ArticleIEEE transactions on medical imaging2019
Spatial and Temporal Heterogeneities of Capillary Hemodynamics and Its Functional Coupling During Neural Activation.
Article in IEEE transactions on medical imaging, 2019. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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8 citing papers in PubMed, 9 citations in OpenAlex.
- Decreased retinal vascular density is associated with cognitive impairment in CADASIL: an optical coherence tomography angiography study.Neurological sciences : official journal of the Italian Neurological Society and of the Italian Society of Clinical Neurophysiology · 2024Article
- Quantitative study of spatial and temporal variation in retinal capillary network perfusion in rat eye by in vivo confocal imaging.Scientific reports · 2023Article
- Lung Cancer Detection and Improving Accuracy Using Linear Subspace Image Classification Algorithm.Interdisciplinary sciences, computational life sciences · 2021Article
- Model-based optical coherence tomography angiography enables motion-insensitive vascular imaging.Biomedical optics express · 2021Article
- Imaging localized fast optical signals of neural activation with optical coherence tomography in awake mice.Optics letters · 2021Article
- Automated vessel diameter quantification and vessel tracing for OCT angiography.Journal of biophotonics · 2020Article
- Measurement and visualization of stimulus-evoked tissue dynamics in mouse barrel cortex using phase-sensitive optical coherence tomography.Biomedical optics express · 2020Article
- Dynamic imaging and quantification of subcellular motion with eigen-decomposition optical coherence tomography-based variance analysis.Journal of biophotonics · 2019Article
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Authors and funding
5 authors at 1 institution in 1 country.
Funding
Abstract
The cerebral vascular system provides a means to meet the constant metabolic needs of neuronal activities in the brain. Within the cerebral capillary bed, the interactions of spatial and temporal hemodynamics play a deterministic role in oxygen diffusion, however, the progression of which remains unclear. Taking the advantages of high-spatiotemporal resolution of optical coherence tomography capillary velocimetry designed with the eigen-decomposition statistical analysis, we investigated intrinsic red blood cell (RBC) velocities and their spatiotemporal adjustment within the capillaries permeating mouse cerebral cortex during electrical stimulation of contralateral hind paw. We found that the mean capillary transit velocity (mCTV) is increased and its temporal fluctuation bandwidth (TFB) is broadened within hind-paw somatosensory cortex. In addition, the degree to which the mCTV is increased negatively correlates with resting state mCTV, and the degree to which the TFB is increased negatively correlates with both the resting state mCTV and the TFB. In order to confirm the changes are due to hemodynamic regulation, we performed angiographic analyses and found that the vessel density remains almost constant, suggesting the observed functional activation does not involve recruitment of reserved capillaries. To further differentiate the contributions of the mCTV and the TFB to the spatiotemporally coupled hemodynamics, changes in the mCTV and TBF of the capillary flow were modeled and investigated through a Monte Carlo simulation. The results suggest that neural activation evokes the spatial transit time homogenization within the capillary bed, which is regulated via both the heterogeneous acceleration of RBC flow and the heterogeneous increase of temporal RBC fluctuation, ensuring sufficient oxygenation during functional hyperemia.
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