Blood Pressure Tunes the Functional Coupling of Cerebrovascular CaV1.2 Channels.

BACKGROUND: The myogenic response is the key autoregulatory mechanism that sets cerebral blood flow, and its mechanistic foundation is intimately tied to depolarization and the voltage gating of L-type Ca2+ channels (CaV1.2). Although critical, this study argues for an additional mechanism. We hypothesize that increased intravascular pressure enhances CaV1.2 channel activity by promoting functional coupling and perimembrane trafficking, thereby increasing pressure-induced myogenic constriction. METHODS: These novel insights were pursued at the cell level using patch-clamp electrophysiology and advanced microscopy, and then functionally in pressurized arteries through measures of tone and intracellular [Ca2+]i. RESULTS: Cellular and vessel-level studies identified functional coupling of CaV1.2 channels as the mechanism that aligns Ca2+ influx with wall stress to maintain arterial tone. A mouse model with disrupted coupling showed a loss of myogenic responsiveness within the autoregulatory range, despite intact voltage control, indicating a selective defect in pressure sensing. This mechanism was supported by CaV1.2 cluster dynamics and biophysical analyses; key findings were validated in human cerebral arteries. From cerebral blood flow simulations of semirealistic microvascular networks, we predict that loss of this alternative mechanism leads to maldistribution of brain blood flow and potentially a diminishment of cognitive function. CONCLUSIONS: These findings identify pressure-induced functional coupling and perimembrane trafficking of CaV1.2 channels as a previously unrecognized mechanism that links intravascular pressure to Ca2+ influx and myogenic tone in cerebral arteries. This mechanism is conserved in human vessels and viewed as essential for maintaining cerebral blood flow distribution.

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Publication Details

Journal
Open Access CRIS of the University of Bern
Published
2026-09-29
DOI
https://doi.org/10.48620/101442
Primary Topic
Barrier Structure and Function Studies
Type
article
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article

Blood Pressure Tunes the Functional Coupling of Cerebrovascular CaV1.2 Channels.

Franca Schmid, Chryso Lambride, Manuel F. Navedo, Sanjay Kharche et al.
Open Access CRIS of the University of Bern
Barrier Structure and Function Studies
article

Blood Pressure Tunes the Functional Coupling of Cerebrovascular CaV1.2 Channels.

Franca Schmid, Chryso Lambride, Manuel F. Navedo, Sanjay Kharche, Keith W. MacDougall, Jonathan Lau, Miguel Martín-Aragón Baudel, Galina Yu Mironova, Melfort Boulton, David A Steven, Donald G Welsh
article en

Abstract

BACKGROUND: The myogenic response is the key autoregulatory mechanism that sets cerebral blood flow, and its mechanistic foundation is intimately tied to depolarization and the voltage gating of L-type Ca2+ channels (CaV1.2). Although critical, this study argues for an additional mechanism. We hypothesize that increased intravascular pressure enhances CaV1.2 channel activity by promoting functional coupling and perimembrane trafficking, thereby increasing pressure-induced myogenic constriction. METHODS: These novel insights were pursued at the cell level using patch-clamp electrophysiology and advanced microscopy, and then functionally in pressurized arteries through measures of tone and intracellular [Ca2+]i. RESULTS: Cellular and vessel-level studies identified functional coupling of CaV1.2 channels as the mechanism that aligns Ca2+ influx with wall stress to maintain arterial tone. A mouse model with disrupted coupling showed a loss of myogenic responsiveness within the autoregulatory range, despite intact voltage control, indicating a selective defect in pressure sensing. This mechanism was supported by CaV1.2 cluster dynamics and biophysical analyses; key findings were validated in human cerebral arteries. From cerebral blood flow simulations of semirealistic microvascular networks, we predict that loss of this alternative mechanism leads to maldistribution of brain blood flow and potentially a diminishment of cognitive function. CONCLUSIONS: These findings identify pressure-induced functional coupling and perimembrane trafficking of CaV1.2 channels as a previously unrecognized mechanism that links intravascular pressure to Ca2+ influx and myogenic tone in cerebral arteries. This mechanism is conserved in human vessels and viewed as essential for maintaining cerebral blood flow distribution.

Open Access CRIS of the University of Bern
University of Bern (CH)
Openalex Percentile: Top 15%
Barrier Structure and Function Studies
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