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 Jina Kang's research lab specializes in innovation management, corporate venturing, and knowledge integration in high-technology firms. The lab investigates how strategic partnerships—such as R&D collaborations, mergers and acquisitions, and corporate venture capital—impact innovation performance and technological diversification. A key focus is on the dual role of corporate investments in fostering both explorative and exploitative learning, particularly through structural autonomy in CVC units. The lab also explores the human side of innovation, including caregiver experiences in end-of-life care and the importance of holistic patient support in palliative care.
Professor Taewhan Kim's research lab specializes in computer architecture and image processing, with a strong focus on optimizing arithmetic computations in hardware design and enhancing image quality through advanced inpainting and histogram equalization techniques. The lab develops innovative algorithms that leverage carry-save adders for high-performance arithmetic operations and explores hybrid and retrieval-based approaches for image captioning and inpainting. A key emphasis is on improving visual quality and processing efficiency in complex image features, such as mixed texture and structure, while integrating multimodal information effectively. The lab also investigates efficient, lightweight models for real-time image understanding and enhancement.
Professor Kiyoon Kang's research lab focuses on the molecular mechanisms underlying serotonin and melatonin biosynthesis in plants, particularly in rice. The lab investigates the enzymatic pathways and regulatory genes involved in the synthesis of these key phytohormones, with a strong emphasis on identifying and characterizing novel enzymes such as serotonin N-acetyltransferase (SNAT) and N-acetylserotonin methyltransferase (ASMT). Their work bridges plant physiology and molecular biology, exploring how these molecules regulate developmental processes like leaf senescence and stress responses. The lab also employs genetic engineering approaches to manipulate melatonin pathways, aiming to enhance stress tolerance and yield-related traits in crops.
Professor Tae Sub Park's research lab specializes in reproductive and regenerative biotechnology, with a focus on germ cell biology, stem cell engineering, and genome editing in avian and livestock species. The lab develops advanced techniques for generating and manipulating primordial germ cells (PGCs) and embryonic germ (EG) cells to enable efficient germline transmission and genetic modification in chickens and other animals. Key research directions include optimizing in vitro PGC differentiation, establishing non-viral transgenic systems, and applying CRISPR-based genome editing tools—such as TALENs and D10A-Cas9 nickase—to achieve precise, safe, and efficient gene editing with minimal off-target effects. The lab also explores applications in agricultural biotechnology, including improving livestock traits and creating transgenic animal models for biomedical research.
Professor Ki-Ho Park's research lab specializes in infectious diseases, with a primary focus on bone and prosthetic implant infections, including vertebral osteomyelitis (HVO) and spinal implant infections. The lab investigates pathogen-specific treatment strategies, antibiotic duration, and diagnostic tools such as differential time to positivity for catheter-related infections. A significant emphasis is placed on understanding the virulence and clinical outcomes of community-associated MRSA (CA-MRSA) and rare infections like syphilis with bone involvement. The lab also explores the safety and efficacy of surgical interventions, such as spinal instrumentation, in the context of persistent or recurrent infections.
Professor Jaebong Jang's research lab specializes in the development of novel therapeutic strategies for cancer, particularly focusing on targeting drug-resistant mutations in receptor tyrosine kinases such as EGFR and HER2. The lab pioneers innovative approaches including allosteric inhibitors and targeted protein degraders to overcome resistance mechanisms in non-small cell lung cancer. Additionally, the group explores advanced bioconjugation techniques using visible-light photocatalysis for precise biomolecule modification, enabling new tools for chemical biology and drug development. Their work bridges medicinal chemistry, structural biology, and chemical biology to address unmet clinical needs in oncology and beyond.
Professor Jong-Sun Kang's research lab focuses on the molecular mechanisms regulating skeletal myogenesis, with a central emphasis on cell adhesion molecules and signaling pathways that govern myoblast differentiation and muscle development. The lab investigates the roles of Ig superfamily proteins such as CDO and BOC in mediating cell-cell contact-dependent signaling, their interactions with cadherins and cytoskeletal adaptors, and their regulation of key kinases like p38 MAPK and Abl. A major research direction involves understanding how these cell surface receptors coordinate with intracellular scaffolds to control cell cycle exit and differentiation during myogenesis, with implications for muscle regeneration and disease. The lab also explores the dynamic regulation of these molecules during embryonic development and in stem cell-like satellite cells.
Professor Bon-Nyeo Koo's research lab focuses on the pathophysiological mechanisms underlying cerebrovascular diseases, particularly ischemic stroke and related neuroinflammatory and neurodegenerative processes. The lab investigates the roles of immune cell activation, blood-brain barrier disruption, oxidative stress, and inflammatory signaling pathways—such as ASK1 and MMP-9—in ischemic brain injury. Additionally, the lab explores the impact of systemic inflammatory responses, including cytokine storms in conditions like severe COVID-19, on neurological outcomes. The research integrates molecular mechanisms with clinical implications, aiming to identify therapeutic targets and improve patient management in critical neurological conditions.
Professor J. Prasanth Ram's research lab specializes in renewable energy systems, with a primary focus on optimizing photovoltaic (PV) power generation under challenging environmental conditions such as partial shading and variable irradiance. The lab develops advanced metaheuristic optimization algorithms—such as Flower Pollination Algorithm (FPA), Enhanced Leader Particle Swarm Optimization (ELPSO), and hybrid techniques—to enhance Maximum Power Point Tracking (MPPT) performance, ensuring global maximum power extraction. Research also extends to innovative PV system configurations, array reconfiguration strategies, and accurate modeling of organic photovoltaic cells for improved efficiency and real-time applicability. The lab emphasizes nature-inspired algorithms, system-level optimization, and practical implementation for sustainable energy solutions.
Professor Hyung-Soon Park's research lab specializes in biomedical robotics and human-machine interaction, focusing on the development of advanced robotic systems for neurological rehabilitation and clinical assessment. The lab integrates biomechanics, wearable robotics, and brain-computer interface technologies to enhance motor function recovery in patients with neuromuscular impairments. Key research directions include the design of high-degree-of-freedom exoskeletons and soft robotic gloves for upper limb rehabilitation, as well as haptic devices for objective and reliable assessment of spasticity.
Professor Min-Chul Lee's research lab specializes in aquatic toxicology and environmental epigenetics, focusing on the impacts of environmental pollutants and nutritional factors on lipid metabolism and aging in marine invertebrates, particularly the rotifer *Brachionus koreanus*. The lab investigates molecular mechanisms underlying metabolic regulation, including sirtuin signaling and nuclear receptor pathways (e.g., RXR), under conditions of caloric restriction and exposure to obesogens like tributyltin (TBT). Their work integrates ecotoxicological assessments with molecular biology, transcriptomics, and lipidomic analyses to understand how environmental stressors affect life history traits and metabolic health. The lab also employs in silico modeling to predict molecular interactions, enhancing mechanistic insights into pollutant toxicity.
Professor Woong-Han Kim's research lab specializes in pediatric and congenital cardiac surgery, with a focus on surgical outcomes, hemodynamic performance, and long-term management of complex congenital heart diseases. The lab investigates surgical techniques such as the arterial switch operation and Fontan circulation, emphasizing functional improvement, arrhythmia management, and device integration like permanent pacemakers. Key research directions include optimizing surgical strategies to reduce complications such as neoaortic valve regurgitation and improving quality of life through combined procedures. The lab integrates clinical outcomes with advanced surgical interventions to enhance patient survival and functional status.
Professor Sang-Yong Ju's research lab specializes in the functionalization and separation of carbon nanomaterials, with a focus on single-walled and multiwalled carbon nanotubes (SWNTs and MWNTs) and transition metal dichalcogenides like MoS₂. The lab develops novel surfactants and covalent functionalization strategies—particularly based on flavin mononucleotide (FMN) derivatives—to achieve selective dispersion, chirality- and enantioselective separation, and enhanced electronic properties. Key advances include achieving high photoluminescence quantum yields in SWNTs by suppressing oxygen quenching and engineering aligned, conductive nanocomposites through FMN-mediated interfacial engineering.
Professor Jae-Hyung Jang's research lab specializes in advanced biomaterials and gene delivery systems for regenerative medicine and tissue engineering. The lab focuses on developing smart scaffolds and functional surfaces that enable spatially controlled, sustained, or substrate-mediated gene delivery to direct cell behavior and tissue regeneration. Key research directions include the design of multifunctional electrospun fibers, stimuli-responsive materials, and bioadhesive vectors for precise spatiotemporal control of gene expression. The lab integrates principles of materials science, molecular biology, and biomedical engineering to create innovative platforms for localized therapeutic delivery and in vivo tissue organization.
Professor Dahyun Yi's research lab specializes in the neuroimaging and neurocognitive mechanisms underlying early Alzheimer’s disease (AD) pathogenesis. The lab focuses on identifying subtle brain network alterations—particularly in the default mode and salience networks—using multimodal neuroimaging (fMRI, PET, MRI) in individuals at different stages of cognitive decline, from cognitively normal to amnestic mild cognitive impairment and AD dementia. A central theme is understanding how genetic (e.g., APOE4) and environmental (e.g., family history) risk factors interact to influence brain metabolism and amyloid deposition. The lab also investigates biomarkers for early detection and risk stratification in aging populations.
Professor Dong-Yeun Koh's research lab specializes in advanced materials and membrane technologies for sustainable energy and environmental applications. The lab focuses on developing innovative membrane systems—such as carbon molecular sieve and MXene-based hydrogels—for selective separations, energy recovery from methane hydrates, and carbon dioxide capture. Key research directions include the design of functional materials for gas separation, hydrate-based energy extraction, and oxidation-resistant conductive hydrogels for wearable sensing. The lab also explores fundamental mechanisms in molecular confinement and guest-host interactions in clathrate hydrates to enhance hydrogen and methane storage.
Professor Sungyul Lee's research lab specializes in physical organic chemistry and computational chemistry, with a strong focus on understanding and manipulating reaction mechanisms through solvent effects, hydrogen bonding, and molecular recognition. The lab investigates nucleophilic substitution reactions—particularly fluorination processes—using innovative promoters like oligoethylene glycols and alkali metal fluorides, aiming to improve selectivity and efficiency in synthetic applications such as PET tracer synthesis. A significant portion of the work involves the development of enantioselective organocatalytic reactions, including biomimetic Michael additions, and the use of quantum chemical calculations to elucidate reaction pathways and catalyst-substrate interactions. The lab also explores the role of water molecules in stabilizing specific conformers of amino acids and peptides, providing insights into biological folding and reactivity.
Professor Jaeryung Oh's research lab specializes in retinal and choroidal imaging, with a focus on understanding the structural and vascular changes in age-related macular degeneration (AMD), central serous chorioretinopathy (CSC), and other retinal diseases using advanced imaging modalities such as spectral-domain optical coherence tomography (SD-OCT) and optical coherence tomography angiography (OCTA). The lab investigates the correlation between objective imaging biomarkers—such as IS/OS defects, choroidal thickness, and vascular density—and visual outcomes, aiming to improve early diagnosis and prognosis. A key research direction involves elucidating the role of microvascular dysfunction in retinal pathologies, even before overt structural changes occur.
Professor Tae Ho Lim's research lab specializes in critical care medicine and translational biomedical research, with a focus on improving outcomes in sepsis and burn injuries. The lab investigates novel biomarkers such as the delta neutrophil index for early sepsis prognosis and explores innovative therapies like nonthermal atmospheric pressure plasma jets (NAPPJ) for enhancing burn wound healing. Their work bridges clinical medicine and emerging technologies, aiming to translate laboratory findings into practical clinical applications. The lab emphasizes evidence-based approaches through rigorous meta-analyses and preclinical animal models to validate new treatment strategies.
Professor Chang Mo Moon's research lab specializes in gastrointestinal oncology and inflammatory bowel diseases, with a focus on cancer stem cells, colorectal cancer progression, and the molecular mechanisms underlying colorectal neoplasia. The lab investigates the chemopreventive effects of nonsteroidal anti-inflammatory drugs (NSAIDs) on cancer stem cells and explores the roles of key signaling pathways such as NOTCH/HES1 and PPARG in tumorigenesis. Additionally, the lab contributes to clinical research on early detection, prognosis, and diagnostic challenges in rectal neuroendocrine tumors and Crohn’s disease, integrating molecular genetics with clinical outcomes. Their work also includes the application of advanced imaging techniques like (18)FDG-PET in cholangiocarcinoma staging and the identification of genetic susceptibility loci in Asian populations.