Key result
This review highlights the role of calcium and electrical signaling through endothelial gap junction channels in coordinating blood flow control and conducted vasodilation in resistance networks.
This review highlights the mechanisms of calcium and electrical signaling along the microvascular endothelium and emphasizes the need to understand how these pathways are altered in cardiovascular disease.
Should not yet change clinical practice; leaves open how these endothelial pathways are altered in cardiovascular disease.
This MiniReview is focused on the nature of intercellular signalling along the endothelium that helps to co-ordinate blood flow control in vascular resistance networks. Vasodilation initiated by contracting skeletal muscle ascends from arterioles within the tissue to encompass resistance arteries upstream and thereby increase blood flow during exercise. In resistance vessels, acetylcholine microiontophoresis or intracellular current injection initiates hyperpolarization that conducts through gap junction channels (GJCs) along the vessel wall resulting in conducted vasodilation (CVD). Both ascending vasodilation and CVD are eliminated with endothelial cell (EC) disruption, pointing to common signalling events and mutual dependence upon EC integrity. As demonstrated by electrical coupling and dye transfer during intracellular recording, their longitudinal orientation and robust expression of GJCs enable ECs to play a predominant role in CVD. Once conduction is initiated, a major interest centres on whether CVD is purely passive or involves additional 'active' signalling events. Here, we discuss components for Ca²⁺ and electrical signalling with an emphasis on intercellular coupling through endothelial GJCs. We stress the importance of understanding relationships between intracellular Ca²⁺ dynamics, EC hyperpolarization and CVD while integrating findings from isolated ECs into more complex interactions in vivo. Whereas endothelial dysfunction accompanies cardiovascular disease and the components of intra- and inter-cellular signalling are increasingly well defined, little is known of how Ca²⁺ signalling and electrical conduction along microvascular endothelium are altered in diseased states. Thus, greater insight into how these relationships are governed and interact is a key goal for continued research efforts.
No takes yet. Share an insight, caveat, or question.
Socha et al. (2011) reported a review. Calcium and electrical signalling along endothelium was evaluated. This review highlights the role of calcium and electrical signaling through endothelial gap junction channels in coordinating blood flow control and conducted vasodilation in resistance networks.