Localization of Metal Electrodes in the Intact Rat Brain Using Registration of 3D Microcomputed Tomography Images to a Magnetic Resonance Histology Atlas.

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Borg, Jana Schaich

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Vu, Mai-Anh

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Badea, Cristian

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Badea, Alexandra

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Johnson, G Allan

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Dzirasa, Kafui

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United States

dc.date.accessioned

2015-07-28T15:10:19Z

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2015-07

dc.description.abstract

Simultaneous neural recordings taken from multiple areas of the rodent brain are garnering growing interest due to the insight they can provide about spatially distributed neural circuitry. The promise of such recordings has inspired great progress in methods for surgically implanting large numbers of metal electrodes into intact rodent brains. However, methods for localizing the precise location of these electrodes have remained severely lacking. Traditional histological techniques that require slicing and staining of physical brain tissue are cumbersome, and become increasingly impractical as the number of implanted electrodes increases. Here we solve these problems by describing a method that registers 3-D computerized tomography (CT) images of intact rat brains implanted with metal electrode bundles to a Magnetic Resonance Imaging Histology (MRH) Atlas. Our method allows accurate visualization of each electrode bundle's trajectory and location without removing the electrodes from the brain or surgically implanting external markers. In addition, unlike physical brain slices, once the 3D images of the electrode bundles and the MRH atlas are registered, it is possible to verify electrode placements from many angles by "re-slicing" the images along different planes of view. Further, our method can be fully automated and easily scaled to applications with large numbers of specimens. Our digital imaging approach to efficiently localizing metal electrodes offers a substantial addition to currently available methods, which, in turn, may help accelerate the rate at which insights are gleaned from rodent network neuroscience.

dc.identifier

http://www.ncbi.nlm.nih.gov/pubmed/26322331

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2373-2822

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https://hdl.handle.net/10161/10327

dc.language

eng

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Society for Neuroscience

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eNeuro

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10.1523/ENEURO.0017-15.2015

dc.title

Localization of Metal Electrodes in the Intact Rat Brain Using Registration of 3D Microcomputed Tomography Images to a Magnetic Resonance Histology Atlas.

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Journal article

duke.contributor.orcid

Badea, Cristian|0000-0002-1850-2522

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Badea, Alexandra|0000-0001-6621-4560

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Johnson, G Allan|0000-0002-7606-5447

pubs.author-url

http://www.ncbi.nlm.nih.gov/pubmed/26322331

pubs.issue

4

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Basic Science Departments

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Biomedical Engineering

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Clinical Science Departments

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Duke

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Duke Cancer Institute

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Duke Institute for Brain Sciences

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Institutes and Centers

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Institutes and Provost's Academic Units

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Neurobiology

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Neurosurgery

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Physics

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Pratt School of Engineering

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Psychiatry & Behavioral Sciences

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Psychiatry & Behavioral Sciences, Brain Stimulation and Neurophysiology

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Radiology

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School of Medicine

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Trinity College of Arts & Sciences

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University Institutes and Centers

pubs.publication-status

Published

pubs.volume

2

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