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 Hong-Seop Kho's research lab focuses on geriatric oral health, particularly the evaluation and management of oral and maxillofacial dysfunctions in older adults. The lab investigates the impact of aging, systemic conditions, and treatment-related factors—such as radiotherapy and medication—on salivary gland function and oral mucosal integrity. Using advanced methods like natural language processing and clinical data mining, the lab aims to differentiate complex oral conditions, including temporomandibular disorders, and develop evidence-based screening tools for oral frailty and quality of life. The research emphasizes improving clinical outcomes through early detection and personalized care in geriatric populations.
Professor Jeonghyun Kang's research lab specializes in translational oncology and surgical oncology, focusing on improving outcomes in colorectal and thoracic cancers through integrated biomarker discovery, advanced imaging, and minimally invasive surgical techniques. The lab investigates genomic biomarkers such as tumor mutational burden (TMB) and histopathologic features like tumor-infiltrating lymphocytes (TILs) and myosteatosis to predict treatment response and survival. It also evaluates surgical innovations, including robotic and laparoscopic surgery, to optimize oncologic and functional outcomes. The lab emphasizes evidence-based approaches combining clinical data, imaging, and molecular profiling to personalize cancer care.
Professor Oh Joong Kwon's research lab specializes in the development of advanced electrocatalysts and functional nanomaterials for sustainable energy applications, with a strong focus on proton exchange membrane water electrolysis (PEMWE) and oxygen reduction reactions (ORR). The lab pioneers the design of non-noble metal-based catalysts, particularly nitrogen- and heteroatom-doped carbon-encapsulated transition metal nanoparticles, using scalable and environmentally friendly synthesis methods. Their work emphasizes enhancing catalytic activity, durability, and mass transport properties through tailored carbon matrix structures and microstructural engineering of porous transport layers (PTLs). The research also extends to understanding genetic factors in complex diseases, as demonstrated by their work on HLA class II alleles in multiple sclerosis among diverse populations.
Professor See-Hyoung Park's research lab specializes in identifying and validating novel therapeutic targets and repurposing existing FDA-approved drugs for cancer treatment, with a focus on gastrointestinal, breast, and bone cancers. The lab investigates molecular mechanisms underlying cancer cell proliferation, survival, and metastasis, particularly through key regulators such as PARP1, FOXO3A, p21, and p53. A central theme is the repurposing of non-cancer drugs—like bepridil and trifluoperazine—for oncological applications, leveraging their ability to modulate critical signaling pathways such as Akt/FOXO and DNA damage responses. The lab also explores natural compounds and proteasome inhibitors to induce cell cycle arrest, apoptosis, and suppression of migration and invasion.
Professor Minkyu Jung's research lab specializes in translational oncology and immuno-oncology, focusing on identifying novel therapeutic targets and biomarkers in gastrointestinal and lung cancers. The lab investigates tumor microenvironment modulation, particularly through adoptive T cell therapy using chimeric antigen receptor (CAR) T cells, with recent work targeting ICAM-1 in gastric cancer. They also explore predictive and prognostic serum biomarkers such as CEA and CYFRA 21-1 in non-small cell lung cancer patients treated with EGFR tyrosine kinase inhibitors, and examine genetic polymorphisms like SNP-216G/T that influence treatment response. The lab integrates clinical data with molecular and computational approaches to improve personalized cancer therapy.
Professor Dohoon Lee's research lab specializes in the design and application of advanced nanomaterials for biomedical and environmental sensing. The lab focuses on developing ordered mesoporous carbons and magnetic nanocomposites as high-performance matrix materials for enzyme-based biosensors, emphasizing enhanced sensitivity and stability. Key research directions include nanostructured material synthesis, biocatalyst immobilization, and the integration of magnetic properties for efficient biosensor operation. The lab also explores applications in point-of-care diagnostics and environmental monitoring using functional nanomaterials.
Professor Junga Lee's research lab specializes in health and physical activity interventions, with a focus on leveraging technology and epidemiological research to improve health outcomes across diverse populations. The lab investigates the role of physical activity in preventing chronic diseases such as dementia, colorectal cancer, and prostate cancer, while also exploring the integration of artificial intelligence in physical education and health assessment tools. A key emphasis is on developing and validating culturally adapted physical activity questionnaires, such as the K-GPAQ, to enhance measurement accuracy in Korean and other populations. The lab also examines the psychological and physiological benefits of exercise in cancer survivors, aiming to optimize rehabilitation and quality of life during treatment.
Professor Jihoon Ko's research lab specializes in machine learning and deep learning applications for structured and sequential data, with a strong focus on graph-structured data, temporal modeling, and efficient representation learning. The lab explores continual learning for graphs, influence maximization in social networks, and end-to-end learning for tensor compression and weather prediction. Key research directions include developing scalable, generalizable, and efficient deep learning models that handle real-world complexities such as data sparsity, distribution shift, and long-term dependencies. The lab emphasizes practical deployment through lightweight, high-performance methods that balance accuracy and computational efficiency.
Professor Ju Hun Lee's research lab specializes in bioinspired nanomaterials and biosensing, focusing on developing highly sensitive, low-cost diagnostic platforms by leveraging the unique properties of biological systems—particularly the M13 bacteriophage—as functional scaffolds. The lab pioneers innovative sensor designs that integrate structural color, magnetic responsiveness, and signal amplification for applications in clinical diagnostics, environmental monitoring, and point-of-care testing. Key research directions include engineering phage-based arrays for chemical and biomarker detection, designing multifunctional nanowires for multiplexed sensing, and advancing magnetic nanoparticle-integrated assays for liquid biopsy applications such as ctDNA detection.
Professor Won-Ki Jeong's research lab specializes in high-performance computing and advanced image analysis for large-scale biomedical and geoscientific data. The lab focuses on developing scalable, GPU-accelerated algorithms for volumetric data processing, particularly in neuroscience and seismic imaging. Key research directions include automated segmentation of neural structures in electron microscopy, optimal path computation in diffusion MRI using Hamilton-Jacobi solvers, and interactive visualization of massive 3D datasets. The lab also pioneers computational methods for fault detection in seismic data using nonlinear filtering and structure tensor analysis.
Professor Jonggeol Na's research lab specializes in electrochemical conversion of carbon dioxide into valuable chemicals, with a strong focus on advancing sustainable energy technologies. The lab investigates innovative catalyst design, membrane electrode assemblies, and process integration to enhance the efficiency, selectivity, and economic viability of CO2 reduction reactions. Key research directions include electrocatalysis for C2+ product formation, in-situ characterization using isotopic labeling, and the development of AI-driven molecular design for next-generation materials. The lab also emphasizes techno-economic analysis and system-level optimization to bridge the gap between laboratory-scale innovation and industrial application.
Professor Mi Sun Park's research lab focuses on sustainable development through interdisciplinary research in eco-innovation, agroforestry systems, and community-based natural resource management. The lab investigates ecosystem services, particularly in the Asia-Pacific region, with an emphasis on agroforestry's role in enhancing environmental, economic, and social resilience. It also explores policy instruments for eco-innovation in both developed and developing countries, and examines the biological mechanisms of repurposed pharmaceuticals for anti-tumor applications. A key theme is the integration of social capital and institutional frameworks in achieving sustainable forest management and ecological restoration.
Professor Han-Byoel Lee's research lab focuses on advancing personalized breast cancer care through integrative oncology, with a strong emphasis on age-specific tumor biology, molecular subtypes, and treatment outcomes. The lab investigates the unique clinical behavior of young-onset breast cancer, optimal local therapy strategies including radiotherapy and margin assessment, and the impact of adjuvant hormonal therapies on both cancer control and cardiovascular safety. Using large-scale health data and genomic profiling techniques such as whole-exome sequencing from fine-needle aspirates, the lab aims to tailor surveillance and treatment based on biological subtypes and patient-specific risk profiles.
Professor Chul Hwan Park's research lab specializes in advanced medical imaging and surgical reconstruction, with a focus on improving diagnostic accuracy in cardiovascular and pulmonary diseases through computed tomography and cardiac MRI. The lab also pioneers innovative microsurgical techniques, particularly in facial and auricular reconstruction using free flaps, emphasizing anatomical precision and aesthetic outcomes. A key research direction involves optimizing imaging protocols for accurate size matching in lung transplantation using CT-derived lung volume as a surrogate marker. The lab integrates clinical radiology, surgical anatomy, and patient-centered outcomes to enhance diagnostic and therapeutic strategies in cardiothoracic and maxillofacial surgery.
Professor SiHyun Cho's research lab focuses on identifying and validating novel biomarkers for endometriosis, with a particular emphasis on urinary and serum proteins such as VDBP, sFlt-1, osteopontin, and COX-2. The lab investigates the molecular and immunological mechanisms underlying endometriosis pathogenesis, especially the roles of angiogenesis, inflammation, and immune modulation in different disease stages. Their work also explores therapeutic strategies, including the use of hormonal intrauterine devices for postoperative recurrence prevention. The lab integrates clinical observations with molecular biology to advance non-invasive diagnostics and targeted therapies for endometriosis.
Professor Minsoo Noh's research lab specializes in translational biomedical research, focusing on molecular mechanisms underlying skin diseases, stem cell biology, and metabolic disorders. The lab integrates systems biology approaches—such as meta-analysis of high-throughput omics data—with functional validation in primary human cells to identify key regulatory genes and pathways. A central theme is the identification of novel therapeutic targets in keratinocyte differentiation, adiponectin regulation, and nuclear receptor signaling (e.g., PPARγ/δ), with applications in inflammatory skin diseases and metabolic syndrome. The lab also pioneers innovative models for studying rare cell populations, such as distributed stem cells, using genetically engineered systems to uncover asymmetric self-renewal signatures.
Professor Sei-Young Lee's research lab specializes in bioinspired materials and biomedical engineering, focusing on the design and application of nano- and micro-particles for targeted drug delivery, particularly in intravascular and pulmonary systems. The lab investigates the hydrodynamic behavior of non-spherical particles, the role of biomolecules in vascular permeability and inflammation, and the development of biomimetic surfaces to enhance medical device integration and reduce infection. A key focus is on understanding cellular and molecular mechanisms in cancer progression, including perineural invasion and radioresistance in oral squamous cell carcinoma.
Professor Hae-Seok Lee's research lab specializes in the development of advanced nanomaterials and hybrid heterostructures for next-generation energy conversion and storage applications. The lab focuses on designing flexible, lightweight, and high-performance electrodes for transparent conducting oxides, perovskite and organic solar cells, and supercapacitors, with an emphasis on scalable fabrication techniques such as sputtering, electrospinning, and atomic layer deposition. Key research directions include enhancing optical transparency, electrical conductivity, and environmental stability through innovative nanostructuring and interface engineering. The lab also explores the integration of transition metal oxides, carbon nanotubes, and metal-organic frameworks into functional devices for sustainable energy technologies.
Professor Jin Hyup Lee's research lab focuses on the molecular mechanisms underlying cellular redox regulation, circadian rhythm, and oxidative stress-induced cell death. The lab investigates the roles of key metabolic enzymes such as NADP+-dependent isocitrate dehydrogenase (IDPm) in maintaining mitochondrial and cellular redox homeostasis, particularly under conditions of oxidative stress and genotoxic damage. Additionally, the lab explores the interplay between the circadian clock, especially cryptochrome (CRY) proteins, and tumor suppression pathways, revealing how circadian disruption influences apoptosis and cancer development. Their work integrates redox biology, metabolism, and circadian molecular mechanisms to uncover novel therapeutic targets for cancer and degenerative diseases.
Professor Stephen Appleby's research lab specializes in theoretical and phenomenological gravity, focusing on modified gravity theories as alternatives to general relativity with a cosmological constant. The lab investigates $F(R)$ gravity, Galileon models, and Horndeski-type scalar-tensor theories to understand cosmic acceleration, dark energy, and the viability of these frameworks under cosmological and astrophysical constraints. Key research directions include the stability and consistency of modified gravity models, their behavior in early and late-time cosmology, and the impact of anisotropy and inhomogeneity on observational tests. The lab employs advanced cosmological simulations, statistical analysis of supernova and CMB data, and analytical methods to probe the nature of gravity and dark energy across cosmic time.