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Multi-Photon Nanosurgery in Live Brain

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 selectiv...

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Autores principales: Mascaro, Anna Letizia Allegra, Sacconi, Leonardo, Pavone, Francesco S.
Formato: Texto
Lenguaje:English
Publicado: Frontiers Research Foundation 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2922942/
https://www.ncbi.nlm.nih.gov/pubmed/20725602
http://dx.doi.org/10.3389/fnene.2010.00021
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author Mascaro, Anna Letizia Allegra
Sacconi, Leonardo
Pavone, Francesco S.
author_facet Mascaro, Anna Letizia Allegra
Sacconi, Leonardo
Pavone, Francesco S.
author_sort Mascaro, Anna Letizia Allegra
collection PubMed
description 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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spelling pubmed-29229422010-08-19 Multi-Photon Nanosurgery in Live Brain Mascaro, Anna Letizia Allegra Sacconi, Leonardo Pavone, Francesco S. Front Neuroenergetics Neuroenergetics 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. Frontiers Research Foundation 2010-07-30 /pmc/articles/PMC2922942/ /pubmed/20725602 http://dx.doi.org/10.3389/fnene.2010.00021 Text en Copyright © 2010 Allegra Mascaro, Sacconi and Pavone. http://www.frontiersin.org/licenseagreement This is an open-access article subject to an exclusive license agreement between the authors and the Frontiers Research Foundation, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are credited.
spellingShingle Neuroenergetics
Mascaro, Anna Letizia Allegra
Sacconi, Leonardo
Pavone, Francesco S.
Multi-Photon Nanosurgery in Live Brain
title Multi-Photon Nanosurgery in Live Brain
title_full Multi-Photon Nanosurgery in Live Brain
title_fullStr Multi-Photon Nanosurgery in Live Brain
title_full_unstemmed Multi-Photon Nanosurgery in Live Brain
title_short Multi-Photon Nanosurgery in Live Brain
title_sort multi-photon nanosurgery in live brain
topic Neuroenergetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2922942/
https://www.ncbi.nlm.nih.gov/pubmed/20725602
http://dx.doi.org/10.3389/fnene.2010.00021
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