Lyons Declan G, Parpaleix Alexandre, Roche Morgane, Charpak Serge
Institut National de la Santé et de la Recherche Médicale, U1128, Paris, France.
Laboratory of Neurophysiology and New Microscopies, Université Paris Descartes, Paris, France.
Elife. 2016 Feb 2;5:e12024. doi: 10.7554/eLife.12024.
Although critical for brain function, the physiological values of cerebral oxygen concentration have remained elusive because high-resolution measurements have only been performed during anesthesia, which affects two major parameters modulating tissue oxygenation: neuronal activity and blood flow. Using measurements of capillary erythrocyte-associated transients, fluctuations of oxygen partial pressure (Po2) associated with individual erythrocytes, to infer Po2 in the nearby neuropil, we report the first non-invasive micron-scale mapping of cerebral Po2 in awake, resting mice. Interstitial Po2 has similar values in the olfactory bulb glomerular layer and the somatosensory cortex, whereas there are large capillary hematocrit and erythrocyte flux differences. Awake tissue Po2 is about half that under isoflurane anesthesia, and within the cortex, vascular and interstitial Po2 values display layer-specific differences which dramatically contrast with those recorded under anesthesia. Our findings emphasize the importance of measuring energy parameters non-invasively in physiological conditions to precisely quantify and model brain metabolism.
尽管脑氧浓度对脑功能至关重要,但其生理值一直难以确定,因为高分辨率测量仅在麻醉期间进行,而麻醉会影响调节组织氧合的两个主要参数:神经元活动和血流。通过测量与单个红细胞相关的毛细血管红细胞瞬变、氧分压(Po2)波动,来推断附近神经毡中的Po2,我们首次在清醒、静息的小鼠中进行了无创微米级脑Po2映射。嗅球肾小球层和体感皮层的间质Po2值相似,而毛细血管血细胞比容和红细胞通量存在很大差异。清醒组织的Po2约为异氟烷麻醉下的一半,在皮层内,血管和间质Po2值显示出层特异性差异,这与麻醉下记录的差异形成鲜明对比。我们的研究结果强调了在生理条件下无创测量能量参数以精确量化和模拟脑代谢的重要性。