Nagoya University · Biochemistry, Genetics and Molecular Biology
우치하시 교수의 연구실은 고속 원자력 현미경(HS-AFM)을 핵심 도구로 활용해 생체 분자, 특히 효소와 막 단백질의 실시간 구조적 동역학을 직접 관찰하는 데 전문성을 가진다. 주요 연구 분야는 셀룰로오스 분해 효소의 기계적 작용 메커니즘, F1-ATPase의 회전 기계적 원리, 막 단백질의 올리고머 형성 및 기능, 그리고 인공 단백질 아키텍처 설계이다. 특히 생체 분자의 기계적 기능과 구조적 다이나믹스를 원자 해상도에서 실시간으로 해석함으로써 생물 에너지 및 단백질 재조립의 기초를 밝히는 데 기여하고 있다.
Figures are computed from collected data and may differ slightly.
A deeper mechanistic understanding of the saccharification of cellulosic biomass could enhance the efficiency of biofuels development. We report here the real-time visualization of crystalline cellulose degradation by individual cellulase enzymes through use of an advanced version of high-speed atomic force microscopy. Trichoderma reesei cellobiohydrolase I (TrCel7A) molecules were observed to slide unidirectionally along the crystalline cellulose surface but at one point exhibited collective ha
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The nanoscale specificity of interaction measurements and additional imaging capability of the atomic force microscope make it an ideal technique for measuring solvation shells in a variety of liquids next to a range of materials. Unfortunately, the widespread use of atomic force microscopy for the measurement of solvation shells has been limited by uncertainties over the dimensions, composition and durability of the tip during the measurements, and problems associated with quantitative force ca
The circadian clock proteins KaiA, KaiB, and KaiC reconstitute a remarkable circa-24 h oscillation of KaiC phosphorylation that persists for many days in vitro. Here we use high-speed atomic force microscopy (HS-AFM) to visualize in real time and quantify the dynamic interactions of KaiA with KaiC on sub-second timescales. KaiA transiently interacts with KaiC, thereby stimulating KaiC autokinase activity. As KaiC becomes progressively more phosphorylated, KaiA's affinity for KaiC weakens, reveal
Despite recent advances in mechanistic understanding and controlled-synthesis methodologies regarding synthetic supramolecular assemblies, it has remained challenging to capture the molecular-level phenomena in real time, thus hindering further progress in this research field. In this study, we applied high-speed atomic-force microscopy (AFM), which has extraordinary spatiotemporal resolution (1 nm and sub-100 ms), to capture dynamic events occurring during synthetic molecular self-assembly. Hig
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