Feasibility and resolution limits of opto-magnetic imaging of neuralnetwork activity in brain slices using color centers in diamond

2018
journal article
article
19
dc.abstract.enWe suggest a novel approach for wide-field imaging of the neural network dynamics of brain slices that uses highly sensitivity magnetometry based on nitrogen-vacancy (NV) centers in diamond. Invitro recordings in brain slices is a proven method for the characterization of electrical neural activity and has strongly contributed to our understanding of the mechanisms that govern neural information processing. However, this traditional approach only acquires signals from a few positions, which severely limits its ability to characterize the dynamics of the underlying neural networks. We suggest to extend its scope using NV magnetometry-based imaging of the neural magnetic fields across the slice. Employing comprehensive computational simulations and theoretical analyses, we determine the spatiotemporal characteristics of the neural fields and the required key performance parameters of an NV magnetometry-based imaging setup. We investigate how the technical parameters determine the achievable spatial resolution for an optimal 2D reconstruction of neural currents from the measured field distributions. Finally, we compare the imaging of neural slice activity with that of a single planar pyramidal cell. Our results suggest that imaging of slice activity will be possible with the upcoming generation of NV magnetic field sensors, while single-shot imaging of planar cell activity remains challenging.pl
dc.affiliationWydział Fizyki, Astronomii i Informatyki Stosowanej : Instytut Fizyki im. Mariana Smoluchowskiegopl
dc.contributor.authorKaradas, Mürselpl
dc.contributor.authorWojciechowski, Adam - 139902 pl
dc.contributor.authorHuck, Alexanderpl
dc.contributor.authorDalby, Nils Olepl
dc.contributor.authorAndersen, Ulrik Lundpl
dc.contributor.authorThielscher, Axelpl
dc.date.accessioned2019-03-06T13:32:39Z
dc.date.available2019-03-06T13:32:39Z
dc.date.issued2018pl
dc.date.openaccess0
dc.description.accesstimew momencie opublikowania
dc.description.versionostateczna wersja wydawcy
dc.description.volume8pl
dc.identifier.articleid4503pl
dc.identifier.doi10.1038/s41598-018-22793-wpl
dc.identifier.eissn2045-2322pl
dc.identifier.projectROD UJ / OPpl
dc.identifier.urihttps://ruj.uj.edu.pl/xmlui/handle/item/69892
dc.languageengpl
dc.language.containerengpl
dc.rightsUdzielam licencji. Uznanie autorstwa 4.0 Międzynarodowa*
dc.rights.licenceCC-BY
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/legalcode.pl*
dc.share.typeotwarte czasopismo
dc.subtypeArticlepl
dc.titleFeasibility and resolution limits of opto-magnetic imaging of neuralnetwork activity in brain slices using color centers in diamondpl
dc.title.journalScientific Reportspl
dc.typeJournalArticlepl
dspace.entity.typePublication
dc.abstract.enpl
We suggest a novel approach for wide-field imaging of the neural network dynamics of brain slices that uses highly sensitivity magnetometry based on nitrogen-vacancy (NV) centers in diamond. Invitro recordings in brain slices is a proven method for the characterization of electrical neural activity and has strongly contributed to our understanding of the mechanisms that govern neural information processing. However, this traditional approach only acquires signals from a few positions, which severely limits its ability to characterize the dynamics of the underlying neural networks. We suggest to extend its scope using NV magnetometry-based imaging of the neural magnetic fields across the slice. Employing comprehensive computational simulations and theoretical analyses, we determine the spatiotemporal characteristics of the neural fields and the required key performance parameters of an NV magnetometry-based imaging setup. We investigate how the technical parameters determine the achievable spatial resolution for an optimal 2D reconstruction of neural currents from the measured field distributions. Finally, we compare the imaging of neural slice activity with that of a single planar pyramidal cell. Our results suggest that imaging of slice activity will be possible with the upcoming generation of NV magnetic field sensors, while single-shot imaging of planar cell activity remains challenging.
dc.affiliationpl
Wydział Fizyki, Astronomii i Informatyki Stosowanej : Instytut Fizyki im. Mariana Smoluchowskiego
dc.contributor.authorpl
Karadas, Mürsel
dc.contributor.authorpl
Wojciechowski, Adam - 139902
dc.contributor.authorpl
Huck, Alexander
dc.contributor.authorpl
Dalby, Nils Ole
dc.contributor.authorpl
Andersen, Ulrik Lund
dc.contributor.authorpl
Thielscher, Axel
dc.date.accessioned
2019-03-06T13:32:39Z
dc.date.available
2019-03-06T13:32:39Z
dc.date.issuedpl
2018
dc.date.openaccess
0
dc.description.accesstime
w momencie opublikowania
dc.description.version
ostateczna wersja wydawcy
dc.description.volumepl
8
dc.identifier.articleidpl
4503
dc.identifier.doipl
10.1038/s41598-018-22793-w
dc.identifier.eissnpl
2045-2322
dc.identifier.projectpl
ROD UJ / OP
dc.identifier.uri
https://ruj.uj.edu.pl/xmlui/handle/item/69892
dc.languagepl
eng
dc.language.containerpl
eng
dc.rights*
Udzielam licencji. Uznanie autorstwa 4.0 Międzynarodowa
dc.rights.licence
CC-BY
dc.rights.uri*
http://creativecommons.org/licenses/by/4.0/legalcode.pl
dc.share.type
otwarte czasopismo
dc.subtypepl
Article
dc.titlepl
Feasibility and resolution limits of opto-magnetic imaging of neuralnetwork activity in brain slices using color centers in diamond
dc.title.journalpl
Scientific Reports
dc.typepl
JournalArticle
dspace.entity.type
Publication
Affiliations

* The migration of download and view statistics prior to the date of April 8, 2024 is in progress.

Views
5
Views per month
Views per city
Ashburn
2
Bühl
1
Downloads
karadas_wojciechowski_huck_dalby_andersen_thielscher_feasibility_and_resolution_limits_2018.pdf
7
karadas_wojciechowski_huck_dalby_andersen_thielscher_supplementary_material_feasibility_and_resolution_limits_2018.pdf
4