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Spatial and Temporal Heterogeneities of Capillary Hemodynamics and Its Functional Coupling During Neural Activation

机译:神经激活过程中毛细血管血流动力学的时空异质性及其功能耦合

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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.
机译:脑血管系统提供了满足脑神经活动不断代谢需要的手段。在脑毛细血管床内,时空血流动力学的相互作用在氧扩散中起决定性作用,然而,其进展尚不清楚。利用本征分解统计分析设计的光学相干断层扫描毛细管测速仪的高时空分辨率,我们研究了电刺激对侧后肢的过程中,渗透在小鼠大脑皮层中的毛细血管内在红细胞(RBC)的速度及其时空调节爪子。我们发现平均后肢体感皮层内的平均毛细血管通过速度(mCTV)增加,其时间波动带宽(TFB)变宽。另外,mCTV的增加程度与静止状态mCTV负相关,而TFB的增加程度与静止状态mCTV和TFB两者负相关。为了确认变化是由于血液动力学调节引起的,我们进行了血管造影分析,发现血管密度几乎保持恒定,这表明观察到的功能激活不涉及保留毛细血管的募集。为了进一步区分mCTV和TFB对时空耦合血流动力学的贡献,对毛细流的mCTV和TBF的变化进行了建模并通过蒙特卡洛模拟进行了研究。结果表明,神经激活引起毛细血管床内的空间渡越时间均一化,这通过RBC流量的异质加速和RBC时间性波动的异质增加来调节,从而确保功能性充血期间足够的充氧。

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