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Functioning nanomachines seen in real-time in living bacteria using single-molecule and super-resolution fluorescence imaging.

机译:使用单分子和超分辨率荧光成像实时观察活细菌中的功能纳米机。

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摘要

Molecular machines are examples of "pre-established" nanotechnology, driving the basic biochemistry of living cells. They encompass an enormous range of function, including fuel generation for chemical processes, transport of molecular components within the cell, cellular mobility, signal transduction and the replication of the genetic code, amongst many others. Much of our understanding of such nanometer length scale machines has come from in vitro studies performed in isolated, artificial conditions. Researchers are now tackling the challenges of studying nanomachines in their native environments. In this review, we outline recent in vivo investigations on nanomachines in model bacterial systems using state-of-the-art genetics technology combined with cutting-edge single-molecule and super-resolution fluorescence microscopy. We conclude that single-molecule and super-resolution fluorescence imaging provide powerful tools for the biochemical, structural and functional characterization of biological nanomachines. The integrative spatial, temporal, and single-molecule data obtained simultaneously from fluorescence imaging open an avenue for systems-level single-molecule cellular biophysics and in vivo biochemistry.
机译:分子机器是“预先建立的”纳米技术的例子,驱动着活细胞的基本生物化学。它们涵盖了广泛的功能范围,包括化学过程的燃料产生,细胞内分子成分的运输,细胞迁移,信号转导和遗传密码的复制等。我们对这种纳米长度标度仪的大部分了解来自在孤立的人工条件下进行的体外研究。研究人员现在正在应对在其本机环境中研究纳米机器的挑战。在这篇综述中,我们概述了使用最先进的遗传技术结合尖端的单分子和超分辨率荧光显微镜对模型细菌系统中的纳米机器进行的近期体内研究。我们得出的结论是,单分子和超分辨率荧光成像为生物纳米机器的生化,结构和功能表征提供了强大的工具。从荧光成像同时获得的综合空间,时间和单分子数据为系统级单分子细胞生物物理学和体内生物化学开辟了道路。

著录项

  • 作者

    Chiu, SW; Leake, MC;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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