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Junctophilin-2 expression rescues atrial dysfunction through polyadic junctional membrane complex biogenesis
Sören Brandenburg, Jan Pawlowitz, Benjamin Eikenbusch, Jonas Peper, Tobias Kohl, Gyuzel Y. Mitronova, Samuel Sossalla, Gerd Hasenfuss, Xander H.T. Wehrens, Peter Kohl, Eva A. Rog-Zielinska, Stephan E. Lehnart
Sören Brandenburg, Jan Pawlowitz, Benjamin Eikenbusch, Jonas Peper, Tobias Kohl, Gyuzel Y. Mitronova, Samuel Sossalla, Gerd Hasenfuss, Xander H.T. Wehrens, Peter Kohl, Eva A. Rog-Zielinska, Stephan E. Lehnart
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Research Article Cardiology Cell biology

Junctophilin-2 expression rescues atrial dysfunction through polyadic junctional membrane complex biogenesis

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Abstract

Atrial dysfunction is highly prevalent and associated with increased severity of heart failure. While rapid excitation-contraction coupling depends on axial junctions in atrial myocytes, the molecular basis of atrial loss of function remains unclear. We identified approximately 5-fold lower junctophilin-2 levels in atrial compared with ventricular tissue in mouse and human hearts. In atrial myocytes, this resulted in subcellular expression of large junctophilin-2 clusters at axial junctions, together with highly phosphorylated ryanodine receptor (RyR2) channels. To investigate the contribution of junctophilin-2 to atrial pathology in adult hearts, we developed a cardiomyocyte-selective junctophilin-2–knockdown model with 0 mortality. Junctophilin-2 knockdown in mice disrupted atrial RyR2 clustering and contractility without hypertrophy or interstitial fibrosis. In contrast, aortic pressure overload resulted in left atrial hypertrophy with decreased junctophilin-2 and RyR2 expression, disrupted axial junctions, and atrial fibrosis. Whereas pressure overload accrued atrial dysfunction and heart failure with 40% mortality, additional junctophilin-2 knockdown greatly exacerbated atrial dysfunction with 100% mortality. Strikingly, transgenic junctophilin-2 overexpression restored atrial contractility and survival through de novo biogenesis of polyadic junctional membrane complexes maintained after pressure overload. Our data show a central role of junctophilin-2 cluster disruption in atrial hypertrophy and identify transgenic augmentation of junctophilin-2 as a disease-mitigating rationale to improve atrial dysfunction and prevent heart failure deterioration.

Authors

Sören Brandenburg, Jan Pawlowitz, Benjamin Eikenbusch, Jonas Peper, Tobias Kohl, Gyuzel Y. Mitronova, Samuel Sossalla, Gerd Hasenfuss, Xander H.T. Wehrens, Peter Kohl, Eva A. Rog-Zielinska, Stephan E. Lehnart

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Figure 10

Increased Ca2+ release in atrial myocytes overexpressing junctophilin-2.

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Increased Ca2+ release in atrial myocytes overexpressing junctophilin-2....
(A) Combined live membrane (Cholesterol-PEG-KK114 [Chol]) and Ca2+ (fluo-4 AM) imaging in intact WT and JP2-OE AMs. The final Ca2+ transient (CaT) at 1-Hz pacing is followed by spontaneous Ca2+ sparks. Transverse line scanning shows that the Ca2+ release occurs earlier at AT sites, followed by AM subsurface (S) sites. Note larger repetitive Ca2+ sparks firing at AT sites in JP2-OE. (B–D) Exemplar systolic and caffeine-induced Ca2+ transient traces and quantitative analysis: JP2-OE AMs show increased Ca2+ transient amplitude (C) consistent with increased CaV1.2, RyR2, and RyR2-pS2808 expression and significantly faster decay of caffeine-induced Ca2+ release (D), indicating higher NCX function. n = 3 individual hearts each for 16 WT versus 12 JP2-OE AM cells (C) and 20 WT versus 17 JP2-OE AMs (D). (E) Dot plots summarizing a significantly increased Ca2+ spark (CaSp) frequency in JP2-OE cells and (F) a significant increase in Ca2+ spark frequency per AT. n = 3 WT and 4 JP2-OE hearts for 15 WT and 15 JP2-OE AM cells. (G) Ca2+ spark frequency at subsurface (S) versus AT sites in JP2-OE cells. n = 3 WT and 4 JP2-OE individual hearts for 15 WT and 15 JP2-OE AMs cells. *P < 0.05, Student’s t test.

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