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Published on: January 27, 2015
Altered hemodynamics and vascular reactivity in a mouse model with severe pericyte deficiency
Jillian L Stobart1,2,3, Eva Erlebach1,2, Chaim Glück1,2
1Institute of Pharmacology and Toxicology, University of Zurich, Zurich, Switzerland.
Insights
Severe pericyte deficiency in Pdgfb mice causes enlarged brain blood vessels and impaired blood flow, potentially mimicking arteriovenous malformations.
Area of Science:
- Neuroscience
- Vascular Biology
- Physiology
Background:
- Pericytes are crucial mural cells supporting microvascular integrity.
- Platelet-derived growth factor B (PDGFB) signaling is essential for pericyte recruitment.
- Disruption of PDGFB retention motif leads to pericyte deficiency.
Purpose of the Study:
- To investigate cerebrovascular abnormalities and hemodynamics in Pdgfb mice with disrupted PDGFB retention.
- To assess the impact of pericyte deficiency on blood flow and oxygen delivery in the brain.
Main Methods:
- Utilized in vivo two-photon microscopy to study cerebrovascular networks in Pdgfb mice.
- Measured red blood cell velocity, linear density, and intravascular PO2.
- Assessed vasodilation capacity using acetazolamide challenge during functional MRI.
Main Results:
- Pdgfb mice exhibited severe pericyte deficiency, enlarged blood vessels, and fewer branches.
- Reduced red blood cell velocity and altered hematocrit indicated impaired oxygen delivery.
- Higher intravascular PO2 in cortical layers suggested reduced oxygen extraction and impaired vasodilation.
Conclusions:
- Severe pericyte deficiency leads to significant cerebrovascular abnormalities and altered cerebral blood flow.
- These vascular changes resemble pathologies like arteriovenous malformations.
- The findings highlight the critical role of pericytes in maintaining brain vascular function.
Abstract:
Pericytes are the mural cells of the microvascular network that are in close contact with underlying endothelial cells. Endothelial-secreted PDGFB leads to recruitment of pericytes to the vessel wall, but this is disrupted in Pdgfb mice when the PDGFB retention motif is deleted. This results in severely reduced pericyte coverage on blood vessels. In this study, we investigated vascular abnormalities and hemodynamics in Pdgfbret/ret mice throughout the cerebrovascular network and in different cortical layers by in vivo two-photon microscopy. We confirmed that Pdgfbret/ret mice are severely deficient in pericytes throughout the vascular network, with enlarged brain blood vessels and a reduced number of vessel branches. Red blood cell velocity, linear density, and tube hematocrit were reduced in Pdgfbret/ret mice, which may impair oxygen delivery to the tissue. We also measured intravascular PO2 and found that concentrations were higher in cortical Layer 2/3 in Pdgfbret/ret mice, indicative of reduced blood oxygen extraction. Finally, we found that Pdgfbret/ret mice had a reduced capacity for vasodilation in response to an acetazolamide challenge during functional MRI imaging. Taken together, these results suggest that severe pericyte deficiency can lead to vascular abnormalities and altered cerebral blood flow, reminiscent of pathologies such as arteriovenous malformations.

