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 Kyoung-Jin Shin's research lab specializes in mitochondrial DNA (mtDNA) analysis, focusing on molecular genetics, forensic DNA profiling, and population genetics. The lab develops advanced molecular techniques for accurate mtDNA haplogrouping, heteroplasmy detection, and sequence nomenclature standardization, with applications in forensic science, medical genetics, and population studies. Key research directions include optimizing bisulfite conversion for epigenetic analysis, improving mtDNA sequencing accuracy, and investigating tissue-specific mtDNA distribution and heteroplasmy. The lab also creates user-friendly bioinformatics tools, such as mtDNAprofiler, to streamline mtDNA data interpretation and comparison.
Professor Sadia Ilyas's research lab specializes in sustainable metallurgical processes, focusing on the bio-recovery of critical metals—such as lithium, cobalt, nickel, rare earth elements, and precious metals—from electronic waste and mine tailings. The lab pioneers green bio-hydrometallurgical techniques using microbial systems, including fungi and bacteria, to produce organic and inorganic acids for efficient metal leaching, while exploring low-cost substrates like biowaste and agricultural residues. A key research direction involves hybrid bio-chemical processes to overcome kinetic limitations and enhance scalability for industrial applications.
Professor Zee Hwan Kim's research lab specializes in ultrafast optical spectroscopy and nanoscale optical imaging, focusing on the interaction of light with plasmonic nanostructures and reactive molecules at the single-molecule and single-particle level. The lab investigates surface-enhanced Raman scattering (SERS), plasmonics, and vibrational dynamics in gas-phase reactions using advanced techniques such as resonance-enhanced multiphoton ionization and apertureless near-field scanning optical microscopy (ANSOM). Key research directions include the spatial and vectorial characterization of enhanced optical near-fields, the role of molecular orientation and electronic resonances in SERS, and the dynamics of elementary chemical reactions like CH₄ + Cl•. The lab combines experimental innovation with theoretical modeling to probe light-matter interactions at nanometer scales.
Professor So Mi Jemma Cho's research lab focuses on cardiovascular disease prevention, with a strong emphasis on dyslipidemia, polygenic risk scores, and individualized risk prediction. The lab investigates how genetic, clinical, sociodemographic, and lifestyle factors interact to influence coronary artery disease (CAD) risk and recurrence, particularly in diverse populations. Using large-scale clinical data and health system-based studies, the lab aims to improve risk stratification and precision prevention strategies. Their work spans from basic genetic associations to real-world implementation of risk models in clinical settings.
Professor Tamer Abuhmed's research lab specializes in cybersecurity, artificial intelligence, and optimization algorithms with a focus on developing intelligent systems for network security, medical diagnostics, and wireless sensor networks. The lab explores advanced techniques such as deep packet inspection, remote code attestation in resource-constrained environments, and AI-driven early detection of neurodegenerative diseases using medical imaging. A key research direction involves enhancing metaheuristic optimization algorithms—like the Velocity-Aided Grey Wolf Optimizer—to improve performance in complex, real-world applications. The lab integrates computational intelligence and secure systems to address critical challenges in healthcare and network infrastructure.
Professor Hyungsuk Kim's research lab focuses on translational and molecular mechanisms underlying musculoskeletal disorders, particularly degenerative spinal conditions and chronic pain. The lab investigates spinal deformity correction, especially sagittal decompensation and lumbosacral fixation, alongside the molecular transcriptomic transitions from acute to chronic low back pain. Additional research explores the pathophysiology of diabetic nephropathy and the therapeutic potential of natural compounds like garlic phytocompounds in cancer. The lab integrates clinical outcomes with molecular biology and bioinformatics to identify novel therapeutic targets and biomarkers.
Professor Seungwon Choi's research lab specializes in advanced signal processing, intelligent control systems, and biomedical materials characterization. The lab focuses on developing innovative beamforming techniques for wireless communications, model predictive control with online learning for autonomous vehicles, and high-precision LiDAR-based motion estimation. Additionally, the lab investigates the structural and mechanical degradation of biological materials—particularly human hair—under chemical treatments using advanced microscopy and nanomechanical mapping.
Professor Jeong Gon Son's research lab specializes in advanced nanofabrication and functional nanomaterials, focusing on block copolymer self-assembly for high-resolution patterning, graphene-based nanoelectronics, and stretchable energy storage devices. The lab develops innovative templating and alignment strategies—such as solvent annealing and surface reconstruction—enabling precise control over sub-10 nm structures and complex nanoarchitectures. Key research directions include the integration of 2D materials like graphene into functional devices and the design of all-component stretchable batteries using hierarchical, mechanically robust nanostructures.
Professor Seok Jun Moon's research lab focuses on the molecular and cellular mechanisms underlying sensory perception, particularly taste, mechanosensation, and hearing in *Drosophila melanogaster*. The lab investigates how sensory neurons detect and integrate chemical and mechanical stimuli through ion channels, G protein-coupled receptors, and signaling pathways such as PLC and TRP channels. A central theme is the role of membrane phosphoinositides and ciliary trafficking in sensory transduction, with key contributions to understanding the function of proteins like dINPP5E, dTULP, and GRs in sensory organ development and function. The lab also explores translational applications in neuroprosthetics and bio-inspired control systems, including semiactive vibration control in civil structures.
Professor Cherl-Ho Lee's research lab specializes in food science and technology, with a focus on the physicochemical properties and processing of traditional Korean fermented foods, particularly takju (Korean rice wine) and rice-based products. The lab investigates texture, rheology, thermal stability, and microbial safety to optimize fermentation processes and enhance product quality. Key research directions include understanding the effects of processing parameters—such as water usage, calcium addition, and thermal treatment—on texture, viscosity, and sensory attributes in food systems.
Professor Dasol Lee's research lab specializes in nanophotonics and metamaterials, focusing on the design and application of metasurfaces for advanced optical imaging and sensing. The lab pioneers innovations in functional optical elements such as metalenses, hyperlenses, and broadband absorbers, enabling sub-diffraction-limited imaging, super-resolution microscopy, and enhanced chiral sensing. Key research directions include tunable and all-dielectric metasurfaces, wafer-scale fabrication techniques, and integration of machine learning for intelligent optical systems. The lab bridges fundamental nanophotonics with real-world applications in life sciences and optical technology.
Professor Byung Jin Kim's research lab focuses on the pathophysiology of metabolic and ocular diseases, with a primary emphasis on the role of zinc signaling in pancreatic beta-cell death and retinal ischemia/reperfusion injury. The lab investigates cellular stress pathways, particularly the JNK signaling cascade, in neurodegenerative conditions such as retinal ganglion cell degeneration. Additionally, the lab explores the metabolic consequences of lifestyle factors, including smoking cessation and alcohol consumption, in relation to metabolic syndrome and non-alcoholic fatty liver disease (NAFLD). These studies integrate molecular biology, in vivo models, and clinical epidemiology to identify novel therapeutic targets.
Professor Se In Sung's research lab specializes in neonatal intensive care, with a primary focus on improving outcomes for extremely preterm and extremely-low-birth-weight infants (ELBWIs). The lab investigates critical aspects of neonatal physiology, including fluid and electrolyte balance, parenteral nutrition strategies, and hemodynamic management such as patent ductus arteriosus (PDA) ligation. Their work emphasizes evidence-based clinical interventions tailored to infants born at the limits of viability, particularly those born at 23–25 weeks' gestation. The lab integrates retrospective clinical data with physiological modeling to identify prognostic factors and optimize early postnatal care.
Professor Kyoung Tai No's research lab specializes in computational and theoretical chemistry, focusing on molecular electronic structure, atomic charge distribution, and intermolecular interactions. The lab develops and applies advanced quantum chemical methods—such as modified partial equalization of orbital electronegativity (PEOE) and polarizable continuum models (PCM)—to study the electronic properties and stability of biomolecular systems, including polypeptides and ionic pairs in solution. Their work also extends to lattice dynamics in microporous materials like zeolites and the quantitative prediction of molecular properties such as polarizability and autoignition temperature through QSPR modeling.
Professor Tae-Eun Park's research lab specializes in developing advanced human microphysiological systems (MPS) and organ-on-a-chip platforms to model human organ barriers, with a focus on the blood-brain barrier and gastric mucosal barrier. The lab integrates induced pluripotent stem cells (iPSCs), primary human cells, and microfluidic technologies to create physiologically relevant in vitro models that recapitulate in vivo barrier functions, cell-cell interactions, and host-microbe dynamics. Their work emphasizes precision drug testing by addressing key limitations of traditional platforms, such as small molecule absorption in PDMS and immature epithelial phenotypes, enabling more accurate preclinical drug screening and disease modeling. The lab's innovative approaches support translational research in neurodegenerative diseases, gastrointestinal infections, and targeted therapeutics.
Professor Chungho Kim's research lab specializes in cellular mechanobiology and signal transduction, with a focus on how mechanical and biochemical signals regulate integrin activation and cell adhesion. The lab investigates the molecular mechanisms underlying inside-out signaling in integrins, particularly the role of transmembrane domain dynamics, membrane environment, and protein interactions such as talin and cytoskeletal adaptors. Using advanced biophysical techniques—including fluorescence spectroscopy, NMR, and reconstituted membrane systems—the lab uncovers how conformational changes in integrins govern cellular responses in hemostasis, thrombosis, and cancer progression. They also explore the emerging roles of proteases like epithin/PRSS14 in modulating receptor tyrosine kinases and angiogenic signaling.
Professor Jaehan Lee's research lab specializes in advanced electrochemical technologies for sustainable water and resource recovery. The lab focuses on developing innovative capacitive and battery-based systems for desalination and lithium ion recovery, emphasizing high selectivity, energy efficiency, and environmental compatibility. Key research directions include rocking-chair capacitive deionization, Prussian blue-based desalination batteries, and electrochemical lithium recovery using advanced electrode materials such as spinel-type LiMn₂O₄ and modified carbon electrodes. The lab integrates materials engineering with electrochemical system design to address global challenges in clean water and critical metal extraction.
Professor Changho Suh's research lab specializes in wireless communication systems, with a focus on interference management, network coding, and efficient resource allocation in modern wireless networks. The lab develops advanced techniques such as interference alignment, repair-efficient MDS codes, and multicarrier multicast strategies to enhance spectral efficiency, reduce latency, and lower repair costs in distributed storage and cellular systems. Their work bridges theoretical limits with practical implementation, particularly in fading and interference-limited environments. They also explore the role of feedback and channel knowledge in improving system capacity and reliability.
Professor Suhyung Cho's research lab specializes in molecular biology and synthetic biology, focusing on the mechanisms of pre-mRNA splicing and the development of advanced genome engineering tools. The lab investigates the roles of splicing factors and RNA-binding proteins in early spliceosome assembly, while also pioneering innovative applications of CRISPR/Cas systems—particularly dCas9—for gene regulation and functional genomics in bacteria. Additionally, the lab develops high-throughput molecular tools such as micro-BACC chips and rRNA depletion methods to enable precise analysis of RNA-protein interactions and transcriptomes.
Professor Yeonyee E. Yoon's research lab specializes in cardiovascular imaging, with a focus on echocardiography, cardiac magnetic resonance (CMR), and artificial intelligence (AI) applications in cardiac function assessment. The lab investigates left atrial mechanics, fibrosis, and remodeling in conditions such as atrial fibrillation, hypertrophic cardiomyopathy, and prediabetes, aiming to improve diagnostic accuracy and patient outcomes through advanced imaging techniques. A key research direction involves leveraging AI to reduce observer variability and enhance reproducibility in echocardiographic measurements.