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Updated: May 29, 2026

An In Vivo Blood-brain Barrier Permeability Assay in Mice Using Fluorescently Labeled Tracers
Published on: February 26, 2018
Adenosine receptor signaling modulates permeability of the blood-brain barrier
Aaron J Carman1, Jeffrey H Mills, Antje Krenz
1Department of Microbiology and Immunology, Cornell University, College of Veterinary Medicine, Ithaca, New York 14853, USA.
Insights
Adenosine receptor (AR) signaling can open the blood-brain barrier (BBB), allowing therapeutic molecules to enter the brain. This discovery offers new strategies for treating neurological diseases like Alzheimer's.
Area of Science:
- Neuroscience
- Pharmacology
- Cell Biology
Background:
- The blood-brain barrier (BBB) protects the central nervous system (CNS) but hinders drug delivery for neurological disorders.
- Adenosine receptors (ARs) are known to play various roles in the CNS.
Purpose of the Study:
- To investigate the role of adenosine receptor (AR) signaling in modulating blood-brain barrier (BBB) permeability.
- To explore the potential of AR activation for enhancing therapeutic compound entry into the brain.
Main Methods:
- Administered macromolecules (dextrans, antibodies) and AR agonists (including Lexiscan) to murine models.
- Utilized transgenic mice lacking specific ARs.
- Performed in vitro studies on endothelial cells to assess cellular changes.
Main Results:
- Activation of A(1) and A(2A) ARs increased the entry of macromolecules into the brain.
- Treatment with a selective A(2A) agonist (Lexiscan) enhanced BBB permeability in a dose- and time-dependent manner.
- AR activation led to cellular changes in vitro, including decreased transendothelial electrical resistance and altered tight junction molecules.
Conclusions:
- Adenosine receptor signaling is a novel mechanism for modulating BBB permeability in vivo.
- Targeting ARs can facilitate the delivery of therapeutics across the BBB for CNS diseases.
- These findings have implications for drug design and delivery for Alzheimer's, Parkinson's, multiple sclerosis, and CNS cancers.
Abstract:
The blood-brain barrier (BBB) is comprised of specialized endothelial cells that form the capillary microvasculature of the CNS and is essential for brain function. It also poses the greatest impediment in the treatment of many CNS diseases because it commonly blocks entry of therapeutic compounds. Here we report that adenosine receptor (AR) signaling modulates BBB permeability in vivo. A(1) and A(2A) AR activation facilitated the entry of intravenously administered macromolecules, including large dextrans and antibodies to β-amyloid, into murine brains. Additionally, treatment with an FDA-approved selective A(2A) agonist, Lexiscan, also increased BBB permeability in murine models. These changes in BBB permeability are dose-dependent and temporally discrete. Transgenic mice lacking A(1) or A(2A) ARs showed diminished dextran entry into the brain after AR agonism. Following treatment with a broad-spectrum AR agonist, intravenously administered anti-β-amyloid antibody was observed to enter the CNS and bind β-amyloid plaques in a transgenic mouse model of Alzheimer's disease (AD). Selective AR activation resulted in cellular changes in vitro including decreased transendothelial electrical resistance, increased actinomyosin stress fiber formation, and alterations in tight junction molecules. These results suggest that AR signaling can be used to modulate BBB permeability in vivo to facilitate the entry of potentially therapeutic compounds into the CNS. AR signaling at brain endothelial cells represents a novel endogenous mechanism of modulating BBB permeability. We anticipate these results will aid in drug design, drug delivery and treatment options for neurological diseases such as AD, Parkinson's disease, multiple sclerosis and cancers of the CNS.
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