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 Jee-Heon Jeong's research lab specializes in regenerative medicine and cellular therapy, with a primary focus on enhancing the therapeutic efficacy of mesenchymal stromal cells (MSCs). The lab investigates the molecular mechanisms underlying the improved survival and anti-inflammatory properties of 3D-cultured MSCs, particularly through the regulation of autophagy and reactive oxygen species (ROS) homeostasis. By exploring the role of the tumor microenvironment and cellular stress responses, the lab aims to develop advanced cell-based therapies for inflammatory and degenerative diseases. Their work bridges stem cell biology, cellular metabolism, and translational medicine to improve clinical outcomes in regenerative therapy.
Professor Mina Rho's research lab specializes in computational biology and bioinformatics, focusing on advancing methods for analyzing complex microbial communities through metagenomic and metatranscriptomic data. The lab develops innovative computational tools to identify genes, CRISPR systems, viral sequences, and antibiotic resistance elements in environmental and host-associated microbiomes. Key research directions include de novo gene prediction, viral discovery using deep learning, and understanding the functional dynamics and resistome diversity in microbial ecosystems.
Professor Ju-Young Kim's research lab specializes in the design, synthesis, and mechanical characterization of advanced functional materials, with a focus on enhancing the ductility and strength of metallic glasses and semiconductors through nanostructuring and hybrid architectures. The lab explores size-dependent mechanical behaviors in nanoscale materials, particularly the 'smaller is stronger' phenomenon in nanopillars, and develops stretchable, flexible, and robust electronic systems using novel substrates and interconnects. Key research directions include the integration of metallic glasses with ductile metals or polymers to achieve high strength and large plasticity, as well as the mechanical reliability of perovskite and chalcogenide thin films for next-generation flexible and wearable electronics.
和田部俊教授の研究室では、有機半導体における分子ドーピングや界面制御技術を応用し、高効率な電荷輸送と熱電特性を実現する新規なナノスケール構造の創出をめざしています。特に、液体界面を用いた分子配列制御(LB・LS法)と高分子半導体の結晶性制御を組み合わせることで、金属的性質に近い電気的特性を有する高純度な膜を創出しています。また、超短パulsesレーザーの発展や有機トランジスタの低雑音特性の解明にも貢献しており、次世代の有機エレクトロニクスの基盤技術開発を推進しています。
阿部一朗教授の研究室では、植物のミトコンドリアの形態形成と動態に注目し、分裂・融合の分子機構や、遺伝子発現のダイナミクスが細胞のエネルギー代謝に与える影響を解明しています。特に、動物や酵母とは異なり、植物に特有のミトコンドリア分裂機構の解明が主な研究テーマであり、DRP3A/BやADL2bといったドリル様タンパク質の機能を解析しています。また、ミトコンドリアゲノムの遺伝子編集技術「mitoTALENs」の開発を通じて、植物ミトコンドリアの遺伝子改変の可能性を広げています。
Tiao Wang教授の研究室は、中国の大学教育における全学教育(GE)の発展に伴い、英語教育を通じた異文化理解の育成を柱とした教育的・文化的研究を推進しています。また、微小流体デバイスを用いた粒子操作技術のメカニズム解明や、鉄筋コンクリート部材の耐力挙動に関する構造力学的分析も併せて行っています。さらに、伝統的漢方薬の抗ウイルス作用を細胞培養法を用いて評価する生物学的・医学的研究も実施しており、多様な分野の融合的アプローチが特徴です。
Kazufumi Takahashi教授の研究室では、一般相対性理論の拡張としての高次微分を含むスカラー・テンソル理論の構造的性質と安定性を、ブラックホール解や宇宙論的背景下で体系的に研究しています。特に、DHOST理論や一般化されたディスフォーマル変換を用いたゲージ不変性・ゴースト自由性の解明が中心であり、時間に線形に依存するスカラー場を伴うブラックホール解の線形安定性や、非可逆的変換による理論の同値性についても深く考察しています。
Noriyuki Kadoya教授の研究室は、がん治療における画像診断と放射線治療計画の高度化を目的として、主に医用画像処理と深層学習を応用した研究を進めています。特に、画像登録(DIR)の精度向上や、患者個別QA(品質保証)のための深層学習ベースの線量分布予測に注力しており、臨床応用に直結する実用的で信頼性の高い技術開発を推進しています。また、3Dプリンティングを用いた評価用パラダイムの構築により、画像登録の空間的誤差を定量的に評価する基盤を整えています。
阿部健孝教授の研究室では、がん治療を目的とした新規がん血管遮断型遺伝子医療の開発を主眼としています。特に、腎細胞癌のような化学療法に耐性を示す難治性のがんに対して、pDNAを効率的に腫瘍細胞に届けるためのリポソーム型ナノ粒子(LNP)の開発を進めています。そのカギとなるのが、酸性環境(内嚮体/リソソーム)と還元環境(サイトソール)の両方を感知する「ssPalm」と呼ばれる新規脂質様材料です。この材料により、遺伝子の細胞内解放と核内送達が効率化され、がん細胞の新生血管を標的にした効果的な遺伝子治療が実現可能です。
Professor Jae Yong Han's research lab specializes in avian developmental biology and reproductive biotechnology, with a focus on primordial germ cells (PGCs) and their applications in transgenic animal production. The lab investigates germ cell specification, epigenetic regulation—particularly DNA methylation in PGCs—and the development of molecular markers for PGC identification. Utilizing CRISPR/Cas9 genome editing in PGCs, the lab pioneers the generation of genetically modified chicken models for biomedical and agricultural research.
Professor Gyu-Chul Yi's research lab specializes in the epitaxial growth, nanostructure engineering, and optoelectronic device integration of III-nitride semiconductors, particularly GaN and ZnO. The lab focuses on developing advanced nanostructured materials—such as nanorods, nanowires, and microdisks—through techniques like metal-organic vapor-phase epitaxy (MOVPE) and epitaxial lateral overgrowth (ELOG) to enable high-performance devices. Key research directions include flexible and micro-scale light-emitting diodes (LEDs), piezoresistive sensors based on silicon nanorods, and defect engineering in doped GaN for enhanced electronic and photonic applications. The lab emphasizes scalable, device-compatible fabrication methods for next-generation optoelectronics and nanosensors.
Professor Eun Jin Lee's research lab specializes in plant biochemistry and postharvest physiology, focusing on the bioactive compounds in fruits and vegetables, including betalains, phenolics, and phytohormones. The lab investigates the metabolic changes during fruit ripening, the impact of postharvest treatments like 1-MCP and ethylene on quality and shelf life, and the anticancer properties of plant extracts. A key emphasis is on developing analytical methods for efficient quantification of bioactive compounds such as protodioscin and rutin in asparagus and other crops.
Professor Myung Joon Han's research lab specializes in theoretical and computational materials science, focusing on strongly correlated electron systems in complex oxides. The lab employs advanced first-principles methods such as density functional theory (DFT), dynamical mean-field theory (DMFT), and LDA+U to investigate electronic structure, magnetism, and electron correlation effects in transition metal oxides, including iron-based superconductors, multiferroics, and oxide heterostructures. A central theme is understanding how electronic properties—such as orbital occupancy, magnetic interactions, and electronic phase transitions—can be controlled through doping, strain, interface engineering, and atomic site disorder. The lab also explores the interplay between electron correlation, charge transfer, and orbital polarization in complex oxide superlattices and heterostructures.
Professor Jin Taek Chung's research lab specializes in turbomachinery aerodynamics, with a primary focus on secondary flow control and film cooling enhancement in gas turbines. The lab investigates vortex dynamics—particularly horseshoe and passage vortices—within turbine passages and develops innovative flow management techniques such as boundary layer fences to mitigate flow losses and improve cooling effectiveness. Their work is highly relevant to advanced turbine design, emphasizing performance optimization under realistic engine conditions, including high freestream turbulence. The lab combines experimental flow visualization, wind tunnel testing, and computational analysis to advance fundamental understanding and practical applications in gas turbine technology.
Professor Doo-Sik Kong's research lab specializes in neurosurgical oncology and spinal surgery, with a focus on improving diagnostic accuracy and treatment outcomes for brain tumors and spinal disorders. The lab investigates advanced imaging techniques such as perfusion MRI for predicting pseudoprogression in glioblastoma, evaluates radiosurgical and fractionated radiotherapy for pituitary adenomas, and explores minimally invasive surgical approaches like endoscopic endonasal surgery for skull base tumors. The lab also examines innovative spinal implants and immunotherapies to enhance functional recovery and disease control in neurological patients.
Professor Jong-Hoon Kim's research lab specializes in identifying and characterizing the molecular mechanisms of natural compounds with anti-inflammatory, antioxidant, and cytoprotective properties. The lab focuses on elucidating the signaling pathways—such as NF-κB, MAPK, PI3K/Akt, and Nrf2—involved in the protective effects of phytochemicals like kaempferol, quercetin derivatives, rhein, trigonelline, and IGF-1 in models of inflammation, oxidative stress, and tissue injury. Key research directions include gastroprotection, skin protection, and chondroprotection, with an emphasis on targeting key inflammatory mediators and endogenous antioxidant systems. The lab integrates biochemical, molecular biological, and in vivo disease models to translate natural compound activities into potential therapeutic applications.
Professor Chandan Biswas's research lab specializes in nanomaterials and 2D materials, with a focus on carbon-based nanomaterials such as graphene and carbon nanotubes. The lab investigates their electronic, optoelectronic, and spintronic properties, emphasizing device applications like high-performance field-effect transistors, p-n junction diodes, and spin valves. Key research directions include carrier transport engineering, defect and substrate effects, and hybrid doping strategies for transparent conductive films.
Professor Young-Beom Kim's research lab specializes in advanced materials for energy conversion and storage, with a strong focus on solid-state energy devices. The lab develops novel thin-film deposition and sintering techniques—such as atomic layer deposition (ALD), flash-light sintering, and intense pulsed light processing—to engineer high-performance, nanostructured functional oxides. Key research directions include optimizing catalytic and protective layers for solid oxide fuel cells, all-solid-state batteries, and water electrolyzers, with an emphasis on enhancing interfacial stability, ionic conductivity, and electrochemical activity at low temperatures and minimal noble metal usage. The lab also investigates perovskite-based materials, particularly for bifunctional electrocatalysis and interface engineering in next-generation energy systems.
Professor Yoonjae Nam's research lab specializes in tourism behavior, digital media, and cultural tourism, with a strong focus on the impact of digital technologies—such as social networking sites, virtual reality, and user-generated content—on tourist motivations, satisfaction, and destination perceptions. The lab investigates how digital platforms and emerging technologies shape tourist movement patterns, cultural engagement, and sustainable tourism practices. It also explores the role of popular culture, such as K-pop, in influencing national image and international tourism intentions.
石渡幹夫教授の研究室は、自然災害と感染症の重複的リスクに備えた統合的対策を柱として、洪水リスク管理とCOVID-19との併存下における人間の安全保障を視野に入れた政策立案を進めています。特に、地域組織やコミュニティの役割、科学的リスク情報の活用、官民連携のガバナンス体制構築に注力しています。また、ドローンを活用した被災地支援や、気候変動適応と統合された洪水防護の資金調達手法の検討も行っています。