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1.
Nat Commun ; 15(1): 6295, 2024 Jul 26.
Article de Anglais | MEDLINE | ID: mdl-39060234

RÉSUMÉ

Fast electrical signaling in dendrites is central to neural computations that support adaptive behaviors. Conventional techniques lack temporal and spatial resolution and the ability to track underlying membrane potential dynamics present across the complex three-dimensional dendritic arbor in vivo. Here, we perform fast two-photon imaging of dendritic and somatic membrane potential dynamics in single pyramidal cells in the CA1 region of the mouse hippocampus during awake behavior. We study the dynamics of subthreshold membrane potential and suprathreshold dendritic events throughout the dendritic arbor in vivo by combining voltage imaging with simultaneous local field potential recording, post hoc morphological reconstruction, and a spatial navigation task. We systematically quantify the modulation of local event rates by locomotion in distinct dendritic regions, report an advancing gradient of dendritic theta phase along the basal-tuft axis, and describe a predominant hyperpolarization of the dendritic arbor during sharp-wave ripples. Finally, we find that spatial tuning of dendritic representations dynamically reorganizes following place field formation. Our data reveal how the organization of electrical signaling in dendrites maps onto the anatomy of the dendritic tree across behavior, oscillatory network, and functional cell states.


Sujet(s)
Région CA1 de l'hippocampe , Dendrites , Cellules pyramidales , Animaux , Dendrites/physiologie , Dendrites/métabolisme , Cellules pyramidales/physiologie , Cellules pyramidales/métabolisme , Souris , Région CA1 de l'hippocampe/physiologie , Région CA1 de l'hippocampe/cytologie , Potentiels de membrane/physiologie , Mâle , Souris de lignée C57BL , Hippocampe/physiologie , Hippocampe/cytologie , Navigation spatiale/physiologie , Locomotion/physiologie
2.
bioRxiv ; 2024 Feb 12.
Article de Anglais | MEDLINE | ID: mdl-38405778

RÉSUMÉ

Fast electrical signaling in dendrites is central to neural computations that support adaptive behaviors. Conventional techniques lack temporal and spatial resolution and the ability to track underlying membrane potential dynamics present across the complex three-dimensional dendritic arbor in vivo. Here, we perform fast two-photon imaging of dendritic and somatic membrane potential dynamics in single pyramidal cells in the CA1 region of the mouse hippocampus during awake behavior. We study the dynamics of subthreshold membrane potential and suprathreshold dendritic events throughout the dendritic arbor in vivo by combining voltage imaging with simultaneous local field potential recording, post hoc morphological reconstruction, and a spatial navigation task. We systematically quantify the modulation of local event rates by locomotion in distinct dendritic regions and report an advancing gradient of dendritic theta phase along the basal-tuft axis, then describe a predominant hyperpolarization of the dendritic arbor during sharp-wave ripples. Finally, we find spatial tuning of dendritic representations dynamically reorganizes following place field formation. Our data reveal how the organization of electrical signaling in dendrites maps onto the anatomy of the dendritic tree across behavior, oscillatory network, and functional cell states.

3.
Nat Methods ; 17(3): 287-290, 2020 03.
Article de Anglais | MEDLINE | ID: mdl-32123392

RÉSUMÉ

Understanding information processing in the brain requires monitoring neuronal activity at high spatiotemporal resolution. Using an ultrafast two-photon fluorescence microscope empowered by all-optical laser scanning, we imaged neuronal activity in vivo at up to 3,000 frames per second and submicrometer spatial resolution. This imaging method enabled monitoring of both supra- and subthreshold electrical activity down to 345 µm below the brain surface in head-fixed awake mice.


Sujet(s)
Encéphale/imagerie diagnostique , Microscopie de fluorescence multiphotonique/méthodes , Neurones/physiologie , Photons , Animaux , Calcium/métabolisme , Cellules cultivées , Biologie informatique , Femelle , Acide glutamique/métabolisme , Lasers , Mâle , Potentiels de membrane , Souris , Souris transgéniques , Optique et photonique , Rats , Logiciel
4.
Cell ; 179(7): 1590-1608.e23, 2019 12 12.
Article de Anglais | MEDLINE | ID: mdl-31835034

RÉSUMÉ

Optical interrogation of voltage in deep brain locations with cellular resolution would be immensely useful for understanding how neuronal circuits process information. Here, we report ASAP3, a genetically encoded voltage indicator with 51% fluorescence modulation by physiological voltages, submillisecond activation kinetics, and full responsivity under two-photon excitation. We also introduce an ultrafast local volume excitation (ULoVE) method for kilohertz-rate two-photon sampling in vivo with increased stability and sensitivity. Combining a soma-targeted ASAP3 variant and ULoVE, we show single-trial tracking of spikes and subthreshold events for minutes in deep locations, with subcellular resolution and with repeated sampling over days. In the visual cortex, we use soma-targeted ASAP3 to illustrate cell-type-dependent subthreshold modulation by locomotion. Thus, ASAP3 and ULoVE enable high-speed optical recording of electrical activity in genetically defined neurons at deep locations during awake behavior.


Sujet(s)
Encéphale/physiologie , Protéines d'activation de la GTPase/génétique , Microscopie de fluorescence multiphotonique/méthodes , Optogénétique/méthodes , Rythme thêta , Vigilance , Potentiels d'action , Animaux , Encéphale/métabolisme , Cellules CHO , Cellules cultivées , Cricetinae , Cricetulus , Femelle , Protéines d'activation de la GTPase/métabolisme , Protéines à fluorescence verte/génétique , Protéines à fluorescence verte/métabolisme , Cellules HEK293 , Humains , Mâle , Souris , Souris de lignée C57BL , Phosphoric monoester hydrolases/génétique , Phosphoric monoester hydrolases/métabolisme , Rats , Rat Sprague-Dawley , Course à pied
5.
Elife ; 62017 07 27.
Article de Anglais | MEDLINE | ID: mdl-28749338

RÉSUMÉ

Monitoring voltage dynamics in defined neurons deep in the brain is critical for unraveling the function of neuronal circuits but is challenging due to the limited performance of existing tools. In particular, while genetically encoded voltage indicators have shown promise for optical detection of voltage transients, many indicators exhibit low sensitivity when imaged under two-photon illumination. Previous studies thus fell short of visualizing voltage dynamics in individual neurons in single trials. Here, we report ASAP2s, a novel voltage indicator with improved sensitivity. By imaging ASAP2s using random-access multi-photon microscopy, we demonstrate robust single-trial detection of action potentials in organotypic slice cultures. We also show that ASAP2s enables two-photon imaging of graded potentials in organotypic slice cultures and in Drosophila. These results demonstrate that the combination of ASAP2s and fast two-photon imaging methods enables detection of neural electrical activity with subcellular spatial resolution and millisecond-timescale precision.


Sujet(s)
Potentiels d'action/physiologie , Protéines de Drosophila/génétique , Traitement d'image par ordinateur/méthodes , Protéines de tissu nerveux/génétique , Neurones/physiologie , Photons , Imagerie par colorant sensible au potentiel/méthodes , Animaux , Drosophila melanogaster/génétique , Drosophila melanogaster/métabolisme , Femelle , Cellules HEK293 , Humains , Mâle , Microscopie , Neurones/cytologie , Optogénétique , Techniques de culture d'organes , Rat Sprague-Dawley , Rat Wistar , Fractions subcellulaires
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