首尔大学、KAIST、延世大学等韩国QS前10名大学的研究室信息。
Professor Jonghwa Kim's research lab focuses on host-microbe interactions, particularly the role of gut microbiota in immune-mediated diseases such as atopic dermatitis and liver fibrosis. The lab investigates microbial therapeutics, including fecal microbiota transplantation and lactic acid bacteria, to modulate host immunity and metabolism. Additionally, the lab explores viral restriction mechanisms, especially the function of TRIM5α in innate antiviral immunity, and the molecular mechanisms of host cell signaling in fibrotic diseases. These interdisciplinary studies integrate microbiology, immunology, virology, and host-pathogen interactions to develop novel therapeutic strategies.
Professor Frank Chongwoo Park's research lab specializes in the geometric and mathematical foundations of robotics, with a focus on kinematics, dynamics, and motion planning for complex robotic systems. The lab develops coordinate-invariant, differential-geometric methods—particularly using Lie groups and Riemannian manifolds—to model and optimize robotic mechanisms, end-effector dexterity, and visual tracking. Key research directions include robot dynamics using screw theory and Lie-theoretic formulations, simulation-based actuator sizing for redundantly actuated systems, and robust visual tracking via particle filtering on curved state spaces. The lab emphasizes analytical rigor and computational efficiency in designing intelligent, high-performance robotic systems.
Professor Taehyung Kim's research lab specializes in the design and development of functional soft materials with applications in energy, health, and the environment. The lab focuses on molecular-scale motion transduction using photoresponsive organic molecules, particularly in ordered architectures like liquid crystals and covalent organic frameworks, to create macroscopic motions and responsive materials. Another key direction involves creating sustainable, transparent, and flexible coatings using nanocellulose and chitin for advanced packaging and barrier applications. The lab also investigates the biological and environmental impacts of emerging contaminants and develops strategies for improving therapeutic protein stability through polymer conjugation.
Professor Jun-seob Ahn's research lab focuses on infectious disease epidemiology and clinical microbiology, with a strong emphasis on antimicrobial resistance, particularly methicillin-resistant *Staphylococcus aureus* (MRSA), and emerging viral infections such as SARS-CoV-2 and *Plasmodium vivax* malaria. The lab conducts multinational surveillance studies and molecular epidemiological investigations to understand the transmission dynamics, antimicrobial susceptibility, and long-term trends of infectious diseases in clinical and community settings. Their work also includes evaluating diagnostic virology, viral clearance patterns, and the impact of public health interventions such as chemoprophylaxis in military and endemic populations.
Professor Hojoon Seol's research lab specializes in cerebrovascular diseases and neuro-oncology, with a focus on understanding the pathophysiology of moyamoya disease, vestibular schwannoma, and glioblastoma. The lab investigates hemodynamic factors in cerebrovascular disorders, molecular mechanisms of glioma invasion, and personalized treatment strategies based on genomic subtyping of brain tumors. Using clinical data, advanced imaging, and patient-derived xenograft models, the lab aims to improve surgical outcomes and develop targeted therapies for brain tumors and cerebrovascular conditions.
Professor Hwan Jun Jae's research lab specializes in interventional radiology and image-guided interventions, with a primary focus on transcatheter arterial embolization (TAE) for various vascular and oncologic conditions. The lab investigates the clinical efficacy and safety of embolic agents—particularly N-Butyl Cyanoacrylate (NBCA)—in treating nonvariceal upper gastrointestinal bleeding and explores advanced imaging techniques like perfusion CT for early response assessment after transarterial chemoembolization (TACE). The lab also addresses challenges in embolic procedures by developing safer, biocompatible liquid embolic agents and improving interventional techniques to minimize complications such as catheter entrapment. Their work bridges interventional radiology, medical imaging, and interventional oncology to enhance patient outcomes in vascular and malignant diseases.
Professor In-Kyung Jeong's research lab focuses on the pathophysiological mechanisms underlying metabolic and vascular complications in diabetes, with a particular emphasis on the roles of taurine, uric acid, and fructose metabolism. The lab investigates how metabolic disturbances—such as hyperglycemia, dyslipidemia, and oxidative stress—contribute to diabetic complications, including macrovascular disease, nonalcoholic fatty liver disease (NAFLD), and insulin resistance. Using animal models like OLETF rats, the lab explores therapeutic interventions, including taurine supplementation and uric acid-lowering agents, to mitigate these complications. The research also examines the impact of comorbid conditions such as obstructive sleep apnea on glucose metabolism and systemic inflammation.
Professor Sungsoo Na's research lab specializes in the mechanobiology of cellular systems, focusing on how mechanical forces and structural proteins regulate cell behavior and disease progression. The lab investigates the mechanical properties of key cytoskeletal and extracellular matrix proteins such as plectin and amyloid fibrils, exploring their roles in cellular stiffness, force transmission, and disease-related aggregation. Using advanced techniques like FRET-based biosensors and nanomechanical probing, the lab uncovers how protein conformational changes and self-assembly processes underlie both physiological functions and pathological conditions such as neurodegeneration. The research bridges molecular biophysics with cell mechanics, emphasizing the structure-function relationships in mechanically robust biomolecular assemblies.
Professor Hyung Wook Park's research lab specializes in the development of multifunctional advanced materials for sustainable energy and biomedical applications. The lab focuses on designing smart nanomaterials and hybrid composites—particularly based on carbon fibers, Kevlar, and 2D materials—intended for structural energy storage, wearable thermal management, and anti-inflammatory therapeutics. Key research directions include energy harvesting and storage devices such as structural supercapacitors, triboelectric nanogenerators, and thermally responsive wearable systems, alongside exploring the biological effects of natural compounds like curcumin on cellular signaling pathways.
Professor Seon-Ho Choi's research lab specializes in fundamental particle physics and dark matter searches, focusing on neutrino oscillations, rare decay processes, and precision measurements of lepton properties. Key research directions include the RENO experiment on reactor antineutrino oscillations, the T2K experiment investigating muon-to-electron neutrino appearance, and the COSINE and AMoRE experiments aimed at detecting dark matter and neutrinoless double beta decay using high-purity scintillating crystals. The lab also pioneers novel techniques for precision measurements of the muon magnetic and electric dipole moments using advanced storage ring technologies with ultra-low emittance muon beams.
Professor Jung-Hwan Kwon's research lab specializes in environmental chemistry and toxicology, focusing on the fate, behavior, and ecological risks of microplastics and organic pollutants in aquatic ecosystems. The lab investigates the analytical methods for detecting microplastics in food and wastewater, assesses the environmental and health risks of chemical contaminants associated with plastic debris, and develops predictive models for the ecotoxicity of crude oil fractions and organic pollutants. A key emphasis is placed on understanding partitioning behavior of contaminants in environmental and biological systems using advanced analytical techniques such as FTIR, PDMS-based partitioning measurements, and lipid membrane models.
Professor Jae-Hun Kang's research lab focuses on the epidemiological and clinical investigation of obesity-related health burdens and metabolic diseases, with an emphasis on identifying modifiable risk factors and evaluating novel interventions. The lab explores the socioeconomic impact of overweight and obesity, examines the role of lifestyle factors such as sleep duration in childhood weight gain, and investigates herbal and antiangiogenic compounds for effective body fat reduction. A key direction involves translating findings into public health strategies for preventing chronic diseases like diabetes, hypertension, and non-alcoholic fatty liver disease through targeted lifestyle and nutraceutical interventions.
Professor Sang Woong Youn's research lab specializes in dermatological biophysics and clinical dermatology, focusing on the objective assessment of skin properties such as sebum secretion, elasticity, and wrinkle formation. The lab investigates the interplay between skin physiology, aging, and common dermatoses like acne and chronic urticaria, emphasizing the use of quantitative, non-invasive measurement techniques. A key research direction involves redefining subjective skin typing through objective biomarkers, particularly sebum levels and skin hysteresis. The lab also contributes to population-based epidemiological studies on chronic skin conditions in the Korean population.
Professor Jae-Hyon Bahk's research lab specializes in airway management and critical care anesthesia, with a strong focus on minimizing airway trauma and improving patient safety during difficult airway scenarios. The lab investigates innovative techniques for endotracheal intubation, intravascular device positioning (such as intra-aortic balloon pumps), and the use of advanced airway devices like the laryngeal mask airway (LMA) in pediatric and high-risk patients. Key research directions include optimizing airway device placement, predicting fluid responsiveness in spontaneously breathing patients, and enhancing the safety of anesthetic induction in patients with difficult airways or congenital syndromes.
Professor Sun-Hee Kim's research lab focuses on molecular mechanisms underlying cancer drug resistance and tumor immune evasion, with a particular emphasis on epigenetic regulation, DNA damage response, and the tumor microenvironment. Key research directions include the identification of natural compounds that modulate histone deacetylases, heat shock factors, and P-glycoprotein to overcome multidrug resistance, as well as the role of stress-induced ligands in enhancing natural killer cell-mediated tumor cell killing. The lab also investigates key enzymes in the prostaglandin pathway, such as mPGES1 and iNOS, as therapeutic targets in melanoma progression.
Professor Sung Han Sim's research lab specializes in structural health monitoring and non-destructive evaluation of civil infrastructure using advanced sensing technologies and computer vision. The lab focuses on developing low-cost, non-contact, and automated methods for crack detection, displacement measurement, and cable tension monitoring in bridges and concrete structures. Key research directions include UAV-based visual inspection, 3D point cloud analysis, vibration-based structural assessment, and wireless smart sensor systems for long-term monitoring. The lab integrates digital image processing, deep learning, and embedded systems to enhance structural safety, durability, and maintenance efficiency.
Professor Han Yong Choi's research lab focuses on the intersection of molecular biology, nanoelectronics, and cancer therapeutics. The lab investigates electrical transport mechanisms in DNA molecules, exploring their potential for use in nanoscale electronic devices such as DNA field-effect transistors. Simultaneously, the lab conducts translational cancer research, particularly examining the role of natural compounds like curcumin in enhancing chemotherapy efficacy and overcoming drug resistance in bladder and prostate cancers. The team integrates biophysical measurements with clinical data to understand disease mechanisms and improve patient outcomes.
Professor Min Seok Kim's research lab specializes in advanced materials synthesis and bioanalytical chemistry, with a focus on designing functional nanomaterials for biomedical and environmental applications. The lab develops novel mesoporous and hollow nanostructures—such as silica and carbon capsules—engineered for drug delivery and catalytic applications, while also exploring the electronic and optical tuning of gold clusters through heteroatom doping. In parallel, the lab investigates host-microbiome interactions in human diseases, particularly colorectal cancer, by integrating metabolomics and microbiome profiling to uncover disease-associated metabolic signatures. The research bridges nanotechnology, synthetic chemistry, and systems biology to enable precision medicine and sustainable material design.
Professor Nam Ik Jo's research lab specializes in signal processing and digital filter design, with a strong focus on efficient algorithms for discrete transforms such as the Discrete Cosine Transform (DCT) and Discrete Fourier Transform (DFT). The lab develops fast, low-complexity computational methods for 2D DCT and prime factor DCT, emphasizing hardware efficiency and VLSI implementation. A key research direction involves adaptive notch filtering for sinusoidal signal detection and enhancement in noisy environments, particularly through lattice-based IIR notch filters with robust convergence and low SNR performance. The lab also explores advanced transform domains, such as the Warped Discrete Cosine Transform (WDCT), for improved image compression and frequency warping applications.
Professor Won-Sang Cho's research lab specializes in cerebrovascular disease and neurosurgical outcomes, with a strong focus on adult moyamoya disease, including its natural history, hemodynamic assessment, and long-term surgical management. The lab conducts comprehensive clinical and radiological evaluations to understand stroke risk factors and optimize revascularization strategies. Additionally, the lab contributes to high-energy physics, particularly in the development of kinematic variables for missing momentum reconstruction in supersymmetry and exotic particle searches.