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阿尔茨海默病 APP/PS1ΔE9 模型中毛细血管流动控制紊乱。

Disturbances in the control of capillary flow in an aged APP/PS1ΔE9 model of Alzheimer's disease.

机构信息

Center of Functionally Integrative Neuroscience and MINDLab, Department of Clinical Medicine, Aarhus University, Aarhus, Denmark.

Center of Functionally Integrative Neuroscience and MINDLab, Department of Clinical Medicine, Aarhus University, Aarhus, Denmark.

出版信息

Neurobiol Aging. 2018 Feb;62:82-94. doi: 10.1016/j.neurobiolaging.2017.10.006. Epub 2017 Oct 16.

Abstract

Vascular changes are thought to contribute to the development of Alzheimer's disease, and both cerebral blood flow and its responses during neural activation are reduced before Alzheimer's disease symptoms onset. One hypothetical explanation is that capillary dysfunction reduces oxygen extraction efficacy. This study compares the morphology and hemodynamics of the microvasculature in the somatosensory cortex of 18-month-old APP/PS1ΔE9 (transgenic [Tg]) mice and wild-type (WT) littermates. In particular, the extent to which their capillary transit times homogenize during functional activation was measured and compared. Capillary length density was similar in both groups but capillary blood flow during rest was lower in the Tg mice, indicating that cortical oxygen availability is reduced. The capillary hemodynamic response to functional activation was larger, and lasted longer in Tg mice than in WT mice. The homogenization of capillary transit times during functional activation, which we previously demonstrated in young mice, was absent in the Tg mice. This study demonstrates that both neurovascular coupling and capillary function are profoundly disturbed in aged Tg and WT mice.

摘要

血管变化被认为是导致阿尔茨海默病发展的原因,在阿尔茨海默病症状出现之前,大脑血流及其在神经激活期间的反应都会减少。一种假设的解释是毛细血管功能障碍降低了氧气提取效率。本研究比较了 18 个月大的 APP/PS1ΔE9(转基因 [Tg])小鼠和野生型(WT)同窝仔鼠体感皮层的微血管形态和血液动力学。特别是,测量并比较了它们在功能激活期间毛细血管渡越时间均匀化的程度。两组的毛细血管长度密度相似,但 Tg 小鼠在休息时的毛细血管血流较低,表明皮质氧供应减少。Tg 小鼠的毛细血管血液动力学对功能激活的反应更大,持续时间也比 WT 小鼠长。我们之前在年轻小鼠中证明的功能激活期间毛细血管渡越时间的均匀化在 Tg 小鼠中不存在。这项研究表明,年老的 Tg 和 WT 小鼠的神经血管耦合和毛细血管功能都受到严重干扰。

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