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Life sciences require the third dimension with high spatial and temporal resolution

机译:生命科学需要具有高时空分辨率的三维空间

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摘要

A recognized advantage of optical microscopy lies in the fact that allows non-invasive three-dimensional (3D) imaging of live cells at the submicron scale with high specificity [1]. The advent of the visible fluorescent proteins [2] and of a myriad of fluorescent tags pushed fluorescence microscopy to become the most popular imaging tool in cell biology. The confocal and multiphoton versions of fluorescence microscopy reinforce this condition. In general, is a well-known paradigm the given inability of a lens-based optical microscope to discern details that are closer together than half of the wavelength of light. Recently, the viewpoint for improving resolution moved from optical solutions to the side of the fluorescent molecule to be detected. Today, for the most popular imaging mode in optical microscopy, i.e. fluorescence, the diffraction barrier is crumbling and the term “optical nanoscopy”, coined earlier, comes to be a real far field optical microscope available for the scientific community as the ones allowing individual molecule localization at high precision [3, 4]. Here we discuss about architectures, calibrations and applications of targeted and stochastic readout methods using both single and multiphoton excitation with emphasis towards three-dimensional imaging with high spatial and temporal resolution [5–7].
机译:光学显微镜的公认优势在于,可以对亚微米级的活细胞进行非侵入式三维(3D)成像,并且具有很高的特异性[1]。可见荧光蛋白[2]和无数荧光标签的出现推动了荧光显微镜成为细胞生物学中最流行的成像工具。荧光显微镜的共焦和多光子版本增强了这种情况。通常,众所周知的范例是基于透镜的光学显微镜无法分辨比光波长的一半更近的细节。近来,用于提高分辨率的观点从光学溶液转移到要检测的荧光分子的一侧。如今,对于光学显微镜中最流行的成像模式(即荧光)而言,衍射屏障正在崩溃,并且较早出现的术语“光学纳米显微镜”成为一种可供科学界使用的真正的远场光学显微镜,因为它允许个体分子高精度定位[3,4]。在这里,我们讨论有关使用单光子和多光子激发的目标和随机读出方法的体系结构,校准和应用,重点是具有高时空分辨率的三维成像[5-7]。

著录项

  • 来源
  • 会议地点 Ningbo(CN)
  • 作者

    Diaspro Alberto;

  • 作者单位

    LAMBS-MicroScoBio, Dept. of Physics, University of Genoa, Via Dodecaneso 33, Liguria, 16146, Italy;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

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