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Tension at the Gate: Sensing Mechanical Forces at the Blood-brain Barrier in Health and Disease

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Publisher Biomed Central
Date 2024 Dec 19
PMID 39696463
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Abstract

Microvascular brain endothelial cells tightly limit the entry of blood components and peripheral cells into the brain by forming the blood-brain barrier (BBB). The BBB is regulated by a cascade of mechanical and chemical signals including shear stress and elasticity of the adjacent endothelial basement membrane (BM). During physiological aging, but especially in neurological diseases including multiple sclerosis (MS), stroke, small vessel disease, and Alzheimer's disease (AD), the BBB is exposed to inflammation, rigidity changes of the BM, and disturbed cerebral blood flow (CBF). These altered forces lead to increased vascular permeability, reduced endothelial reactivity to vasoactive mediators, and promote leukocyte transmigration. Whereas the molecular players involved in leukocyte infiltration have been described in detail, the importance of mechanical signalling throughout this process has only recently been recognized. Here, we review relevant features of mechanical forces acting on the BBB under healthy and pathological conditions, as well as the endothelial mechanosensory elements detecting and responding to altered forces. We demonstrate the underlying complexity by focussing on the family of transient receptor potential (TRP) ion channels. A better understanding of these processes will provide insights into the pathogenesis of several neurological disorders and new potential leads for treatment.

References
1.
Tarumi T, Zhang R . Cerebral blood flow in normal aging adults: cardiovascular determinants, clinical implications, and aerobic fitness. J Neurochem. 2017; 144(5):595-608. PMC: 5874160. DOI: 10.1111/jnc.14234. View

2.
Lutz S, Smith J, Kim D, Olson C, Ellefsen K, Bates J . Caveolin1 Is Required for Th1 Cell Infiltration, but Not Tight Junction Remodeling, at the Blood-Brain Barrier in Autoimmune Neuroinflammation. Cell Rep. 2017; 21(8):2104-2117. PMC: 5728697. DOI: 10.1016/j.celrep.2017.10.094. View

3.
Miyagi T, Ishida A, Shinzato T, Ohya Y . Arterial Stiffness Is Associated With Small Vessel Disease Irrespective of Blood Pressure in Stroke-Free Individuals. Stroke. 2023; 54(11):2814-2821. DOI: 10.1161/STROKEAHA.123.042512. View

4.
Xu J, Mathur J, Vessieres E, Hammack S, Nonomura K, Favre J . GPR68 Senses Flow and Is Essential for Vascular Physiology. Cell. 2018; 173(3):762-775.e16. PMC: 5951615. DOI: 10.1016/j.cell.2018.03.076. View

5.
Kim J, Shin S, Lee C, Chung H . An Improved In Vitro Blood-Brain Barrier Model for the Evaluation of Drug Permeability Using Transwell with Shear Stress. Pharmaceutics. 2024; 16(1). PMC: 10820479. DOI: 10.3390/pharmaceutics16010048. View