世界の主要大学の研究室を探索 — 研究分野と主要論文を一目で確認できます。
Professor Kyung-Yeol Lee's research lab specializes in cerebrovascular diseases, with a focus on acute ischemic stroke mechanisms, imaging biomarkers such as hyperintense vessels on MRI, and hemodynamic alterations in conditions like diabetes mellitus. The lab investigates thrombolytic therapies—including IV and intra-arterial approaches—and evaluates the impact of medications like statins on glucose metabolism. A significant portion of the work also explores environmental and occupational allergens, particularly buckwheat flour-related hypersensitivity in children. The lab integrates clinical imaging, vascular physiology, and allergy diagnostics to improve stroke outcomes and patient management.
Professor Young-Seok Park's research lab specializes in surgical oncology and neurosurgical interventions, with a strong focus on improving long-term outcomes in patients with gastric cancer and cerebrovascular or epileptic disorders. The lab investigates critical factors such as body composition, sarcopenia, and postoperative nutritional status in gastric cancer patients, while also exploring genetic polymorphisms and surgical techniques in conditions like moyamoya disease and insular epilepsy. Their work integrates clinical outcomes with advanced imaging and personalized surgical strategies, particularly in minimizing postoperative complications and optimizing patient survival. The lab also examines innovative surgical techniques, such as uncinated Roux-en-Y gastrojejunostomy and endoscopic-Gamma Knife approaches for craniopharyngioma, to enhance recovery and reduce recurrence.
Professor Tae-Ho Kim's research lab specializes in advanced functional materials and smart biomedical devices, with a focus on ferroelectric materials for next-generation electronics and bio-integrated sensors for healthcare monitoring. The lab develops innovative thin-film materials—such as HfZrO2—using novel annealing techniques to enhance ferroelectric properties at low temperatures, enabling flexible and high-performance memory devices. Simultaneously, the lab pioneers biomimetic dry electrodes and origami-inspired robotics for reliable, non-invasive physiological monitoring, integrating ECG, PPG, and EMG sensing with signal processing for real-time health assessment. These interdisciplinary efforts bridge materials science, nanotechnology, and biomedical engineering to create sustainable, high-performance solutions for flexible electronics and personalized healthcare.
Professor Haeryoung Kim's research lab focuses on the molecular and pathological characterization of hepatocellular carcinoma (HCC) and pancreatic ductal adenocarcinoma (PDAC), with a central emphasis on tumor heterogeneity, stemness properties, and the tumor microenvironment. The lab investigates the clinicopathological and prognostic significance of stemness-related markers (e.g., K19, EpCAM, CD133) and epithelial-mesenchymal transition (EMT) markers in HCC, as well as the role of stromal components such as cancer-associated fibroblasts and extracellular matrix proteins in PDAC progression. Their work integrates immunohistochemistry, molecular profiling, and morpho-molecular correlation to improve classification and outcome prediction in gastrointestinal malignancies.
Professor Jaeho Lee's research lab specializes in clinical and translational biomedical research, with a strong focus on critical care medicine, infectious diseases—particularly tuberculosis—and metabolic regulation. The lab investigates prognostic biomarkers such as the CRP/albumin ratio in ICU patients, explores age-related differences in disease presentation and treatment outcomes, and delves into molecular mechanisms underlying metabolic diseases, including the regulation of lipogenesis via SREBP1c. Additionally, the lab contributes to the development of advanced energy systems, such as solar power optimization through intelligent MPPT algorithms, reflecting a multidisciplinary approach bridging clinical medicine and biomedical engineering.
Professor Kyung Soo Hong's research lab specializes in psychiatric genetics and neurobiology, focusing on the genetic and neurochemical underpinnings of mood and psychotic disorders. Key research directions include identifying genetic risk factors for bipolar disorder and schizophrenia, particularly involving glutamatergic system genes such as DLGAP3 and SLC1A1, and investigating the clinical and biological correlates of treatment-emergent psychiatric symptoms like antipsychotic-induced obsessive-compulsive symptoms and tardive dyskinesia. The lab also explores circadian and seasonal influences on mood disorders, integrating clinical phenotyping with molecular genetics to uncover disease mechanisms and improve treatment outcomes.
Professor David George Churchill's research lab specializes in the design and synthesis of functional metal complexes and fluorescent probes for applications in bioimaging and environmental sensing. The lab focuses on developing highly selective and sensitive fluorescent sensors—particularly those based on dinuclear zinc and BODIPY systems—for detecting biologically and environmentally relevant species such as copper(II), hypochlorite, and biothiols. Key research directions include the rational design of turn-on/turn-off probes, the study of metal-ligand interactions in dinuclear systems, and the exploration of transition metal catalysis with early transition metals like molybdenum and tungsten. The work combines synthetic inorganic chemistry, physical organic chemistry, and photophysical characterization to address challenges in molecular recognition and sensing in aqueous and biological environments.
Professor Jin-hong Kim's research lab focuses on the molecular and cellular mechanisms underlying osteoarthritis (OA) pathogenesis, with a particular emphasis on extracellular matrix remodeling, chondrocyte senescence, and redox homeostasis. The lab investigates key regulatory molecules such as microRNAs (e.g., miR-204) and selenoproteins (e.g., SEPHS1) that modulate cartilage matrix metabolism and oxidative stress in aging and mechanically stressed joints. Using integrative approaches combining molecular biology, biochemistry, and mechanotransduction studies, the lab aims to uncover novel therapeutic targets for OA. Additionally, the lab explores biomaterials for controlled drug delivery, particularly in the context of protein permeation through polymer membranes.
Professor Boram Lee's research lab specializes in advanced optoelectronic materials and devices, focusing on interface engineering in organic and hybrid semiconductors. Key research directions include optimizing electron transport and charge extraction in polymer solar cells and light-emitting diodes through interfacial dipole engineering using functional molecules like amine-based interlayers and ionic liquids. The lab also pioneers bio-integrated materials, such as chitosan-alginate fibers for cell encapsulation, demonstrating expertise in biocompatible materials for tissue engineering. Their work bridges materials science, energy conversion, and biomedical applications with a strong emphasis on surface and interfacial phenomena.
Professor Jeong Gyu Kim's research lab specializes in the design and development of advanced nanomaterials for sustainable energy conversion and environmental applications. The lab focuses on creating efficient, stable, and cost-effective catalysts—particularly metal oxides, graphene quantum dots, and biochar-based materials—for applications in solar energy conversion, including photoelectrochemical water splitting and perovskite solar cells. A key research direction involves engineering heterostructures and plasmonic nanostructures to enhance charge transfer, light absorption, and interfacial properties. The lab also explores multifunctional materials that serve dual roles in energy storage and catalysis, such as supercapacitors and overall water splitting systems.
Professor Sin Yoo's research lab specializes in software testing and quality assurance, with a focus on improving the efficiency and effectiveness of regression testing in evolving software systems. The lab explores advanced techniques in test case prioritization, selection, and minimization—particularly leveraging multi-objective optimization, clustering, and information theory to enhance fault detection and localization. Key research directions include Pareto-efficient test selection, cluster-based prioritization to reduce testing overhead, and integrating fault localization with test prioritization for faster debugging. The lab combines theoretical modeling with empirical evaluation using real-world test suites to address scalability and practicality challenges in industrial software testing.
Professor Chang Moo Kang's research lab specializes in advanced surgical oncology, with a primary focus on pancreatic solid pseudopapillary neoplasms (SPNs) and rare biliary tract disorders such as choledochal cysts. The lab investigates the pathological behavior, clinical outcomes, and optimal surgical management of these rare tumors, emphasizing standardized pathology reporting and minimally invasive techniques like laparoscopic and robotic-assisted surgery. Research also explores the physiological and metabolic consequences of major pancreatic and biliary surgeries, including pancreaticoduodenectomy and radical pancreatectomy, with a view to improving long-term patient outcomes.
Professor Dong Kyung Jang's research lab focuses on molecular mechanisms underlying colorectal cancer, with a particular emphasis on DNA mismatch repair (MMR) deficiency, microsatellite instability (MSI), and Lynch syndrome-related carcinogenesis. The lab investigates the molecular and clinical implications of MMR gene mutations and epigenetic alterations in colorectal tumorigenesis, including the identification of Lynch-like syndrome in patients without germline mutations. Additionally, the lab explores the impact of chronic inflammatory conditions, such as ulcerative colitis, on colorectal cancer risk and progression, integrating molecular pathology with population-based epidemiology. Their work also extends to evaluating gastroprotective strategies in NSAID users, highlighting translational research in gastrointestinal oncology and patient safety.
Professor Woo Jong Yu's research lab specializes in two-dimensional (2D) van der Waals heterostructures and 2D material-based nanoelectronics, focusing on the development of next-generation flexible, transparent, and ultra-thin memory and logic devices. The lab explores novel device architectures using monolayer transition metal dichalcogenides (e.g., MoS₂), graphene, and hexagonal boron nitride (h-BN) to achieve high-performance, low-power, and mechanically robust electronic systems. Key research directions include floating-gate and resistive memory devices, neuromorphic computing applications, and band gap engineering in bilayer graphene via chemical doping and electric gating. The lab emphasizes materials integration, defect control, and scalable fabrication for real-world applications in wearable and transparent electronics.
Professor Yoon, Chang Hwan's research lab focuses on vascular biology and regenerative medicine, with a central emphasis on endothelial progenitor cells (EPCs) and outgrowth endothelial cells (OECs) in tissue repair and neovascularization. The lab investigates the cellular origins, functional plasticity, and molecular mechanisms—particularly adhesion molecules and Notch signaling—underlying cell trafficking and vascular remodeling in ischemic and diabetic conditions. Their work also explores the therapeutic potential of bone marrow-derived cells in cardiac repair, highlighting paracrine mechanisms and cell fate regulation.
Professor Seung Ho Choi's research lab specializes in surgical oncology and minimally invasive surgical techniques, with a focus on improving outcomes in gastrointestinal malignancies such as gastric and colorectal cancer. The lab investigates innovative surgical protocols, including fast-track surgery and lymph node dissection (RAG with lymphadenectomy), to enhance postoperative recovery and patient safety. Additional research interests include the biological mechanisms of tumor progression, particularly the role of cell adhesion molecules like CD44 in cancer metastasis, and rare surgical conditions such as auricular pseudocysts. The lab also explores biophysical phenomena, such as optical precursor formation in transparent media, reflecting a multidisciplinary approach to surgical science and biomedical physics.
Professor Ho-Tack Song's research lab specializes in the development and application of advanced magnetic nanomaterials for biomedical imaging and diagnostics. The lab focuses on designing high-quality, biocompatible magnetic nanocrystals with tunable size, magnetism, and surface properties to enable sensitive detection in magnetic resonance imaging (MRI). Key research directions include the creation of targeted nanoprobes for cancer diagnosis, particularly in breast cancer and metastatic disease, as well as the use of multimodal imaging techniques—such as MRI, BLI, and hyperpolarized 13C-MRS—to study disease progression and metabolic changes in neurological and skeletal disorders. The lab also explores innovative imaging protocols, such as the ADIR position in MR arthrography, to improve diagnostic accuracy in musculoskeletal conditions.
Professor Kwang-Won Lee's research lab focuses on bioactive natural compounds and their therapeutic potential in disease prevention and treatment, particularly in the context of oxidative stress, cancer, and metabolic disorders. The lab investigates immunomodulatory effects of marine polysaccharides like fucoidan, the hepatoprotective and antioxidant activities of phytochemicals such as caffeic acid and plant-derived extracts, and the cholesterol-lowering properties of bioactive fatty acids like pinolenic acid. A central theme is understanding molecular mechanisms underlying cytoprotection, glycation inhibition, and apoptosis regulation in liver cell models. The lab integrates in vitro cell culture studies with biochemical and molecular analyses to identify and validate natural products with clinical relevance.
Professor Min Whan Jung's research lab focuses on the neural mechanisms underlying learning, memory, and decision-making, with a particular emphasis on the hippocampus and basal ganglia. The lab investigates how synaptic plasticity, neuronal activity patterns, and endogenous or exogenous compounds (such as ginsenosides and asiaticoside derivatives) modulate cognitive functions and protect against neurodegeneration. Using behavioral tasks, electrophysiology, and molecular analyses in rodent models, the lab explores the roles of specific neural circuits in spatial memory, reward processing, and neuroprotection. Their work bridges systems neuroscience with translational approaches to identify potential therapeutic targets for cognitive disorders.
Professor Sang-Hyuk Lee's research lab specializes in optical manipulation and advanced microscopy techniques for probing and controlling micro- and nanoscale systems. The lab focuses on developing innovative optical methods such as photoactivated localization microscopy, holographic optical trapping, and digital holographic microscopy to enable high-precision 3D tracking, molecular counting, and force engineering at the single-particle level. A key emphasis is on designing novel light fields—like optical solenoid beams—that exert unconventional forces, enabling new capabilities in particle manipulation and dynamic assembly of soft matter. The lab also explores applications in biophysics, materials science, and wireless sensor networks for tactical environments.