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 Mi Jin Kim's research lab focuses on molecular and translational biomedical research, with key interests in metabolic reprogramming in cancer, particularly hepatocellular carcinoma, and the identification of novel therapeutic targets such as PPARδ. The lab also investigates antibiotic resistance mechanisms in *Helicobacter pylori*, contributing to the understanding of treatment failure and resistance patterns in gastrointestinal infections. Additionally, the lab explores genetic engineering in plants, including metabolic pathway manipulation in soybeans for enhanced nutritional traits.
Professor Jin-Kyu Lee's research lab specializes in the design and development of multifunctional nanomaterials for biomedical applications, with a strong focus on bone tissue engineering and cancer theranostics. The lab pioneers innovative surface modification strategies for silica and magnetic nanoparticles to enable precise bioconjugation, enhanced biocompatibility, and targeted delivery. Key research directions include the fabrication of smart, fluorescent, and stimuli-responsive nanoplatforms for imaging and therapy, as well as the engineering of 3D cell-laden scaffolds for hierarchical tissue regeneration. The integration of immunomodulatory principles with biomaterials is also a growing focus to improve clinical translation.
Professor Jong Dae Ji's research lab focuses on the molecular mechanisms underlying immune regulation and bone metabolism, with a particular emphasis on the roles of regulatory molecules such as microRNAs, B7-family proteins, and the aryl hydrocarbon receptor (AhR) in autoimmune diseases and skeletal homeostasis. The lab investigates how genetic polymorphisms, endogenous and exogenous ligands, and signaling pathways influence immune cell differentiation and osteoclastogenesis. Key research directions include the crosstalk between innate immunity and bone remodeling, the anti-inflammatory actions of lipid mediators like 15d-PGJ2, and the dual functions of AhR in immune and skeletal cell fate decisions. The lab integrates molecular biology, immunology, and translational approaches to uncover therapeutic targets for autoimmune and metabolic bone disorders.
Professor Kee Jung Yoon's research lab focuses on molecular mechanisms regulating stem cell fate and tissue development, with a central emphasis on neural and mesenchymal stem cell differentiation. The lab investigates key signaling pathways such as Notch, FGF, Hippo/YAP, and metabolic regulators like creatine in controlling cell proliferation, lineage specification, and organ growth. Additional research explores bioactive compounds from medicinal plants, particularly Panax ginseng, for their anti-inflammatory and regenerative properties. The lab integrates molecular biology, stem cell biology, and pharmacology to uncover therapeutic targets for neurodegenerative diseases and metabolic disorders.
Professor Ji Won Han's research lab specializes in geriatric neuroscience, with a primary focus on understanding and intervening in the progression of mild cognitive impairment (MCI) and dementia. The lab investigates the predictive validity of MCI subtypes, develops and evaluates multimodal non-pharmacological therapies such as Multimodal Cognitive Enhancement Therapy (MCET), and explores the impact of psychiatric comorbidities in neurodegenerative disorders like Parkinson’s disease. The lab emphasizes person-centered, evidence-based psychosocial interventions to improve cognitive outcomes and reduce caregiver burden.
Professor Hyunsook Kim's research lab focuses on metabolic regulation, particularly the interplay between growth hormone, insulin-like growth factor-I (IGF-I), and lipid metabolism in the context of type 2 diabetes and obesity-related disorders. The lab investigates the therapeutic potential of natural compounds—such as pterostilbene, blueberry byproducts, and kefir-derived exopolysaccharides—in improving metabolic health, reducing adiposity, and modulating cholesterol and bile acid metabolism. Additionally, the lab explores the biological and behavioral impacts of these bioactive compounds using animal models and molecular metabolic analyses.
Professor Jung's research lab specializes in advanced energy materials, with a primary focus on next-generation lithium-ion and all-solid-state batteries. The lab investigates cathode materials such as Ni-rich layered oxides (e.g., NCM) and garnet-type solid electrolytes (e.g., LLZO), emphasizing their electrochemical stability, interfacial behavior, and degradation mechanisms under high-voltage and high-temperature conditions. Key research directions include nanoscale engineering of electrode materials to enhance kinetics and thermodynamics, development of pliable inorganic solid electrolytes for improved interfacial contact, and fundamental understanding of transition-metal and oxygen redox chemistry during phase transitions and oxygen evolution.
Professor Suyun Kim's research lab specializes in translational biomedical research, focusing on leveraging machine learning and advanced imaging techniques to improve clinical outcomes in critical care and oncology. The lab investigates molecular mechanisms underlying disease progression, particularly in cancer and infectious diseases, with an emphasis on autophagy, metabolic regulation, and oxidative stress. Key research directions include developing predictive models for patient outcomes using big data and AI, and exploring biomarkers for early detection and personalized treatment in breast cancer and cervical neoplasia.
Professor Moon Kee Choi's research lab specializes in next-generation optoelectronic devices with unconventional form factors, focusing on flexible, stretchable, and wearable technologies for human-centric applications. The lab pioneers advanced materials and fabrication techniques—such as intaglio transfer printing and thermally controlled transfer methods—for high-performance, ultrathin, and conformal devices like colloidal quantum dot LEDs, transparent QLEDs, and biomimetic dry adhesives. Key research directions include enhancing device efficiency, transparency, and mechanical resilience while enabling seamless integration with the human body for continuous health monitoring and smart human-machine interfaces. The lab also explores novel material platforms such as graphene and quantum dots to push the boundaries of transparency, flexibility, and performance in optoelectronics.
Professor O-Ki Kwon's research lab specializes in endovascular neurosurgery and cerebrovascular interventions, with a focus on improving outcomes for complex cerebral aneurysms and cerebrovascular occlusive diseases. The lab investigates advanced endovascular techniques such as stent-assisted coiling, dual microcatheter embolization, and intra-arterial thrombolysis using agents like abciximab to enhance recanalization and reduce complications. A key research direction involves quantitative assessment of revascularization after bypass surgery in moyamoya disease, utilizing advanced angiographic software for precise evaluation. The lab also explores patient-centered protocols, such as minimizing fasting before cerebral angiography, to improve clinical safety and efficiency.
Professor Hyun Hoon Chung's research lab specializes in advancing diagnostic and prognostic tools for gynecological cancers, with a focus on ovarian, endometrial, and cervical cancers. The lab investigates molecular and imaging biomarkers—such as serum CA-125, FDG-PET/CT uptake, and MRI parameters—to improve preoperative staging and predict disease progression. A key research direction involves developing innovative nanotechnology-based methods for early cancer detection, particularly using fluorescent silica nanoparticles to enable rapid, sensitive isolation of circulating tumor cells from whole blood. The lab integrates clinical oncology with biomedical engineering to translate imaging and molecular diagnostics into practical clinical applications.
Professor Jong Heo's research lab specializes in advanced functional materials, with a focus on chalcogenide and rare-earth-doped glasses for optical and optoelectronic applications. The lab investigates structural and optical properties of tellurite and silicate glasses, exploring their use in fiber optics, solid-state lighting, and radiation-resistant waste forms. Key research directions include quantum dot-doped glasses for tunable photoluminescence and saturable absorbers, as well as novel cementitious materials for nuclear waste immobilization.
Professor Jung Eun Lee's research lab focuses on the intersection of human microbiota, host genetics, and chronic disease development, with a particular emphasis on cancer (e.g., cervical, renal cell) and metabolic disorders. The lab investigates how host factors such as obesity, vitamin D status, and uric acid levels interact with microbial communities and physiological markers to influence disease risk and prognosis. Using integrative approaches including longitudinal cohort studies, twin-family analyses, and advanced molecular techniques like 16S rRNA sequencing and live imaging, the lab explores the dynamic interplay between host-microbe interactions and tissue homeostasis. A central theme is identifying modifiable biological and environmental factors that shape disease trajectories in cancer and cardiovascular conditions.
Professor Chang Young Lee's research lab specializes in the development of advanced nanomaterial-based sensors and flexible electronic systems for biomedical and environmental applications. The lab focuses on creating wearable and implantable sensors using 2D materials like graphene and carbon nanotubes to enable real-time, multi-analyte monitoring of physiological signals such as glucose and intraocular pressure. Key research directions include stretchable and 3D-integrated electronics, stochastic signal transduction in nanoscale systems, and high-performance chemical sensors with uniform and sensitive responses. The lab bridges nanotechnology, materials science, and biomedical engineering to design next-generation smart diagnostic devices.
Professor Dong Hoon Shin's research lab focuses on molecular oncology, with a strong emphasis on cancer metabolism, hypoxia signaling, and the role of key regulatory proteins such as SIRT1 and HIF-1α in tumor progression and therapy resistance. The lab also investigates ancient viral genomics, particularly hepatitis B virus evolution in historical populations, using advanced molecular techniques on preserved tissues. Additionally, the lab explores the development of novel nanomaterials, including palladium nanoclusters and carbon-coated metal oxide nanofibers, for applications in biosensing and energy storage.
Professor Jae-Joon Han's research lab specializes in developing sustainable biopolymer-based materials for food and packaging applications. The lab focuses on creating plant-protein-based meat analogues, edible films, and active packaging systems using natural polymers such as rice protein, whey protein, zein, and starches. Key research directions include enhancing the functional properties of biodegradable films and coatings through polymer modification, incorporation of natural antioxidants, and the development of innovative encapsulation techniques for micronutrients. The lab also pioneers oxygen-scavenging systems and barrier coatings to extend food shelf life and improve food safety.
Professor Seungho Cho's research lab specializes in the design, synthesis, and application of advanced functional nanomaterials, with a strong focus on zinc oxide (ZnO) and its heterostructures for energy and environmental applications. The lab explores morphology-controlled synthesis using low-energy methods such as microwave-assisted heating and solution-based reactions, enabling the creation of complex nano- and microstructures with tailored properties. Key research directions include photocatalysis, photoelectrochemical water splitting, and electrocatalytic nitrate reduction for sustainable hydrogen and ammonia production, often enhanced through doping, heterostructuring, and nanoengineering strategies. The lab also investigates the role of organic ligands and additives in directing crystal growth and surface reactivity.
Professor Daesub Song's research lab focuses on emerging zoonotic viral diseases, particularly influenza viruses with zoonotic potential, including avian-origin and swine-origin strains that cross species barriers to infect dogs and cats. The lab investigates viral pathogenesis, host adaptation, transmission dynamics, and molecular epidemiology of influenza and coronaviruses in animal populations, with a strong emphasis on One Health approaches to control outbreaks in companion animals and livestock. Key research directions include understanding cross-species transmission, viral evolution through reassortment, and the development of effective surveillance and intervention strategies.
Professor Chang Suk Suh's research lab specializes in reproductive biotechnology and fertility preservation, with a primary focus on optimizing cryopreservation techniques for ovarian tissue and oocytes. The lab investigates vitrification protocols using various cryoprotective agents, explores the protective effects of antifreeze proteins and angiogenic factors (such as VEGF and angiopoietin-2), and evaluates follicular and oocyte survival post-thawing. Their work aims to improve outcomes in assisted reproductive technologies, particularly in reducing ischemic damage and enhancing developmental potential after transplantation.
Professor Woo Kyu Jeon's research lab focuses on hepatology and gastrointestinal diseases, with a strong emphasis on non-alcoholic fatty liver disease (NAFLD), metabolic syndrome, and their systemic implications. The lab investigates the interplay between insulin resistance, systemic inflammation, and liver fat accumulation, particularly in non-obese populations, while also exploring the links between NAFLD and colorectal neoplasia. Additionally, the lab contributes to clinical endoscopy, evaluating interventional techniques such as EBC and BRTO for gastric variceal hemorrhage. The research integrates clinical epidemiology, metabolic profiling, and advanced imaging to identify risk factors and improve patient outcomes.