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September 18, 2016Journal of Clinical Investigation137 citationsOpen Access

Axial tubule junctions control rapid calcium signaling in atria

SBSören BrandenburgTKTobias KohlGWGeorge S.B. Williams

Key Result

Axial tubule structures in atrial myocytes trigger calcium release from the sarcoplasmic reticulum approximately 2 times faster at the cell center than at the surface.

Key Points

  • The study aims to explore how axial tubule junctions enhance calcium signaling in atrial myocytes.
  • Identified membrane structure and calcium-signaling complex in human and mouse atria.
  • Measured calcium release speed and assessed the effect of phosphorylation on RyR2 clusters.
  • Examined atrial contractile function in normal and hypertrophic conditions.
  • Axial tubules triggered calcium release from the sarcoplasmic reticulum approximately 2 times faster at the center of atrial myocytes versus the surface.
  • Phosphorylation-competent mice displayed improved sarcomere shortening and contractile function compared to those with phosphorylation-incompetent RyR2.
  • Left atrial hypertrophy induced proliferation of axial tubules, enhancing calcium signaling despite reduced RyR2 density.

PICO

P
Population
Basic science study investigating the structural and metabolic mechanisms of rapid calcium signaling in mouse and human atrial myocytes.
E
Exposure / Comparator
Axial tubule junctions and RyR2 clusters vs Surface sarcolemma or ventricular myocytes
O
Primary Outcome
Calcium release latency

Abstract

The canonical atrial myocyte (AM) is characterized by sparse transverse tubule (TT) invaginations and slow intracellular Ca2+ propagation but exhibits rapid contractile activation that is susceptible to loss of function during hypertrophic remodeling. Here, we have identified a membrane structure and Ca2+-signaling complex that may enhance the speed of atrial contraction independently of phospholamban regulation. This axial couplon was observed in human and mouse atria and is composed of voluminous axial tubules (ATs) with extensive junctions to the sarcoplasmic reticulum (SR) that include ryanodine receptor 2 (RyR2) clusters. In mouse AM, AT structures triggered Ca2+ release from the SR approximately 2 times faster at the AM center than at the surface. Rapid Ca2+ release correlated with colocalization of highly phosphorylated RyR2 clusters at AT-SR junctions and earlier, more rapid shortening of central sarcomeres. In contrast, mice expressing phosphorylation-incompetent RyR2 displayed depressed AM sarcomere shortening and reduced in vivo atrial contractile function. Moreover, left atrial hypertrophy led to AT proliferation, with a marked increase in the highly phosphorylated RyR2-pS2808 cluster fraction, thereby maintaining cytosolic Ca2+ signaling despite decreases in RyR2 cluster density and RyR2 protein expression. AT couplon "super-hubs" thus underlie faster excitation-contraction coupling in health as well as hypertrophic compensatory adaptation and represent a structural and metabolic mechanism that may contribute to contractile dysfunction and arrhythmias.

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Cite This Study

Brandenburg et al. (2016) studied Atrial myocyte calcium signaling. Axial tubule junctions and RyR2 clusters vs. Surface sarcolemma or ventricular myocytes was evaluated on Calcium release latency. Axial tubule structures in atrial myocytes trigger calcium release from the sarcoplasmic reticulum approximately 2 times faster at the cell center than at the surface.

synapsesocial.com/papers/6a330189158f16b2f7a543bdhttps://doi.org/10.1172/jci88241
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Also Consider

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  2. 2Immunolocalization of sarcolemmal dihydropyridine receptor and sarcoplasmic reticular triadin and ryanodine receptor in rabbit ventricle and atrium.1995 · 273 citations
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