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 Minjung Lee's research lab focuses on translational biomedical research, particularly in chronic hepatitis B virus (HBV) infection, hepatocellular carcinoma (HCC), and the molecular mechanisms of viral latency and DNA repair deficiency in cancer. The lab investigates host-virus interactions, especially involving Epstein-Barr virus (EBV), and explores natural compounds like those from licorice for antiviral and anti-tumor effects. Additionally, the lab contributes to neuroimaging research in autism spectrum disorders, analyzing functional brain connectivity patterns using large-scale neuroimaging datasets.
Professor Jeonggi Kim's research lab focuses on viral pathogenesis, host-virus interactions, and the molecular mechanisms underlying infectious diseases, particularly influenza and flaviviruses such as Zika virus. The lab investigates host factors involved in viral entry and immune evasion, including cytoskeletal proteins like vimentin as viral receptors, and explores host-derived factors that modulate antiviral immunity. A key research direction involves understanding how maternal antibodies interfere with vaccine efficacy in young animals, with implications for improving vaccination strategies. The lab also examines the role of cellular structural proteins and nuclear architecture in disease pathogenesis, including lamin A/C and cytoskeletal dynamics in mechanotransduction and viral infection.
Professor Dong In Suh's research lab specializes in pediatric respiratory medicine, with a focus on understanding the pathophysiology, diagnosis, and management of asthma and other respiratory disorders in children. The lab investigates the interplay between atopy, bronchial hyperresponsiveness, and immune dysregulation, particularly in early life, and explores the impact of prenatal maternal factors on offspring allergic diseases. Using advanced methods such as machine learning for respiratory sound analysis and clinical bronchial challenge testing, the lab aims to improve early diagnosis and personalized treatment strategies for pediatric asthma and pneumonia. Their work bridges clinical research, immunology, and digital health technologies to enhance outcomes in pediatric respiratory health.
Professor Sok-Jong Jeong's research lab specializes in the neuroimaging and neurodegenerative mechanisms underlying Parkinson’s disease, with a focus on identifying early biomarkers for disease progression. The lab investigates the roles of the choroid plexus, brain network integrity, and cerebrospinal fluid clearance systems in motor and cognitive decline. Key research directions include the structural and functional correlates of motor reserve, the impact of basal ganglia perivascular spaces on disability progression, and cortical atrophy patterns predicting dementia conversion in Parkinson’s disease. The lab integrates advanced MRI techniques, dopamine transporter imaging, and longitudinal clinical assessments to uncover neurobiological predictors of neurodegeneration.
Professor Kyung Hwa Park's research lab focuses on infectious diseases and cancer biology, with a particular emphasis on bacterial pathogenesis, antimicrobial resistance, and the molecular mechanisms underlying early carcinogenesis. The lab investigates clinically relevant pathogens such as *Staphylococcus aureus* and *Staphylococcus epidermidis*, utilizing whole-genome sequencing and animal models to understand transmission dynamics and develop novel therapeutic strategies. In oncology, the lab explores transcription factors like Oct4 and Nanog in pancreatic cancer initiation, highlighting their potential as early diagnostic markers. The research integrates molecular microbiology, translational medicine, and host-pathogen interactions to address significant clinical challenges.
Professor Ji Wook Jang's research lab specializes in the development of advanced wearable electronic systems for real-time biomedical monitoring and therapeutic applications. The lab focuses on designing stretchable, transparent, and biocompatible electronic materials—such as metallic glass nanotroughs, metal nanofibers, and liquid metals—for integration with biological interfaces. Key research directions include smart contact lenses for ocular disease diagnostics, wireless health monitoring devices, and implantable or skin-attachable therapeutic systems with real-time sensing and feedback capabilities. The lab emphasizes materials innovation combined with practical medical applications, particularly in ophthalmology and chronic disease management.
Professor Yoon, Chang Jin's research lab specializes in interventional radiology and minimally invasive endovascular therapies, with a focus on vascular interventions for gastrointestinal, hepatic, and pulmonary diseases. The lab investigates innovative stent designs, embolic materials, and image-guided treatments for conditions such as variceal bleeding, hepatocellular carcinoma, and hemoptysis. Key research directions include optimizing transcatheter arterial chemoembolization (TACE), improving outcomes in TIPS procedures, and evaluating biomarkers for predicting patient mortality. The lab also explores the role of oxidative stress in male infertility, particularly in varicocele-related infertility.
Professor Se Ik Kim's research lab focuses on translational oncology with a strong emphasis on ovarian cancer, particularly high-grade serous ovarian carcinoma (HGSOC). The lab investigates genetic, metabolic, and systemic factors influencing prognosis and treatment outcomes, including germline BRCA mutations, sarcopenia, body composition, and underweight status. Utilizing multi-omics approaches such as metagenomic analysis of serum extracellular vesicles and clinical biomarkers, the lab develops diagnostic and prognostic models to improve patient stratification and personalized care. The research also explores psychosocial outcomes, such as sexuality and quality of life, in ovarian cancer survivors.
Professor So-yeon Park's research lab focuses on infectious disease epidemiology, antimicrobial resistance, and clinical outcomes in vulnerable populations, with a particular emphasis on bacterial and viral respiratory infections. The lab investigates the impact of antibiotic therapy, mobile phone use on adolescent mental health, and post-discharge management in patients with emerging infectious diseases such as SARS-CoV-2 and Pseudomonas aeruginosa. Their work integrates large-scale population data with advanced statistical modeling to inform public health policy and clinical decision-making.
Professor Sukki Cho's research lab specializes in thoracic surgery and oncology, with a focus on lung cancer and esophageal disorders. The lab investigates postoperative pulmonary function, tumor characteristics such as size and metabolic activity (e.g., SUVmax on PET/CT), and outcomes in patients with lung adenocarcinoma, particularly those with ground-glass opacities. It also explores prognostic factors in colorectal cancer metastasis and minimally invasive interventions for pneumothorax. The lab emphasizes clinical outcomes, imaging biomarkers, and surgical decision-making in thoracic malignancies and critical thoracic conditions.
Professor Eun Jung Kim's research lab specializes in algorithmics and graph theory, with a strong focus on parameterized complexity, graph decomposition, and network optimization. The lab develops efficient algorithms for fundamental graph problems, particularly those involving treewidth, vertex deletion, and cycle structures, while also exploring practical applications in energy-efficient computing and high-performance interconnects. Key contributions include breakthroughs in the Erdős-Pósa property for chordless cycles and novel flow-augmentation techniques for both directed and undirected graphs.
Professor Doowon Lee's research lab specializes in the development of advanced 2D materials and resistive switching devices for next-generation sensing and neuromorphic computing applications. The lab focuses on creating high-performance, low-power gas sensors—particularly for NO and O₂—using memristor-based architectures (gasistors) and oxide semiconductors like MoS₂, SnO₂, and IGZO. A key research direction involves integrating these smart sensors with artificial intelligence, especially neural networks, to enable real-time, accurate, and energy-efficient environmental and biomedical monitoring. The lab also explores fundamental mechanisms in 2D materials and resistive switching for applications in label-free DNA detection and chiral separation.
Professor Myung-gyu Kim's research lab focuses on the immunological and inflammatory mechanisms underlying acute and chronic kidney diseases, with a particular emphasis on macrophage polarization, regulatory T cell function, and the role of aging in kidney injury progression. The lab investigates therapeutic strategies targeting immune modulation—such as IL-2/anti-IL-2 complexes and PPAR-γ agonists—to mitigate renal fibrosis and nephrotoxicity in models of ischemia-reperfusion and cisplatin-induced injury. Additionally, the lab explores the gut-kidney axis, examining how microbial dysbiosis influences systemic inflammation and kidney disease pathogenesis. These studies aim to identify novel immunomodulatory targets for preventing AKI-to-CKD transition and improving outcomes in renal diseases.
Professor Tae Hyon Ha's research lab focuses on the neurobiological and neuroimaging underpinnings of mood and anxiety disorders, with a particular emphasis on bipolar disorder, major depressive disorder, and obsessive-compulsive disorder. The lab investigates structural and functional brain abnormalities using advanced neuroimaging techniques such as voxel-based morphometry and diffusion tensor imaging, while also exploring neuroelectrophysiological and autonomic correlates of mood disorders. A key direction involves translating neuroimaging findings into clinical applications, including evaluating novel treatments like transcranial direct current stimulation (tDCS) and analyzing real-world medication patterns in relation to clinical guidelines.
Professor Jung-Wook Cho's research lab specializes in the thermophysical properties and processing behavior of mold fluxes in continuous steel casting, with a focus on heat transfer, rheology, and glass structure-property relationships. The lab investigates interfacial thermal resistance, radiative and conductive heat transfer mechanisms, and the non-Newtonian behavior of molten mold fluxes, particularly under high-temperature conditions relevant to advanced high-strength steels. Using advanced characterization techniques such as Raman spectroscopy, FTIR, and 27Al MAS NMR, the lab explores the structural evolution of silicate-based mold fluxes and its impact on casting performance and defect formation.
Professor Bo Kyung Kim's research lab focuses on molecular and cellular mechanisms underlying plant development and human health, with a strong emphasis on hormonal regulation in plants and psychosocial factors in career development. The lab investigates brassinosteroid signaling in light-responsive growth and the role of ubiquitin ligases in developmental plasticity, while also exploring psychological and organizational factors influencing career success in young adults and professionals. Recent work extends into proteomic analysis of hypertension-related pathways and preemptive immunotherapy in pediatric transplant patients. The lab integrates molecular biology, systems biology, and social science methodologies to address complex biological and behavioral questions.
Professor Kahng Se-Jong's research lab specializes in the atomic-scale investigation of low-dimensional nanomaterials and molecular assemblies using advanced scanning probe microscopy techniques. The lab focuses on understanding and manipulating electronic, magnetic, and supramolecular properties at the single-molecule and nanoscale level, with particular emphasis on hybrid nanostructures, molecular spin states, and intermolecular interactions such as hydrogen and halogen bonding. Their work bridges molecular design, surface science, and theoretical modeling to enable the rational engineering of functional nanomaterials for next-generation spintronic and molecular electronic devices.
Professor Mimi Kim's research lab specializes in hepatology and gastrointestinal disease, with a strong focus on liver metabolism, fatty liver disease, and advanced hepatic fibrosis. The lab investigates diagnostic strategies for liver fibrosis using non-invasive imaging techniques such as magnetic resonance elastography (MRE) and biomarkers like M2BPGi, aiming to improve early detection and risk stratification. Additional research directions include sarcopenia in chronic liver disease, post-surgical outcomes after bariatric and antireflux procedures, and the prevalence and characterization of gallbladder sludge. The lab integrates radiological, clinical, and epidemiological approaches to advance precision medicine in liver and biliary disorders.
Professor Jeongsu Oh's research lab focuses on cell cycle regulation, particularly the molecular mechanisms governing meiotic arrest and resumption in mammalian oocytes. The lab investigates key regulators such as Cdc2-cyclin B (MPF), Wee1/Myt1 kinases, Cdc25 phosphatases, and the cytostatic factor (CSF) that maintain metaphase II arrest. A central theme is the dynamic control of Cdk1 phosphorylation and cyclin degradation, as well as the role of signaling molecules like CaMKII and melatonin in protecting oocytes from DNA damage during prolonged prophase arrest. The lab also explores the therapeutic potential of targeting cell cycle regulators, such as MASTL, in cancer cells.
Professor Yong Hyun Lee's research lab specializes in the development of biocompatible, stimuli-responsive nanomaterials derived from endogenous biomolecules—particularly bilirubin—for targeted disease therapy. The lab focuses on leveraging the intrinsic biological activities of bilirubin, such as antioxidant, anti-inflammatory, and anticancer properties, to design smart drug delivery systems that respond to tumor microenvironment stimuli like reactive oxygen species (ROS) or external triggers such as light. Key research directions include nanotherapeutics for cancer, liver fibrosis, and inflammatory diseases, with an emphasis on enhancing drug delivery efficiency, reducing systemic toxicity, and overcoming immunosuppressive microenvironments. The lab also explores prodrug strategies to improve the pharmacokinetics and bioavailability of existing drugs like celecoxib.