Pressure-dependent Myogenic Constriction of Cerebral Arteries Occurs Independently of Voltage-dependent Activation
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Physiology
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Pressure-induced decreases in arterial diameter are accompanied by membrane depolarization and Ca(2+) entry via voltage-gated Ca(2+) channels. Recent evidence also suggests the involvement of Ca(2+) sensitization of the contractile proteins. Both PKC and Rho kinase are candidate second messengers for the mediation of the sensitization process. We investigated the signaling pathways of pressure-induced decreases in rat cerebral artery diameter in vessels that were depolarized with a 60 mM potassium-physiological salt solution (KPSS). Arteries were mounted on a pressure myograph, and pressure-induced constrictions were recorded. In some experiments simultaneous changes in intracellular Ca(2+) concentration ([Ca(2+)](i)) were recorded by using fura 2 fluorescence photometry. Pressure increases induced constriction with significant changes in [Ca(2+)](i) at high pressures (60-100 mmHg). The ratio of the change in diameter to change in [Ca(2+)](i) was greater for pressure-induced constriction compared with constriction produced by depolarization with 60 mM KPSS, suggesting that in addition to increases in [Ca(2+)](i), enhanced myofilament Ca(2+) sensitivity occurs during pressure-induced decreases in arterial diameter. Depolarizing the membrane with 60 mM KPSS increased [Ca(2+)](i) via a Ca(2+) influx pathway insensitive to PKC inhibition. Cerebral arteries were able to maintain their diameters in the continued presence of 60 mM KPSS. Pressure-induced constriction under these conditions was not associated with further increases in Ca(2+) but was abolished by selective inhibitors of PLC, PKC, and Rho kinase. We report for the first time that in rat cerebral arteries, pressure-induced decreases in arterial diameter are not only due to increases in voltage-gated Ca(2+) influx but also to accompanying increases in myofilament sensitivity to Ca(2+) mediated by PKC/Rho kinase activation.
A new model for evaluating pressure-induced vascular tone in small cerebral arteries.
Coccarelli A, Pant S, Polydoros I, Harraz O Biomech Model Mechanobiol. 2023; 23(1):271-286.
PMID: 37925376 PMC: 10901969. DOI: 10.1007/s10237-023-01774-7.
Panerai R, Davies A, Clough R, Beishon L, Robinson T, Minhas J J Cereb Blood Flow Metab. 2023; 44(2):272-283.
PMID: 37747437 PMC: 10993882. DOI: 10.1177/0271678X231203475.
Davis M, Earley S, Li Y, Chien S Physiol Rev. 2023; 103(2):1247-1421.
PMID: 36603156 PMC: 9942936. DOI: 10.1152/physrev.00053.2021.
Panerai R, Barnes S, Batterham A, Robinson T, Haunton V J Cereb Blood Flow Metab. 2022; 43(4):552-564.
PMID: 36420777 PMC: 10063834. DOI: 10.1177/0271678X221142527.
Ito M, Okamoto R, Ito H, Zhe Y, Dohi K Hypertens Res. 2021; 45(1):40-52.
PMID: 34616031 DOI: 10.1038/s41440-021-00733-y.