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 Tae Il Kim's research lab specializes in translational immunology and neurovascular physiology, with a focus on innate immune sensing mechanisms—particularly Toll-like receptor 9 and DExD/H-box helicases—in dendritic cells and their roles in type I interferon responses. The lab also investigates clinical applications in gastrointestinal diseases, such as intestinal Behçet’s disease, and explores the impact of metabolic modulators like metformin on colorectal cancer outcomes in diabetic patients. Additionally, the lab employs high-field MRI techniques to quantify cerebral blood volume dynamics and neurovascular coupling in animal models, advancing functional MRI methodology. These interdisciplinary efforts bridge molecular immunology, clinical gastroenterology, and neuroimaging.
Professor Jin Woo Lee's research lab specializes in biomaterials and regenerative medicine, focusing on the development of functional hydrogels and the molecular mechanisms regulating stem cell fate. Key research directions include the design of stimuli-responsive polymer networks for biomedical applications, such as pH-sensitive chitosan/PAAc IPN hydrogels, and the investigation of trace elements like zinc in osteogenic differentiation. The lab also explores epigenetic and signaling pathways—particularly SIRT1-SOX2 interactions—that govern mesenchymal stem cell self-renewal and differentiation, with translational applications in orthopedic tissue engineering and joint disorders.
Professor Shin-Hyun Kim's research lab specializes in advanced soft materials and functional microsystems, with a focus on microfluidics, colloidal self-assembly, and bioinspired photonic structures. The lab develops innovative microfabrication techniques to create complex emulsions, hierarchical microcapsules, and tunable photonic films with applications in sensing, drug delivery, and structural coloration. By leveraging principles from nature—such as the color-tuning mechanisms in chameleon skin—the lab designs smart, responsive materials with precise control over morphology and functionality. Their work bridges fundamental colloid science with practical applications in biomedicine, optics, and sustainable materials.
Professor Sang Kun Lee's research lab specializes in epilepsy and autoimmune encephalitis, with a focus on improving surgical outcomes for neocortical and mesial temporal lobe epilepsy through advanced diagnostic tools and prognostic factor identification. The lab develops and validates clinical scales for autoimmune encephalitis severity, emphasizing early diagnosis and treatment response. It also investigates seronegative autoimmune encephalitis, exploring disease phenotypes, long-term outcomes, and the role of immunotherapy. The lab integrates neuroimaging, EEG, and autoantibody testing to refine patient selection and predict surgical and immunological responses.
Professor Woo Jin Lee's research lab specializes in biomaterials and regenerative medicine, focusing on the development of functional hydrogels and polymeric systems for tissue engineering applications. The lab investigates the molecular mechanisms underlying stem cell differentiation, particularly osteogenesis and chondrogenesis, with an emphasis on trace elements like zinc and key regulatory proteins such as SOX2 and SIRT1. Current research also explores the clinical outcomes of orthopedic surgeries, including ligament and syndesmotic reconstruction, integrating imaging diagnostics with surgical outcomes to guide treatment protocols. The lab bridges molecular biology, biomaterials science, and clinical orthopedics to advance regenerative therapies.
Professor Kyung-Sun Kang's research lab focuses on epigenetic regulation, mesenchymal stem cell (MSC) therapy, and the impact of environmental endocrine disruptors on developmental and immune disorders. The lab investigates how epigenetic mechanisms such as DNA methylation and histone modification regulate cellular senescence and stem cell function, particularly in human umbilical cord blood-derived MSCs. It also explores the therapeutic potential of MSCs in autoimmune and inflammatory diseases like atopic dermatitis, as well as the toxicological effects of common environmental chemicals such as butyl paraben on reproductive development. Additionally, the lab examines the role of signaling pathways like PI3K/AKT in stem cell maintenance and the anti-cancer effects of drugs like metformin on cancer stem cells.
Professor Yoo Soo Jang's research lab specializes in epidemiological and clinical studies focusing on metabolic and liver diseases, particularly nonalcoholic fatty liver disease (NAFLD) and its metabolic and cardiovascular implications. The lab investigates the role of liver enzymes, uric acid levels, and metabolic health in predicting long-term outcomes such as diabetes, cardiovascular disease, and mortality. Using large-scale population-based cohorts, the lab explores the interplay between liver fat accumulation, metabolic syndrome, and systemic disease risk, with a strong emphasis on early detection and risk stratification in apparently healthy individuals. Their work also examines the differential impacts of alcoholic and nonalcoholic fatty liver disease on atherosclerosis and mortality.
Professor Peter J. Schulz's research lab focuses on psychosocial factors influencing health outcomes, with a particular emphasis on stress reactivity, chronic stress, and their physiological correlates such as cortisol regulation. The lab investigates health literacy, patient empowerment, and the effectiveness of visual and multimedia interventions in improving health comprehension and medication adherence. Central themes include the doctor-patient relationship, patient-reported outcomes, and the impact of psychological factors on physical health.
Professor Mee Young Cha's research lab focuses on understanding information diffusion, user influence, and content propagation in online social networks and user-generated content platforms. The lab investigates how information—especially rumors and viral content—spreads across social media, with an emphasis on structural, linguistic, and temporal features that shape online influence and virality. Using large-scale real-world data from platforms like Twitter, YouTube, and IPTV systems, the lab combines empirical analysis with statistical modeling to uncover patterns in user behavior and network dynamics. The research also explores the implications for viral marketing, content recommendation, and network resilience.
Professor Ui-Chul Shin's research lab focuses on understanding the molecular and cellular mechanisms underlying immune evasion in cancer and viral infections, with a particular emphasis on the tumor microenvironment, T cell exhaustion, and innate immune regulation. The lab investigates key signaling pathways—such as VEGF-A/TOX, YAP/TAZ, and type I interferon responses—that drive immune suppression and therapy resistance. By integrating single-cell genomics, exosome-based therapeutics, and translational immunology, the lab aims to identify novel biomarkers and develop innovative immunotherapeutic strategies for cancer and infectious diseases.
Professor Youngsook Kim's research lab specializes in reading development and early literacy, with a focus on the cognitive and linguistic foundations of reading comprehension in children. The lab investigates how low-level language skills (e.g., vocabulary, syntax), cognitive abilities (e.g., working memory, theory of mind), and reading fluency (oral and silent) contribute to reading comprehension across early grades. Longitudinal and structural equation modeling approaches are commonly used to examine growth trajectories and mediating mechanisms in literacy development.
Professor Haecheon Choi's research lab specializes in computational fluid dynamics and active flow control, with a focus on turbulent boundary layers, bluff-body flows, and drag reduction mechanisms. The lab employs direct numerical simulation (DNS) and large eddy simulation (LES) to investigate fundamental flow physics and develop advanced control strategies, including synthetic jets, feedback control, and riblet surfaces. Key research directions include skin-friction reduction, coherent structure manipulation, and the optimization of control efficiency across varying Reynolds numbers. The lab also explores theoretical frameworks in optimal control and turbulence modeling, bridging numerical simulations with practical applications in aerospace and aeronautics.
Professor Jong Seok Lee's research lab focuses on translational cancer biology and molecular oncology, with a strong emphasis on drug resistance mechanisms in cancer cells, particularly in breast and gastric cancers. The lab investigates the role of multidrug resistance proteins and cellular stress responses in tumor progression and treatment resistance, while also exploring cytoprotective agents such as anthocyanins in protecting pancreatic β-cells from oxidative damage. Additionally, the lab contributes to clinical oncology research by evaluating biomarkers and therapeutic strategies in advanced non-small cell lung cancer and cardiovascular risk prediction using improved lipid metabolism models.
Professor Jaeyoung Lee's research lab specializes in electrocatalysis for sustainable energy conversion, with a primary focus on the electrochemical reduction of carbon dioxide (CO₂) to value-added chemicals and fuels. The lab develops advanced copper-based and tin oxide nanomaterials to enhance selectivity and activity in CO₂ reduction, particularly toward multi-carbon products like ethanol and n-propanol. Key research directions include rational catalyst design, understanding reaction mechanisms through in situ characterization and theoretical modeling, and optimizing electrode-electrolyte interfaces for improved performance in fuel cell and electrolysis applications. The lab also explores novel organic transformations, such as Hiyama coupling under mild conditions, to expand synthetic utility in sustainable chemistry.
Professor Jihun Kim's research lab specializes in interventional radiology and thyroid disease management, with a primary focus on image-guided ablation therapies for thyroid nodules and cancers. The lab investigates radiofrequency ablation (RFA) as a safe and effective alternative to surgery, particularly for low-risk, small papillary thyroid carcinomas and recurrent disease. Research also extends to improving diagnostic accuracy in thyroid nodules through core needle biopsy and refining imaging techniques for neurological complications such as delayed encephalopathy after carbon monoxide poisoning. The lab emphasizes evidence-based clinical guidelines and prospective outcomes in minimally invasive thyroid interventions.
Professor Kwangjin An's research lab specializes in the design, synthesis, and application of advanced nanomaterials for sustainable energy and environmental solutions. The lab focuses on developing size- and shape-controlled metal and metal oxide nanoparticles, particularly for heterogeneous catalysis in CO₂ conversion and low-temperature CO oxidation. By integrating colloidal synthesis, advanced characterization, and theoretical modeling, the group explores structure–activity relationships in supported nanoparticle systems, especially those involving noble metals (e.g., Au, Pt) on oxide supports. A key research direction involves engineering nanomaterials with tailored surface structures and morphologies to enhance catalytic efficiency and selectivity.
Professor Sun Jeong-Yun's research lab specializes in developing bioinspired, stretchable, and biocompatible ionic electronic systems for next-generation human-machine interfaces. The lab focuses on hydrogel-based ionic conductors that enable transparent, highly stretchable, and soft sensors and devices, mimicking the functionality of natural skin. Key research directions include wearable bioelectronics, self-powered ionic communication systems, and stimuli-responsive soft robotics. The lab integrates principles from materials science, ionics, and biomedical engineering to create devices that are not only mechanically robust but also compatible with the human body.
Professor Hyoun Woo Kim's research lab specializes in the design and fabrication of advanced 2D nanomaterials and hybrid nanostructures for next-generation sensing and energy applications. The lab focuses on developing high-performance gas sensors using MXenes, graphene, and metal oxide nanowires, emphasizing tunable electronic properties, enhanced surface reactivity, and scalable fabrication techniques. Key research directions include nanomaterial synthesis, resistive gas sensing mechanisms, and the integration of 2D materials for environmental monitoring and wearable electronics. The lab also explores the application of nanomaterials in sustainable technologies, such as water cycle monitoring using remote sensing data.
Professor Jong Jang Leem's research focuses on precision measurements in particle physics, particularly in the search for new physics beyond the Standard Model. His work spans rare decays of B mesons, studies of muon magnetic anomalies, and searches for dark photons and lepton flavor violation. The lab employs high-precision experiments at major facilities such as Fermilab, KEK, and J-PARC, utilizing advanced detectors like Belle, BABAR, and COMET to probe fundamental symmetries and new interactions.
Professor Kyung-Mi Lee's research lab focuses on the molecular mechanisms underlying immune regulation and signal transduction in T cells and natural killer (NK) cells, with a particular emphasis on inhibitory receptors such as CTLA-4 and 2B4. The lab investigates tyrosine phosphorylation dynamics, phosphatase regulation, and their roles in modulating immune responses, particularly in cancer and inflammatory diseases. In parallel, the lab explores biocompatible and transient electronic systems for biomedical applications, including implantable sensors and resorbable devices that degrade safely in biological environments. These interdisciplinary efforts bridge immunology, cell signaling, and advanced materials science to develop novel therapeutic and diagnostic platforms.