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High-resolution wide-field human brain tumor margin detection and in vivo murine neuroimaging

View ORCID ProfileDerek Yecies, View ORCID ProfileOrly Liba, View ORCID ProfileElliott SoRelle, Rebecca Dutta, Edwin Yuan, View ORCID ProfileHannes Vogel, View ORCID ProfileGerald A. Grant, View ORCID ProfileAdam de la Zerda
doi: https://doi.org/10.1101/252080
Derek Yecies
1Stanford University Department of Structural Biology,
2Stanford University Department of Neurosurgery,
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Orly Liba
1Stanford University Department of Structural Biology,
3Stanford University Department of Electrical Engineering,
4Molecular Imaging Program at Stanford,
5Bio-X Program at Stanford,
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Elliott SoRelle
1Stanford University Department of Structural Biology,
4Molecular Imaging Program at Stanford,
5Bio-X Program at Stanford,
6Biophysics Program at Stanford University,
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Rebecca Dutta
1Stanford University Department of Structural Biology,
4Molecular Imaging Program at Stanford,
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Edwin Yuan
1Stanford University Department of Structural Biology,
4Molecular Imaging Program at Stanford,
7Applied Physics Program at Stanford University,
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Hannes Vogel
8Stanford Pathology,
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Gerald A. Grant
2Stanford University Department of Neurosurgery,
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Adam de la Zerda
1Stanford University Department of Structural Biology,
3Stanford University Department of Electrical Engineering,
4Molecular Imaging Program at Stanford,
5Bio-X Program at Stanford,
6Biophysics Program at Stanford University,
9The Chan Zuckerberg Biohub, San Francisco, CA 94158
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Abstract

Current in vivo neuroimaging techniques provide limited field of view or spatial resolution and often require exogenous contrast. These limitations prohibit detailed structural imaging across wide fields of view and hinder intraoperative tumor margin detection. Here we present a novel neuroimaging technique, speckle-modulating optical coherence tomography (SM-OCT), which allows us to image the brains of live mice and ex vivo human samples with unprecedented resolution and wide field of view using only endogenous contrast. The increased effective resolution provided by speckle elimination reveals white matter fascicles and cortical layer architecture in the brains of live mice. To our knowledge, the data reported herein represents the highest resolution imaging of murine white matter structure achieved in vivo across a wide field of view of several millimeters. When applied to an orthotopic murine glioblastoma xenograft model, SM-OCT readily identifies brain tumor margins with near single-cell resolution. SM-OCT of ex vivo human temporal lobe tissue reveals fine structures including cortical layers and myelinated axons. Finally, when applied to an ex vivo sample of a low-grade glioma resection margin, SM-OCT is able to resolve the brain tumor margin. Based on these findings, SM-OCT represents a novel approach for intraoperative tumor margin detection and in vivo neuroimaging.

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Posted January 22, 2018.
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High-resolution wide-field human brain tumor margin detection and in vivo murine neuroimaging
Derek Yecies, Orly Liba, Elliott SoRelle, Rebecca Dutta, Edwin Yuan, Hannes Vogel, Gerald A. Grant, Adam de la Zerda
bioRxiv 252080; doi: https://doi.org/10.1101/252080
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High-resolution wide-field human brain tumor margin detection and in vivo murine neuroimaging
Derek Yecies, Orly Liba, Elliott SoRelle, Rebecca Dutta, Edwin Yuan, Hannes Vogel, Gerald A. Grant, Adam de la Zerda
bioRxiv 252080; doi: https://doi.org/10.1101/252080

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