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 Seung-Hyuk Seok's research lab focuses on nanotoxicology and immunomodulatory mechanisms, particularly investigating the in vivo behavior and biological impacts of engineered nanoparticles such as TiO₂ and ZnO. The lab explores the role of immune cells—especially macrophages and tumor-associated macrophages—in disease progression, metastasis, and therapeutic responses, with a strong emphasis on metabolic reprogramming and signaling pathways like COX-2 and GM-CSF. Using advanced models including microfluidic platforms and in vivo toxicity studies, the lab aims to decipher the pre-metastatic niche formation and develop novel immunomodulatory strategies for cancer and inflammatory diseases.
Professor SoYeong Lee's research lab focuses on the pathophysiology of acute and chronic kidney diseases, with a particular emphasis on the molecular mechanisms underlying acute kidney injury (AKI), diabetic tubulopathy, and the transition from acute to chronic kidney disease. The lab investigates key processes such as apoptosis, microvascular rarefaction, mitochondrial dynamics, and extracellular matrix remodeling, often integrating in vitro and in vivo models to explore therapeutic targets. A central theme is the role of cellular stress responses and metabolic dysregulation in kidney injury and repair, with translational applications in diabetic nephropathy and proteinuric kidney diseases. The lab also employs computational and biophysical approaches to understand protein structure-function relationships and molecular interactions in biological systems.
Professor Chang Sik Kim's research lab specializes in advanced materials science and biomedical engineering, focusing on two-dimensional transition metal dichalcogenides (TMDCs) for next-generation electronic devices and the biological and clinical impacts of glaucoma implants on ocular health. The lab conducts experimental investigations into Fermi level pinning and contact resistance in 2D semiconductors, aiming to overcome performance bottlenecks in nanoelectronics. Concurrently, the lab explores the effects of Ahmed glaucoma valve (AGV) implantation on corneal endothelial cells, contributing to ophthalmic device safety and long-term outcomes in glaucoma treatment. The integration of materials physics and clinical ophthalmology defines the lab’s unique interdisciplinary approach.
Professor Sang-Joon Kim's research lab specializes in the design and application of advanced nanomaterials for next-generation sensing and energy technologies. The lab focuses on developing bioinspired, nanostructured semiconductor metal oxides (SMOs) and bimetallic catalysts—particularly Pt-based systems—functionalized via protein templates for highly sensitive and selective chemical sensing. A key research direction involves applying these materials to real-world challenges such as disease diagnosis through exhaled breath analysis and environmental monitoring. The lab also explores the integration of these nanomaterials into smart sensor arrays and investigates their performance under complex, real-life conditions like high humidity.
Professor Min Hwan Kim's research lab specializes in translational oncology and advanced drug delivery systems, focusing on overcoming therapy resistance in cancer and enhancing the efficacy of immunotherapies. The lab investigates molecular mechanisms of immune evasion—particularly involving YAP and PD-L1—across melanoma and oropharyngeal cancers, while also developing innovative nanocarrier systems such as lipid nanoparticles and hyaluronic acid hydrogels for targeted delivery of bioactive compounds. Their work bridges molecular oncology, immunology, and pharmaceutical formulation to improve treatment outcomes in aggressive cancers.
Professor Ae-Ri Kim's research lab focuses on understanding the molecular and immunological mechanisms underlying breast and gastric cancers, with a particular emphasis on tumor microenvironment, epithelial-mesenchymal transition (EMT), and cancer stem cells. The lab investigates how molecular subtypes, such as mesenchymal and epithelial phenotypes in gastric cancer, influence treatment response and patient survival, while also exploring the therapeutic potential of amniotic fluid-derived mesenchymal stem cells in tissue repair and regeneration. Their work integrates genomics, proteomics, and immunohistochemistry to identify predictive biomarkers and improve clinical outcomes in HER2-negative and triple-negative breast cancers.
Professor Yun Seog Lee's research lab specializes in developing high-performance, earth-abundant thin-film solar cells using solution-processed and vacuum-deposited chalcogenide and oxide semiconductors. The lab focuses on interface engineering, defect passivation, and band alignment optimization to enhance photovoltaic efficiency and stability. Key research directions include the development of novel buffer layers, such as amorphous metal oxides and doped cuprous oxide, and the application of atomic layer deposition for precise interfacial control in CZTSSe and Cu2O-based devices.
Professor Kyung-Sik Yu's research lab specializes in nanophotonics, optoelectronics, and advanced photonic materials, focusing on the design and fabrication of ultra-compact photonic devices for integrated optical systems. Key research directions include subwavelength lasers with metallodielectric cavities, efficient light coupling in photonic integrated circuits, transparent radiative cooling windows, and 2D material-based heterostructure devices such as high-performance photodetectors. The lab also explores novel concepts in beam steering using silicon optical phased arrays and the fundamental optical properties of emerging materials like hexagonal boron nitride and transition metal dichalcogenides.
Professor Hye Yeong Lee's research lab specializes in molecular diagnostics and biomedical data analysis, with a focus on infectious disease identification and cardiovascular disease biomarkers. The lab develops molecular techniques such as PCR-restriction fragment length polymorphism and rpoB gene sequencing for precise mycobacterial species identification, while also conducting large-scale epidemiological studies to assess clinical risk factors—such as atrial fibrillation—on myocardial infarction. Additionally, the lab applies advanced analytical methods in metabolomics, including high-throughput ganglioside profiling in bovine milk, and investigates predictive biomarkers in pediatric diseases like Kawasaki disease. The integration of molecular biology, bioinformatics, and clinical epidemiology defines the lab’s interdisciplinary approach.
Professor Byung-Il Kim's research lab specializes in hepatology and metabolic liver diseases, with a strong focus on drug-induced liver injury (DILI), non-alcoholic fatty liver disease (NAFLD), and variceal bleeding in patients with liver cirrhosis. The lab investigates the pathophysiological links between insulin resistance, systemic inflammation, and liver disease, particularly in non-obese populations, and evaluates interventional strategies such as endoscopic and pharmacological treatments for gastric variceal hemorrhage. The research emphasizes clinical epidemiology, causality assessment tools, and the role of metabolic syndrome in liver and colorectal pathology.
Professor Sukyung Park's research lab focuses on health disparities and preventive health interventions, with a strong emphasis on adolescent mental health, family dynamics, and workplace well-being in South Korea. The lab investigates the interplay between social determinants—such as family environment, socioeconomic status, and work-life balance—and chronic health conditions, including Crohn’s disease, metabolic syndrome, and chronic obstructive pulmonary disease (COPD). A key focus is on developing evidence-based clinical guidelines and public health strategies to improve early detection and patient outcomes in gastrointestinal disorders and lifestyle-related diseases.
Professor Kwon Min Sang's research lab specializes in the design and development of advanced organic functional materials, with a primary focus on metal-free organic phosphors, stimuli-responsive materials, and sustainable photoredox catalysis. The lab pioneers strategies to enhance room-temperature phosphorescence through precise control of intermolecular interactions such as halogen and hydrogen bonding, enabling bright, stable emission in amorphous matrices. Additionally, the lab explores smart materials with reversible optical switching, magnetic reprogramming, and visible-light-driven polymerization, emphasizing sustainability and spatiotemporal control. Their work bridges molecular design with practical applications in optoelectronics, sensing, and green chemistry.
Professor Jae-Hoon Choi's research lab focuses on the immunological and molecular mechanisms underlying atherosclerosis and aortic valve disease, with a particular emphasis on monocyte/macrophage biology, dendritic cell function, and epigenetic regulation in vascular inflammation. The lab employs advanced single-cell omics technologies—such as scRNA-seq—to dissect cellular heterogeneity and phenotypic transitions in leukocytes, vascular cells, and immune populations within the aortic microenvironment under hyperlipidemic conditions. Key research directions include the role of lipid metabolism, histone acetylation, and transcriptional regulation (e.g., PPARγ pathway) in driving inflammatory cell activation and lesion progression. The lab also investigates the impact of metabolic hormones like growth hormone on atherosclerotic and hepatic metabolic phenotypes.
Professor Yongjun Kim's research lab specializes in advanced energy conversion and nanoscale sensing technologies, focusing on triboelectric and thermoelectric nanogenerators for sustainable power harvesting, nanoelectromechanical (NEM) switches for low-power electronics, and integrated microsystems for environmental and biomedical monitoring. The lab develops innovative materials and devices such as plasma-etched PDMS-CNT TENGs, phase-change optical concentrators for solar thermoelectric systems, and monolithic photovoltaic-thermoelectric hybrids to enhance energy efficiency. A key focus is on applying nanomaterials and microfabrication techniques to create compact, high-performance systems for point-of-interest sensing and next-generation electronics.
Professor Si-Hyuck Kang's research lab specializes in cardiovascular disease prevention and risk prediction, with a focus on lifestyle factors, biomarkers, and interventional strategies. The lab investigates the impact of physical activity, oral hygiene, and stent technology on cardiovascular outcomes, while also advancing machine learning applications for personalized risk assessment in large-scale population cohorts. Their work bridges clinical cardiology, preventive medicine, and data science to improve early detection and management of heart disease.
Professor Ji-hyeon Bae's research lab specializes in the development of advanced functional textiles and wearable electronic systems, with a focus on flexible, stretchable, and self-powered sensors for health monitoring. The lab explores innovative fabrication techniques—such as dip-coating, ink-based printing, and sol-gel finishing—to integrate conductive materials like PEDOT:PSS, silver nanoparticles, graphene, and carbon nanotubes into textile substrates. Key research directions include wearable strain and temperature sensors, flame-retardant functional textiles, and scalable, cost-effective solutions for real-time human motion and vital signal detection.
Professor Junboum Park's research lab specializes in biomedical and environmental applications of advanced materials, with a focus on stem cell biology, tissue engineering, and environmental remediation. The lab investigates multipotent stem cells from accessible sources like gingival tissue for regenerative medicine, explores mechanisms of cell death in intervertebral disc degeneration, and develops sustainable solutions for environmental pollution—such as heavy metal adsorption using oyster shell powder and the environmental impact of discarded facemasks. Additionally, the lab contributes to nanomaterial synthesis, particularly vertically aligned ZnO nanotubes on graphene for potential electronic and sensing applications.
Professor Dong Wan Kim's research lab specializes in molecular and cellular biology, with a focus on post-transcriptional gene regulation, particularly the role of RNA modifications such as poly(A) tail guanylation in mRNA stability and translation. The lab also investigates viral transcriptomics, especially the complex transcriptome and epitranscriptome of SARS-CoV-2, using advanced sequencing technologies. Additionally, the lab explores materials science, including microwave dielectric properties of complex oxides, and contributes to computational and policy-oriented research in AI-driven learning and regional innovation clusters.
Professor Jae-young Sung's research lab specializes in the molecular and evolutionary biology of neuropeptide G protein-coupled receptors (GPCRs) and their endogenous ligands. The lab investigates the structure-function relationships of orphan and neuropeptide GPCRs, focusing on receptor activation mechanisms, ligand specificity, and the development of selective pharmacological tools. Key research directions include the identification of endogenous ligands for orphan GPCRs, the evolutionary origins of neuropeptide systems, and the preclinical development of GPCR-targeted therapeutics for mood and metabolic disorders.
Professor Yang-hyun Kim's research lab focuses on population health and preventive medicine, with a strong emphasis on the interplay between anthropometric measures, metabolic health, and long-term outcomes such as mortality and chronic disease risk. The lab investigates key determinants of health across the Korean population, including abdominal obesity (waist circumference), body composition, dental health, and bone metabolism, often integrating large-scale national health datasets. Research directions span epidemiological studies on obesity-related comorbidities, quality of life, and the impact of lifestyle factors such as weight change and tooth retention on health outcomes. The lab also explores neurological and musculoskeletal implications of anatomical variations, such as transitional vertebrae, in clinical settings.