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Technologies for Understanding and Repairing the Brain

<!--HTML--><p>Understanding and repairing the brain requires new physics and chemistry-based technologies that enable the brain to be mapped and controlled with great precision.&nbsp; We recently discovered that it was possible to physically magnify the brain manyfold in size, in an...

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Autor principal: Boyden, Ed
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:http://cds.cern.ch/record/2632836
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author Boyden, Ed
author_facet Boyden, Ed
author_sort Boyden, Ed
collection CERN
description <!--HTML--><p>Understanding and repairing the brain requires new physics and chemistry-based technologies that enable the brain to be mapped and controlled with great precision.&nbsp; We recently discovered that it was possible to physically magnify the brain manyfold in size, in an even way, by embedding brain tissues in dense swellable polymers, and then adding water to isotropically swell the brains evenly.&nbsp; This method, which we call expansion microscopy (ExM), enables large-volume imaging of brain circuits, with nanoscale precision.&nbsp; As another example, we discovered that microbial opsins, genetically expressed in neurons, could enable their electrical activities to be precisely driven or silenced in response to millisecond timescale pulses of light.&nbsp; These tools, called optogenetic tools, are enabling causal assessment of the contribution of defined neurons to behaviors and pathologies in a wide variety of basic science settings.&nbsp; We share these tools freely, and aim to integrate the use of these tools so as to lead to comprehensive understandings of neural circuits.&nbsp; Ultimately we aim for realistic, understandable computational models of how the brain works.</p>
id cern-2632836
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
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spelling cern-26328362022-11-02T22:19:34Zhttp://cds.cern.ch/record/2632836engBoyden, EdTechnologies for Understanding and Repairing the BrainTechnologies for Understanding and Repairing the BrainCERN Colloquium<!--HTML--><p>Understanding and repairing the brain requires new physics and chemistry-based technologies that enable the brain to be mapped and controlled with great precision.&nbsp; We recently discovered that it was possible to physically magnify the brain manyfold in size, in an even way, by embedding brain tissues in dense swellable polymers, and then adding water to isotropically swell the brains evenly.&nbsp; This method, which we call expansion microscopy (ExM), enables large-volume imaging of brain circuits, with nanoscale precision.&nbsp; As another example, we discovered that microbial opsins, genetically expressed in neurons, could enable their electrical activities to be precisely driven or silenced in response to millisecond timescale pulses of light.&nbsp; These tools, called optogenetic tools, are enabling causal assessment of the contribution of defined neurons to behaviors and pathologies in a wide variety of basic science settings.&nbsp; We share these tools freely, and aim to integrate the use of these tools so as to lead to comprehensive understandings of neural circuits.&nbsp; Ultimately we aim for realistic, understandable computational models of how the brain works.</p>oai:cds.cern.ch:26328362018
spellingShingle CERN Colloquium
Boyden, Ed
Technologies for Understanding and Repairing the Brain
title Technologies for Understanding and Repairing the Brain
title_full Technologies for Understanding and Repairing the Brain
title_fullStr Technologies for Understanding and Repairing the Brain
title_full_unstemmed Technologies for Understanding and Repairing the Brain
title_short Technologies for Understanding and Repairing the Brain
title_sort technologies for understanding and repairing the brain
topic CERN Colloquium
url http://cds.cern.ch/record/2632836
work_keys_str_mv AT boydened technologiesforunderstandingandrepairingthebrain