探索全球顶尖大学的研究室——研究领域与主要论文一览无余。
Professor Junghan Song's research lab specializes in clinical pharmacology and molecular diagnostics, focusing on the development and application of advanced analytical techniques such as HPLC/MS-MS and UPLC-MS/MS for therapeutic drug monitoring and metabolic profiling. The lab investigates pharmacogenomics and genetic polymorphisms related to cardiovascular and metabolic diseases, aiming to improve personalized treatment strategies. Key research directions include optimizing antibiotic therapy for infectious diseases like tuberculosis and scrub typhus, and enhancing the diagnosis of inborn errors of metabolism such as galactosemia and sitosterolemia.
Professor Sungji Park's research lab specializes in cardiovascular imaging and risk stratification, with a focus on echocardiography, cardiac magnetic resonance (CMR), and hemodynamic assessment in patients with valvular heart disease. The lab investigates the prognostic value of biomarkers such as NT-proBNP and TTE, as well as the role of imaging in guiding timing of aortic valve replacement in asymptomatic and low-gradient aortic stenosis. A key research direction involves identifying clinical predictors of postpartum hypertension in women with hypertensive disorders of pregnancy, highlighting maternal cardiovascular outcomes. The lab also explores the utility of non-invasive imaging in detecting early subclinical cardiac changes, particularly in aortic stenosis and severe aortic regurgitation.
Professor Youngjun Park's research lab focuses on cutting-edge materials and devices for sustainable electronics and cancer immunotherapy. The lab explores biodegradable and biocompatible materials—such as lignin—for next-generation resistive memory devices, while also advancing perovskite-based optoelectronic and synaptic transistors for low-power, high-performance computing. In parallel, the lab investigates the immunological and metabolic microenvironment of tumors to understand resistance mechanisms in cancer immunotherapy, aiming to improve therapeutic outcomes through systems-level insights. The integration of materials science, nanoelectronics, and biomedical engineering defines the lab’s interdisciplinary approach.
Professor Tae-hyun Baek's research lab specializes in consumer behavior, with a focus on the psychological and emotional drivers behind advertising responses, brand perception, and technology-mediated consumer experiences. The lab investigates how emotions like guilt and shame influence reactions to environmental messaging, how brand credibility and prestige shape purchase intentions across product and service categories, and how emerging technologies—such as augmented reality, AI agents, and personalized advertising—impact consumer self-perception, trust, and decision-making. A central theme is understanding the interplay between human emotions, perceived authenticity, and technological design in shaping consumer behavior.
Professor Hyeon-Joo Lee's research lab focuses on translational biomedical research, with a strong emphasis on neurodegenerative diseases, metabolic disorders, and the molecular mechanisms underlying chronic inflammation and oxidative stress. The lab investigates the glymphatic system's role in brain waste clearance, the therapeutic potential of natural compounds like Korean red ginseng and *Achillea alpina*, and the pathogenesis of hepatitis B virus-related liver disease. Using integrative approaches combining preclinical models, molecular biology, and advanced imaging techniques such as dynamic-contrast-enhanced MRI, the lab aims to uncover novel therapeutic targets and mechanisms for diabetes, obesity, and neurodegeneration.
Professor Jin Pyo Hong's research lab specializes in advanced functional materials, with a primary focus on nanomaterials synthesis, oxide-based resistive switching memory (ReRAM), and transparent p-type semiconductors. The lab investigates the fundamental properties and applications of 2D materials like graphene and transition metal oxides such as ZnO and Fe3O4, emphasizing defect engineering, doping strategies, and interface phenomena. Their work spans from materials synthesis and characterization (e.g., Raman spectroscopy, AFM, thin-film deposition) to device integration for next-generation electronics and spintronics.
Professor Sun Min Lim's research lab focuses on identifying and targeting novel molecular drivers in aggressive cancers, with a strong emphasis on rare genetic alterations such as ROS1 and EGFR C797S mutations in non-small cell lung cancer. The lab investigates next-generation tyrosine kinase inhibitors, including BBT-176, to overcome resistance mechanisms and improve outcomes in treatment-experienced patients. Additionally, the lab explores biomarkers for early detection of metastasis—particularly bone metastasis in gastric cancer—and investigates the role of receptor tyrosine kinases like AXL in tumor progression and therapy resistance. The research integrates preclinical models, patient-derived systems, and translational clinical data to accelerate the development of precision oncology strategies.
Professor Ji Youn Lee's research lab specializes in the development of advanced fluorescent probes and targeted delivery systems for subcellular organelles, with a focus on mitochondria and lysosomes. The lab pioneers innovative chemical tools—such as activity-based probes, peptidomimetics, and MRI-active conjugates—to enable real-time, non-invasive imaging of cellular signaling and disease-related processes. Their work bridges chemical biology, nanomaterials, and translational medicine, aiming to advance the understanding and treatment of cancer, neurodegenerative diseases, and metabolic disorders. The lab also investigates the environmental and biological impacts of nanomaterials, particularly quantum dots, to ensure safe and effective biomedical applications.
Professor Chikyung Kim's research lab focuses on nanomedicine and cerebrovascular disease, with a central emphasis on developing and applying nanomaterials—particularly ceria nanoparticles—for the protection against ischemic stroke. The lab investigates the role of oxidative stress, inflammation, and metabolic biomarkers such as leptin and gamma-glutamyl transferase in stroke pathophysiology, aiming to identify novel therapeutic targets and predictive markers for subclinical cerebrovascular disease. Their work bridges nanotechnology, neuroscience, and clinical cardiology, especially in aging and metabolic syndrome-related stroke risk.
Professor Kyoo-Ha Huh's research lab specializes in clinical and translational nephrology, with a focus on improving kidney transplant outcomes through innovative strategies in donor management, immunological monitoring, and personalized desensitization therapies. The lab investigates critical factors affecting graft survival, including donor-specific antibodies, delayed graft function, and the impact of immunosuppressive agents such as rituximab on viral reactivation. Their work integrates clinical cohort studies with biomarker discovery to optimize patient selection and post-transplant care, particularly in sensitized recipients. The lab also explores neurophysiological correlates of epilepsy and cognitive function, reflecting a multidisciplinary approach to understanding neurological and immunological interactions in transplantation.
Professor Dongjun Kim's research lab specializes in the development of advanced materials for sustainable energy storage, with a strong focus on aqueous and organic rechargeable batteries. The lab explores novel cathode materials—particularly quinone- and naphthalenediimide-based compounds—engineered to enhance stability, capacity, and voltage output while addressing key challenges such as dissolution and structural degradation. By integrating molecular design, macrocyclic chemistry, and computational modeling (e.g., DFT), the lab aims to achieve precise redox potential control and improved electrochemical performance. The group also investigates hybrid battery systems using abundant, low-cost materials, emphasizing environmental sustainability and practical scalability.
Professor Cheol-Won Choi's research lab specializes in hematological malignancies, gastrointestinal oncology, and molecular mechanisms of cancer progression. The lab focuses on improving treatment outcomes for aggressive cancers such as pancreatic and biliary tract carcinomas through chemotherapy optimization and targeted therapy. It also investigates cancer stemness, drug resistance, and the role of novel biomarkers like MUC15 in thyroid cancer, while exploring clinical predictors such as lymphocyte counts for febrile neutropenia in chemotherapy patients. Additionally, the lab contributes to understanding and managing chronic immune cytopenias, including chronic idiopathic thrombocytopenic purpura (ITP) and myeloproliferative neoplasms (MPNs).
Professor Chul Ho Lee's research lab specializes in structural engineering with a focus on seismic performance, high-strength steel structures, and innovative steel moment connections. The lab investigates advanced connection details such as reduced beam sections, rib-reinforced connections, and straight haunches to enhance ductility, energy dissipation, and collapse resistance in steel moment-resisting frames. Through experimental testing, finite-element analysis, and the development of practical design procedures, the lab aims to improve the seismic resilience and constructability of steel structures.
Professor Sang Hoon Lee's research lab specializes in liver regeneration, transplantation medicine, and metabolic liver diseases, with a strong focus on improving outcomes in liver failure and hepatocellular carcinoma through innovative cell-based therapies and surgical interventions. The lab investigates the use of stem cell co-cultures to enhance hepatocyte function and viability, explores salvage liver transplantation for recurrent HCC, and addresses complications such as intestinal failure-associated liver disease. Their work bridges tissue engineering, clinical transplantation, and molecular oncology to develop novel therapeutic strategies.
Professor Jin Kwon Kim's research lab specializes in clinical and translational cardiovascular and cerebrovascular research, focusing on identifying novel biomarkers and hemodynamic parameters that predict outcomes in acute stroke and cardiovascular disease. The lab investigates the prognostic value of routine laboratory markers—such as red blood cell distribution width (RDW), brachial-ankle pulse wave velocity (baPWV), and serum alkaline phosphatase—alongside lifestyle and metabolic factors like statin adherence and dental caries in hypertensive and stroke patients. A key focus is on understanding the interplay between systemic inflammation, vascular aging, and cerebrovascular outcomes to improve risk stratification and patient management. The lab also explores the integration of machine learning in ECG analysis for arrhythmia detection, highlighting a multidisciplinary approach combining clinical medicine, biomarker discovery, and data science.
Professor Miso Kim's research lab specializes in advanced energy harvesting technologies, with a primary focus on piezoelectric materials and phononic structures for sustainable power solutions. The lab explores electromechanical modeling, gradient-index phononic crystals, and electrospun polymer fibers to enhance energy harvesting efficiency and adaptability in flexible and microscale devices. Key research directions include optimizing material design, wave manipulation, and fabrication processes for next-generation self-powered systems in wearable, biomedical, and smart electronic applications.
Professor Woong Ju's research lab focuses on molecular oncology and cancer biology, with a primary emphasis on epithelial ovarian cancer and endometrial cancer. The lab investigates the genetic and molecular mechanisms underlying chemoresistance, metastasis, and disease progression, utilizing gene expression profiling, functional genomics, and translational mouse models. Additional research explores the epidemiological and psychosocial dimensions of gynecological cancers, including HPV-related psychosocial impacts and the role of genetic polymorphisms in cancer susceptibility. The lab integrates molecular biology with clinical and population-based studies to identify novel biomarkers and therapeutic targets.
Professor Ho Kyu Yoon's research lab specializes in the design, synthesis, and characterization of advanced functional materials with a focus on conductive polymer composites, dielectric phantoms for biomedical electromagnetic simulation, and thermoset epoxy systems with tailored curing kinetics. The lab investigates multifunctional materials for electromagnetic shielding, energy-efficient electronics, and smart responsive materials such as self-healing and reprocessable polymers. Key research directions include nanomaterial integration (e.g., CNTs, graphene, Pd nanoparticles), dielectric property engineering, and kinetic modeling of polymer curing processes. The lab combines materials synthesis, thermal analysis, and electromagnetic characterization to develop next-generation materials for aerospace, biomedical, and electronic applications.
Professor Seung Soo Oh's research lab specializes in the development of innovative biosensing technologies that integrate nucleic acid aptamers, microfluidics, and electrochemical or optical detection systems for point-of-care diagnostics. The lab focuses on creating portable, reusable, and highly specific sensors for real-time detection of small molecules, pathogens, and genetic markers directly in complex biological samples such as blood or serum. Key research directions include the design of conformationally responsive DNA probes for single-nucleotide polymorphism (SNP) detection and the application of microfluidic platforms to accelerate aptamer selection (M-SELEX) and sample-to-answer analysis. The lab’s work aims to enable rapid, low-cost, and field-deployable diagnostic solutions for clinical and environmental applications.
Professor Hyung-Cheon Park's research lab specializes in regenerative medicine and renal pathophysiology, with a focus on stem cell biology, extracellular vesicles (microparticles), and endogenous repair mechanisms in acute and chronic kidney injury. The lab investigates how endogenous and exogenous signals—such as uric acid and mesenchymal stem cell-derived microparticles—modulate vascular and tubular repair through mobilization of progenitor cells and paracrine signaling. Key research directions include the role of Weibel-Palade body exocytosis, the renoprotective effects of microparticles, and the contribution of resident stem cells in the renal capsule and tubules to tissue regeneration after ischemic or obstructive injury. The lab also explores biomarkers like urinary TGF-β1 and serum uric acid in relation to renal fibrosis and subclinical atherosclerosis, bridging basic mechanisms with clinical applications in nephrology and cardiovascular disease.