探索全球顶尖大学的研究室——研究领域与主要论文一览无余。
Professor Hyun Jung Park's research lab focuses on molecular mechanisms underlying neurodegenerative diseases, particularly Parkinson’s disease, with an emphasis on neuroprotection, neuroinflammation, and stem cell therapy. The lab investigates genetic causes of sensorineural hearing loss, especially mutations in the SLC26A4 gene associated with enlarged vestibular aqueduct, and explores the role of transcription factors like FoxM1b in cancer progression and metastasis. Key research directions include the anti-inflammatory effects of nicotine, the therapeutic potential of mesenchymal stem cells, and the cell cycle regulation of oncoproteins in hepatocellular carcinoma.
Professor Jaehoon Kim's research lab focuses on epigenetic regulation, particularly the molecular mechanisms of histone modifications and their roles in gene regulation and disease. The lab investigates the enzymatic activities and functional interactions of ubiquitin ligases and deubiquitinases, such as yRad6, yBre1, RNF40/RNF20, and hFBH1, in chromatin remodeling and DNA damage response. Using biochemical reconstitution, structural analysis, and computational modeling, the lab explores how post-translational modifications of histones—especially H2B ubiquitylation and H3K4 methylation—regulate chromatin dynamics and cellular identity. The lab also applies machine learning to enhance sensing technologies, particularly for low-concentration gas detection, demonstrating interdisciplinary innovation in both biology and data science.
Professor Jae K. Kim's research lab specializes in advanced energy storage technologies, with a primary focus on next-generation batteries such as vanadium redox flow batteries, aqueous zinc-ion batteries, solid-state batteries, and lithium–sulfur batteries. The lab investigates novel materials—including non-precious metal oxides, sulfide solid electrolytes, and functional ceramic coatings—to enhance electrochemical performance, stability, and cyclability. Key research directions include mitigating side reactions (e.g., polysulfide shuttling and zinc corrosion), engineering solid-electrolyte interphases, and developing high-concentration electrolytes for improved battery longevity and safety.
Professor Hee Jeong Yoo's research lab specializes in child and adolescent psychiatry, with a primary focus on neurodevelopmental and behavioral disorders such as autism spectrum disorder (ASD) and attention-deficit/hyperactivity disorder (ADHD). The lab investigates the genetic underpinnings of these conditions, develops and evaluates culturally adapted psychosocial interventions—such as the Korean version of the PEERS® social skills program—and explores innovative applications of technology, including robotic-assisted behavioral interventions. The research emphasizes both clinical efficacy and real-world feasibility in diverse cultural contexts, particularly in East Asian populations.
Professor Jun Hyeong Lee's research lab focuses on neuromorphic computing and biomedical engineering, with a strong emphasis on developing energy-efficient, real-time processing systems inspired by the human brain. The lab pioneers deep spiking neural networks (SNNs) that leverage event-based computation for low-latency, low-power applications, while also advancing clinical endoscopy techniques for early detection of gastrointestinal cancers through innovative imaging and intervention methods. Their work bridges neuroscience-inspired hardware design with practical medical diagnostics and treatment strategies in gastroenterology.
Professor Se Hee Kim's research lab specializes in advanced materials for next-generation energy storage and biomedical applications. The lab focuses on developing flexible, wearable, and safe solid-state batteries using innovative composite polymer electrolytes, with an emphasis on mechanical compliance, dendrite suppression, and thermal stability. Additionally, the lab explores the molecular mechanisms of disease-related genes and the therapeutic potential of metabolic interventions such as the ketogenic diet in rare neurological disorders. A key theme across projects is the integration of materials science with biological systems to address real-world challenges in healthcare and sustainable energy.
Professor Sooyoung Yoon's research lab specializes in the design and synthesis of advanced nanomaterials for energy conversion and storage applications, with a strong focus on developing high-performance materials for lithium-ion batteries and fuel cells. The lab explores hybrid nanostructures, particularly those combining transition metal oxides, chalcogenides, and 2D materials like graphene, to enhance electrical conductivity, structural stability, and ion diffusion kinetics. A key research direction involves engineering core-shell and heterostructured architectures through innovative hydrothermal and microwave-assisted synthesis methods to address volume expansion and interface resistance in conversion and alloying anode materials. The lab also investigates gas sensing mechanisms in 2D transition metal dichalcogenides and metal oxide heterostructures, emphasizing synergistic effects for improved sensitivity and selectivity.
Professor Eunjung Lee's research lab specializes in advanced functional materials and biomedical technologies, with a focus on nanomaterials for optoelectronics, piezoelectric nanogenerators, and AI-driven medical diagnostics. The lab develops innovative devices such as electrically tunable graphene-based fiber optics and high-performance nanocomposite generators for energy harvesting, while also pioneering deep learning applications in thyroid cancer detection using ultrasound. Additionally, the lab explores minimally invasive therapeutic technologies, including magnetic resonance-guided focused ultrasound for neurological disorders. These interdisciplinary efforts bridge materials science, biomedical engineering, and artificial intelligence to create smart, responsive, and clinically impactful solutions.
Professor Yong-Dae Kim's research lab specializes in secure and efficient group communication systems, with a strong focus on group key management, distributed key agreement protocols, and cryptographic access control in collaborative environments. The lab develops lightweight, fault-tolerant, and scalable solutions—such as the Tree-based Group Diffie–Hellman (TGDH) protocol—aimed at minimizing communication latency and cryptographic overhead in high-delay networks. Research also extends to admission control mechanisms for peer groups, integrating cryptographic protocols with access management to ensure security in dynamic group settings. Additionally, the lab explores microsystem applications, including thin-film strain gauges for structural health monitoring, demonstrating interdisciplinary expertise in secure systems and microfabrication.
Professor Eunkyung Kim's research lab focuses on the central regulation of energy homeostasis, with a particular emphasis on the role of hypothalamic signaling pathways—especially AMP-activated protein kinase (AMPK) and autophagy—in controlling feeding behavior and body weight. The lab investigates how metabolic sensors like AMPK integrate nutrient signals to regulate neuropeptides such as NPY and POMC, and explores the crosstalk between metabolism, autophagy, and cellular survival in neuroendocrine and metabolic tissues. Additional research extends to the pathophysiology of cardiomyopathy and cancer cell migration, highlighting the broader implications of metabolic and proteolytic regulation in disease. The lab employs a multidisciplinary approach combining molecular biology, cell culture, animal models, and advanced imaging techniques to dissect metabolic and cellular mechanisms in health and disease.
Professor Min-kyung Kim's research lab specializes in computational systems biology and bioinformatics, focusing on genome-scale metabolic modeling, particularly in microalgae such as *Phaeodactylum tricornutum*. The lab develops advanced computational methods to infer intracellular metabolic fluxes from transcriptomic data, integrating multi-omics data to predict metabolic phenotypes and support synthetic biology applications. A key research direction involves leveraging machine learning and systems-level modeling to understand and optimize metabolic networks for sustainable biofuel production.
Professor Se Chang Park's research lab focuses on developing alternative biocontrol strategies for aquatic animal pathogens, particularly targeting antibiotic-resistant bacteria such as *Pseudomonas plecoglossicida*, *Vibrio parahaemolyticus*, and *Vibrio alginolyticus*. The lab specializes in the isolation, characterization, and application of bacteriophages as therapeutic agents in aquaculture, with an emphasis on phage therapy and biocontrol. Additionally, the lab investigates probiotic bacteria, such as *Lactobacillus reuteri* and *L. plantarum*, for their protective effects against environmental stressors like heavy metal toxicity and for enhancing fermentation processes. The overarching research direction centers on sustainable and eco-friendly solutions for disease management in aquaculture and environmental health.
Professor Eunhwa Choi's research lab specializes in pediatric infectious diseases, with a focus on respiratory pathogens including viruses (e.g., hMPV, HCoV-NL63, rhinovirus), atypical bacteria (e.g., Mycoplasma pneumoniae), and Streptococcus pneumoniae. The lab investigates the epidemiology, molecular pathogenesis, antimicrobial resistance, and host immune responses to these infections in children, particularly in the context of vaccine impact and emerging infectious threats. Key research directions include understanding the genetic and immunological determinants of disease severity, the dynamics of serotype replacement post-vaccination, and the detection of asymptomatic or inapparent infections in community transmission. The lab integrates molecular diagnostics, antimicrobial resistance profiling, and host genetic studies to inform clinical management and public health strategies.
Professor Duck-Hyun Choi's research lab specializes in advanced energy harvesting technologies, with a primary focus on triboelectric nanogenerators (TENGs) and ionic TENGs (iTENGs) for sustainable power solutions. The lab explores innovative materials and nanostructures—such as graphene, ZnO nanorods, and p-type polymers—to enhance device efficiency, mechanical robustness, and electrical output. Key research directions include interfacial engineering for solid-liquid contact electrification, self-aligned nanopore arrays for SERS applications, and visco-elastic ion pumps to boost pressure sensitivity and energy conversion. The lab also emphasizes scalable, flexible, and transparent device architectures for next-generation wearable and environmental energy systems.
Professor Mun Seok Jeong's research lab specializes in the design, fabrication, and characterization of two-dimensional (2D) van der Waals heterostructures and hybrid nanomaterials for next-generation nanoscale optoelectronic and electronic devices. The lab focuses on understanding and manipulating interfacial charge transfer, defect engineering, and optical properties in 2D transition metal dichalcogenides (TMDs), quantum dots, and perovskites. Key research directions include the development of high-performance photodetectors, tunable logic devices, and efficient light-emitting and photovoltaic systems through precise heterostructure engineering and advanced spectroscopic techniques.
Professor Han Sang Kim's research lab specializes in interdisciplinary biomedical and environmental systems research, focusing on identifying molecular biomarkers for cancer radiosensitivity and optimizing plant productivity through advanced physiological and modeling approaches. The lab integrates multi-omics data and systems biology to uncover key signaling pathways—such as integrin and PI3K—relevant to therapeutic response in head and neck cancer. Additionally, the lab investigates plant canopy dynamics and radiation transfer modeling to improve biomass production and water-use efficiency in forest plantations. The integration of clinical, physiological, and engineering principles underpins the lab’s mission to develop precision interventions in oncology and sustainable forestry.
Professor Jung Ho Kim's research lab specializes in the molecular and pathological characterization of colorectal cancer, with a focus on microsatellite instability-high (MSI-H) tumors, Lynch syndrome, and serrated neoplasms. The lab investigates the clinicopathological features, immunohistochemical markers (such as PD-L1, CDX2, CK20, EPCAM), and molecular alterations (including BRAF mutations, CIMP-H, and MMR deficiency) that define these cancers. Their work integrates histopathology with molecular pathology to improve diagnosis, prognosis prediction, and immunotherapy selection in colorectal cancer.
Professor Jae-young Park's research lab focuses on molecular mechanisms underlying cancer development and progression, with a particular emphasis on apoptosis-related genes such as caspase-9 and clusterin. The lab investigates genetic polymorphisms and their impact on cancer susceptibility, especially in lung and gastric cancers, using molecular biology and genomic approaches. Additionally, the lab explores innovative electrochemical systems for sustainable energy conversion, particularly improving CO2 reduction reaction efficiency through advanced electrolyzer designs. These interdisciplinary efforts bridge molecular oncology and energy materials science.
Professor Min Jae Lee's research lab specializes in the molecular mechanisms of targeted protein degradation, with a central focus on the N-end rule pathway and its role in regulating key signaling proteins involved in development and disease. The lab investigates ubiquitin ligases, deubiquitinating enzymes, and the dynamic regulation of protein stability through post-translational modifications. Recent work also explores innovative strategies for targeted protein degradation, including novel photochromic probes and small-molecule degraders that engage the proteasome or lysosome. The lab integrates biochemistry, cell biology, and chemical biology to develop new therapeutic modalities for diseases such as cancer and acute kidney injury.
Professor Jung-Ho Hong's research lab focuses on the molecular mechanisms regulating mesenchymal stem cell (MSC) lineage commitment, particularly the balance between osteogenic and adipogenic differentiation. The lab investigates key transcriptional coactivators such as TAZ (transcriptional coactivator with PDZ-binding motif) and their roles in modulating lineage-specific transcription factors like Runx2 and PPARγ. A central theme is the regulation of TAZ in response to mechanical cues—such as shear stress in microfluidic systems—and bioactive natural compounds, including marine and green tea-derived molecules, that enhance osteoblast differentiation. The lab also explores TAZ's emerging role in myoblast differentiation, expanding its scope to musculoskeletal development and disease.