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 Hoon Lee's research lab specializes in nanomedicine and neuroinflammation, focusing on the development and application of functional nanomaterials—particularly ceria and ceria-zirconia nanoparticles—for treating neurological disorders. The lab investigates the role of reactive oxygen species (ROS) in stroke and inflammatory diseases, aiming to harness the redox activity of rare-earth oxide nanoparticles to modulate oxidative stress and apoptosis. A key research direction involves optimizing nanoparticle design for enhanced ROS scavenging and targeted therapeutic effects in conditions such as ischemic stroke and inflammatory bowel disease (IBD). The lab also explores biomarkers like cerebral microbleeds (CMBs) and their associations with cerebrovascular risk factors using advanced neuroimaging techniques.
Professor Youngmin Kim's research lab specializes in materials physics and computational materials science, with a focus on developing advanced interatomic potentials for transition metals like titanium and zirconium, and exploring the atomic-scale mechanisms governing ferroelectricity in hafnia-based oxides. The lab also investigates defect engineering in two-dimensional materials such as monolayer MoS₂, aiming to enhance their optoelectronic properties through chemical treatments. Additionally, the group applies multi-sensor fusion techniques to 3D reconstruction in computer vision, demonstrating interdisciplinary applications in biomedical imaging and materials characterization. Their work bridges fundamental atomic-scale phenomena with practical applications in energy, electronics, and healthcare technologies.
Professor Nayoung Kim's research lab specializes in gastrointestinal and molecular oncology, with a primary focus on Helicobacter pylori infection, its epidemiology, antimicrobial resistance, and long-term clinical outcomes. The lab investigates the seroprevalence trends of H. pylori in the Korean population over time, identifies risk factors for infection and treatment failure, and evaluates the reversibility of premalignant gastric lesions following eradication therapy. Additionally, the lab contributes to clinical pharmacology through opioid prescribing pattern studies in surgical patients, emphasizing patient safety and public health implications.
Professor Sung-Soo Kim's research lab focuses on the molecular mechanisms underlying cellular stress responses, particularly in the context of metabolic and neurodegenerative diseases. The lab investigates the roles of autophagy, mitochondrial dysfunction, and redox signaling in conditions such as type 2 diabetes, cardiovascular disease, inflammatory bowel disease, and Alzheimer’s disease. A central theme is the interplay between gut microbiota, short-chain fatty acids, and oxidative stress in maintaining cellular homeostasis and disease progression. The lab also explores therapeutic strategies targeting mitochondria and stress response pathways, including the use of mitochondria-targeted antioxidants like MitoQ.
Professor Youngsik Kim's research lab specializes in advanced materials for sustainable energy storage and conversion, with a strong focus on next-generation batteries and electrochemical systems. The lab explores innovative materials such as solid-state electrolytes, hybrid capacitors, and novel ion-conducting frameworks for sodium-ion and lithium-based batteries, emphasizing high performance, stability, and environmental compatibility. Key research directions include the development of efficient catalysts for metal-air batteries, design of flexible and durable energy devices, and the synthesis of new materials with exceptional electrochemical and optical properties. The lab also actively investigates lithium recycling technologies to support the sustainability of future battery supply chains.
Professor Sung-Hoon Ahn's research lab specializes in advanced manufacturing and smart robotics, with a strong focus on sustainable and biomimetic technologies. The lab explores innovative manufacturing processes such as additive manufacturing, Shape Deposition Manufacturing (SDM), and Smart Composite Microstructures (SCM) to develop soft, compliant robots inspired by nature. Key research directions include the design and application of smart actuators—particularly ionic polymer metal composites (IPMC), shape memory alloys (SMA), and PZT—enabling energy-efficient, biocompatible robotic systems for biomedical and underwater applications. The lab also investigates hybrid renewable energy systems, emphasizing optimal sizing and energy storage for reliable power supply in off-grid environments.
Professor Jung Inhwa's research lab specializes in the fundamental characterization and application of two-dimensional nanomaterials, particularly graphene and its derivatives. The lab focuses on understanding the electrical, optical, and chemical properties of graphene oxide and reduced graphene oxide through advanced in situ measurements, including electrical transport, spectroscopic ellipsometry, and thermal desorption analysis. Key research directions include controllable thermal and chemical reduction processes, optoelectronic device integration, and the development of graphene-based sensors for environmental and electronic applications. The lab also explores novel photodetector architectures inspired by biological vision systems, emphasizing curvature-matched imaging for next-generation optical devices.
Professor Yong Hwan Lee's research lab focuses on fungal pathogenesis, particularly in plant-pathogenic fungi such as *Fusarium graminearum*, *Magnaporthe oryzae*, and *Magnaporthe grisea*. The lab investigates the molecular mechanisms underlying fungal development, host-pathogen interactions, and virulence, with a strong emphasis on transcriptional regulation, effector proteins, and the role of secreted proteins in pathogenicity. Key research directions include identifying and characterizing pathogenicity-related genes, dissecting the genetic control of appressorium formation, and exploring fungal counter-defense strategies against host immunity. The lab employs forward and reverse genetics, functional genomics, and advanced molecular techniques to uncover fundamental mechanisms of fungal pathogenesis.
Professor Donghee Kang's research lab focuses on the pathophysiological roles of uric acid in renal and cardiovascular diseases, particularly its contribution to endothelial dysfunction, vascular injury, and progressive renal fibrosis. The lab investigates mechanisms linking hyperuricemia to oxidative stress, inflammation, and impaired angiogenesis, with a strong emphasis on the renin-angiotensin system and vascular endothelial growth factor (VEGF) regulation. Key research directions include the impact of uric acid on microvascular rarefaction in the kidney and the potential therapeutic benefits of targeting uric acid or angiogenic pathways in chronic kidney disease and hypertension.
Professor Eunjoon Kim's research lab focuses on the molecular mechanisms underlying synaptic organization, particularly the roles of scaffolding proteins and cell adhesion molecules in synapse formation, function, and plasticity. The lab investigates how postsynaptic proteins such as PSD-95, Shank3, and stargazin regulate the clustering and trafficking of neurotransmitter receptors and ion channels at excitatory synapses. Using genetic, biochemical, and imaging approaches in mouse models and neuronal cultures, the lab explores the structural and functional basis of synaptic protein interactions, with implications for neurodevelopmental disorders such as autism spectrum disorders. Their work also extends to understanding the regulation of calcium homeostasis and signaling at the synapse through interactions involving plasma membrane Ca²⁺ ATPases and MAGUK family proteins.
Professor Hye Seung Lee's research lab specializes in molecular oncology and cancer biomarker discovery, with a primary focus on gastric and colorectal carcinomas. The lab investigates tumor suppressor genes, mucin expression, HER2 status, Epstein-Barr virus (EBV) infection, and signaling pathways such as Akt/pAkt to understand their roles in carcinogenesis and prognosis. Utilizing advanced techniques like tissue microarray analysis, immunohistochemistry, and in situ hybridization, the lab aims to identify clinically relevant biomarkers for improved diagnosis, classification, and outcome prediction in gastrointestinal cancers.
Professor Soo Hoon Kim's research lab specializes in advanced materials characterization and biomedical applications, with a strong focus on graphene-based nanomaterials and their chemical modifications using spectroscopic techniques such as high-resolution photoemission spectroscopy. The lab also investigates neurological disorders, particularly pediatric epilepsy and gliomas, integrating neuroimaging, molecular pathology, and clinical outcomes to identify biomarkers and prognostic factors. Their work bridges materials science and clinical neurology, aiming to develop targeted therapies through fundamental understanding of electronic structures and disease mechanisms.
Professor Taek-Soo Kim's research lab specializes in advanced materials and devices for next-generation electronics, with a strong focus on flexible and wearable technologies. The lab explores high-performance organic and polymer-based optoelectronic devices, including all-polymer solar cells and conductive polymer systems, aiming to enhance both efficiency and mechanical robustness. Key research directions include energy harvesting, sustainable battery technologies, and the fundamental mechanics of 2D materials like graphene, with applications in renewable energy and biomedical integration. The lab also investigates machine learning-driven approaches for unsupervised cross-domain data translation, demonstrating a multidisciplinary approach to materials science and artificial intelligence.
Professor Yeon-Seok Jeong's research lab focuses on immunology and respiratory diseases, with a particular emphasis on the role of immune cells—especially CD8 T cells and NKT cells—in cancer immunosurveillance and allergic asthma. The lab investigates the microbiome's influence on airway immunity across age groups, especially in elderly populations, and explores novel vaccination strategies using autologous tumor cells to enhance anti-tumor immunity. Additionally, the lab contributes to patient safety research by evaluating adverse events in clinical settings through systematic medical record reviews. These interdisciplinary efforts aim to uncover novel therapeutic targets and improve clinical outcomes in chronic immune-mediated diseases and cancer.
Professor Dong Min Shin's research lab focuses on cellular signaling mechanisms, particularly calcium homeostasis and its role in immune responses and bone metabolism. The lab investigates how intracellular signaling pathways—especially those involving calcium, reactive oxygen species (ROS), and transcription factors like NFATc1—regulate autophagy, inflammation, and cell death in macrophages and other cell types. A key focus is understanding the molecular mechanisms of pathogenic bacteria like Mycobacterium tuberculosis in subverting host immune defenses through virulence factors such as the Eis protein. The lab also explores the role of scaffolding proteins like Homer in shaping calcium signaling dynamics in secretory and immune cells.
Professor Jooho Moon's research lab specializes in the design, synthesis, and application of advanced nanomaterials for sustainable energy and optoelectronic technologies. Key research directions include the development of high-performance conductive inks and transparent electrodes for flexible and efficient solar cells, the engineering of nanostructured materials for efficient solar hydrogen production via photoelectrochemical water splitting, and the fabrication of functional thin films through ink-jet printing and self-assembly techniques. The lab emphasizes materials innovation with a strong focus on surface chemistry control, fluid dynamics in droplet-based processing, and the integration of nanomaterials into practical devices.
Professor Beom Joon Kim's research lab specializes in advanced materials physics and biomedical sciences, with a strong focus on correlated electron systems and their quantum phenomena, particularly in 5d transition metal oxides such as Sr2IrO4. The lab also conducts cutting-edge research in stroke mechanisms, clinical stroke registries, and multimodal neuroimaging—especially MRI applications—for improving acute stroke diagnosis, treatment selection, and outcome prediction. By integrating first-principles calculations with experimental techniques like angle-resolved photoemission and optical spectroscopy, the lab explores novel quantum states driven by spin-orbit coupling and electron correlation. Additionally, the lab contributes to clinical microbiology through molecular identification of mycobacterial species using rpoB gene sequencing, highlighting a multidisciplinary approach bridging physics, materials science, and biomedicine.
Professor Sungsoo Kim's research lab focuses on the interplay between cellular stress responses, mitochondrial function, and gut microbiota in the context of metabolic and inflammatory diseases. The lab investigates key mechanisms such as autophagy, oxidative stress, and short-chain fatty acids (SCFAs) in conditions like type 2 diabetes, cardiovascular disease, and inflammatory bowel disease (IBD). A central theme is the role of redox signaling and mitochondrial health in disease progression, with translational research exploring therapeutic agents like MitoQ. The lab also examines patient-centered outcomes in clinical settings, linking physician empathy to health behaviors and treatment adherence.
Professor Kim, Young-Soo's research lab focuses on translational biomedical research with a strong emphasis on neurodegenerative diseases, cancer therapy, and bioactive compounds from natural sources. The lab investigates molecular mechanisms underlying Alzheimer’s disease, particularly the roles of oxidative stress, protein aggregation (Aβ and tau), and cell death pathways such as necroptosis, aiming to develop neuroprotective strategies. It also explores targeted cancer therapies using TRAIL and PPARγ ligands to overcome tumor resistance, and investigates bioactive peptides and natural antioxidants—such as sulforaphane and pigmented rice bran compounds—for their therapeutic potential. The lab integrates molecular biology, cell biology, and preclinical disease models to bridge basic discoveries with clinical applications.
Professor Jae Yun Kim's research lab specializes in the design and development of multifunctional nanomaterials for integrated cancer diagnosis and therapy. The lab focuses on creating advanced nanoplatforms that combine magnetic, optical, and drug delivery functionalities—such as core–shell nanoparticles, magnetic gold nanoshells, and mesoporous silica-based systems—enabling multimodal imaging (e.g., MRI and fluorescence) and targeted therapy. By integrating targeting ligands, stimuli-responsive release, and synergetic effects, the lab develops smart nanomedicines for precise, image-guided cancer treatment. The research also incorporates computational methods like nonnegative matrix factorization to support data analysis in biomedical applications.