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 Jae Hyuk Yang's research lab specializes in spinal deformity and spinal surgery, with a strong focus on spinal biomechanics, radiological assessment, and surgical outcomes in complex spinal conditions. The lab investigates pelvic and spinal parameters in adult scoliosis, evaluates the accuracy of radiological markers like Risser's sign, and explores surgical techniques such as pedicle screw fixation and osteotomy in patients with cerebral palsy and spinal instability. Their work combines clinical imaging, 3D imaging, and biomechanical analysis to improve diagnostic accuracy and surgical planning.
Professor Tae-don Kim's research lab focuses on the molecular mechanisms underlying immune regulation, circadian rhythm, and innate immune sensing, with a particular emphasis on post-transcriptional gene regulation. The lab investigates how microRNAs, RNA-binding proteins, and translational control fine-tune key effector molecules in natural killer cells and melatonin-synthesizing enzymes in the pineal gland. Additionally, the lab explores the roles of signaling molecules like TXNIP in inflammatory responses and their implications in disease pathogenesis and immunotherapy. These studies integrate molecular immunology, post-transcriptional regulation, and translational control to uncover novel therapeutic targets in cancer and inflammatory diseases.
Professor Jong-Woo Sohn's research lab focuses on the neural and cellular mechanisms underlying energy balance, metabolism, and neurological disorders, with a central emphasis on hypothalamic neuronal circuits. The lab investigates how specific neuronal populations—particularly POMC and NPY/AgRP neurons—in the arcuate nucleus regulate appetite and energy homeostasis, and how disruptions in ciliary function, signaling pathways (e.g., PI3K, G(q)PCR), and genetic mosaicism contribute to obesity and metabolic syndrome. The lab also explores the pathophysiological mechanisms of drug-induced metabolic side effects, such as those caused by atypical antipsychotics, and their impact on neural circuitry and glucose metabolism. Using a combination of electrophysiology, optogenetics, transcriptomics, and in vivo behavioral models, the lab aims to uncover molecular and circuit-level targets for treating metabolic and neuropsychiatric disorders.
Professor Byungyang Lee's research lab specializes in nanomaterials and advanced electronic devices, focusing on the development of sustainable, flexible, and high-performance materials for next-generation electronics. Key research directions include the design of cellulose nanocrystal-based structural colors, carbon nanotube network sensors for environmental and biomedical detection, transparent and stretchable hybrid electrodes for soft electronics, and integrated biosensor-on-a-chip systems. The lab also explores novel fabrication techniques for nanostructured junctions and foldable energy storage devices, emphasizing scalability and real-world applicability.
Professor Seungbok Lee's research lab focuses on cytoskeletal dynamics and extracellular matrix regulation in development and disease. The lab investigates how cytoskeletal proteins like Short Stop (Shot), a plakin family member, coordinate actin and microtubule networks to regulate axon guidance, cell polarity, and lumen formation in tubular systems such as the Drosophila trachea. Additionally, the lab explores the role of bone morphogenetic protein-1 (BMP-1) in extracellular matrix remodeling, particularly in response to TGF-β1 signaling, with implications for fibrosis and tissue homeostasis. The research integrates cell biology, developmental genetics, and extracellular matrix biology to understand fundamental mechanisms of tissue morphogenesis and disease.
Professor Sung Soo Chung's research lab focuses on the molecular mechanisms underlying metabolic diseases, particularly insulin resistance, type 2 diabetes, and adipogenesis, with a strong emphasis on transcriptional and post-translational regulation. The lab investigates the roles of nuclear receptors (e.g., PPARγ, PPARδ), SUMOylation machinery (especially SENP2), and signaling pathways (e.g., Wnt/β-catenin) in energy metabolism and cellular differentiation. Additionally, the lab explores spinal biomechanics and clinical outcomes in lumbar total disc replacement, linking molecular regulation to orthopedic surgery and patient recovery. Their work bridges molecular biology with translational medicine, aiming to identify novel therapeutic targets for metabolic and degenerative diseases.
Professor Sung Ik Yang's research lab specializes in the design and synthesis of functional organic and porphyrin-based materials for molecular photonic and optoelectronic applications. The lab focuses on controlling electronic communication in conjugated systems through strategic molecular engineering, particularly in porphyrin arrays, diarylethenes, and phthalocyanine dyads. Key research directions include tuning excited-state dynamics, energy transfer, and electronic communication in these systems for potential use in light-harvesting devices, molecular switches, and organic electronics. The lab employs advanced spectroscopic and electrochemical techniques to probe structure-property relationships at the molecular level.
Professor Jo Yang-hyun's research lab specializes in advanced cardiovascular critical care and interventional cardiology, with a primary focus on extracorporeal life support (ECLS) and extracorporeal cardiopulmonary resuscitation (ECPR) in patients with severe cardiac and pulmonary complications. The lab investigates innovative percutaneous and surgical interventions—such as percutaneous transseptal left atrial drainage and atrial septal defect closure with fenestrated patches—for managing life-threatening hemodynamic instability in patients with right heart failure, pulmonary hypertension, or massive pulmonary embolism. The team also explores predictive scoring systems for organ failure and long-term outcomes following heart transplantation on ECLS, aiming to optimize patient selection and postoperative management.
Professor Gwang Bo Park's research lab specializes in interventional radiology, with a primary focus on endovascular and percutaneous interventions for vascular and biliary pathologies. The lab investigates minimally invasive techniques such as stent placement, balloon angioplasty, and embolization to treat complex vascular stenoses, including portal vein stenosis after liver transplantation and malignant obstructions of the biliary and gastrointestinal tracts. A key emphasis is on improving long-term outcomes and managing rare but severe complications, such as delayed hemorrhage after stent placement. The lab combines clinical interventional radiology with hemodynamic and radiologic evaluation to optimize patient care and therapeutic strategies.
Professor Jaebum Park's research lab specializes in clinical and translational research in liver and kidney transplantation, with a focus on improving surgical outcomes, reducing post-transplant complications, and developing strategies for immune tolerance and viral infection management. The lab investigates risk factors for biliary strictures in living donor liver transplantation, evaluates innovative surgical techniques such as intermittent hepatic inflow occlusion, and explores immunomodulatory regimens to achieve donor-specific tolerance. Additionally, the lab conducts prospective studies on viral infections—particularly parvovirus B19 and hepatitis B—among transplant recipients, aiming to optimize antiviral prophylaxis and vaccination protocols.
Professor Eun-Kyung Park's research lab specializes in pharmacological and translational studies focusing on natural product metabolism, particularly ginsenosides and phytochemicals derived from traditional medicinal plants. The lab investigates the bioactive metabolites formed by human intestinal microbiota and their therapeutic potential in inflammatory, allergic, and neurodegenerative diseases. A key research direction involves the development of personalized medical approaches using 3D-printed implants for craniofacial reconstruction, integrating medical imaging and computational modeling. The lab also applies machine learning to radiogenomics, aiming to predict cancer biomarkers and molecular subtypes from low-dose perfusion CT imaging.
Professor Mikyung Kang's research lab specializes in developing innovative cancer immunotherapies and targeted drug delivery systems, with a focus on overcoming resistance mechanisms in glioblastoma and solid tumors. The lab integrates nanotechnology, immunology, and biomedical engineering to design smart therapeutic platforms such as CAR-Macrophages, T-cell-membrane-coated nanoparticles, and X-ray-activatable nanocarriers. Their work aims to enhance tumor targeting, overcome immunosuppressive microenvironments, and improve treatment precision while minimizing systemic toxicity. The lab also explores neuromodulation techniques for non-cancer applications, demonstrating a broad yet focused approach to translational biomedical innovation.
Professor Han-Lim Choi's research lab specializes in autonomous systems, with a focus on decentralized coordination, task allocation, and swarm robotics for multi-agent systems. The lab develops advanced algorithms for efficient and robust decision-making in dynamic environments, particularly through market-based and consensus-driven approaches like the Consensus-Based Bundle Algorithm (CBBA). Research also extends to anomaly detection in drone swarms using machine learning and optimization techniques for complex missions such as cooperative timing and observation targeting. The lab emphasizes practical deployment through scalable, distributed solutions that ensure convergence and conflict-free operation under real-world constraints.
Professor Chan-hyung Kim's research lab focuses on translational biomedical research, particularly in cardiovascular disease mechanisms and neuropsychiatric disorders. The lab investigates molecular pathways underlying cardiac protection, such as the role of HIF-1 and Akt signaling in ischemic preconditioning and mechanical stress-induced angiogenesis. It also explores the neurobiological and psychological underpinnings of psychiatric conditions, including obsessive-compulsive disorder and bipolar disorder, with a focus on symptom subtypes, comorbidities like alexithymia, and treatment algorithms. Additionally, the lab examines non-pharmacological interventions, such as aerobic exercise, in improving mental and physical health outcomes in schizophrenia and other chronic mental illnesses.
Professor Myung Jun Kim's research lab specializes in the fundamental understanding and engineering of electrochemical processes at the nanoscale, with a focus on controlling the growth, morphology, and surface chemistry of metal nanostructures—particularly copper and nickel phosphide—for advanced electrocatalytic and electrochemical applications. The lab investigates how molecular-level interactions, such as facet-selective deposition, capping agent effects, and surface hydrophilicity, govern nanostructure formation and electrocatalytic performance in reactions like the hydrogen evolution reaction and copper electrodeposition. By combining in situ electrochemical techniques, single-crystal electrochemistry, and advanced characterization, the lab develops predictive principles for designing high-performance nanomaterials for energy conversion and sustainable manufacturing.
Professor Jinsung Park's research lab specializes in advanced nanoscale characterization and sensing, with a strong focus on molecular and materials interfaces. The lab develops cutting-edge techniques in scanning probe microscopy—particularly Kelvin probe force microscopy (KPFM)—to study surface potential, charge distribution, and molecular interactions at the single-molecule level. Key research directions include the design of ultrasensitive SERS-based sensors for environmental and biomedical detection (e.g., PFOA and biomolecular interactions), and the experimental investigation of complex nonlinear dynamics in reaction-diffusion systems, such as spiral waves and line defects. The lab also explores functional nanomaterials, including doped polyaniline and self-assembled nanoparticles, for applications in sensing and energy-relevant materials.
Professor Jeong Yoon Park's research lab focuses on spinal disorders, particularly degenerative spinal conditions such as ossification of the posterior longitudinal ligament (OPLL), spondylolisthesis, and disc degeneration. The lab investigates the genetic, biomechanical, and molecular mechanisms underlying spinal degeneration, with an emphasis on pelvic parameters, adjacent-segment disease, and gene expression profiles in intervertebral discs. Additionally, the lab explores genetic polymorphisms related to disease susceptibility, particularly in relation to DNA repair pathways and cancer risk. The integration of clinical spine surgery with molecular and genetic research defines the lab’s translational approach.
Professor Jung Ryeol Lee's research lab specializes in reproductive medicine and fertility preservation, with a primary focus on optimizing ovarian tissue cryopreservation and transplantation techniques. The lab investigates protective agents such as antifreeze proteins (AFPs) and bioactive factors like angiopoietin-2 and VEGF to mitigate ischemic damage during xenotransplantation and improve graft survival. Their work also explores hormonal regulation of anti-Müllerian hormone (AMH) as a predictor of ovarian response, contributing to personalized fertility treatment strategies. The lab integrates experimental models, including xenotransplantation in nude mice, to evaluate novel interventions for clinical translation.
Professor Woon-Joon Kang's research lab specializes in developing targeted molecular imaging and therapeutic strategies for cancer using aptamers, nanomaterials, and positron emission tomography (PET). The lab focuses on engineering aptamer-conjugated nanoparticles and radiolabeled probes for precise in vivo imaging of cancer biomarkers, such as HER2 and nucleolin, enabling early detection and real-time monitoring of tumor progression. Additionally, the lab designs smart drug delivery systems, like aptamer-gemcitabine conjugates, to enhance chemotherapy efficacy and overcome drug resistance in aggressive cancers such as pancreatic cancer. Their work bridges molecular biology, nanotechnology, and nuclear medicine to advance personalized cancer therapy.
Professor Yun, Jae Moon's research lab focuses on cardiovascular and metabolic health in young and middle-aged adults, with a strong emphasis on identifying early-life risk factors for chronic diseases. The lab investigates the long-term impacts of hypertension, dyslipidemia, hemoglobin levels, and medication adherence on cardiovascular outcomes, while also exploring novel interventions such as probiotics and genetic factors (e.g., AMY1 copy number) in metabolic regulation. Their work leverages large-scale national health databases to uncover modifiable risk factors and evaluate preventive strategies.