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 Young Ho Lee's research lab specializes in autoimmune disease genetics and host-pathogen interactions, with a focus on identifying genetic risk factors for systemic lupus erythematosus (SLE), rheumatoid arthritis (RA), and other autoimmune conditions. The lab employs meta-analytical and population-based genetic approaches to dissect the role of immune-related genes such as PTPN22 and MBL in disease susceptibility. Additionally, the lab investigates evolutionary mechanisms in reproductive biology, particularly the role of sperm proteins like lysin in prezygotic reproductive isolation. The integration of clinical genetics, evolutionary biology, and fungal pathogenesis underscores the lab’s interdisciplinary approach to understanding disease and host defense mechanisms.
Professor Wan Choi's research lab specializes in advanced wireless communication systems, with a focus on enhancing spectral efficiency, interference management, and system capacity in cellular networks. The lab investigates key technologies such as distributed antenna systems (DAS), MIMO-OFDMA, and MIMO-CDMA, emphasizing practical deployment strategies like cooperative scheduling, limited feedback beamforming, and robust transmission in interference-limited environments. Their work bridges theoretical analysis with real-world system design, particularly in multiuser diversity, outage capacity, and robustness against co-channel interference. The lab also explores forward-link capacity challenges in CDMA systems with mixed multirate traffic, addressing emerging data service demands.
Professor Tae Yong Kim's research lab specializes in molecular oncology and nuclear medicine, with a focus on thyroid cancer diagnostics and prognostic biomarkers. The lab investigates genetic alterations such as the BRAF(V600E) mutation in papillary thyroid carcinoma, evaluates serum thyroglobulin as a predictive marker, and explores incidental findings on FDG-PET scans. Additionally, the lab contributes to molecular diagnostics through innovative PCR-based methods for microbial identification, reflecting a multidisciplinary approach combining clinical oncology and molecular biology.
Professor Sanghoon Lee's research lab specializes in microfluidic technologies and their applications in tissue engineering, regenerative medicine, and in vitro disease modeling. The lab focuses on developing advanced microfluidic platforms for fabricating shape-controlled hydrogels, cell-laden fibers, and 3D neurospheroid systems that closely mimic the native physiological microenvironment. Key research directions include the design of biocompatible microfabrication techniques for creating functional scaffolds and vascularized tissue constructs, as well as the development of in vitro models for neurodegenerative diseases using dynamic, flow-based systems. The lab integrates principles of biomaterials, cell biology, and microengineering to enable next-generation biomedical applications.
Professor Jun Soo Kwon's research lab focuses on the neurobiological underpinnings of schizophrenia and obsessive-compulsive disorder (OCD), with a particular emphasis on brain structure, neural circuitry, and sensory processing abnormalities. The lab investigates structural and functional brain changes using neuroimaging techniques such as MRI and EEG, especially in relation to gamma oscillations, grey matter density, and midline brain structures. A key research direction involves understanding the neural mechanisms underlying cognitive deficits and psychiatric symptoms, with translational efforts aimed at improving patient outcomes through targeted interventions like weight management programs.
Professor Sang-hoon Ahn's research lab focuses on chronic hepatitis B virus (HBV) infection, with a strong emphasis on understanding the virological, immunological, and genetic factors influencing disease progression. The lab investigates noninvasive biomarkers—such as SPRI, ASPRI, and APRI—for accurate staging of liver fibrosis and cirrhosis in treatment-naïve patients. It also explores the long-term impact of persistent HBV DNA replication on hepatocellular carcinoma recurrence and the role of host genetic factors, particularly HLA alleles, in determining infection outcomes. Additionally, the lab examines challenges in HBV management, including viral reactivation after stopping antiviral therapy due to persistent covalently closed circular DNA (cccDNA).
Professor Young-Seok Joo's research lab specializes in understanding the molecular mechanisms underlying cancer genomics, viral pathogenesis, and mitochondrial genome dynamics. The lab integrates multi-omics approaches—including whole-genome and transcriptome sequencing, single-cell profiling, and computational modeling—to dissect somatic mutational processes, mitochondrial-nuclear genome fusions, and host-virus interactions. A key focus is uncovering the biological and evolutionary forces shaping viral and cancer genome evolution, particularly in the context of human diseases such as lung cancer and SARS-CoV-2 infection. The lab also develops computational tools, such as Mutalisk, to decode the complex interplay between genomic architecture, epigenetics, and mutational signatures.
Professor Jae-beom Kim's research lab focuses on the molecular mechanisms underlying adipocyte differentiation, lipid metabolism, and insulin resistance in the context of obesity and metabolic disease. The lab investigates key transcription factors such as ADD1/SREBP1 and their roles in regulating energy homeostasis, adipogenesis, and inflammatory responses in adipose tissue. A central theme is understanding how metabolic and inflammatory pathways intersect in obesity, particularly the direct impact of adipocyte hypertrophy on insulin resistance independent of inflammation. The lab employs molecular and cellular approaches in mouse models to dissect transcriptional networks and signaling pathways critical for metabolic health and disease.
Professor Yun Chan Kang's research lab specializes in the design and synthesis of advanced nanomaterials for sustainable energy applications, with a primary focus on sodium-ion and other multialkali ion batteries. The lab develops novel hierarchical nanostructures—such as yolk-shell, core-shell, and 3D porous architectures—using templating, spray pyrolysis, and controlled selenization or sulfidation processes to enhance ion diffusion, electronic conductivity, and structural stability during long-term cycling. Key research directions include the rational engineering of transition metal chalcogenides (e.g., MoS₂, CoSe₂, SnO₂, NiS) and their hybrid composites with carbon matrices to achieve high capacity, rate capability, and Coulombic efficiency for next-generation energy storage devices.
Professor Tae Joo Shin's research lab specializes in advanced materials for energy conversion and storage, with a strong focus on solution-processed chalcogenide semiconductors for thin-film solar cells and novel cathode materials for sodium-ion batteries. The lab employs advanced in situ and operando characterization techniques—such as synchrotron X-ray diffraction, infrared spectroscopy, and calorimetry—to unravel the structure-property relationships during thermal imidization of polyimide precursors and electrochemical phase transformations in battery materials. Their work bridges fundamental materials science with practical device applications, emphasizing low-cost, sustainable, and high-performance energy materials.
Professor Hyun-Seok Jung's research lab specializes in advanced materials for sustainable energy conversion and storage, with a strong focus on perovskite-based optoelectronics and electrocatalysis for green chemical synthesis. The lab pioneers high-efficiency, flexible, and stable perovskite solar cells through innovative materials engineering, such as annealing-free compact electron transport layers and novel device architectures. In parallel, the lab explores selective electrocatalysts—particularly for the two-electron water oxidation reaction—aiming to enable efficient and stable hydrogen peroxide production. Their work combines computational modeling with experimental validation to design materials with enhanced activity, selectivity, and durability.
Professor Oyoung Bang's research lab specializes in cerebrovascular diseases, with a primary focus on acute ischemic stroke and endovascular therapies. The lab investigates the role of collateral circulation in determining tissue fate during reperfusion, integrating angiographic and advanced MRI techniques to guide treatment decisions. A key area of translational research involves mesenchymal stem cell (MSC) therapy for stroke recovery, evaluating long-term safety and efficacy in clinical trials. The lab also explores risk factors and racial-ethnic disparities in intracranial atherosclerotic disease (ICAD).
Professor Bon-Kwon Koo's research lab specializes in interventional cardiology and vascular imaging, focusing on the physiological assessment of coronary artery disease using fractional flow reserve (FFR) and intracoronary imaging techniques such as IVUS and OCT. The lab investigates hemodynamic and anatomical determinants of restenosis, plaque vulnerability, and optimal revascularization strategies in complex coronary interventions. A key research direction involves evaluating the long-term outcomes of antiplatelet therapy and functional assessment in percutaneous coronary intervention, with a strong emphasis on personalized, physiology-guided revascularization. The lab also pioneers the integration of advanced imaging and radiomics to identify high-risk plaques and improve risk stratification in patients with coronary artery disease.
Professor Park Minsik's research lab specializes in the design and synthesis of advanced nanomaterials for sustainable energy storage applications. The lab focuses on developing novel anode materials—particularly tin dioxide (SnO₂) and silicon-based nanostructures—tailored for high-performance lithium-ion and sodium-ion batteries. Key research directions include nanostructure engineering, electrolyte optimization to suppress dendrite formation, and the integration of 2D materials like reduced graphene oxide to enhance conductivity and structural stability. The lab employs a multidisciplinary approach combining materials synthesis, in situ characterization, and computational modeling to advance next-generation battery technologies.
Professor Jeong-Hoon Kim's research lab specializes in the design and fabrication of advanced nanomaterials for energy conversion and environmental remediation. The lab focuses on conductive polymers, metal-organic framework (MOF)-derived materials, and nanoarchitectured carbon composites, with particular emphasis on their applications in energy storage, electrocatalysis, and advanced oxidation processes. Innovative electrochemical deposition techniques and scalable synthesis methods are central to achieving precise control over material architecture and performance.
Professor Won Ki Kang's research lab specializes in translational oncology, focusing on gastrointestinal cancers—particularly gastric cancer—with an emphasis on developing novel therapeutic strategies and prognostic biomarkers. The lab investigates adjuvant therapies, including chemotherapy and chemoradiotherapy regimens, explores immunomodulatory approaches such as IL-12 gene therapy, and examines metabolic targets like monocarboxylate transporters (MCTs) in tumor microenvironment adaptation. Additionally, the lab investigates repurposed drugs, such as statins, for their potential anti-angiogenic and anti-tumor effects in colorectal and gastric cancers.
Professor Jeehwan Park's research spans biomedical engineering, advanced sensing technologies, and critical social movements in contemporary Japan. His lab investigates viral vector vaccines, particularly NDV-based platforms, for infectious disease control, while also pioneering high-sensitivity interferometric sensors for precision tilt measurement. In parallel, the lab explores the socio-political dimensions of grassroots activism, focusing on post-disaster civic movements such as anti-nuclear demonstrations, sound marches, and community-driven housing initiatives in urban Japan. This interdisciplinary approach bridges technological innovation with sociocultural analysis of civic engagement and public participation.
Professor Hyuk Jae Jang's research lab specializes in cardiovascular imaging and risk prediction, focusing on the early detection and stratification of atherosclerotic cardiovascular disease. The lab investigates metabolic and imaging biomarkers—such as the TyG index, coronary calcium score (CACS), and plaque characteristics—using advanced imaging techniques like coronary CT angiography. A key research direction involves leveraging machine learning to predict rapid coronary plaque progression, aiming to identify high-risk individuals early. The lab also explores the differential impact of statins on plaque progression and the role of metabolic syndrome in non-diabetic populations.
Professor Yong Young No's research lab specializes in organic and printed electronics, with a strong focus on organic field-effect transistors (OFETs), optoelectronic devices, and organic non-volatile memory. The lab explores innovative materials and device engineering strategies—particularly contact engineering, solution-processable semiconductors, and nanostructured charge storage systems—to enhance device performance, stability, and processability for flexible, low-cost, and large-area electronic applications. Key research directions include improving charge transport, achieving Ohmic contacts, and developing reliable memory devices using polymer electrets and nanomaterials.
Professor Seung Hoon Lee's research lab specializes in nanomaterials for biomedical applications, with a primary focus on ceria-based nanoparticles engineered for antioxidant and anti-inflammatory effects. The lab investigates the role of reactive oxygen species (ROS) in diseases such as ischemic stroke and inflammatory bowel disease (IBD), developing advanced nanotherapeutics that exploit the redox activity of ceria nanoparticles to modulate oxidative stress and apoptosis. Key research directions include the design of high-performance nanomaterials—such as PEGylated and ceria-zirconia nanoparticles—with tunable oxidation states for enhanced ROS scavenging and therapeutic efficacy.