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 Seung Yong Jeong's research lab specializes in translational and clinical oncology, with a primary focus on rectal and colorectal cancer. The lab investigates critical factors influencing treatment outcomes, including timing of surgery after chemoradiotherapy, pathological risk markers like tumor budding and mesorectal invasion depth, and the impact of lifestyle factors such as smoking on surgical complications. The lab also explores tumor heterogeneity and germline mutations to improve personalized treatment strategies and enhance oncologic outcomes.
Professor Jaemyung Myoung's research lab specializes in the design, synthesis, and application of advanced 2D and nanostructured materials for next-generation electronic and optoelectronic devices. Key research directions include the development of MXene-based sensors for chemical, biological, and physical detection, flexible and transparent electrochromic devices using patternable electrochromic gels, and nanostructured ZnO and other oxide-based heterostructures for gas sensing, light emission, and Schottky diodes. The lab emphasizes innovative fabrication techniques such as micropatterning, self-assembly, and atomic-layer control to enable high-performance, flexible, and miniaturized devices.
Professor Yongsu Choi's research lab focuses on regenerative medicine and cellular therapy, with a central emphasis on mitochondrial transfer as a novel therapeutic strategy for diseases involving mitochondrial dysfunction. The lab investigates mitochondrial transplantation in various pathological contexts, including tendinopathy and degenerative diseases like diabetes, aiming to restore cellular function through exogenous mitochondria. They also explore stem cell and dendritic cell interactions to modulate immune tolerance, highlighting translational applications in tissue repair and immune regulation. Their work combines innovative cell delivery techniques—such as centrifugation-based mitochondrial transfer—with in vitro and in vivo models to advance regenerative therapies.
Professor Sung Woo Hwang's research lab specializes in advanced nanomaterials and 2D materials for next-generation electronic and optoelectronic applications. Key research directions include the design and synthesis of high-performance semiconductor nanostructures—such as single-crystal nanowires and heterostructures—engineered for tunable electrical and optical properties. The lab also investigates fundamental phenomena in low-dimensional systems, including phonon engineering in thermoelectric materials and relativistic quantum effects in entangled states, while focusing on practical device integration such as low-resistance contacts and broadband photodetectors. Their work bridges materials synthesis, nanoscale characterization, and device physics to enable energy-efficient and high-speed nanoelectronics and infrared technologies.
Professor Eun-Hee Kim's research lab focuses on the molecular mechanisms underlying cancer development, with a particular emphasis on sex differences in cancer incidence and mortality, the pathogenesis of hematological malignancies such as hairy cell leukemia, and the identification of novel therapeutic strategies for treatment-resistant cancers like glioma. The lab investigates the roles of genetic mutations (e.g., BRAFV600E), dysregulated cell death pathways (including autophagy and apoptosis), and inflammatory mediators (such as COX-2 and prostaglandins) in tumorigenesis. Additionally, the lab explores natural compounds and metal-based agents (e.g., selenite, arsenic trioxide, and eugenol derivatives) as potential anticancer agents, especially in cancers with apoptotic resistance. Their work bridges basic molecular oncology with translational applications, aiming to develop targeted therapies for aggressive and therapy-resistant cancers.
Professor Jae Woo Park's research lab specializes in environmental materials and sustainable technologies, focusing on the development of advanced nanomaterials for environmental remediation and energy applications. Key research directions include the design of highly efficient activated carbon from renewable resources for gas storage and purification, the engineering of graphene-based membranes for energy-efficient water desalination, and the understanding of sorption mechanisms of organic pollutants in complex environmental systems. The lab also investigates the interplay between surfactants, natural organic matter, and hydrophobic contaminants, contributing to improved risk assessment and remediation strategies.
Professor Mi Jeong Lee's research lab focuses on the biology and therapeutic potential of adipose-derived stem cells (ASCs) and their secretome in metabolic and neurodegenerative diseases. The lab investigates the molecular mechanisms regulating adipogenesis, adipokine secretion, and vitamin D metabolism in human adipose tissue, with a particular emphasis on how inflammation and hormonal signals influence tissue homeostasis. Key research directions include the role of ASC-derived exosomes in modulating pathological phenotypes in Huntington’s disease and the identification of paracrine factors that mediate tissue repair and metabolic regulation.
Professor Moon-Ho Jo's research lab specializes in the synthesis, characterization, and application of two-dimensional (2D) van der Waals materials, with a focus on controlling their crystal structure, electronic properties, and heterostructure engineering. The lab explores novel 2D semiconductors such as SnS and SnS₂, aiming to achieve precise control over polymorphism and carrier type (n- or p-type) for advanced electronic and thermoelectric devices. Key research directions include 2D heteroepitaxy, interlayer coupling in van der Waals heterostructures, and the development of spintronic and photonic devices based on 2D materials with tailored symmetry and interface engineering. The lab also investigates the role of dimensionality and quantum confinement in enhancing thermoelectric and optoelectronic performance.
Professor Kyung-Hwa Han's research lab specializes in diagnostic and prognostic radiology, with a strong focus on improving clinical decision-making through advanced medical imaging and artificial intelligence. The lab investigates the integration of radiological findings—particularly from MRI and contrast-enhanced imaging—into predictive models to enhance disease diagnosis and outcome prediction. A key area of innovation involves the development and evaluation of AI-generated radiology reports for accuracy, patient-friendliness, and clinical utility, while rigorously assessing for artificial hallucinations. The lab also emphasizes methodological rigor in radiological research, including inter-reader agreement and survival analysis using Cox regression with attention to real-world data limitations.
Professor Sae Won Han's research lab specializes in molecular oncology and precision medicine, focusing on identifying predictive biomarkers and molecular mechanisms underlying treatment response in non-small-cell lung cancer (NSCLC) and colorectal cancer (CRC). The lab employs next-generation sequencing (NGS) and immunohistochemical analyses to study genetic alterations, including EGFR mutations, KRAS status, tumor mutation burden (TMB), and RNA editing events such as A-to-I editing in RHOQ. Key research directions include understanding the role of downstream signaling pathways (e.g., Akt, Erk, STAT3) and their impact on survival and therapeutic response to targeted therapies like gefitinib. The lab also investigates the clinical implications of genomic instability and somatic mutations in cancer progression and prognosis.
Professor Kwan-gyu Song's research lab specializes in molecular and translational medicine, with a focus on the genetic and immunological mechanisms underlying autoimmune and inflammatory diseases. The lab investigates gene polymorphisms—particularly in immune-related genes such as TNF-α, CTLA-4, and ACE—and their associations with susceptibility to and response to therapy in conditions like systemic lupus erythematosus, psoriasis, sarcoidosis, and connective tissue disease-associated interstitial lung disease. Additionally, the lab explores the therapeutic potential of natural compounds, such as luteolin, in modulating cell signaling pathways in cancer and placental disorders. The integration of genetic epidemiology, molecular biology, and clinical meta-analyses defines the lab’s interdisciplinary approach to identifying biomarkers and therapeutic targets.
Professor Jong-Hoon Kim's research lab specializes in the development of smart, multifunctional theranostic agents for precision cancer therapy. The lab focuses on designing stimuli-responsive prodrugs and nanotherapeutics that combine targeted delivery, enzyme or organelle-specific activation, and real-time diagnostic monitoring—particularly through mitochondrial targeting and reactive oxygen species (ROS)-responsive systems. Key innovations include biotin-mediated tumor targeting, near-infrared laser-induced hyperthermia, and integration of photosensitizers with anti-angiogenic agents to overcome limitations like hypoxia in photodynamic therapy. The lab also explores microfluidic platforms for stem cell differentiation, emphasizing controlled microenvironments for regenerative medicine applications.
Professor Kyunghan Lee's research lab specializes in mobile and delay-tolerant networking, with a strong focus on human mobility modeling, wireless data offloading, and performance optimization in mobile networks. The lab conducts trace-driven simulations using real-world user mobility and connectivity data to understand and improve the efficiency of WiFi offloading, energy savings, and data dissemination in opportunistic networks. Key research directions include developing realistic mobility models that capture statistical features of human movement—such as heavy-tailed inter-contact times and self-similar waypoint distributions—and designing practical, non-clairvoyant algorithms for routing and resource allocation in DTNs. The lab also explores the impact of physiological and behavioral factors—like anesthesia in preclinical imaging—on data acquisition and kinetic modeling in biomedical applications.
Professor Young Dae Kim's research lab focuses on cardiovascular and cerebrovascular diseases, particularly the interplay between metabolic disorders such as NAFLD and sarcopenia with increased risk of atherosclerotic cardiovascular disease (ASCVD). The lab investigates stroke pathophysiology, risk stratification using clinical scores like CHADS(2), and optimal management strategies for acute conditions such as ischemic stroke and variceal bleeding in liver cirrhosis. A key emphasis is placed on early intervention, risk prediction, and improving outcomes in aging and high-risk populations, especially in East Asian populations undergoing rapid lifestyle and demographic transitions.
Professor Jung Woo Lee's research lab specializes in advanced materials and energy technologies, with a strong focus on nanomaterials for energy storage and conversion, including lithium-ion batteries, hydrogen storage, and high-efficiency photovoltaic systems. The lab develops functional nanomaterials such as modified carbon nanotubes, vanadium oxide, and iron oxide–carbon nitride hybrids for applications in sustainable energy, environmental remediation, and biomedical engineering. A key theme is the design of soft, biocompatible, and high-performance energy systems for next-generation wearable and implantable electronics. The lab also explores intelligent signal processing techniques for video coding, demonstrating interdisciplinary innovation in materials science and information technology.
Professor JeKyung Seong's research lab focuses on molecular mechanisms underlying chronic diseases, particularly in the context of cancer, metabolic disorders, and inflammatory conditions. The lab investigates key regulatory pathways involving viral oncoproteins (e.g., HBx in hepatocellular carcinoma), transcription factors (e.g., HIF-1α and Smad3), and host-microbe interactions (e.g., Bifidobacterium in metabolic health). Recent work also extends into advanced genome-editing technologies, such as prime editing, for modeling human diseases. The lab integrates molecular biology, genomics, and in vivo models to uncover therapeutic targets and develop precision disease models.
Professor Seunggeun Lee's research lab specializes in statistical genetics and computational biology, focusing on developing advanced statistical methods for large-scale genomic data analysis. The lab pioneers methods for rare variant association testing, polygenic risk score prediction across diverse ancestries, and efficient mixed model inference in biobank-scale data. Key research directions include improving type I error control in unbalanced case-control studies, correcting bias in principal component score prediction, and enhancing power through functional annotations and transfer learning. The lab's work bridges statistical methodology with practical applications in complex disease genetics and precision medicine.
Professor Jong-Hoon Kim's research lab specializes in the development of smart, targeted theranostic agents for cancer therapy, focusing on stimuli-responsive prodrugs and nanomaterials that enable precise diagnosis and treatment. The lab integrates principles of bioorthogonal chemistry, organelle-specific delivery, and enzyme-triggered activation to enhance therapeutic efficacy while minimizing off-target effects. Key research directions include mitochondrial targeting, hypoxia mitigation in photodynamic therapy, and the design of multifunctional nanoparticles for real-time monitoring of cellular responses. The lab also explores microfluidic systems to optimize stem cell differentiation, demonstrating a broad yet focused approach to precision oncology and regenerative medicine.
Professor Nam Joong Kim's research lab specializes in infectious diseases, with a primary focus on bacterial infections in immunocompromised and chronic disease populations. The lab investigates the clinical microbiology, pathogenesis, and outcomes of serious bacterial infections such as spontaneous bacterial peritonitis, vertebral osteomyelitis, and bacteremia, particularly involving multidrug-resistant organisms like ESBL-producing Enterobacteriaceae, Enterococcus species, and non-tuberculous mycobacteria. The lab emphasizes the integration of clinical, radiological, and laboratory data to improve diagnosis and management of difficult-to-treat infections. Their work also explores antimicrobial resistance patterns and their impact on patient outcomes in conditions like liver cirrhosis and spinal infections.
Professor Hyo-Jung Kim's research lab specializes in advanced oxide semiconductor materials and thin-film devices, with a strong focus on solution-processed and low-temperature fabrication techniques for next-generation optoelectronic and memory devices. The lab explores innovative methods such as high-pressure annealing, UV-assisted direct patterning, and excimer laser crystallization to enhance the performance and processability of oxide thin-film transistors and resistive random access memory (RRAM). A key research direction involves improving the stability, electrical characteristics, and light response of metal oxide semiconductors for flexible and transparent electronics. The lab also pioneers the use of sustainable, biomaterial-based components—such as glucose—in RRAM devices, emphasizing eco-friendly and low-cost fabrication.