Multi-photon nanosurgery in live brain.

Frontiers in neuroenergetics Pub Date : 2010-07-30 eCollection Date: 2010-01-01 DOI:10.3389/fnene.2010.00021
Anna Letizia Allegra Mascaro, Leonardo Sacconi, Francesco S Pavone
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引用次数: 52

Abstract

In the last few years two-photon microscopy has been used to perform in vivo high spatial resolution imaging of neurons, glial cells and vascular structures in the intact neocortex. Recently, in parallel to its applications in imaging, multi-photon absorption has been used as a tool for the selective disruption of neural processes and blood vessels in living animals. In this review we present some basic features of multi-photon nanosurgery and we illustrate the advantages offered by this novel methodology in neuroscience research. We show how the spatial localization of multi-photon excitation can be exploited to perform selective lesions on cortical neurons in living mice expressing fluorescent proteins. This methodology is applied to disrupt a single neuron without causing any visible collateral damage to the surrounding structures. The spatial precision of this method allows to dissect single processes as well as individual dendritic spines, preserving the structural integrity of the main neuronal arbor. The same approach can be used to breach the blood-brain barrier through a targeted photo-disruption of blood vessels walls. We show how the vascular system can be perturbed through laser ablation leading toward two different models of stroke: intravascular clot and extravasation. Following the temporal evolution of the injured system (either a neuron or a blood vessel) through time lapse in vivo imaging, the physiological response of the target structure and the rearrangement of the surrounding area can be characterized. Multi-photon nanosurgery in live brain represents a useful tool to produce different models of neurodegenerative disease.

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活体脑内多光子纳米手术。
在过去的几年里,双光子显微镜已经被用于对完整的新皮层中的神经元、神经胶质细胞和血管结构进行体内高空间分辨率成像。近年来,除了在成像方面的应用外,多光子吸收已被用作选择性破坏活体动物神经过程和血管的工具。在这篇综述中,我们介绍了多光子纳米手术的一些基本特征,并说明了这种新方法在神经科学研究中的优势。我们展示了如何利用多光子激发的空间定位对表达荧光蛋白的活小鼠皮质神经元进行选择性损伤。这种方法用于破坏单个神经元,而不会对周围结构造成任何可见的附带损害。这种方法的空间精度允许解剖单个过程以及单个树突棘,保持主要神经元轴的结构完整性。同样的方法也可以通过有针对性的光破坏血管壁来突破血脑屏障。我们展示了血管系统如何通过激光消融术受到干扰,从而导致两种不同的中风模型:血管内凝块和外渗。随着损伤系统(无论是神经元还是血管)的时间演化,通过时间推移在体内成像,可以表征靶结构的生理反应和周围区域的重排。活体脑内多光子纳米手术是产生不同神经退行性疾病模型的有用工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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