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Dong-hyun Kim

Yonsei University · Medicine

About the Lab

Professor Dong-hyun Kim's research lab specializes in the development of multifunctional nanomaterials for advanced biomedical applications, with a focus on magnetic nanoparticle-based theranostics. The lab integrates nanomedicine, magnetic resonance imaging (MRI), and stimuli-responsive drug delivery systems to enable targeted cancer therapy and hyperthermia. Key research directions include the design of core-shell nanostructures for controlled release and Fenton reaction enhancement, as well as the optimization of MRI shim techniques for improved field homogeneity in clinical imaging. The lab also explores smart polymers and magnetic fields to achieve precise spatiotemporal control in therapeutic applications.

nanomaterialsmagnetic nanoparticlestheranosticsMRIstimuli-responsive drug delivery

Research Overview

Papers
502
Total Citations
12,477
Papers (5y)
106
Primary Field
Medicine

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
106total
2022
2023
2024
2025
2026
Citations per year (5y)
1,011total
20222023202420252026

Selected Papers

15
1
Article|596 citations·2009
Biofunctionalized magnetic-vortex microdiscs for targeted cancer-cell destruction
Dong‐Hyun Kim, Elena A. Rozhkova, Ilya V. Ulasov, S. D. Bader, Tijana Rajh, Maciej S. Lesniak, V. Novosad
SJR Q1Nature MaterialsOA
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
2
Article|329 citations·2008
Heat generation of aqueously dispersed CoFe2O4 nanoparticles as heating agents for magnetically activated drug delivery and hyperthermia
Dong‐Hyun Kim, David E. Nikles, Duane Johnson, Christopher S. Brazel
SJR Q2Journal of Magnetism and Magnetic Materials
BiomaterialsMaterials Science
3
Article|261 citations·2020
Magnetic field boosted ferroptosis-like cell death and responsive MRI using hybrid vesicles for cancer immunotherapy
Bo Yu, Bongseo Choi, Weiguo Li, Dong‐Hyun Kim
SJR Q1Nature CommunicationsOA

We report a strategy to boost Fenton reaction triggered by an exogenous circularly polarized magnetic field (MF) to enhance ferroptosis-like cell-death mediated immune response, as well as endow a responsive MRI capability by using a hybrid core-shell vesicles (HCSVs). HCSVs are prepared by loading ascorbic acid (AA) in the core and poly(lactic-co-glycolic acid) shell incorporating iron oxide nanocubes (IONCs). MF triggers the release of AA, resulting in the increase of ferrous ions through the

Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|201 citations·2002
Regularized higher‐order in vivo shimming
Dong‐Hyun Kim, Elfar Adalsteinsson, Gary H. Glover, Daniel M. Spielman
SJR Q1Magnetic Resonance in Medicine

A regularized algorithm is presented for localized in vivo shimming. The technique uses first- (X,Y,Z), second- (Z(2), ZX, ZY, X(2)-Y(2), XY), and third-order (Z(3)) shim coils, and is robust when applied to arbitrarily-shaped, as well as off-center, regions of interest (ROIs). A single-shot spiral pulse sequence is used for rapid field map acquisition, and a least-squares calculation of the shim currents is performed to minimize the root-mean-square (RMS) value of the B(0) inhomogeneity over a

Radiology, Nuclear Medicine and ImagingMedicine
5
Article|177 citations·2010
Synthesis and Characterization of Multifunctional Chitosan- MnFe2O4 Nanoparticles for Magnetic Hyperthermia and Drug Delivery
Dong‐Hyun Kim, David E. Nikles, Christopher S. Brazel
SJR Q2MaterialsOA

Multifunctional nanoparticles composed of MnFe₂O₄ were encapsulated in chitosan for investigation of system to combine magnetically-triggered drug delivery and localized hyperthermia for cancer treatment with the previously published capacity of MnFe₂O₄ to be used as an efficient MRI contrast agent for cancer diagnosis. This paper focuses on the synthesis and characterization of magnetic MnFe₂O₄ nanoparticles, their dispersion in water and their incorporation in chitosan, which serves as a drug

Biomedical EngineeringEngineering
6
Article|129 citations·2013
Stimuli-Responsive Magnetic Nanomicelles as Multifunctional Heat and Cargo Delivery Vehicles
Dong‐Hyun Kim, Elina A. Vitol, Jing Liu, Shankar Balasubramanian, David J. Gosztola, Ezra E.W. Cohen, Valentyn Novosad, Elena A. Rozhkova
SJR Q1Langmuir

Hybrid nanoarchitectures are among the most promising nanotechnology-enabled materials for biomedical applications. Interfacing of nanoparticles with active materials gives rise to the structures with unique multiple functionality. Superparamagnetic iron oxide nanoparticles particles SPION are widely employed in the biology and in developing of advanced medical technologies. Polymeric micelles offer the advantage of multifunctional carriers which can serve as delivery vehicles carrying nanoparti

BiomaterialsMaterials Science
7
Article|125 citations·2008
Targeting to carcinoma cells with chitosan‐ and starch‐coated magnetic nanoparticles for magnetic hyperthermia
Dong‐Hyun Kim, Kyoung‐Nam Kim, Kwang‐Mahn Kim, Yong‐Keun Lee
SJR Q1Journal of Biomedical Materials Research Part AOA

The delivery of hyperthermic thermoseeds to a specific target site with minimal side effects is an important challenge in targeted hyperthermia, which employs magnetic method and functional polymers. An external magnetic field is used to control the site-specific targeting of the magnetic nanoparticles. Polymer-coated magnetic nanoparticles can confer a higher affinity to the biological cell membranes. In this study, uncoated, chitosan-coated, and starch-coated magnetic nanoparticles were synthe

BiomaterialsMaterials Science
8
Article|118 citations·2010
Treadmill exercise inhibits traumatic brain injury-induced hippocampal apoptosis
Dong‐Hyun Kim, Il‐Gyu Ko, Bo-Kyun Kim, Tae-Woon Kim, Sung‐Eun Kim, Mal‐Soon Shin, Chang‐Ju Kim, Hong Kim, Kyeong-Mi Kim, Seung‐Soo Baek
SJR Q2Physiology & Behavior
NeurologyMedicine
9
Article|112 citations·2003
Simple analytic variable density spiral design
Dong‐Hyun Kim, Elfar Adalsteinsson, Daniel M. Spielman
SJR Q1Magnetic Resonance in Medicine

Variable density spirals have been proposed in a variety of applications, including MR fluoroscopy, cardiac imaging, and MR spectroscopic imaging. In this work, a simple analytic solution for designing a flexible set of variable density spiral trajectory waveforms is presented. The method enables real-time waveform prescription on scanners with limited computational power. Both slew rate-limited and amplitude-limited regimes are incorporated in the design process.

Radiology, Nuclear Medicine and ImagingMedicine
10
Article|109 citations·2015
Improved estimation of myelin water fraction using complex model fitting
Yoonho Nam, Jongho Lee, Dosik Hwang, Dong‐Hyun Kim
SJR Q1NeuroImage
Radiology, Nuclear Medicine and ImagingMedicine
11
Review|109 citations·2022
Recent progress in cryoablation cancer therapy and nanoparticles mediated cryoablation
Kijung Kwak, Bo Yu, Robert J. Lewandowski, Dong‐Hyun Kim
SJR Q1TheranosticsOA

With rapid advances in modern imaging, minimally invasive ablative procedures have emerged as popular alternatives to surgical removal of tumors. Tumor ablation modalities currently offered in clinical practice include microwave ablation, radiofrequency ablation, cryoablation, high-intensity focused ultrasound, and irreversible electroporation. Cryoablation, a non-heat-based method of ablation, is increasingly being used for treating various solid tumors. Accumulated comparative data of cryoabla

Biomedical EngineeringEngineering
12
Article|104 citations·2017
Advanced smart-photosensitizers for more effective cancer treatment
Wooram Park, Soojeong Cho, Jieun Han, Heejun Shin, Kun Na, Byeongdu Lee, Dong‐Hyun Kim
SJR Q1Biomaterials ScienceOA

Photodynamic therapy (PDT) based upon the use of light and photosensitizers (PSs) has been used as a novel treatment approach for a variety of tumors. It, however, has several major limitations in the clinic: poor water solubility, long-term phototoxicity, low tumor targeting efficacy, and limited light penetration. With advances in nanotechnology, materials science, and clinical interventional imaging procedures, various smart-PSs have been developed for improving their cancer-therapeutic effic

Biomedical EngineeringEngineering
13
Article|96 citations·2014
Initial study on in vivo conductivity mapping of breast cancer using MRI
Jaewook Shin, Min Jung Kim, Joonsung Lee, Yoonho Nam, Min-Oh Kim, Narae Choi, Soo‐Yeon Kim, Dong‐Hyun Kim
SJR Q1Journal of Magnetic Resonance ImagingOA

This study shows that conductivity mapping of breast cancers is feasible using a noninvasive in vivo MREPT technique combined with a coil combination process. The method may provide a tool in the MR diagnosis of breast cancer.

Radiology, Nuclear Medicine and ImagingMedicine
14
Article|91 citations·2006
Surface-modified magnetite nanoparticles for hyperthermia: Preparation, characterization, and cytotoxicity studies
Dong‐Hyun Kim, Sanghun Lee, Ki-Hyeong Im, K.N. Kim, Kwang‐Mahn Kim, In‐Bo Shim, M.H. Lee, Young‐Kook Lee
SJR Q2Current Applied PhysicsOA
BiomaterialsMaterials Science
15
Article|88 citations·1998
Metabolism of Puerarin and Daidzin by Human Intestinal Bacteria and Their Relation to in Vitro Cytotoxicity.
Dong‐Hyun Kim, Ki-Ung Yu, Eun‐Ah Bae, Myung Joo Han
SJR Q2Biological and Pharmaceutical BulletinOA

When puerarin or daidzin were incubated for 24 h with human intestinal bacteria, two metabolites, daidzein and calycosin, were produced from them, respectively. The metabolic time course of puerarin was as follows: at an early time, puerarin was converted to daidzin, and then calycosin. The metabolic time course of daidzin by human intestinal bacteria was also similar to that of puerarin. The in vitro cytotoxicities of these metabolites, calycosin and daidzein, were superior to those of puerarin

Pathology and Forensic MedicineMedicine

Research Areas

Biomedical EngineeringRadiology, Nuclear Medicine and ImagingBiomaterialsElectronic, Optical and Magnetic MaterialsElectrical and Electronic EngineeringMaterials Chemistry

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