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 Byung-Gwan Cho's research lab specializes in microbial genomics, systems biology, and synthetic biology, with a focus on understanding gene regulatory networks, chromatin organization, and genome editing in bacteria. The lab employs high-throughput 'omics' technologies—such as RNA-Seq, ChIP-Seq, and whole-genome tiling arrays—to dissect transcriptional and translational regulation in model microorganisms like *E. coli*, *Streptomyces coelicolor*, and the gut microbiota. A central theme is the application of CRISPR-based tools, including dCas9 for targeted gene regulation and Fis as a nucleoid-associated protein, to uncover fundamental mechanisms of bacterial gene expression and genome architecture. The lab also pioneers innovative sequencing approaches, such as nanopore-based full-length 16S rRNA sequencing, to improve microbial community analysis at the species level.
Professor Kyung Sik Kim's research lab specializes in hepatobiliary and pancreatic surgery, with a strong focus on hepatocellular carcinoma (HCC) and biliary tract malignancies. The lab investigates surgical outcomes, prognostic factors, and risk predictors for recurrence after resection, particularly emphasizing early postoperative recurrence and long-term survival. Research also extends to rare conditions such as HCC in pregnancy and the impact of surgical techniques like central bisectionectomy on patient outcomes. Additionally, the lab explores biological mechanisms, such as doxorubicin-induced hepatic endothelial damage, to enhance cell therapy applications.
Professor Ji-Yeob Choi's research lab focuses on the molecular epidemiology of cancer, with a primary emphasis on gene-environment interactions, oxidative stress, and epigenetic mechanisms in carcinogenesis. The lab investigates how genetic polymorphisms, nutritional factors (such as iron and alcohol), and endogenous antioxidant systems influence susceptibility to prostate and breast cancers. Key research directions include the role of oxidative stress and DNA methylation in cancer risk, particularly in high-risk populations such as smokers and individuals with familial or hormonal exposures. The lab employs nested case-control studies within large cohort trials to identify biomarkers and genetic variants associated with cancer etiology and progression.
Professor Young-Ho Son's research lab specializes in clinical and translational neuroscience, focusing on the pathophysiology of movement disorders such as multiple system atrophy, dystonia, and Parkinson’s disease. The lab employs advanced neurophysiological techniques—particularly transcranial magnetic stimulation (TMS)—to investigate cortical excitability, inhibitory circuits, and neuroplasticity in neurological diseases. A key research direction involves evaluating novel regenerative therapies, such as autologous mesenchymal stem cell transplantation, for neurodegenerative conditions with poor prognosis. The lab also explores biomarkers and neuroimaging correlates, including MRI and MRS, to predict and understand delayed neurological sequelae after brain injury.
Professor Sung Hoon Lee's research lab specializes in the development of advanced wearable and implantable biomedical devices for real-time, quantitative disease diagnosis. The lab focuses on soft, flexible electronics for continuous physiological monitoring, particularly in cardiopulmonary and neurological systems, leveraging innovations in nanomaterials and sensor technology. Key research directions include the design of wireless, motion-artifact-resistant wearable stethoscopes and the synthesis and detection of environmental nanopolymers like nanoplastics for toxicological studies. The lab also conducts translational clinical research, integrating biomedical engineering with clinical outcomes in oncology and ophthalmology.
Professor Kyunghwa Cho's research lab focuses on environmental microbiology and cancer signaling pathways, with a dual emphasis on watershed-scale modeling of microbial water quality and molecular mechanisms driving prostate cancer progression. The lab investigates fecal microorganism transport in natural waters using advanced watershed models to support environmental policy and water quality management. Simultaneously, it explores redox-dependent signaling cascades—particularly the ROS/STAT3/HIF-1α/TWIST1/N-cadherin axis—in prostate cancer, identifying novel biomarkers and therapeutic targets. This interdisciplinary approach bridges environmental health and molecular oncology.
Professor Sunryu Ryu's research lab specializes in the fundamental understanding and manipulation of two-dimensional (2D) materials, with a focus on their chemical reactivity, electronic and optical properties, and interfacial phenomena. The lab investigates thickness-dependent photoreactions, defect engineering, and surface chemistry in 2D semiconductors such as MoS₂, graphene, and CrPS₄, employing advanced spectroscopic techniques like Raman, photoluminescence, and second-harmonic generation. A key research direction involves controlling charge transfer and doping mechanisms through interfacial electrochemistry, particularly involving oxygen and water molecules. The lab also pioneers precise 2D chemical transformations, including oxidation and hydrogenation, to create novel heterostructures with tailored functionalities.
Professor Garam Hahn's research lab specializes in advanced magnet technology and particle accelerator systems, with a focus on high-temperature superconducting (HTS) magnets, no-insulation (NI) coil design, and their applications in particle physics and medical accelerators. The lab investigates novel electromagnetic solutions for generating high magnetic fields, including modified lumped-circuit models for HTS coils under overcurrent conditions, and develops diagnostic tools such as pepper-pot devices for beam emittance measurement. Their work supports cutting-edge projects like the Korea Heavy Ion Medical Accelerator (KHIMA) and contributes to fundamental research at facilities such as CERN’s Large Hadron Collider.
Professor Moon-Ku Han's research lab specializes in cerebrovascular and neurological disorders, with a focus on acute ischemic stroke, intracerebral hemorrhage, and Alzheimer’s disease. The lab investigates hemodynamic and metabolic mechanisms underlying stroke outcomes, including blood pressure variability, clot contraction, and neurovascular protection. It also explores the role of vascular risk factors and pharmacological agents—such as statins—in modifying disease progression and neuroprotection. The lab integrates clinical data with experimental models to advance secondary stroke prevention and personalized treatment strategies.
Professor Jeong-Soo Lee's research lab specializes in interdisciplinary materials and biomedical engineering, focusing on the environmental and biological impacts of nanomaterials, particularly nanoplastics and their interactions with toxicants. The lab also conducts advanced research in biosensors, developing silicon nanowire-based ion-sensitive field-effect transistors (ISFETs) for sensitive and cost-effective biomedical detection. Additionally, the lab explores functional biopolymer films for sustainable packaging and designs ultra-wideband, ultra-short pulse microwave circuits for high-precision sensing and imaging applications. These diverse research directions reflect a strong emphasis on nanotechnology, environmental health, and biomedical device innovation.
Professor Hyun Park's research lab focuses on the molecular mechanisms underlying chronic inflammatory skin diseases, including atopic dermatitis, psoriasis, and rosacea, with an emphasis on immunologic dysregulation, neurovascular interactions, and genetic susceptibility. The lab investigates key signaling pathways, such as the IL-23/Th17 axis and Nox4-mediated oxidative stress, to uncover novel therapeutic targets. Additionally, the lab explores the role of environmental factors and epigenetic modifications in disease pathogenesis, integrating molecular biology with clinical insights. Their work also extends to translational applications, such as photodynamic therapy for skin disorders.
Professor Daejoon Kang's research lab specializes in the design and fabrication of advanced nanomaterials for energy, electronics, and biotechnology applications. Key research directions include the synthesis of one-dimensional oxide nanowires, development of high-performance triboelectric nanogenerators (TENGs) using functionalized polymers and 2D materials, and engineering of thermal management composites with enhanced interfacial thermal transport. The lab also investigates fundamental phenomena in correlated electron systems, such as the Mott metal-insulator transition in VO₂ nanowires, and applies nanoscale optical techniques to study biomolecular interactions at the single-molecule level.
Professor Byeong-Soo Bae's research lab specializes in the development of advanced functional materials for next-generation flexible and wearable electronics. The lab focuses on transparent, high-performance materials such as chitin nanofiber-based papers, metal-oxide thin-film transistors, and hybrid organic-inorganic polymers for applications in flexible optoelectronics, including OLEDs and foldable displays. Key research directions include low-temperature solution processing, durable transparent conductive films, and mechanically robust, optically transparent hard coatings through innovative hybrid material design. The lab emphasizes sustainable, bio-friendly materials and scalable fabrication techniques to enable green, flexible electronic platforms.
Professor Mimi Bong’s research lab specializes in educational psychology, focusing on students’ academic motivation, self-efficacy, achievement goals, and self-concept across diverse academic domains. Her work explores how these motivational constructs are structured, how they vary by age and subject, and how they are shaped by social-psychological environments such as classrooms and family. The lab emphasizes context-specific and domain-general patterns in student motivation, using rigorous quantitative methods like confirmatory factor analysis and longitudinal designs to examine developmental changes and mediating mechanisms.
Professor Chun-Gon Kim's research lab specializes in advanced materials and structural health monitoring, with a focus on smart composite materials, impact damage detection, and the mechanical behavior of advanced laminated structures. The lab develops innovative non-destructive evaluation techniques using smart sensors—such as PZT and fiber Bragg grating (FBG) sensors—to enable real-time, on-line diagnostics of impact-induced damage in composites. It also investigates the mechanical enhancement mechanisms of functional materials, including shear thickening fluid (STF)-impregnated textiles for improved ballistic performance, and explores the influence of laminate architecture and core properties on delamination resistance in sandwich structures. The lab’s work bridges fundamental material science with practical engineering applications in aerospace, defense, and structural integrity monitoring.
Professor Jun Kim's research lab specializes in atmospheric remote sensing, with a focus on advancing air quality monitoring through satellite-based instruments and ground-based validation. The lab develops innovative retrieval algorithms for aerosols, trace gases (such as O₃, NO₂, SO₂, and HCHO), and atmospheric constituents using UV–visible spectrometers on geostationary and low Earth orbits. Key research directions include improving the accuracy of aerosol optical depth retrieval, enhancing calibration techniques for sky radiometers, and integrating multi-sensor data to study regional air pollution and its impacts. The lab also contributes to understanding atmospheric processes on other planets, such as oxygen escape on Mars, through advanced modeling of ion chemistry and dissociative recombination.
Professor Hyoseok Nam's research lab focuses on translational stroke research, with a strong emphasis on improving post-stroke outcomes through advanced data-driven modeling and regenerative therapies. The lab investigates biomarkers such as trimethylamine N-oxide (TMAO) to enhance cardiovascular risk prediction and explores the therapeutic potential of mesenchymal stem cells (MSCs) in promoting neurovascular repair after ischemic stroke. Utilizing Bayesian networks and clinical decision support systems, the lab develops interpretable, high-accuracy prediction models for functional recovery and mortality after stroke.
Professor Duck-kyung Kim's research lab focuses on translational biomedical and veterinary immunology, with a strong emphasis on angiogenesis, wound healing, and host defense mechanisms against infectious diseases. The lab investigates the therapeutic potential of natural compounds—such as garlic metabolites, curcumin, and anethole—in enhancing immune responses and improving outcomes in coccidiosis and peripheral arterial disease. Key research directions include endothelial progenitor cell therapy, gene therapy using VEGF plasmid DNA, and the role of genetic polymorphisms (e.g., ACE I/D) in fibrinolysis and disease susceptibility. The work bridges preclinical models with clinical applications, particularly in regenerative medicine and infectious disease control in both humans and poultry.
Professor Dae-hyeon Kim's research lab specializes in advanced biomedical engineering and regenerative medicine, with a focus on tissue engineering for tracheal reconstruction using 3D bioprinting and stem cell technology. The lab develops bioactive scaffolds incorporating mesenchymal stem cells and specialized epithelial cells to create functional artificial tracheas, aiming to overcome limitations of current prosthetic and graft-based solutions. Additionally, the lab explores innovative dermatological treatments using fractional laser technologies for scar repair, demonstrating a dual focus on structural tissue engineering and clinical aesthetic applications.
Professor Dae Won Jeon's research lab focuses on the pathophysiology of liver diseases, particularly nonalcoholic fatty liver disease (NAFLD) and steatotic liver disease (SLD), with a strong emphasis on the role of the gut-liver axis, microbiota modulation, and metabolic dysfunction. The lab investigates therapeutic interventions such as probiotics, caffeine, and mitochondrial-targeted agents like carnitine to mitigate hepatic fat accumulation, fibrosis, and insulin resistance. Utilizing advanced imaging techniques like MRI-proton density fat fraction and magnetic resonance elastography, the lab conducts translational research in community-based and clinical settings to improve early detection and management of liver disease. Their work bridges molecular mechanisms with clinical outcomes, aiming to develop non-invasive and microbiome-based strategies for liver protection and metabolic health.