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。
伊島克也教授の研究室は、高齢期の健康長寿を実現するため、口腔・筋肉・代謝の3本の柱に基づいた予防医学的アプローチを展開しています。特に、口腔 frailty やサルコペニアの早期発見・予防に向けたスクリーニング手法の開発や、赤ワインポリフェノールが血管平滑筋に及ぼす作用の分子機構解明を進めています。また、地域社会と医療の連携による「予防と支援」を重視する社会基盤の構築も重要な研究テーマです。
Yuta Saito教授の研究室は、オンライン推薦システムにおけるバイアスや欠損データの問題に注力しており、特に選択バイアスやimplicit feedbackの不完全性に起因する推論の歪みを解消するための理論的・実装的アプローチを展開しています。特に、逆確率スコアに基づく推定や、反事後的推定(Counterfactual Estimation)を用いたオフポリシー評価・学習の手法開発が中心です。また、クリック後のコンバージョン行動を用いたより正確な評価手法の構築や、アイテムの露光と関連性の公平性の問題にも取り組んでいます。
Kazuki Shimizu教授の研究室では、音響工学と光工学を融合した先端的な音場計測技術の開発を主眼としています。特に、デジタルホログラフィーを用いた高速・高精度な音場イメージング技術の確立を目指しており、医療用超音波や音響デバイスの評価に応用が期待されています。また、バイオハイドロゲルやバイオポリマーの合成制御に関する研究も併せて展開しており、環境に配慮した新素材の開発にも貢献しています。
Professor Young Hoon Roh's research lab specializes in the development of advanced nucleic acid-based nanomaterials for biomedical applications, with a focus on DNA and RNA nanotechnology. The lab pioneers innovative strategies to engineer DNA and RNA into functional polymeric structures—such as DNA microsponges, DNAsomes, and multi-component RNAi delivery systems—enabling precise control over size, charge, and molecular stoichiometry. Key research directions include stimuli-responsive drug delivery, co-delivery of therapeutic nucleic acids (e.g., siRNA, antisense ODNs), and the design of biomimetic nanostructures for enhanced targeting and efficacy in cancer therapy and gene regulation. The lab integrates enzymatic synthesis, self-assembly, and materials engineering to create multifunctional platforms for next-generation therapeutics.
Professor Min-Kyu Oh's research lab specializes in synthetic biology, metabolic engineering, and bio-sensing technologies, with a focus on optimizing microbial systems for sustainable bioproduction and environmental applications. The lab develops advanced bioprocesses using Escherichia coli and other microbes to enhance the production of valuable chemicals such as butyrate and ethanol through pathway engineering and enzyme optimization. It also pioneers innovative biosensor systems, including bioelectronic noses and multifunctional magnetic nanoparticles, for sensitive detection and inactivation of pathogens. The integration of systems biology, synthetic biology, and nanomaterials enables the lab to address challenges in bio-manufacturing and biomedical safety.
Professor Hyoung-Joon Jin's research lab specializes in the development of bio-inspired nanomaterials derived from natural proteins, particularly silk fibroin, for advanced applications in biomedicine and energy storage. The lab focuses on engineering silk-based materials with tailored mechanical, structural, and degradation properties through electrospinning, phase separation, and carbonization techniques. Key research directions include creating water-stable and rapidly degradable biomaterials for tissue engineering, designing high-performance carbon nanomaterials for supercapacitors and sodium-ion batteries, and exploring the electrochemical behavior of protein-derived carbon architectures. The lab integrates materials science, biomaterials engineering, and sustainable processing to develop functional materials from renewable resources.
Nobuhiro Nishiyama教授の研究室では、がん治療を目的としたナノスケールの薬物送達システムの開発に注力しています。特に、ポリマー・メタル錯体を基盤としたポリマー微小粒子(マイセル)を用い、シスプラチンを効率的に担持・持続的放出する新規ドラッグデリバリー技術の確立を目指しています。また、光線力学療法を応用した新しいフォトセンチライザーの開発や、腫瘍への選択的集積を実現するナノキャリアの設計にも取り組んでいます。
福沼史典教授の研究室は、間葉系幹細幹細胞が放出するエクソソームの機能制御と、その応用を軸に、歯周炎や肥満に伴う慢性炎症が全身疾患に与える影響を解明しています。特に、腫瘍壊死因子α(TNF-α)による幹細幹細胞の前処理がエクソソームの治療的機能を強化するメカニズムを解明しており、炎症制御と組織再生の両面から新たな細胞フリー療法の確立を目指しています。また、歯周病と代謝シンドロームの関連性や、マacrophageのプロフェイシャル化が代謝疾患に与える影響についても、分子・細胞レベルでのメカニズム解明を進めています。
Professor Kyung Tae's research lab specializes in advanced minimally invasive and robotic surgical techniques for thyroid and head and neck cancers, with a strong focus on improving cosmetic outcomes and reducing surgical morbidity. The lab investigates innovative transoral, axillary, and postauricular approaches to endoscopic and robotic thyroidectomy, emphasizing patient selection, surgical safety, and long-term outcomes. Additionally, the lab explores the biological mechanisms of tumor progression, particularly angiogenesis and VEGF expression, in head and neck squamous cell carcinoma, contributing to prognostic and therapeutic insights. The integration of surgical innovation with molecular oncology defines the lab’s translational research approach.
Professor Hye-Kyung Jung's research lab focuses on gastrointestinal diseases, with a primary emphasis on the epidemiology, pathophysiology, and clinical management of gastroesophageal reflux disease (GERD) and *Helicobacter pylori* infection. The lab investigates ethnic and geographical variations in disease prevalence, explores the bidirectional relationship between GERD and sleep disturbances, and conducts nationwide studies on antibiotic resistance and treatment strategies for *H. pylori*. Additionally, the lab examines the potential links between functional gastrointestinal disorders such as irritable bowel syndrome (IBS) and structural conditions like colonic diverticulosis.
Professor Sehoon Park's research lab focuses on the intersection of nephrology, aging, and cardiovascular health, with a strong emphasis on identifying causal relationships between lifestyle factors, chronic diseases, and kidney function. The lab investigates the impact of sleep duration, tobacco use, atrial fibrillation, and acute kidney injury on renal outcomes, using both observational and genetic epidemiological approaches. A key research direction involves understanding the bidirectional relationships between kidney disease and systemic conditions such as aging phenotypes and cancer risk in pre-dialysis populations. The lab also contributes to clinical epidemiology through large-scale data analysis of renal replacement therapy in Korea.
Professor Ji Hoon Ahn's research lab focuses on the molecular mechanisms regulating flowering time and stress responses in plants, with a central emphasis on the FLOWERING LOCUS T (FT)/TERMINAL FLOWER 1 (TFL1) gene family. The lab investigates the functional diversity of FT-like and TFL1-like proteins, including BFT, MFT, and other homologs, to understand their roles in meristem identity, diurnal regulation, and environmental adaptation. Using genetic, molecular, and biochemical approaches, the lab explores how these regulators integrate photoperiodic and stress signals to control developmental transitions in Arabidopsis and related species.
Andrew Chapman教授の研究室は、炭素中立エネルギーシステムの実現に向けた革新的な技術開発を主眼としています。特に水素エネルギーの持続可能なライフサイクル設計、炭素回収・貯留技術、および再生可能エネルギーを活用した水素生産の経済的・社会的実現可能性を重点的に研究しています。また、日本を含むアジア諸国における水素インフラの将来像を、エネルギーセクター別(電力、交通、ガス網補完など)に定量的・定性的に分析しています。
Professor Hyun-Woo Rhee's research lab specializes in the development of innovative chemical probes and sensing technologies for real-time, subcellular resolution detection of biologically important molecules in living systems. The lab focuses on designing selective fluorescent and chemiluminescent sensors for key metabolites such as (p)ppGpp, flavins (e.g., FAD, FMN), and signaling molecules, enabling dynamic monitoring of cellular metabolism and signaling. A central theme is the application of proximity labeling strategies—particularly using engineered peroxidases like APEX—to map subcellular proteomes and interactomes with high spatial and temporal resolution, bridging the gap between live-cell imaging and mass spectrometry-based proteomics. The lab’s interdisciplinary approach integrates synthetic chemistry, chemical biology, and cell biology to address fundamental questions in cellular physiology and disease mechanisms.
Professor Seungjoo Haam's research lab specializes in the development of advanced nanomaterials and multifunctional platforms for biomedical applications, with a strong focus on cancer diagnostics and therapeutics. The lab integrates nanotechnology, materials science, and molecular biology to design stimuli-responsive nanocarriers, smart sensors, and targeted imaging agents for early cancer detection and precision therapy. Key research directions include the engineering of polymeric and hybrid nanomaterials for enhanced drug delivery, photothermal therapy, and exosome isolation, with particular emphasis on applications in epithelial and HER2-positive cancers. The lab also pioneers low-cost, point-of-care diagnostic tools suitable for resource-limited settings.
Professor Hyunjung Kim's research lab specializes in advanced materials and environmental biotechnology, focusing on the design of functional nanomaterials for energy storage and the environmental fate of pathogenic microorganisms. Her work spans pseudocapacitive materials like nanoscale MoO₂ for high-performance energy storage, and the mechanistic understanding of bacterial transport and adhesion in porous media, particularly Escherichia coli O157:H7. The lab integrates materials synthesis, surface characterization, and colloid and surface science to address challenges in sustainable energy and water safety. Key research directions include molecularly imprinted polymers for selective recognition and the role of extracellular polymeric substances in microbial surface properties and environmental behavior.
Professor Hi-Joon Park's research lab focuses on exploring the neurobiological mechanisms of acupuncture and moxibustion in neurological and gastrointestinal disorders, particularly Parkinson’s disease (PD). The lab investigates how acupuncture modulates the gut-brain axis, protects dopaminergic neurons, and influences protein expression and neurotransmitter systems in PD models. A central theme is the scientific validation of acupuncture sensations (Deqi) and the development of objective, blinded acupuncture methods to strengthen clinical research. The lab also examines the therapeutic potential of moxibustion across various conditions using evidence-based approaches.
稲田俊史教授の研究室では、翻訳の品質管理とリボソームの機能的制御に注目し、異常なmRNAや不完全な翻訳産物の処理メカニズムを解明しています。特に、翻訳停止やリボソームの異常停止に伴うタンパク質とmRNAの分解経路、ならびにリボソーム自体の品質制御機構に焦点を当てた研究を推進しています。近年では、リボソームのUbiquitin化修飾が18S rRNAの異常分解に果たす役割や、翻訳品質制御における因子の協働メカニズムの解明にも貢献しています。
Professor Seung Bum Park's research lab specializes in the design and development of advanced functional materials for biomedical and biotechnological applications. The lab focuses on creating smart nanomaterials—such as silver-coated textiles, fluorescent bioprobes, and multifunctional magnetic nanoparticles—for targeted diagnostics, drug discovery, and imaging. Key research directions include the rational design of covalent inhibitors, fluorogenic probes for live-cell imaging, and high-throughput screening platforms to identify modulators of cellular processes like lipid droplet formation. The lab integrates synthetic chemistry, materials science, and cell biology to develop innovative tools for precision medicine and therapeutic discovery.
Professor Gyung-Min Choi's research lab specializes in ultrafast spin dynamics and opto-spintronics, focusing on the interplay between light, angular momentum, and magnetism in nanostructured materials. The lab investigates all-optical magnetic switching, optical spin-orbit torques, and transient spin transport using ultrafast laser spectroscopy and time-resolved magneto-optical techniques. Key research directions include the generation and detection of ultrafast spin currents, the role of spin-orbit coupling in non-magnetic and magnetic materials, and the dynamics of angular momentum transfer at interfaces and in ferrimagnetic systems. The lab combines advanced pump-probe experiments with theoretical modeling to uncover fundamental mechanisms in ultrafast magnetism and spintronics.