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Simultaneous two-photon imaging of oxygen and blood flow in deep cerebral vessels.


ABSTRACT: Uncovering principles that regulate energy metabolism in the brain requires mapping of partial pressure of oxygen (PO(2)) and blood flow with high spatial and temporal resolution. Using two-photon phosphorescence lifetime microscopy (2PLM) and the oxygen probe PtP-C343, we show that PO(2) can be accurately measured in the brain at depths up to 300 ?m with micron-scale resolution. In addition, 2PLM allowed simultaneous measurements of blood flow and of PO(2) in capillaries with less than one-second temporal resolution. Using this approach, we detected erythrocyte-associated transients (EATs) in oxygen in the rat olfactory bulb and showed the existence of diffusion-based arterio-venous shunts. Sensory stimulation evoked functional hyperemia, accompanied by an increase in PO(2) in capillaries and by a biphasic PO(2) response in the neuropil, consisting of an 'initial dip' and a rebound. 2PLM of PO(2) opens new avenues for studies of brain metabolism and blood flow regulation.

SUBMITTER: Lecoq J 

PROVIDER: S-EPMC3291110 | biostudies-literature | 2011 Jun

REPOSITORIES: biostudies-literature

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Simultaneous two-photon imaging of oxygen and blood flow in deep cerebral vessels.

Lecoq Jérôme J   Parpaleix Alexandre A   Roussakis Emmanuel E   Ducros Mathieu M   Goulam Houssen Yannick Y   Vinogradov Sergei A SA   Charpak Serge S  

Nature medicine 20110605 7


Uncovering principles that regulate energy metabolism in the brain requires mapping of partial pressure of oxygen (PO(2)) and blood flow with high spatial and temporal resolution. Using two-photon phosphorescence lifetime microscopy (2PLM) and the oxygen probe PtP-C343, we show that PO(2) can be accurately measured in the brain at depths up to 300 μm with micron-scale resolution. In addition, 2PLM allowed simultaneous measurements of blood flow and of PO(2) in capillaries with less than one-seco  ...[more]

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