Reliability and similarity of resting state functional connectivity networks imaged using wearable, high-density diffuse optical tomography in the home setting
•First demonstration of fully wearable 24 module HD-DOT.•Wearable HD-DOT can be used for at-home imaging of RSFC networks.•Networks demonstrate high overlap with those identified in fMRI literature.•Networks demonstrate high network similarity across sessions and reliability across recording duratio...
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Veröffentlicht in: | NeuroImage (Orlando, Fla.) Fla.), 2022-11, Vol.263, p.119663-119663, Article 119663 |
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Zusammenfassung: | •First demonstration of fully wearable 24 module HD-DOT.•Wearable HD-DOT can be used for at-home imaging of RSFC networks.•Networks demonstrate high overlap with those identified in fMRI literature.•Networks demonstrate high network similarity across sessions and reliability across recording durations.
When characterizing the brain's resting state functional connectivity (RSFC) networks, demonstrating networks' similarity across sessions and reliability across different scan durations is essential for validating results and possibly minimizing the scanning time needed to obtain stable measures of RSFC. Recent advances in optical functional neuroimaging technologies have resulted in fully wearable devices that may serve as a complimentary tool to functional magnetic resonance imaging (fMRI) and allow for investigations of RSFC networks repeatedly and easily in non-traditional scanning environments.
Resting-state cortical hemodynamic activity was repeatedly measured in a single individual in the home environment during COVID-19 lockdown conditions using the first ever application of a 24-module (72 sources, 96 detectors) wearable high-density diffuse optical tomography (HD-DOT) system. Twelve-minute recordings of resting-state data were acquired over the pre-frontal and occipital regions in fourteen experimental sessions over three weeks. As an initial validation of the data, spatial independent component analysis was used to identify RSFC networks. Reliability and similarity scores were computed using metrics adapted from the fMRI literature.
We observed RSFC networks over visual regions (visual peripheral, visual central networks) and higher-order association regions (control, salience and default mode network), consistent with previous fMRI literature. High similarity was observed across testing sessions and across chromophores (oxygenated and deoxygenated haemoglobin, HbO and HbR) for all functional networks, and for each network considered separately. Stable reliability values (described here as a |
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ISSN: | 1053-8119 1095-9572 |
DOI: | 10.1016/j.neuroimage.2022.119663 |