Literature DB >> 21139630

In vivo 3D morphology of astrocyte-vasculature interactions in the somatosensory cortex: implications for neurovascular coupling.

Addason F H McCaslin1, Brenda R Chen, Andrew J Radosevich, Bruno Cauli, Elizabeth M C Hillman.   

Abstract

Astrocytes are increasingly believed to play an important role in neurovascular coupling. Recent in vivo studies have shown that intracellular calcium levels in astrocytes correlate with reactivity in adjacent diving arterioles. However, the hemodynamic response to stimulation involves a complex orchestration of vessel dilations and constrictions that spread rapidly over wide distances. In this work, we study the three-dimensional cytoarchitecture of astrocytes and their interrelations with blood vessels down through layer IV of the mouse somatosensory cortex using in vivo two-photon microscopy. Vessels and astrocytes were visualized through intravenous dextran-conjugated fluorescein and cortically applied sulforhodamine 101 (SR101), respectively. In addition to exploring astrocyte density, vascular proximity, and microvascular density, we found that sheathing of subpial vessels by astrocyte processes was continuous along all capillaries, arterioles, and veins, comprising a highly interconnected pathway through which signals could feasibly be relayed over long distances via gap junctions. An inner SR101-positive sheath noted along pial and diving arterioles was determined to be nonastrocytic, and appears to represent selective SR101 staining of arterial endothelial cells. Our findings underscore the intimate relationship between astrocytes and all cortical blood vessels, and suggest that astrocytes could influence neurovascular regulation at a range of sites, including the capillary bed and pial arterioles.

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Year:  2010        PMID: 21139630      PMCID: PMC3063633          DOI: 10.1038/jcbfm.2010.204

Source DB:  PubMed          Journal:  J Cereb Blood Flow Metab        ISSN: 0271-678X            Impact factor:   6.200


  39 in total

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Review 5.  Astroglial networks: a step further in neuroglial and gliovascular interactions.

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8.  High-speed vascular dynamics of the hemodynamic response.

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9.  Astrocytic endfoot Ca2+ and BK channels determine both arteriolar dilation and constriction.

Authors:  Hélène Girouard; Adrian D Bonev; Rachael M Hannah; Andrea Meredith; Richard W Aldrich; Mark T Nelson
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10.  Correlations of neuronal and microvascular densities in murine cortex revealed by direct counting and colocalization of nuclei and vessels.

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  79 in total

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3.  Glial laminar cortical architecture matches metabolic demand.

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4.  Simple wavefront correction framework for two-photon microscopy of in-vivo brain.

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5.  Genetic and Stress-Induced Loss of NG2 Glia Triggers Emergence of Depressive-like Behaviors through Reduced Secretion of FGF2.

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6.  Functional evaluation of hemodynamic response during neural activation using optical microangiography integrated with dual-wavelength laser speckle imaging.

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7.  Vasodilation by in vivo activation of astrocyte endfeet via two-photon calcium uncaging as a strategy to prevent brain ischemia.

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Journal:  J Biomed Opt       Date:  2013-12       Impact factor: 3.170

8.  Volumetric imaging and quantification of cytoarchitecture and myeloarchitecture with intrinsic scattering contrast.

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9.  Rapid stimulus-evoked astrocyte Ca2+ elevations and hemodynamic responses in mouse somatosensory cortex in vivo.

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Review 10.  Brain-derived neurotrophic factor secreted by the cerebral endothelium: A new actor of brain function?

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