State Key Laboratory of Robotics, Shenyang Institute of Automation, Chinese Academy of Sciences, Shenyang 110016, China.
Nanoscale. 2017 Nov 23;9(45):17643-17666. doi: 10.1039/c7nr07023c.
Due to the lack of adequate tools for observation, native molecular behaviors at the nanoscale have been poorly understood. The advent of atomic force microscopy (AFM) provides an exciting instrument for investigating physiological processes on individual living cells with molecular resolution, which attracts the attention of worldwide researchers. In the past few decades, AFM has been widely utilized to investigate molecular activities on diverse biological interfaces, and the performances and functions of AFM have also been continuously improved, greatly improving our understanding of the behaviors of single molecules in action and demonstrating the important role of AFM in addressing biological issues with unprecedented spatiotemporal resolution. In this article, we review the related techniques and recent progress about applying AFM to characterize biomolecular systems in situ from single molecules to living cells. The challenges and future directions are also discussed.
由于缺乏足够的观察工具,纳米尺度上的分子行为还没有被很好地理解。原子力显微镜(AFM)的出现为以分子分辨率研究单个活细胞中的生理过程提供了一种令人兴奋的仪器,吸引了全球研究人员的关注。在过去的几十年中,AFM 已被广泛用于研究各种生物界面上的分子活性,并且 AFM 的性能和功能也在不断提高,这极大地提高了我们对作用中单分子行为的理解,并展示了 AFM 在解决具有空前时空分辨率的生物问题方面的重要作用。本文综述了应用 AFM 原位表征生物分子系统的相关技术和最新进展,从单分子到活细胞。还讨论了挑战和未来方向。