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Reeson, P.

Publications and source records attributed to Reeson, P..

2 recordsLinked to original sources

Angiogenesis in the mature mouse cortex is governed in a region specific and Notch1 dependent manner

Cerebral angiogenesis is well appreciated in development and after injury, but the extent to which it occurs across cortical regions in normal adult mice and underlying mechanisms, is incompletely understood. Using in vivo imaging, we show that angiogenesis in anterior-medial cortical regions (retrosplenial and sensorimotor cortex), was exceptionally rare. By contrast, angiogenesis was significantly elevated in posterior-lateral regions such as visual cortex, primarily within 200{micro}m of the cortical surface. There were no regional differences in vessel pruning or sex effects except for the length and depth of new capillaries. To understand mechanisms, we surveyed gene expression and found Notch related genes were enriched in ultra-stable retrosplenial versus visual cortex. Using endothelial specific knockdown of Notch1, cerebral angiogenesis was significantly increased along with genes implicated in angiogenesis (Apln, Angpt2, Cdkn1a). Our study shows that angiogenesis is regionally dependent and manipulations of Notch1 signaling could unlock the angiogenic potential of the mature vasculature.

neuroscience↗

Optical opening of the blood brain barrier for targeted and ultra-sparse viral infection of cells in the mouse cortex

Adeno-associated viruses (AAVs) are used in a wide array of experimental situations for driving expression of biosensors, recombinases and opto/chemo-genetic actuators in the brain. However, conventional approaches for minimally invasive, spatially precise and ultra-sparse AAV mediated transduction of cells during imaging experiments, has remained a significant challenge. Here we show that intravenous injection of commercially available AAVs at different doses, combined with laser based perforation of single cortical capillaries through a cranial widow, allows for ultra-sparse, titrate-able, and micron level precision for delivery of viral vectors with relatively little inflammation or tissue damage. Further, we show the utility of this approach for eliciting sparse expression of GCaMP6, channel-rhodopsin or fluorescent reporters in neurons and astrocytes within specific functional domains in normal and stroke damaged cortex. This technique represents a facile approach for targeted delivery of viral vectors that should assist in the study of cell types and circuits in the cerebral cortex.

neuroscience↗