首尔大学、KAIST、延世大学等韩国QS前10名大学的研究室信息。
Professor Eunkyeong Jeong's research lab specializes in translational neuroscience and medical education, with a primary focus on spinal cord injury (SCI) repair mechanisms and neuroimmune modulation. The lab investigates the role of neuropeptides such as substance P in promoting functional recovery through immune modulation, stem cell recruitment, and cytokine regulation. Additionally, the lab explores innovative pedagogical approaches in medical education, including team-based learning and peer-assisted dissection, to enhance student engagement and clinical skill acquisition. These interdisciplinary efforts bridge basic neuroscience with clinical application and educational innovation.
Professor Hyun-Ho Jeong's research lab specializes in the development of advanced, biocompatible neural interface systems and neuromodulation technologies for treating neurological and psychiatric disorders. The lab focuses on creating soft, flexible, and implantable electronic devices—such as liquid metal-based electrodes and laser-patterned graphene bioelectrodes—that mimic the mechanical properties of brain tissue to minimize damage and enable long-term stability. Key research directions include stereotactic neurosurgery for treatment-resistant conditions like obsessive-compulsive disorder and essential tremor, as well as innovative applications of MRI-guided focused ultrasound and topical therapies for ocular and autoimmune-related disorders. The lab integrates materials science, biomedical engineering, and clinical neuroscience to pioneer next-generation implantable neuromodulation systems with high biocompatibility and functional precision.
Professor Kyung Mi Oh's research lab focuses on the neurobiological and clinical aspects of migraine, with particular emphasis on interictal brain metabolism, comorbid psychiatric conditions such as anxiety and depression, and the impact of hormonal changes—especially in middle-aged women—on headache disorders. The lab also investigates sensory symptoms like photophobia and their accurate assessment, as well as the role of metabolic factors such as insulin resistance in stroke outcomes. Using advanced neuroimaging and epidemiological methods, the lab aims to improve the understanding and management of neurological and psychiatric comorbidities in headache and cerebrovascular diseases.
Professor Young Joo Lee's research lab specializes in advanced solid-state nuclear magnetic resonance (NMR) and in situ characterization techniques to investigate the local electronic and structural environments in energy materials, particularly lithium-ion and lithium–sulfur battery materials. The lab focuses on understanding ion diffusion, redox mechanisms, and structural evolution in complex oxides and polymers under electrochemical cycling, using a combination of NMR, XRD, and computational methods. A key research direction involves probing local lithium and proton environments in cathode materials to elucidate structure–property relationships critical for next-generation energy storage systems.
Professor Eun-Kyung Jeong's research lab focuses on translational biomedical research with a strong emphasis on spinal cord injury (SCI) repair and neuroimmunomodulation. The lab investigates the role of neuropeptides such as substance P in modulating post-injury inflammation, promoting M2 macrophage polarization, and enhancing endogenous stem cell recruitment to improve functional recovery. In parallel, the lab explores innovative educational methodologies in medical training, including team-based learning (TBL) and peer-assisted dissection, to enhance student engagement and academic performance. These interdisciplinary efforts bridge neuroscience, immunology, and health professions education.
Professor Hyuk-Jin Cha's research lab focuses on cellular signaling mechanisms underlying DNA damage response, cancer metastasis, and stem cell senescence. The lab investigates key molecular players such as gamma-H2AX, E-cadherin, and MAP kinase pathways (including ERK and p38) in maintaining genomic stability, regulating epithelial-mesenchymal transition (EMT), and controlling cell cycle progression. A central theme is the functional significance of post-translational modifications—particularly phosphorylation—on protein activity and cellular fate in both normal and disease states. The lab employs advanced techniques like phospho-specific antibodies, immunofluorescence, and synchronized cell systems to dissect dynamic signaling events in real time.
Professor Jae-Young Oh's research lab specializes in posterior segment ophthalmology, focusing on the microvascular and structural changes in the choroid and retina associated with age-related macular degeneration (AMD), polypoidal choroidal vasculopathy (PCV), and central serous chorioretinopathy (CSCR). The lab employs advanced imaging techniques such as optical coherence tomography (OCT) and OCT angiography to quantify choroidal thickness, vascular density, and retinal layer integrity, aiming to understand the pathophysiology of these conditions. A key research direction involves investigating the interplay between ocular perfusion pressure, choroidal hemodynamics, and early retinal changes, particularly in the context of reticular pseudodrusen and non-vascular retinal alterations. The lab also emphasizes the clinical correlation of imaging biomarkers with visual acuity, advocating for multimodal assessment to predict visual outcomes.
Professor Jun-Seok Park's research lab specializes in microwave and millimeter-wave circuit design, with a strong focus on advanced passive components and integrated RF systems. The lab develops innovative structures such as defected ground structures (DGS) for compact, high-performance filters and low-pass filters, emphasizing miniaturization, wide stopbands, and efficient modeling through equivalent circuit techniques. It also explores on-device machine learning and neural network accelerators tailored for mobile and IoT applications, emphasizing energy efficiency, low power operation, and support for diverse deep learning workloads. Additionally, the lab investigates novel RF systems, including interrogation enhancers for UHF RFID, enabling extended communication ranges in constrained environments.
Professor Young-Ho Jin's research lab specializes in neural mechanisms underlying autonomic regulation, with a focus on the nucleus tractus solitarius (NTS) as a key integration center for visceral afferent signals. The lab investigates ion channels—particularly TRP channels (TRPA1, VR1) and purinergic receptors (P2X)—in sensory neurons and their roles in modulating synaptic transmission related to satiety, cardiovascular control, and nociception. Using electrophysiological techniques in brainstem slices and primary neuron cultures, the lab explores how neurotransmitters and endogenous ligands regulate synaptic efficacy and neuronal excitability in second-order NTS neurons. A central theme is understanding how peripheral signals from the gastrointestinal and cardiovascular systems are processed at the first synapse in the brainstem to maintain homeostasis.
Professor Sungwook Choi's research lab specializes in orthopedic regenerative medicine and biomaterials, focusing on innovative surgical techniques and tissue engineering for musculoskeletal disorders. The lab investigates advanced implantation methods such as fibrin-based autologous chondrocyte implantation and reverse shoulder arthroplasty, aiming to improve clinical outcomes in cartilage and joint repair. Additionally, the lab develops multifunctional magnetic nanoparticles for targeted cancer therapy and medical imaging, integrating nanotechnology with clinical applications. Their work bridges the gap between biomedical engineering and orthopedic surgery, emphasizing minimally invasive techniques and smart biomaterials.
Professor Ji Won Lee's research lab specializes in pediatric hematology and oncology, with a focus on optimizing conditioning regimens and therapeutic strategies in hematopoietic stem cell transplantation (HSCT) for children with high-risk cancers such as neuroblastoma and acute lymphoblastic leukemia (ALL). The lab investigates pharmacokinetic optimization through therapeutic drug monitoring (TDM) of agents like busulfan, explores alternatives to total body irradiation (TBI) to reduce long-term toxicity, and examines genetic factors influencing drug response and toxicity in iron chelation therapy. The lab also investigates novel approaches to improve endoscopic management of biliary tract diseases in pediatric patients.
Professor Jeong Man-ki's research lab specializes in translational oncology with a focus on head and neck squamous cell carcinoma (HNSCC). The lab investigates biomarkers such as PD-L1 and CD8+ tumor-infiltrating lymphocytes to guide immunotherapy, explores tumor-initiating cell markers like CD271 in metastatic behavior, and evaluates supportive care strategies like antioxidant supplementation to mitigate radiotherapy side effects. The research integrates molecular pathology, imaging, and clinical outcomes to improve personalized treatment and survival in HNSCC patients.
Professor Sung Chul Bae's research lab specializes in advanced materials development for sustainable energy and biomedical applications. The lab focuses on designing nanostructured materials—particularly transition metal oxides and hydroxides—for high-performance energy storage devices such as supercapacitors and batteries. It also explores biodegradable magnesium-based alloys for implantable medical devices and investigates the environmental remediation potential of construction materials like slag and cement in immobilizing toxic metals. The research integrates materials synthesis, electrochemical characterization, and advanced imaging techniques to advance functional materials for real-world applications.
Professor Jin Kyu Lee's research lab focuses on translational biomedical research with a strong emphasis on orthopedic surgery, particularly total knee arthroplasty (TKA) in younger and rheumatoid arthritis patients, aiming to improve long-term outcomes and reduce complications. The lab also investigates molecular mechanisms underlying congenital muscular dystrophies, particularly the role of glycosyltransferases like GnT-Vb in neural development and O-mannose glycosylation. Additionally, the lab explores patient-centered health interventions, such as using virtual reality to reduce preoperative anxiety in orthopedic surgery. These diverse research directions reflect a commitment to integrating clinical practice with molecular biology and health technology innovation.
Professor Moon Jae Jung's research lab specializes in gastrointestinal oncology and pancreatic diseases, with a strong focus on improving outcomes in pancreatic cancer through nutritional assessment, novel stent technologies, and optimized endoscopic interventions. The lab investigates prognostic markers like the Prognostic Nutritional Index (PNI), develops drug-eluting stents for biliary and pancreatic ducts, and evaluates timing and efficacy of endoscopic retrograde cholangiopancreatography (ERCP) in biliary pancreatitis. Additionally, the lab explores treatment strategies for autoimmune pancreatitis and inflammatory bowel disease-related complications, emphasizing personalized and intensive management approaches.
Professor Seokhwan Lee's research lab specializes in minimally invasive and oncologic colorectal surgery, with a focus on advanced surgical techniques for colorectal cancer, including laparoscopic and robotic surgery in complex anatomical variants such as situs inversus totalis. The lab is actively involved in investigating organ-preserving strategies, such as total neoadjuvant therapy (TNT), and the application of novel biomarkers like SDC2 methylation in stool DNA for early detection of colorectal cancer. The team emphasizes multidisciplinary approaches to improve patient outcomes, combining surgical innovation with precision diagnostics and enhanced recovery protocols.
Professor Johan Kang's research lab focuses on plant molecular biology, particularly the regulation of carbon and nitrogen metabolism in *Arabidopsis thaliana*, with a central emphasis on the role of the putative glutamate receptor 1.1 (AtGLR1.1) in metabolic crosstalk and stress responses. The lab investigates how ionotropic glutamate receptors influence hormonal signaling—especially abscisic acid (ABA)—to modulate seed germination and root development under environmental stress. Additionally, the lab explores clinical and epidemiological aspects of pediatric diseases, including Kawasaki disease and post-transplant neurologic complications, reflecting a translational research approach bridging plant biology and human health.
Professor Soo Hwan Oh's research lab focuses on the molecular mechanisms underlying viral pathogenesis, autophagy, and cancer progression, with a particular emphasis on the roles of host and viral factors in immune evasion and disease persistence. The lab investigates how autophagy-related proteins such as UVRAG contribute to both tumor suppression and viral entry, revealing unexpected non-canonical functions beyond canonical autophagy. By integrating genomics, epigenomics, and functional virology approaches, the lab uncovers novel regulatory nodes in cancer metabolism and antiviral defense, especially in the context of persistent gamma-herpesvirus infections and chemotherapy resistance. Their work bridges fundamental cell biology with translational applications in oncology and virology.
Professor Soon-Yong Kwon's research lab specializes in the controlled synthesis, characterization, and application of two-dimensional (2D) materials, with a focus on graphene and transition metal dichalcogenides (TMDs). The lab investigates vapor-phase growth mechanisms to achieve large-area, low-defect 2D films with precise thickness control and tailored electronic properties. Key research directions include defect engineering in graphene, band gap modulation through substrate interactions, and the development of high-performance 2D transistors using materials like MoTe₂. The lab also explores functional coatings for corrosion resistance and semiconductor protection, emphasizing practical applications in nanoelectronics and energy technologies.
Professor Bom Nyeo Koo's research lab focuses on the neuroimmunological mechanisms underlying postoperative complications, particularly postoperative cognitive dysfunction (POCD). The lab investigates how systemic inflammation, macrophage polarization, and neuroinflammation contribute to cognitive decline after surgery, with a special emphasis on the roles of immune modulation, chemokine signaling (e.g., CX3CL1/CX3CR1), and transcriptional regulation (e.g., NF-κB). Key research directions include the therapeutic potential of erythropoietin (EPO) and targeted inhibitors in promoting anti-inflammatory macrophage (M2) polarization and protecting the brain from surgical stress. The lab also explores cerebrovascular complications such as venous air embolism and their impact on neurological outcomes in vulnerable populations like patients with liver cirrhosis.