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Progress of AFM single-cell and single-molecule morphology imaging
  • ISSN号:1001-6538
  • 期刊名称:科学通报(英文版)
  • 时间:2013.9
  • 页码:3177-3182
  • 分类:Q21[生物学—细胞生物学] TH742[机械工程—光学工程;机械工程—仪器科学与技术;机械工程—精密仪器及机械]
  • 作者机构:[1]State Key Laboratory of Robotics, Shenyang Institute of Automation, Chinese Academy of Sciences, Shenyang 110016, China, [2]University of Chinese Academy of Sciences, Beijing 100049, China, [3]Department of Mechanical and Biomedical Engineering, City University ofHong Kong, Hong Kong, China, [4]Department of Lymphoma, Affiliated Hospital of Military Medical Academy of Sciences, Beijing 100071, China
  • 相关基金:This work was supported by the National Natural Science Foundation of China (61175103) and CAS FEA International Partnership Program for Creative Research Teams.
  • 相关项目:纳米操作机器人同步触发机械门控离子通道
中文摘要:

Atomic force microscopy (AFM) can probe single living cells and single native membrane proteins in natural fluid environments with label-free high spatial resolution. It has thus become an important tool for cellular and molecular biology that significantly complements traditional biochemical and biophysical techniques such as optical and electron microscopy and X-ray crystallog-raphy. Imaging surface topography is the primary application of AFM in the life sciences. Since the early 1990s, researchers have used AFM to investigate morphological features of living cells and native membrane proteins with impressive results. Steady improvements in AFM techniques for imaging soft biological samples have greatly expanded its applications. Based on the authors’ own research in AFM imaging of living cell morphologies, a review of sample preparation procedures for single-cell and single-molecule imaging experiments is presented, along with a summary of recent progress in AFM imaging of living cells and native membrane proteins. Finally, the challenges of AFM high-resolution imaging at the single-cell and single-molecule levels are discussed.

英文摘要:

Atomic force microscopy (AFM) can probe single living cells and single native membrane proteins in natural fluid environments with label-free high spatial resolution. It has thus become an important tool for cellular and molecular biology that significantly complements traditional biochemical and biophysical techniques such as optical and electron microscopy and X-ray crystallog- raphy. Imaging surface topography is the primary application of AFM in the life sciences. Since the early 1990s, researchers have used AFM to investigate morphological features of living cells and native membrane proteins with impressive results. Steady improvements in AFM techniques for imaging soft biological samples have greatly expanded its applications. Based on the au- thors' own research in AFM imaging of living cell morphologies, a review of sample preparation procedures for single-cell and single-molecule imaging experiments is presented, along with a summary of recent progress in AFM imaging of living cells and native membrane proteins. Finally, the challenges of AFM high-resolution imaging at the single-cell and single-molecule levels are discussed.

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