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 Yun Song Lee's research lab focuses on molecular mechanisms underlying pulmonary vascular diseases, particularly pulmonary hypertension and chronic obstructive pulmonary disease (COPD). The lab investigates the therapeutic potential of repurposed drugs—such as statins, metformin, and PPARγ agonists—in mitigating lung injury and vascular remodeling. A key research direction involves targeting cellular signaling pathways, including TGF-β/SMAD and mitochondrial function, to modulate fibrosis, inflammation, and vascular dysfunction. The lab also pioneers novel gene-editing technologies, such as mitochondrial DNA editing using CRISPR/Cas9, to explore genetic interventions in respiratory and cardiovascular diseases.
Professor Chun Hak Lim's research lab specializes in cardiovascular and critical care medicine, with a primary focus on optimizing perfusion strategies during cardiac surgery and extracorporeal life support. The lab investigates the hemodynamic and organ-protective benefits of pulsatile blood flow, particularly through devices like intra-aortic balloon pumps and centrifugal pumps, to improve outcomes in acute circulatory failure. Key research directions include remote ischemic conditioning for inflammation modulation, renal and pulmonary protection during cardiopulmonary bypass, and innovative extracorporeal circulation systems such as the Twin-Pulse Life Support (T-PLS). The lab integrates experimental animal models with clinical data to evaluate hemodynamic energy, organ function, and biomarkers of injury.
Professor Hun-Ju Kwon's research lab specializes in diagnostic radiology and abdominal imaging, with a focus on improving the accuracy of medical imaging for abdominal and hepatic diseases. The lab investigates advanced imaging techniques such as DCE-MRI, elastography, and ultrasound-based attenuation indices to enhance the detection and characterization of liver steatosis, pancreatic tumors, and liver malignancies. Research also emphasizes the clinical implications of imaging findings in conditions like hypothyroidism and NAFLD, as well as the safety and complications of interventional procedures like radiofrequency ablation.
Professor Jeong-Won Yoon's research lab focuses on information behavior, particularly among international students and foreign-born populations, examining their health information-seeking practices, daily life information needs, and the role of leadership in organizational performance. The lab explores how language, cultural adaptation, and digital platforms shape information access and decision-making in cross-cultural contexts. It also investigates strategic leadership in latecomer firms, especially in the Asia-Pacific region, emphasizing the role of top management in internationalization and firm performance.
Professor Jae-Hoon Jeong's research lab specializes in interdisciplinary studies at the intersection of neuroscience, materials science, and organic chemistry. The lab investigates synaptic transmission mechanisms using advanced electron microscopy techniques, particularly electron tomography, to understand the structural basis of neurotransmitter release and long-term potentiation. It also explores functional materials, such as diamond-like carbon coatings on field emission arrays, for enhanced electron emission properties. Additionally, the lab engages in synthetic organic chemistry, focusing on complex natural product synthesis through selective cyclization strategies. These diverse research directions reflect a strong emphasis on structural biology, neurophysiological mechanisms, and innovative materials development.
Professor Heyun Jo's research lab focuses on pediatric nephrology and metabolic health, with a strong emphasis on understanding the pathophysiology of kidney disease, hypertension, and cardiovascular risk factors in children and adolescents. The lab investigates biomarkers such as microalbuminuria and complement system regulation to identify early indicators of organ damage and to explore mechanisms linking obesity, diabetes, and renal dysfunction. Additionally, the lab contributes to clinical pharmacology through studies on drug-induced nephrotoxicity, particularly vancomycin-related acute kidney injury in pediatric populations. Their work bridges basic immunological mechanisms with clinical outcomes in pediatric populations.
Professor Pyung Bok Lee's research lab specializes in interventional pain management and spinal interventional techniques, focusing on the diagnosis and treatment of chronic spinal and radicular pain. The lab investigates the anatomical and neurological implications of spinal variations—such as lumbosacral transitional vertebrae—on nerve root identification and pain syndromes. It also explores the efficacy and safety of various injectable agents, including epidural steroids and hypertonic saline, in percutaneous procedures like adhesiolysis and nerve blocks. Additionally, the lab examines psychosocial factors influencing chronic pain conditions, particularly complex regional pain syndrome, to improve multidisciplinary pain management strategies.
Professor Heeyeon Kim's research lab specializes in theoretical high-energy physics and mathematical physics, focusing on supersymmetric gauge theories, topological field theories, and their geometric and categorical structures. The lab investigates supersymmetric indices, partition functions, and dualities in diverse spacetime backgrounds—ranging from curved manifolds like elliptic fibrations and real projective spaces to compactifications on Riemann surfaces. A central theme is the interplay between quantum field theory, algebraic geometry (e.g., moduli spaces of quasi-maps and vortex solutions), and topological invariants such as the Witten index and elliptic genera. The lab also explores dualities, twisted compactifications, and the emergence of rational chiral algebras and modular tensor categories in 3D and 4D SCFTs.
Professor Hayong Shin's research lab specializes in advanced simulation, optimization, and modeling techniques for complex systems, with a strong focus on manufacturing systems, computational fluid dynamics (CFD), and agent-based modeling. The lab develops innovative dispatching and scheduling algorithms—particularly predictive and learning-based approaches—for semiconductor fabrication (fab) and re-entrant flow shops, aiming to enhance efficiency and adaptability. It also explores hybrid grid generation for accurate viscous flow simulations and contributes to combat modeling and synthetic population generation using statistical and computational methods.
Professor Jungyul Sohn's research lab specializes in urban and regional economics, with a focus on the spatial impacts of infrastructure, technology, and policy on urban development. The lab investigates transportation network resilience, accessibility and equity in social service facility placement, the role of information technology in shaping urban structure, and the theoretical and practical dimensions of networked urban systems. Current research emphasizes data-driven spatial analysis using GIS and econometric modeling to inform equitable and efficient urban planning.
Professor Dae Wook Kim's research lab focuses on circadian biology and chronotherapeutics, exploring the molecular mechanisms of the circadian clock and its translational applications in medicine. The lab investigates transcriptional feedback loops, particularly the roles of RRE and E-box elements in circadian regulation, and examines how disruptions in these pathways affect physiological rhythms and disease susceptibility. A key focus is on developing personalized chronotherapy strategies using wearable technology to track circadian and ultradian rhythms for optimized drug timing in cancer and chronic diseases. The lab also employs systems pharmacology and preclinical models to understand how circadian phase responses vary across species, especially in diurnal primates and humans compared to nocturnal rodents.
Professor Hyungsung Cho's research lab specializes in translational biomedical engineering and neuromodulation, focusing on improving interventional pain management techniques and developing advanced neuromodulatory therapies. The lab investigates the use of real-time imaging and precise drug delivery systems—such as intrathecal gabapentin and fluoroscopy-guided injections—to enhance diagnostic accuracy and therapeutic outcomes in neuropathic pain. Additionally, the lab explores bio-inspired actuator technologies, including ratchet-integrated pneumatic artificial muscles, for applications in soft robotics and medical devices. A key theme across the research is the integration of physiological principles into clinical and engineering solutions to improve patient safety and treatment efficacy.
Professor Kihwan Kwon's research lab focuses on cardiovascular disease mechanisms and innovative interventional therapies, with a strong emphasis on imaging-based risk stratification, percutaneous repair of complex vascular lesions such as mycotic aneurysms, and the development of novel therapeutic strategies for cardiotoxicity and atherosclerosis. The lab integrates molecular imaging, mechanobiology, and advanced delivery systems—particularly shock wave-based technologies—for targeted therapy. Key research directions include identifying flow-sensitive endothelial markers, protecting cardiomyocytes from chemotherapy-induced damage, and engineering extracellular vesicles for efficient siRNA delivery in cancer therapy.
Professor Sung-Bon Cho's research lab specializes in diagnostic radiology and medical imaging, focusing on advanced MRI techniques and radiological biomarkers to improve the characterization and prognosis of various cancers. The lab investigates tumor aggressiveness, metastasis mimics, and imaging features associated with histopathological grades, particularly in hepatocellular carcinoma, breast cancer, and renal cell carcinoma. Key research directions include the application of gadoxetic acid-enhanced MRI, diffusion-weighted imaging, and computer-aided detection (CAD) to enhance diagnostic accuracy and treatment stratification. The lab also explores molecular imaging correlates, such as cadherin expression patterns, to link imaging phenotypes with biological behavior.
Professor Kyu-Ho Lee's research lab specializes in the development of advanced two-dimensional nanomaterials, particularly MXenes, for next-generation flexible and wearable electronic devices. The lab focuses on enhancing the environmental stability, conductivity, and optical transparency of MXene-based electrodes while exploring their applications in energy harvesting, artificial synapses, tactile e-skins, and optoelectronic systems. Key research directions include the design of hybrid nanomaterials, such as MXene-silver nanowire composites, and the integration of functional materials into scalable, solution-processed devices for human-interactive intelligent electronics.
Professor Giyong Jang's research lab focuses on translational biomedical research, with a strong emphasis on cardiovascular diseases, particularly patent ductus arteriosus (PDA) closure and Kawasaki disease (KD). The lab investigates the genetic and molecular mechanisms underlying KD susceptibility, especially through genome-wide association studies (GWAS) and sex-stratified genetic analyses. Additionally, the lab explores cancer metastasis suppression using protein-based therapies, notably the NM23-H1 metastasis suppressor, and applies molecular techniques such as STR analysis and RT-PCR in both clinical and forensic contexts. The research integrates clinical cardiology, molecular genetics, and translational oncology to develop novel diagnostic and therapeutic strategies.
Professor Kim Jin-Young's research lab specializes in digital marketing, consumer behavior, and smart transportation systems, with a focus on how technology influences user engagement, satisfaction, and decision-making. The lab investigates topics such as augmented reality in cultural tourism, electronic word-of-mouth in food tourism, and the use of intelligent transport data for traffic demand analysis. It also explores behavioral dynamics in online health communities and the role of social influence in digital environments. The lab integrates behavioral theories with empirical data to understand technology adoption and user connectivity in digital and physical service contexts.
Professor Jee Hyun Seong's research lab specializes in advanced materials and optoelectronic devices, with a primary focus on the development of high-efficiency phosphorescent organic light-emitting diodes (OLEDs) for next-generation display and lighting technologies. The lab investigates novel iridium-based phosphors, particularly heteroleptic tris-cyclometalated complexes, to enhance luminous efficiency, reduce efficiency roll-off, and achieve pure color emission. In parallel, the lab explores innovative 3D scanning techniques for precise mechanical part digitization, emphasizing high-precision, automated object reconstruction. These interdisciplinary efforts bridge materials chemistry, device physics, and computational imaging.
Professor Min Su Kim's research lab specializes in translational biomedical engineering and regenerative medicine, focusing on innovative solutions for clinical challenges. Key research directions include the development of advanced 3D-cultured meat systems for sustainable food production, the design of precision soft robotic actuators using smart composite materials, and the management of rare urological complications such as knotted ureteral stents. The lab also explores the intersection of neuroscience, consciousness, and artistic expression through interdisciplinary studies on temporal and spatial awareness in poetic works.
Professor Heejae Kim's research lab specializes in the molecular-level understanding of complex interfacial phenomena in energy materials and biological systems. The lab focuses on developing advanced spectroscopic and computational techniques to probe the structure, dynamics, and interactions of biomolecules, perovskite semiconductors, and ion-solvent systems. Key research directions include the role of phonons and lattice dynamics in optoelectronic materials, ion-induced protein destabilization mechanisms, and surface engineering of metal oxide semiconductors for enhanced device performance. The lab integrates ultrafast spectroscopy, molecular dynamics simulations, and nanofabrication to address fundamental questions in energy conversion and biomolecular stability.