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 Young Ah Lee's research lab focuses on pediatric thyroid cancer, with a strong emphasis on understanding the molecular and genetic drivers of pediatric papillary and follicular thyroid cancers, particularly in the context of radioiodine-refractory disease. The lab investigates the impact of environmental exposures—such as perfluoroalkyl substances (PFAS)—on early-life development and thyroid health, integrating epidemiological and molecular approaches. A key focus is also on identifying modifiable risk factors, such as vitamin D deficiency, and their associations with metabolic and endocrine outcomes in adolescents. The lab combines genomics, transcriptomics, and population-based studies to advance precision medicine in pediatric endocrine disorders.
Professor In-Sung Yeo's research lab specializes in biomaterials and dental implant technology, focusing on enhancing osseointegration through advanced surface modifications of titanium implants. The lab investigates nano- and micro-scale surface topographies, including anodic oxidation, hydroxyapatite coating, and electrospun nanofibrous scaffolds, to improve bone integration and reduce infection risks. A key research direction involves understanding the interplay between implant surface chemistry, wettability, and bacterial biofilm formation to develop infection-resistant implant surfaces. The lab also explores biomimetic materials such as collagen/silk fibroin blends for tissue engineering applications.
Professor Goo Jang's research lab specializes in advanced genome engineering and reproductive biotechnologies in livestock, with a primary focus on improving cattle through precise genetic modifications. The lab develops and applies cutting-edge techniques such as CRISPR-Cas9 genome editing, transposon-based transgenesis, and somatic cell nuclear transfer (SCNT) to generate genetically enhanced animals with improved agricultural traits. A key emphasis is placed on enhancing developmental competence of bovine embryos through optimized in vitro culture systems, including the use of glycosaminoglycans (GAGs) to improve embryo viability. The lab also conducts comprehensive genomic analyses using next-generation sequencing to ensure genetic stability and accurate integration of transgenes.
Professor Young Jun Chai's research lab specializes in minimally invasive and scar-free thyroid surgery, with a strong focus on advancing endoscopic and robotic thyroidectomy techniques such as Transoral Endoscopic Thyroidectomy (TOET), Transoral Endoscopic Thyroidectomy Vestibular Approach (TOETVA), and the TORT procedure. The lab integrates advanced imaging and artificial intelligence, particularly deep learning algorithms, to improve preoperative diagnosis and risk stratification of thyroid nodules. Research also emphasizes the clinicopathological implications of tumor location in papillary thyroid carcinoma, especially regarding lymph node metastasis and patient management strategies.
Professor Sang-Hwan Do's research lab focuses on the neuropharmacological mechanisms of anesthetic and analgesic agents, particularly exploring how drugs like magnesium sulfate, dexmedetomidine, lidocaine, and volatile anesthetics modulate neurotransmitter transporters such as EAAT3. The lab investigates the intracellular signaling pathways—especially protein kinase C and phosphatidylinositol 3-kinase—involved in these modulatory effects, aiming to enhance perioperative pain management and reduce opioid dependence. Using model systems like Xenopus oocytes, the lab elucidates the cellular and molecular basis of drug actions on excitatory amino acid transporters, with implications for improving anesthetic efficacy and neuroprotection.
Professor Kichul Shin's research lab focuses on the immunological roles of mast cells, particularly their contribution to chronic inflammatory diseases such as rheumatoid arthritis and axial spondyloarthritis. The lab investigates mast cell-derived proteases—especially tryptase—and their involvement in joint inflammation and tissue destruction, using both murine models and translational studies. A key research direction involves evaluating the therapeutic potential of human umbilical cord blood-derived mesenchymal stem cells (hUCB-MSCs) in modulating autoimmune and inflammatory responses in rheumatoid arthritis. The lab also explores advanced imaging techniques, such as SPECT/CT, to improve early diagnosis of sacroiliitis in axial spondyloarthritis.
Professor Kang-Yoon Lee's research lab specializes in advanced electronic systems and sensors, with a strong focus on low-power and energy-harvesting circuits, biomedical device integration, and intelligent sensor systems. The lab develops innovative CMOS-based transceivers and RF-to-DC power converters for wireless applications, emphasizing high efficiency, miniaturization, and robust performance in real-world environments. It also conducts cutting-edge research in temperature-compensated piezoresistive pressure sensors for automotive and medical applications, ensuring high accuracy and reliability. Additionally, the lab explores implantable and wearable medical devices, particularly in spinal surgery outcomes and patient-centered health monitoring systems.
Professor Gayong Shim's research lab specializes in the development of advanced nanomaterials and bioinspired delivery systems for next-generation therapeutics, with a strong focus on cancer immunotherapy, gene editing, and nucleic acid delivery. The lab pioneers innovative strategies using cell membrane-derived vesicles, stimuli-responsive nanoparticles, and biodegradable materials to enhance drug delivery, modulate the tumor microenvironment, and improve immune responses. Key research directions include in situ tumor vaccination, immune checkpoint blockade, and the application of CRISPR/Cas9 and siRNA delivery systems for precision medicine.
Professor Minah Suh's research lab specializes in neurovascular coupling, focusing on the dynamic interplay between neural activity, cerebrovascular responses, and gaseous signaling molecules in the brain. The lab employs advanced optical and electrochemical techniques to study hemodynamic changes during epilepsy, stress, and motor behaviors, with an emphasis on real-time in vivo measurements of blood flow, oxygenation, and signaling molecules like nitric oxide and carbon monoxide. Key research directions include understanding the mechanisms of interictal spikes, predictive versus sensory-driven motor control, and the impact of chronic stress on cerebral circulation. The lab integrates multimodal imaging, electrophysiology, and biosensing to unravel the physiological and pathological regulation of cerebral blood flow.
Professor Hyun-Do Jung's research lab specializes in the development of advanced biomaterials and surface engineering strategies for orthopedic and cardiovascular implants. The lab focuses on enhancing the biocompatibility, mechanical durability, and corrosion resistance of biodegradable and biostable implant materials—particularly magnesium alloys, polyether ether ketone (PEEK), and poly(ether imide) (PEI)—through innovative coating technologies, 3D printing, and nanoscale surface modifications. Key research directions include functional 3D-printed wound dressings using bioinspired inks, plasma-assisted surface modifications, and hybrid coating systems with tantalum, hydroxyapatite, and titanium dioxide for improved osseointegration and drug delivery. The lab uniquely integrates additive manufacturing, machine learning, and biomimetic design to create next-generation implantable devices with tailored mechanical and biological performance.
Professor Ho-Keun Kwon's research lab focuses on immunomodulation through probiotics and natural plant extracts, with a central emphasis on regulatory T cells (Tregs) and dendritic cell-mediated immune tolerance. The lab investigates how specific probiotic mixtures and cinnamon extracts can induce regulatory immune cells, suppress pro-inflammatory responses, and exert anti-tumor and anti-inflammatory effects both in vitro and in vivo. Key research directions include the molecular mechanisms of Foxp3+ Treg induction, the role of regulatory dendritic cells, and the therapeutic potential of natural compounds in autoimmune diseases and cancer.
Professor Joonbum Bae's research lab specializes in wearable human-machine interface systems, focusing on soft, stretchable, and flexible electronics for human motion sensing and rehabilitation. The lab develops advanced sensor and actuator technologies using liquid metal-based conductive inks—particularly eutectic gallium-indium (eGaIn)—fabricated via direct ink writing (DIW) for applications in virtual reality, hand prosthetics, and gait rehabilitation. Key research directions include multimodal sensing gloves with haptic feedback, spring-guided hand exoskeletons, and portable gait monitoring systems for clinical diagnostics and therapy. The lab emphasizes the integration of soft robotics, smart materials, and real-time signal processing to enable personalized and quantitative healthcare solutions.
Professor Ji Hoon Song's research lab specializes in organizational behavior and human resource development, with a strong focus on learning organization culture, work engagement, and knowledge creation in Korean and East Asian organizational contexts. The lab investigates how transformational leadership, interpersonal trust, self-efficacy, and team dynamics influence employee performance, creativity, and organizational learning. Using advanced quantitative methods such as structural equation modeling and hierarchical regression, the lab emphasizes empirical validation of theoretical models in real-world organizational settings.
Professor Jae Myung's research lab specializes in gastrointestinal diseases, with a focus on inflammatory bowel disease (IBD), ulcerative colitis (UC), and rare gastrointestinal conditions such as mesenteric lipomas and rectal syphilis. The lab investigates clinical epidemiology using real-world data, including national health insurance claims, to improve disease identification and outcomes. It also explores novel therapeutic approaches, such as probiotic and herbal interventions for *H. pylori* infection, and evaluates clinical risks in endoscopic procedures, particularly in patients with comorbid conditions like obstructive sleep apnea.
Professor Hack-Lyoung Kim's research lab focuses on cardiovascular risk prediction and prevention, with a strong emphasis on arterial stiffness, hypertension, and metabolic syndrome. The lab investigates the pathophysiological links between hemodynamic stress, vascular remodeling, and early subclinical atherosclerosis, integrating non-invasive hemodynamic measurements with clinical and metabolic markers. Key research directions include the role of systemic factors—such as *H. pylori* infection and body fat distribution—in modulating vascular health and cardiovascular risk. The lab also contributes to clinical guideline development, particularly in optimizing blood pressure monitoring and management strategies using out-of-office measurements.
Professor Anzar Khan's research lab specializes in the development of stimuli-responsive and functional polymers through precision synthetic methodologies, with a focus on click chemistry—particularly the thiol-epoxy reaction—for efficient polymer synthesis and post-polymerization modification. The lab explores dynamic molecular systems, including photochromic foldamers that undergo light-induced conformational switching, enabling applications in smart materials and responsive delivery systems. A key research direction involves the design of multifunctional polymers and crosslinked networks with tailored reactivity and properties through selective functionalization of epoxide and thiol groups. The lab also investigates surface modification techniques for advanced materials and biomedical applications.
Professor Ji Yun Noh's research lab specializes in infectious disease epidemiology, with a focus on respiratory viruses including influenza and SARS-CoV-2. The lab investigates the impact of public health interventions—such as social distancing and infection control measures—on viral transmission dynamics and epidemic patterns. It also conducts serosurveillance to assess population-level immunity and disease burden, contributing critical insights for pandemic preparedness and hospital infection control strategies.
Professor Jeong Chan Joo's research lab specializes in synthetic biology and metabolic engineering, focusing on the sustainable production of platform chemicals and bioplastics from renewable biomass. The lab develops microbial cell factories—particularly engineered strains of *Corynebacterium glutamicum* and *Pseudomonas putida*—to convert lignin-derived aromatic compounds and simple sugars into high-value chemicals like adipic acid and 2-pyrone-4,6-dicarboxylic acid (PDC). A key focus is on discovering and applying novel biocatalysts, such as enoate reductases, to enable efficient, enzymatic conversions under mild conditions. The lab also explores biological funneling strategies to streamline the utilization of complex, mixed substrates from lignocellulosic biomass.
Professor Hoon-Suk Cha's research lab focuses on inflammatory and autoimmune rheumatic diseases, with a particular emphasis on rheumatoid arthritis (RA), connective tissue diseases, and vasculitides. The lab investigates the pathogenic mechanisms underlying these conditions, including the role of proinflammatory cytokines, angiogenic factors like VEGF-C, and molecular pathways such as PUMA in fibroblast-like synoviocytes. Utilizing clinical epidemiology, metabolomics, and molecular biology techniques, the lab aims to identify novel biomarkers and therapeutic targets for early diagnosis and improved management of autoimmune and systemic inflammatory disorders.
Professor Seyong Oh's research lab specializes in next-generation neuromorphic electronics, focusing on the development of flexible, optoelectronic, and three-terminal artificial synapses using advanced oxide semiconductors, organic semiconductors, and 2D materials. The lab pioneers innovative device architectures—such as ion-gel-based synaptic transistors, vertical synaptic structures, and nanostructured organic phototransistors—that enable bidirectional synaptic plasticity, nondestructive readout, and optical weight modulation. Their work emphasizes materials engineering for defect control, ion mobility, and interface engineering to achieve stable, high-performance neuromorphic devices suitable for brain-inspired computing and low-power AI hardware.