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 Kon Chu's research lab specializes in neuroimmunology and translational neuroscience, focusing on autoimmune encephalitis, neurodegenerative diseases such as Alzheimer’s, and novel immunomodulatory therapies. The lab investigates the pathogenesis of autoimmune neurological disorders, including the role of HLA subtypes and neuronal autoantibodies, while developing clinical scales for disease severity and evaluating emerging treatments like tocilizumab and ginseng. A key direction involves exploring neuroprotective mechanisms, such as GLT-1 upregulation by ceftriaxone, to promote ischemic tolerance. The lab integrates clinical research with preclinical models to advance personalized and effective therapies for central nervous system autoimmunity and neurodegeneration.
Professor Jeong Young Park's research lab specializes in nanomaterials and surface science, focusing on the design and characterization of nanostructured catalysts and carbon-based materials for energy and environmental applications. Key research directions include understanding the role of particle size and morphology in heterogeneous catalysis—particularly in CO oxidation and oxygen reduction reactions—and exploring the influence of electronic and atomic-scale properties such as work function, hot electrons, and metal–oxide interfaces. The lab combines advanced characterization techniques like friction force microscopy and in situ spectroscopy with theoretical modeling to uncover structure–activity relationships at the nanoscale.
Professor Unyong Jeong's research lab specializes in the design and development of advanced nanomaterials for energy conversion, storage, and sensing applications. Key research directions include the engineering of conductive and stretchable materials for artificial skin and wearable electronics, the optimization of triboelectric nanogenerators for self-powered systems, and the synthesis of novel nanocomposites for high-performance lithium-ion batteries and thermoelectric devices. The lab emphasizes materials innovation through controlled nanostructure engineering, ion dynamics, and cation-exchange chemistry to achieve superior functional performance.
Professor Kitack Lee's research lab specializes in marine biogeochemistry, with a focus on the global carbon cycle, oceanic uptake of anthropogenic CO₂, and the impacts of atmospheric deposition on marine nutrient dynamics. The lab employs high-precision field measurements and advanced inverse modeling techniques to quantify changes in oceanic inorganic carbon, alkalinity, and nutrient budgets across diverse oceanic regimes. Key research directions include developing robust algorithms for estimating surface alkalinity from salinity and temperature, assessing the role of atmospheric nitrogen deposition in enhancing marine productivity, and refining carbonate system thermodynamics for improved climate modeling. The lab’s work bridges observational oceanography with climate system modeling to enhance understanding of ocean carbon sequestration and ecosystem responses to anthropogenic forcing.
Professor Jong Eun Lee's research lab specializes in neuroprotection and regenerative medicine, focusing on the molecular and cellular mechanisms underlying neurological disorders such as Parkinson’s disease, stroke, and neurodegenerative dementia. The lab investigates key neuroprotective proteins like HSP70 and matrix metalloproteinases (MMPs), explores genetic factors influencing drug response and hepatotoxicity (e.g., MRP2 polymorphisms), and develops biomaterials—particularly collagen-based scaffolds—for tissue engineering and wound healing. A central theme is identifying translational targets through preclinical models, including hypothermia, chaperone protein induction, and bioactive material design.
Professor Sung-hee Baek's research lab focuses on the molecular mechanisms underlying post-translational modifications (PTMs) and their roles in regulating protein stability, transcriptional regulation, and cellular signaling pathways. The lab investigates how PTMs such as methylation, O-GlcNAcylation, and demethylation by enzymes like LSD1 and SET7/9 modulate key transcription factors (e.g., HIF-1α, androgen receptor, Pitx2) and signaling hubs (e.g., ULK1, β-catenin) in development, cancer, and metabolic adaptation. A central theme is the dynamic interplay between PTMs and cellular stress responses, particularly under hypoxia and nutrient stress, with implications for disease mechanisms and therapeutic targeting. The lab integrates molecular biology, biochemistry, and genetic models to uncover novel regulatory nodes in disease pathways, especially in cancer and prostate cancer resistance.
Professor Dae-hee Hwang's research lab specializes in extracellular vesicle biology, with a focus on understanding the role of microvesicles and exosomes in disease progression, particularly in cancer and neurodegenerative disorders. The lab employs high-throughput 'omics' technologies—such as transcriptomics, proteomics, and bioinformatics—to characterize vesicular cargo and decipher their functional roles in intercellular communication. A central theme is the development of integrative databases like EVpedia to enable systems-level analysis of extracellular vesicles across species and disease contexts. The lab also investigates mesenchymal stem cell-derived microvesicles as potential therapeutic agents, emphasizing their molecular mechanisms and translational potential.
Professor Jinsoo Park's research lab specializes in intelligent systems and semantic technologies, focusing on enhancing interoperability among heterogeneous information systems through ontology engineering and semantic mediation. The lab explores machine learning applications in dynamic networks, such as drone communications, and develops AI-driven solutions for e-commerce, including automated negotiation agents and consumer adoption models. Additionally, the lab contributes to signal processing innovations, particularly in robust voice activity detection for noisy environments. These interdisciplinary efforts reflect a strong emphasis on real-world applications in AI, networking, and human-computer interaction.
Professor Park, Joo-Young's research lab specializes in thyroid cancer molecular biology, focusing on the genetic and molecular mechanisms underlying follicular and papillary thyroid carcinomas. The lab investigates driver mutations (e.g., BRAF, RAS, TERT promoter), fusion genes, and their prognostic implications for risk stratification and clinical decision-making. Additionally, the lab explores dental stem cell therapy for periodontal regeneration, particularly in challenging apical root defects, highlighting translational regenerative medicine. Their work bridges molecular oncology and regenerative medicine with a strong emphasis on clinical translation.
Professor Bo Hyung Han's research lab specializes in statistical machine learning and probabilistic modeling for real-time computer vision applications. The lab focuses on developing efficient, adaptive, and robust algorithms for visual tracking, background modeling, and density estimation using sequential and non-parametric techniques. Key research directions include online appearance modeling, kernel density approximation, and particle filtering frameworks that balance accuracy, computational efficiency, and memory usage.
Professor Doo-Yeol Yoo's research lab specializes in advanced construction materials, with a focus on ultra-high-performance fiber-reinforced cement composites (UHP-FRCC) and steel fiber-reinforced concrete (SFRC). The lab investigates mechanical performance, durability, and cost-effectiveness of these materials under various loading conditions, including flexure, impact, and high-temperature exposure. A key research direction involves leveraging data-driven modeling and machine learning to predict material properties efficiently. Additionally, the lab explores the functional integration of nanomaterials—particularly carbon-based nanomaterials—into cementitious matrices to enhance electrical self-sensing capabilities.
Professor Dae-Sik Lim's research lab focuses on the molecular mechanisms underlying stem cell biology, tissue development, and tumorigenesis, with a central emphasis on the Hippo signaling pathway and its downstream effectors YAP/TAZ. The lab investigates how YAP/TAZ regulate cell fate decisions, organ size control, and tissue homeostasis in diverse contexts, including liver development, angiogenesis, and mesenchymal stem cell differentiation. Using genetically engineered mouse models and primary cell systems, the lab explores the dual roles of YAP/TAZ as transcriptional co-activators and co-repressors, particularly in cancer and regenerative processes. Their work also extends to understanding the crosstalk between Hippo signaling and other key pathways such as Notch and p53 in development and disease.
Professor Dongwook Shin's research lab focuses on population health and preventive medicine, with a strong emphasis on chronic disease prevention, early detection, and long-term health outcomes. The lab investigates the impact of health screening programs, continuity of care, and lifestyle and biological factors—such as reproductive health and liver fibrosis markers—on the incidence of major diseases like dementia, cardiovascular disease, and hepatocellular carcinoma. Using large-scale national health databases, the lab conducts population-based cohort studies to identify modifiable risk factors and improve health system performance.
Professor O Jung Kwon's research lab specializes in pulmonary and critical care medicine, with a primary focus on infectious and inflammatory lung diseases. The lab investigates the pathogenesis, diagnosis, and treatment of mycobacterial lung infections—particularly *Mycobacterium abscessus* and *M. massiliense*—with an emphasis on antibiotic response mechanisms and drug resistance. Additionally, the lab explores advanced medical imaging techniques, such as FDG PET/CT and dynamic contrast-enhanced CT, to improve the accuracy of lung cancer and pulmonary infection staging. The integration of molecular biology, clinical microbiology, and radiological imaging defines the lab’s translational research approach.
Professor Jong-Il Kim's research spans molecular biology, cancer genetics, and biochemical mechanisms underlying disease and protection. His lab investigates RNA editing in cancer, particularly A-to-I editing in RHOQ transcripts and its impact on RhoQ protein activity and tumor invasion. The lab also explores chemopreventive mechanisms, such as the protective effects of green tea catechins like EGCG against UV-induced skin damage and oxidative stress. Additionally, his work includes enzymatic pathways in natural product biosynthesis, such as the cyclization mechanism in artemisinin precursor formation, and DNA repair systems in extremophilic organisms. These diverse interests converge on understanding molecular mechanisms in disease pathogenesis and chemoprevention.
Professor Jin-Woo Bae's research lab specializes in host-microbiota interactions, with a focus on the gut microbiome's role in metabolic diseases, neurodegenerative disorders, and radiation-induced complications. The lab employs high-throughput 454 pyrosequencing and viral metagenomics to explore microbial community composition, diversity, and functional dynamics in human and murine models. Key research directions include understanding how gut microbes influence systemic immunity, metabolic homeostasis, and brain health, as well as the impact of medical interventions like metformin and radiotherapy on microbial ecosystems. The lab also investigates environmental viromes, particularly in aquatic and human fecal samples, to uncover novel viral diversity and host-microbe interactions.
Professor Sunyoung Kim's research lab focuses on aging-related health disparities, particularly sarcopenia and osteoporosis in the elderly Korean population. The lab investigates simple, accessible biomarkers—such as calf circumference and muscle mass index—for early detection and risk prediction of physical frailty and bone health deterioration. Additionally, the lab explores the application of mobile health (mHealth) technologies in low- and middle-income countries, emphasizing theory-based design and spatial patterns of implementation to improve global health outcomes.
Professor Won-Jae Lee's research lab focuses on the molecular mechanisms underlying host-microbe interactions, particularly in the context of innate immunity and host homeostasis in Drosophila. The lab investigates how commensal microbiota influence host physiology through metabolic and signaling pathways, including insulin/IGF signaling and redox regulation. Key research directions include the role of dual oxidase (DUOX)-mediated oxidative bursts, the production of microbicidal hypochlorous acid (HOCl), and the regulation of immune responses by host transcription factors such as Caudal. The lab also develops advanced fluorescence imaging techniques to visualize real-time microbial immune responses in live organisms.
Professor Hunho Kim's research lab specializes in the development and application of two-dimensional (2D) nanomaterials, particularly MXenes, for advanced electronic, optoelectronic, and spintronic devices. The lab investigates the fundamental properties of 2D materials such as CrI₃ and Mo-based MXenes, focusing on their magnetic, electrical, and thermoelectric behaviors. A key research direction involves understanding and exploiting post-transcriptional gene regulation through RNA-binding proteins like HuR and microRNAs, revealing novel interdependent regulatory mechanisms in cancer-related genes. The lab bridges molecular biology and nanomaterials science, aiming to create next-generation bio-integrated and energy-efficient nanodevices.
Professor Chan Beum Park's research lab specializes in the design and development of advanced functional nanomaterials for sustainable energy and environmental applications. The lab focuses on hybrid photocatalysts, such as graphene-wrapped TiO₂ and quinone-functionalized materials, to enhance visible-light-driven processes for pollutant degradation and CO₂ conversion. A key research direction involves integrating photocatalysis with biocatalysis to enable solar-driven, green chemical synthesis, particularly through enzyme-photosensitizer systems and tandem photoelectrochemical cells. The lab also explores carbon dots and other nanomaterials for biomedical applications, emphasizing their use in bioimaging and phototheranostics.