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Microvascular oxygen tension and flow measurements in rodent cerebral cortex during baseline conditions and functional activation

机译:基线条件和功能激活期间啮齿动物大脑皮层的微血管氧张力和血流量测量

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摘要

Measuring cerebral oxygen delivery and metabolism microscopically is important for interpreting macroscopic functional magnetic resonance imaging (fMRI) data and identifying pathological changes associated with stroke, Alzheimer's disease, and brain injury. Here, we present simultaneous, microscopic measurements of cerebral blood flow (CBF) and oxygen partial pressure (pO2) in cortical microvessels of anesthetized rats under baseline conditions and during somatosensory stimulation. Using a custom-built imaging system, we measured CBF with Fourier-domain optical coherence tomography (OCT), and vascular pO2 with confocal phosphorescence lifetime microscopy. Cerebral blood flow and pO2 measurements displayed heterogeneity over distances irresolvable with fMRI and positron emission tomography. Baseline measurements indicate O2 extraction from pial arterioles and homogeneity of ascending venule pO2 despite large variation in microvessel flows. Oxygen extraction is linearly related to flow in ascending venules, suggesting that flow in ascending venules closely matches oxygen demand of the drained territory. Oxygen partial pressure and relative CBF transients during somatosensory stimulation further indicate arteriolar O2 extraction and suggest that arterioles contribute to the fMRI blood oxygen level dependent response. Understanding O2 supply on a microscopic level will yield better insight into brain function and the underlying mechanisms of various neuropathologies.
机译:显微镜下测量大脑的氧气输送和代谢对于解释宏观功能磁共振成像(fMRI)数据和识别与中风,阿尔茨海默氏病和脑损伤相关的病理变化非常重要。在这里,我们介绍了在基线条件下以及在体感刺激过程中,麻醉大鼠皮质微血管中脑血流量(CBF)和氧分压(pO2)的同时,显微测量。使用定制的成像系统,我们用傅里叶域光学相干断层扫描(OCT)测量了CBF,并用共聚焦磷光寿命显微镜测量了血管pO2。脑血流量和pO2测量显示在功能磁共振成像和正电子发射断层扫描无法解决的距离上存在异质性。基线测量结果表明,尽管微血管流量有很大变化,但仍可从鼻小动脉中提取O2,并同时提高小静脉pO2的均一性。氧气提取与上升小静脉中的流量呈线性关系,这表明上升小静脉中的流量与引流区域的需氧量紧密匹配。体感刺激过程中的氧分压和相对CBF瞬变进一步表明小动脉O2提取,并提示小动脉有助于fMRI血氧水平依赖性反应。在微观层面上了解氧气的供应将会更好地了解大脑功能以及各种神经病理学的潜在机制。

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