Literature DB >> 28101397

Statistical parametric mapping of stimuli evoked changes in total blood flow velocity in the mouse cortex obtained with extended-focus optical coherence microscopy.

Paul J Marchand1, Arno Bouwens1, Tristan Bolmont1, Vincent K Shamaei1, David Nguyen1, Daniel Szlag1, Jérôme Extermann1, Theo Lasser1.   

Abstract

Functional magnetic resonance (fMRI) imaging is the current gold-standard in neuroimaging. fMRI exploits local changes in blood oxygenation to map neuronal activity over the entire brain. However, its spatial resolution is currently limited to a few hundreds of microns. Here we use extended-focus optical coherence microscopy (xfOCM) to quantitatively measure changes in blood flow velocity during functional hyperaemia at high spatio-temporal resolution in the somatosensory cortex of mice. As optical coherence microscopy acquires hundreds of depth slices simultaneously, blood flow velocity measurements can be performed over several vessels in parallel. We present the proof-of-principle of an optimised statistical parametric mapping framework to analyse quantitative blood flow timetraces acquired with xfOCM using the general linear model. We demonstrate the feasibility of generating maps of cortical hemodynamic reactivity at the capillary level with optical coherence microscopy. To validate our method, we exploited 3 stimulation paradigms, covering different temporal dynamics and stimulated limbs, and demonstrated its repeatability over 2 trials, separated by a week.

Entities:  

Keywords:  (110.0180) Microscopy; (110.3175) Interferometric imaging; (110.4500) Optical coherence tomography; (170.3880) Medical and biological imaging; (170.6900) Three-dimensional microscopy

Year:  2016        PMID: 28101397      PMCID: PMC5231283          DOI: 10.1364/BOE.8.000001

Source DB:  PubMed          Journal:  Biomed Opt Express        ISSN: 2156-7085            Impact factor:   3.732


  19 in total

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