Spatiotemporal components of sustained functional hyperemia are differentially modulated by locomotion and silenced with vascular chemogenetics
Peringod, G.; Yu, L.; Murari, K.; Gordon, G. R.
Show abstract
Neural activity underlying sensation, movement or cognition drives regional blood flow enhancement - termed functional hyperemia - to increase the oxygen supply to respiring cells for as long as needed to meet energy demands. However, functional hyperemia is often studied under anesthesia which typically yields response profiles that appear temporally and spatially homogenous. We have insufficient understanding of the underlying kinetics of oxygen delivery in awake animals, especially during specific behaviours that may influence neurally-driven enhancements in cerebral blood flow. Using widefield intrinsic optical signal imaging in awake, head-fixed but active mice, we demonstrated distinct early and late components to changes in intravascular oxygenation in response to sustained (30s) whisker stimulation. We found that the late component (20-30s), but not the early component (1-5s), was strongly influenced by level of whisking/locomotion in the region of highest response and in surrounding regions. Optical flow analyses revealed complex yet stereotyped spatial properties of the early and late components that were related to location within the optical window and the initial state of the cerebral vasculature. In attempt to control these complex response characteristics, we drove a canonical microvasculature constriction pathway using mural cell Gq-chemogenetic mice. A low-dose of systemic C21 strongly limited both the magnitude and spatial extent of the sensory-evoked hemodynamic response, showing that functional hyperemia can be severely limited by direct mural cell activation. These data provide new insights into the cerebral microcirculation in the awake state and may have implications for interpreting functional imaging data.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Mesoscale cortex-wide neural dynamics predict goal-directed, but not random actions in mice several seconds prior to movement 95%
- Awake responses suggest inefficient dense coding in the mouse retina 95%
- Cholinergic input to mouse visual cortex signals a movement state and acutely enhances layer 5 responsiveness 95%
Similar papers in this journal
- The cellular architecture of microvessels, pericytes and neuronal cell types in organizing regional brain energy homeostasis in mice 96%
- Cortical acetylcholine dynamics are predicted by cholinergic axon activity and behavior state 95%
- Endogenous recruitment of frontal-sensory circuits during visual discrimination 94%
Similar papers in this journal
- Visual recognition is heralded by shifts in local field potential oscillations and inhibitory networks in primary visual cortex 95%
- Functional Localization of an Attenuating Filter within Cortex for a Selective Detection Task in Mice 95%
- Repetitive sensory stimulation potentiates and recruits sensory-evoked cortical population activity 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.