运动性
原子力显微镜
纳米技术
分子机器
显微镜
桥接(联网)
荧光显微镜
纳米尺度
生物物理学
材料科学
生物系统
生物
化学
计算机科学
物理
细胞生物学
荧光
光学
计算机网络
作者
Steven John McArthur,Kenichi Umeda,Noriyuki Kodera
出处
期刊:Biomolecules
[Multidisciplinary Digital Publishing Institute]
日期:2025-02-10
卷期号:15 (2): 257-257
被引量:2
摘要
Motility is a vital aspect of many forms of life, with a wide range of highly conserved as well as highly unique systems adapted to the needs of various organisms and environments. While many motility systems are well studied using structural techniques like X-ray crystallography and electron microscopy, as well as fluorescence microscopy methodologies, it is difficult to directly determine the relationship between the shape and movement of a motility system due to a notable gap in spatiotemporal resolution. Bridging this gap as well as understanding the dynamic molecular movements that underpin motility mechanisms has been challenging. The advent of high-speed atomic force microscopy (HS-AFM) has provided a new window into understanding these nano-scale machines and the dynamic processes underlying motility. In this review, we highlight some of the advances in this field, ranging from reconstituted systems and purified higher-order supramolecular complexes to live cells, in both prokaryotic and eukaryotic contexts.
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