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首页> 外文期刊>Scientific reports. >Capillary flow homogenization during functional activation revealed by optical coherence tomography angiography based capillary velocimetry
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Capillary flow homogenization during functional activation revealed by optical coherence tomography angiography based capillary velocimetry

机译:基于光学相干断层造影血管造影毛细管术揭示​​的功能活化期间的毛细管流动均质化

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摘要

Elaborate modeling study suggests an important role of capillary transit time heterogeneity (CTTH) reduction in brain oxygenation during functional hyperemia. Here, we use optical coherence tomography angiography (OCTA) capillary velocimetry to probe blood flow dynamics in cerebral capillary beds and validate the change in CTTH during functional activation in an in vivo rodent model. Through evaluating flow dynamics and consequent transit time parameters from thousands of capillary vessels within three-dimensional (3-D) tissue volume upon hindpaw electrical stimulation, we observe reductions in both capillary mean transit time (MTT) (9.8%?±?2.2) and CTTH (5.9%?±?1.4) in the hindlimb somatosensory cortex (HLS1). Additionally, capillary flow pattern modification is observed with a significant difference (p??0.05) between the HLS1 and non-activated cortex regions. These quantitative findings reveal a localized microcirculatory adjustment during functional activation, consistent with previous studies, and support the critical contribution of capillary flow homogenization to brain oxygenation. The OCTA velocimetry is a useful tool to image microcirculatory dynamics in vivo using animal models, enabling a more comprehensive understanding as to hemodynamic-metabolic coupling.
机译:精心制造的建模研究表明,毛细血管过渡时间异质性(CTTH)在功能性高血量期间减少脑氧气的重要作用。这里,我们使用光学相干断层造影血管造影(OctA)毛细管术中脑毛细血管床中的血流动力学,并在体内啮齿动物模型中验证功能活化中的CTTH变化。通过评估流动动力学和随后在三维(3-D)组织体积内的毛细血管中的毛细血管的转运时间参数,在后爪电刺激上观察到毛细管平均转运时间(MTT)的减少(9.8%?±2.2)在后肢躯体感染皮层(HLS1)中,CTTH(5.9%?±1.4)。另外,观察到HLS1和非活化皮质区域之间的显着差异(P≤0.05)的毛细血管流动模式改性。这些定量发现揭示了功能活化期间的局部微循环调节,与先前的研究一致,并支持毛细血管流动均质化对脑氧化的关键贡献。 Octa Velocimetry是一种使用动物模型在体内图像微循环动力学的有用工具,可以更全面地了解血液动力学 - 代谢耦合。

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