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 Chung-Gyu Park's research lab focuses on translational immunology and regenerative medicine, with a primary emphasis on advancing cell-based therapies for autoimmune diseases and transplantation. The lab investigates the mechanisms of immune modulation using mesenchymal stem cells, neural stem cells, and regulatory T cells to promote tolerance and tissue repair. A key research direction involves xenotransplantation, particularly pig-to-non-human primate islet transplantation, aiming to overcome immune rejection and improve graft survival through novel immunomodulatory strategies. The lab also explores signaling pathways in interferon responses and transcription factor function to understand innate immunity and its implications in disease.
Professor Kyongsu Yi's research lab specializes in vehicle dynamics, active safety systems, and intelligent control for automotive applications. The lab focuses on developing advanced control algorithms for adaptive cruise control, rollover prevention, tire-road friction estimation, and unified chassis control to enhance vehicle stability, safety, and driver acceptability. Key research directions include model-based estimation, robust control design under uncertainty, and real-time implementation of braking and suspension systems for improved performance and comfort. The lab integrates human factors, nonlinear dynamics, and real-world driving data into its control system development process.
Professor Kwang-Hyun Cho's research lab specializes in systems biology and computational systems biology, focusing on the dynamic modeling and analysis of intracellular signaling networks. The lab develops advanced mathematical and computational frameworks—such as Boolean networks, parameter sensitivity analysis, and S-tree modeling—to understand the regulatory mechanisms underlying critical cellular processes like tumor suppression (p53), immune response (NF-κB, JAK-STAT), and epithelial-mesenchymal transition (EMT). A central theme is the integration of experimental data with predictive modeling to identify key regulatory components and design optimal experiments, particularly through uncertainty quantification and evolutionary algorithms for network inference.
Professor Min Kim's research lab focuses on the molecular mechanisms underlying immune regulation, fibrosis, and drug resistance in human diseases, with a particular emphasis on the roles of transporters, transcription factors, and immune cells in cancer, inflammatory disorders, and viral infections. The lab investigates key regulators such as ABCG2, HIF-1, and estrogen signaling in tissue homeostasis and pathology, and explores innate and adaptive immune responses to herpes simplex virus. Their work integrates molecular biology, immunology, and clinical ophthalmology to uncover therapeutic targets for conditions ranging from uveitis and retinal disorders to cancer and fibrotic diseases.
Professor Yongcheol Kim's research lab specializes in interventional cardiology and vascular access techniques, with a strong focus on improving outcomes in acute myocardial infarction (AMI) through large-scale clinical registries such as the Korea Acute Myocardial Infarction Registry (KAMIR). The lab investigates gender differences in radial artery anatomy and access site selection, particularly evaluating the distal radial artery (DRA) approach as a safe and effective alternative for coronary angiography and percutaneous coronary intervention (PCI). The lab also contributes to the understanding of hemodynamic and anatomical factors influencing procedural success, especially in women, and explores innovative vascular access strategies to enhance patient safety and procedural efficacy.
Professor Chang Ook Park's research lab focuses on understanding the immunological and molecular mechanisms underlying atopic dermatitis (AD) and related atopic diseases, with an emphasis on identifying key biomarkers and immune cell interactions that drive disease progression. The lab investigates the roles of specific cytokines, chemokines (such as CCL18), and immune cells—including dendritic cells, ILCs, and iNKT cells—in shaping the inflammatory microenvironment in AD subtypes. Additionally, the lab explores novel diagnostic and therapeutic strategies, including immunotherapy using allergens and innovative molecular probes for cancer imaging, highlighting a translational approach bridging basic immunology and clinical applications.
Professor Taedong Lee's research lab focuses on urban environmental governance, with a central emphasis on how cities engage in transnational climate action through networks, leadership, and multilevel governance. The lab investigates the drivers of city participation in global climate initiatives, the role of mayoral leadership in advancing green infrastructure, and the dynamics of learning and collaboration among global cities. Research spans empirical analysis of city-level climate policies, translocal governance, and the interplay between globalization, urban sustainability, and policy diffusion.
Professor Jin-Kook Lee's research lab specializes in the integration of artificial intelligence, particularly deep learning and natural language processing, into architectural and construction design processes. The lab focuses on advancing intelligent design support systems through AI-driven visualization, automated building code compliance checking, and semantic understanding of design rules. Key research directions include generative AI for architectural visualization, augmented virtual reality for design decision-making, and data-driven approaches to classify and interpret interior design styles and building regulations.
Professor Sun-Hee Kim's research lab specializes in the intersection of biomedical engineering, artificial intelligence, and renewable energy. The lab focuses on advanced emotion recognition using EEG signals through deep learning and signal processing techniques, aiming to enhance human-computer interaction and mental health applications. Additionally, the lab investigates innovative renewable energy solutions, particularly floating photovoltaic systems and sustainable energy infrastructure, to support national energy transition goals. The integration of physiological signal analysis with intelligent systems defines the lab’s multidisciplinary approach to health technology and clean energy innovation.
Professor Seung-Chul Kim's research lab specializes in plant evolutionary biology, with a focus on phylogenetics, molecular systematics, and the mechanisms of adaptive radiation and speciation in island floras. The lab investigates the genetic architecture underlying evolutionary innovation, particularly through introgressive hybridization and genomic divergence, using molecular markers such as ITS and chloroplast DNA. Key research areas include the diversification of endemic plant lineages in Macaronesia and East Asia, with an emphasis on genera like *Sonchus*, *Rosa*, and *Helianthus*. The lab integrates molecular data with morphological and ecological traits to reconstruct evolutionary histories and understand the genomic basis of adaptive radiations.
Professor Jeong Su Oh's research lab focuses on cell cycle regulation, particularly the molecular mechanisms governing meiotic arrest and resumption in mammalian oocytes. The lab investigates key regulators such as Cdc2-cyclin B (MPF), Wee1/Myt1 kinases, Cdc25 phosphatases, and cyclin degradation pathways that control cell cycle transitions. A central theme is the role of post-translational modifications—especially phosphorylation—by kinases like CaMKII and Cdk1 in coordinating cell cycle progression and DNA damage response. The lab also explores how signaling molecules such as melatonin and proteins like synGAP modulate cellular fate in oocytes and neurons, with implications for fertility and neuroprotection.
Professor Jeongseob Kim's research lab focuses on urban sustainability, with a primary emphasis on social equity, housing dynamics, and climate resilience in urban environments. The lab investigates infill development, housing filtering, and social sustainability in metropolitan areas, particularly in the context of economic inequality, neighborhood change, and climate hazards such as heatwaves and flooding. It also examines emerging urban mobility challenges, including the safety and integration of personal mobility vehicles in urban transportation systems. The lab combines quantitative methods such as multivariate statistical analysis and spatial modeling to inform policy and urban planning.
Professor Sumit Kumar's research lab specializes in the development of advanced nanomaterials and bioinspired systems for biomedical applications, with a focus on nanotechnology-driven solutions for disease detection, antimicrobial protection, and therapeutic delivery. The lab pioneers innovative surface engineering techniques—such as spray-coating and supramolecular stabilization—to enhance the functionality of medical devices and extracellular vesicles. Key research directions include the design of self-sterilizing, reusable surgical masks using photoactive nanocoatings, the stabilization and functionalization of exosomes for diagnostics and therapy, and the creation of sensitive nanoprobes for real-time detection of reactive oxygen/nitrogen species in biological systems. The lab integrates materials science, biophysics, and translational medicine to address critical challenges in global health and personalized medicine.
Professor Jaehong Park's research lab specializes in advanced materials and nanoscale electronic systems, with a focus on carbon nanomaterials, organic semiconductors, and novel fabrication techniques for next-generation optoelectronic and electronic devices. The lab investigates fundamental charge carrier dynamics in single-walled carbon nanotubes, including excitonic and free-carrier generation, using ultrafast spectroscopy and contactless conductivity measurements. It also develops innovative methods for printing and doping organic and hybrid conductive materials, such as ac voltage-assisted EHD jet printing and quantitative AC Hall-effect characterization of doped conjugated polymers. The overarching goal is to enable high-performance, flexible, and transparent electronics through precise control of electronic properties at the nanoscale.
Professor Jeongshin An's research lab focuses on the intricate relationship between the human microbiome—particularly gut and blood microbiota—and breast cancer progression, treatment response, and prognosis. The lab investigates microbial metabolites, extracellular vesicles (EVs), and specific bacterial communities such as the estrobolome and *Klebsiella* spp. to uncover their roles in hormone therapy resistance and disease recurrence. Using multi-omics approaches, including 16S rRNA sequencing and machine learning, the lab develops microbiome-based diagnostic and predictive biomarkers for early detection and personalized treatment of breast cancer.
Professor Il Won Seo's research lab specializes in environmental fluid mechanics and water quality modeling, with a focus on longitudinal and transverse dispersion in natural streams, pollutant transport, and mixing processes in rivers. The lab develops advanced theoretical and numerical models—such as the storage zone model, beta distribution-based velocity profiles, and finite element simulations—to improve the prediction of dispersion coefficients and water quality parameters. Innovative computational techniques, including artificial neural networks and ensemble modeling, are applied to enhance the accuracy of water quality forecasting in complex river systems.
Professor Hyun-Duck Kim's research lab focuses on the interdisciplinary investigation of periodontitis and its systemic implications, particularly in relation to oral and systemic diseases. The lab explores the bidirectional links between periodontal disease and conditions such as stroke, cognitive impairment, hypertension, and oral squamous cell carcinoma, with a strong emphasis on epidemiological and biomarker-based approaches in the Korean population. Key research directions include identifying salivary biomarkers like MMP-9 and S100A8 for early diagnosis and understanding the pathophysiological mechanisms connecting periodontitis to systemic inflammation and chronic diseases. The lab integrates clinical data, cohort studies, and molecular diagnostics to advance preventive and precision medicine strategies in oral-systemic health.
Professor Byung Hyo Kim's research lab specializes in the synthesis, characterization, and application of ultrasmall and uniform nanomaterials, particularly iron oxide and platinum nanocrystals, with a focus on achieving atomic-level control over size, structure, and surface properties. The lab pioneers advanced analytical techniques such as liquid-cell electron microscopy and MALDI-TOF mass spectrometry to study nanoscale growth mechanisms and intrinsic heterogeneities in solution. Their work emphasizes the development of biocompatible, water-dispersible nanoparticles for biomedical applications, while addressing critical challenges in batch-to-batch reproducibility and structural precision.
Professor Kyungpyo Park's research lab focuses on developing advanced biomaterials and therapeutic strategies for oral and systemic diseases, with a strong emphasis on salivary gland disorders, cancer, and inflammatory conditions. The lab integrates nanotechnology, tissue engineering, and molecular biology to design functional materials—such as strain-engineered cerium oxide/manganese oxide nanomaterials and hyaluronic acid-catechol conjugates—for regenerative medicine and targeted therapy. Key research directions include enhancing antioxidant and anti-inflammatory responses in stem cells and epithelial tissues, understanding the role of ion channels and inflammasomes in head and neck cancer, and improving dental implant integration through biofilm-resistant coatings. The lab also investigates the role of CFTR in cancer progression and the therapeutic potential of capsaicin in stimulating salivary secretion.
Professor Su A Park's research lab specializes in advanced biomaterials and 3D bioprinting for regenerative medicine, with a primary focus on developing functional bioinks and scaffolds for bone tissue engineering. The lab explores nanocomposite hydrogels, including alginate-based systems reinforced with graphene oxide or polydopamine-coated gold nanoparticles, to enhance printability, structural stability, and osteogenic differentiation. Key research directions include designing cell-laden 3D constructs with tunable mechanical and biological properties, as well as optimizing bioink formulations using natural polymers like hyaluronic acid and silk fibroin for improved biocompatibility and in vitro cell performance. The lab integrates materials science, bioengineering, and cell biology to advance personalized tissue regeneration strategies.