyrphostin. Image analysis data from individual cells stimulated by BK in the presence of genistein and tyrphostin showed that these inhibitors block the plateau p

GeneticsMedicine
5
Article|200 citations·2014
Dissolution Chemistry and Biocompatibility of Single-Crystalline Silicon Nanomembranes and Associated Materials for Transient Electronics
Suk‐Won Hwang, Gayoung Park, Chris Edwards, Elise A. Corbin, Seung‐Kyun Kang, Huanyu Cheng, Jun-Kyul Song, Jae-Hwan Kim, Sooyoun Yu, Joanne Ng, Jung Eun Lee, Jiyoung Kim
SJR Q1ACS Nano

Single-crystalline silicon nanomembranes (Si NMs) represent a critically important class of material for high-performance forms of electronics that are capable of complete, controlled dissolution when immersed in water and/or biofluids, sometimes referred to as a type of "transient" electronics. The results reported here include the kinetics of hydrolysis of Si NMs in biofluids and various aqueous solutions through a range of relevant pH values, ionic concentrations and temperatures, and depende

Biomedical EngineeringEngineering
6
Review|191 citations·2014
25th Anniversary Article: Materials for High‐Performance Biodegradable Semiconductor Devices
Suk‐Won Hwang, Gayoung Park, Huanyu Cheng, Jun‐Kyul Song, Seung‐Kyun Kang, Lan Yin, Jae‐Hwan Kim, Fiorenzo G. Omenetto, Yonggang Huang, Kyung‐Mi Lee, John A. Rogers
SJR Q1Advanced Materials

We review recent progress in a class of silicon-based electronics that is capable of complete, controlled dissolution when immersed in water or bio-fluids. This type of technology, referred to in a broader sense as transient electronics, has potential applications in resorbable biomedical devices, eco-friendly electronics, environmental sensors, secure hardware systems and others. New results reported here include studies of the kinetics of hydrolysis of nanomembranes of single crystalline silic

Biomedical EngineeringEngineering
7
Article|184 citations·2015
Dissolution Chemistry and Biocompatibility of Silicon- and Germanium-Based Semiconductors for Transient Electronics
Seung‐Kyun Kang, Gayoung Park, Kyungmin Kim, Suk‐Won Hwang, Huanyu Cheng, Jiho Shin, Sang‐Jin Chung, Minjin Kim, Lan Yin, Jeong Chul Lee, Kyung‐Mi Lee, John A. Rogers
SJR Q1ACS Applied Materials & Interfaces

Semiconducting materials are central to the development of high-performance electronics that are capable of dissolving completely when immersed in aqueous solutions, groundwater, or biofluids, for applications in temporary biomedical implants, environmentally degradable sensors, and other systems. The results reported here include comprehensive studies of the dissolution by hydrolysis of polycrystalline silicon, amorphous silicon, silicon-germanium, and germanium in aqueous solutions of various

Materials ChemistryMaterials Science
8
Article|128 citations·2010
Kaempferol inhibits UVB-induced COX-2 expression by suppressing Src kinase activity
Kyung‐Mi Lee, Ki Won Lee, Sung Keun Jung, Eun Jung Lee, Yong-Seok Heo, Ann M. Bode, Ronald A. Lubet, Hyong Joo Lee, Zigang Dong
SJR Q1Biochemical PharmacologyOA
PharmacologyMedicine
9
Article|115 citations·2013
Immunologic and Tissue Biocompatibility of Flexible/Stretchable Electronics and Optoelectronics
Gayoung Park, Hyun‐Joong Chung, Kwanghee Kim, Seon Ah Lim, Jiyoung Kim, Yun‐Soung Kim, Yuhao Liu, Woon‐Hong Yeo, Rak‐Hwan Kim, Stanley S. Kim, Jong‐Seon Kim, Yei Hwan Jung
SJR Q1Advanced Healthcare Materials

Recent development of flexible/stretchable integrated electronic sensors and stimulation systems has the potential to establish an important paradigm for implantable electronic devices, where shapes and mechanical properties are matched to those of biological tissues and organs. Demonstrations of tissue and immune biocompatibility are fundamental requirements for application of such kinds of electronics for long-term use in the body. Here, a comprehensive set of experiments studies biocompatibil

Biomedical EngineeringEngineering
10
Article|114 citations·2010
Protective Effect of Quercetin against Arsenite-Induced COX-2 Expression by Targeting PI3K in Rat Liver Epithelial Cells
Kyung‐Mi Lee, Mun Kyung Hwang, Dong Eun Lee, Ki Won Lee, Hyong Joo Lee, Ki Won Lee, Hyong Joo Lee
SJR Q1Journal of Agricultural and Food Chemistry

Abnormal expression of cyclooxygenase-2 (COX-2) and prostaglandin (PG)E(2) is an important mediator in inflammation and tumor promotion. Arsenite is a well-known metalloid carcinogen that is strongly associated with increased risk of liver cancer, but the underlying mechanism remains to be clarified. The present study demonstrates that COX-2 expression and PGE(2) secretion are up-regulated by arsenite in rat liver epithelial (RLE) cells. The possible inhibitory effect of quercetin, a naturally o

Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|104 citations·2019
Defective Localization With Impaired Tumor Cytotoxicity Contributes to the Immune Escape of NK Cells in Pancreatic Cancer Patients
Seon Ah Lim, Jungwon Kim, Seunghyun Jeon, Min Hwa Shin, Joonha Kwon, Tae-Jin Kim, Kyungtaek Im, Youngmin Han, Wooil Kwon, Sun‐Whe Kim, Sun‐Whe Kim, Cassian Yee
SJR Q1Frontiers in ImmunologyOA

Tumor infiltrating lymphocytes (TILs), found in patients with advanced pancreatic ductal adenocarcinoma (PDAC), are shown to correlate with overall survival (OS) rate. Although majority of TILs consist of CD8+/CD4+ T cells, the presence of NK cells and their role in the pathogenesis of PDAC remains elusive. We performed comprehensive analyses of TIL, PBMC, and autologous tumor cells from 80 enrolled resectable PDAC patients to comprehend the NK cell defects within PDAC. Extremely low frequencies

ImmunologyImmunology and Microbiology
12
Article|102 citations·2019
Hydrodynamic shear stress promotes epithelial-mesenchymal transition by downregulating ERK and GSK3β activities
Hye Yeon Choi, Gwang-Mo Yang, Ahmed Abdal Dayem, Subbroto Kumar Saha, Kyeongseok Kim, Young-Bum Yoo, Kwonho Hong, Jin‐Hoi Kim, Cassian Yee, Kyung‐Mi Lee, Ssang‐Goo Cho
SJR Q1Breast Cancer ResearchOA

Fluid shear stress experienced during systemic circulation of human breast tumor cells can lead to specific acquisition of mesenchymal stem cell (MSC)-like potential that promotes EMT, mesenchymal-epithelial transition, and metastasis to distant organs. Our data revealed that biomechanical forces appeared to be important microenvironmental factors that not only drive hematopoietic development but also lead to acquisition of CSLCs/TIC potential in cancer metastasis. Our data highlight that +SS is

OncologyMedicine
13
Article|102 citations·2008
Synthesis of streptavidin-FITC-conjugated core–shell Fe3O4-Au nanocrystals and their application for the purification of CD4+ lymphocytes
Hong Ling Liu, Chung Hee Sonn, Jun Wu, Kyung‐Mi Lee, Young Keun Kim
SJR Q1Biomaterials
BiomaterialsMaterials Science
14
Article|100 citations·2015
Electrochemical deposition of silver on manganese dioxide coated reduced graphene oxide for enhanced oxygen reduction reaction
Kyung‐Mi Lee, Mohammad Shamsuddin Ahmed, Seungwon Jeon
SJR Q1Journal of Power Sources
Renewable Energy, Sustainability and the EnvironmentEnergy
15
Article|94 citations·2011
A Dual Colorimetric and Fluorometric Sensor for Lead Ion Based on Conjugated Polydiacetylenes
Kyung‐Mi Lee, Xiaoqiang Chen, Fang Wang, Jong‐Man Kim, Juyoung Yoon
SJR Q1Macromolecular Rapid Communications

A PDA based sensor, derived from a di-(2-picolyl) amine (DPA) substituted diacetylene monomer, displayed a selective colorimetric change and a large fluorescence enhancement in the presence of lead ions. The lead selective PDA-based chemosensor enabled easy detection of the presence of lead in 100% aqueous solution by the naked-eye.

Organic ChemistryChemistry

Research Areas

ImmunologyMolecular BiologyBiomedical EngineeringSurgeryPharmacologyOrganic Chemistry

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