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果蝇翅成虫盘内paGFP的局部多光子光激活

Localized multiphoton photoactivation of paGFP in Drosophila wing imaginal discs.

作者信息

Pantazis Periklis, González-Gaitán Marcos

机构信息

Max Planck Institute of Molecular Cell Biology and Genetics, Pfotenhauerstrasse 108, 01307 Dresden, Germany.

出版信息

J Biomed Opt. 2007 Jul-Aug;12(4):044004. doi: 10.1117/1.2770478.

Abstract

In biological imaging of fluorescent molecules, multiphoton laser scanning microscopy (MPLSM) has become the favorite method of fluorescence microscopy in tissue explants and living animals. The great power of MPLSM with pulsed lasers in the infrared wavelength lies in its relatively deep optical penetration and reduced ability to cause potential nonspecific phototoxicity. These properties are of crucial importance for long time-lapse imaging. Since the excited area is intrinsically confined to the high-intensity focal volume of the illuminating beam, MPLSM can also be applied as a tool for selectively manipulating fluorophores in a known, three-dimensionally defined volume within the tissue. Here we introduce localized multiphoton photoactivation (MP-PA) as a technique suitable for analyzing the dynamics of photoactivated molecules with three-dimensional spatial resolution of a few micrometers. Short, intense laser light pulses uncage photoactivatable molecules via multiphoton excitation in a defined volume. MP-PA is demonstrated on photoactivatable paGFP in Drosophila wing imaginal discs. This technique is especially useful for extracting quantitative information about the properties of photoactivatable fusion proteins in different cellular locations in living tissue as well as to label single or small patches of cells in tissue to track their subsequent lineage.

摘要

在荧光分子的生物成像中,多光子激光扫描显微镜(MPLSM)已成为组织外植体和活体动物荧光显微镜检查的首选方法。MPLSM与红外波长的脉冲激光相结合的强大功能在于其相对较深的光学穿透深度以及降低了引起潜在非特异性光毒性的能力。这些特性对于长时间延时成像至关重要。由于激发区域本质上局限于照明光束的高强度焦体积内,MPLSM还可作为一种工具,用于在组织内已知的三维定义体积中选择性地操纵荧光团。在此,我们介绍局部多光子光激活(MP-PA)技术,该技术适用于以几微米的三维空间分辨率分析光激活分子的动力学。短而强的激光脉冲通过多光子激发在限定体积内使光激活分子解笼。MP-PA技术在果蝇翅成虫盘的光激活paGFP上得到了验证。该技术对于提取有关活体组织中不同细胞位置的光激活融合蛋白特性的定量信息,以及标记组织中的单个或小细胞斑块以追踪其后续谱系特别有用。

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