PKC-PKD-NFκB signalling induces cardiomyocyte t-tubule loss via a conserved macropinocytic mechanism

  • Cardiovasc Res. 2026 Aug 14;122(11):1470-1486. doi: 10.1093/cvr/cvag121.
Aiora Martinez-Vilchez  1 ,  Ann-Katrin M Pfeuffer  1 ,  Jonas Weßolowski  1 ,  Dominik J Fiegle  1 ,  Philipp Andrä  1 ,  Prapassorn Potue  1 ,  Linda K Küpfer  1 ,  Thirupura S Shankar  2 ,  Craig H Selzman  3 ,  Stavros G Drakos  2  4 ,  Christian Heim  5 ,  Tilmann Volk  1 ,  Thomas Seidel  1
Affiliations
  • 1. Institute of Cellular and Molecular Physiology, Friedrich-Alexander-University Erlangen-Nürnberg, Waldstr. 6, 91054 Erlangen, Germany.
  • 2. Nora Eccles Harrison Cardiovascular Research and Training Institute, University of Utah, Salt Lake City, USA.
  • 3. Division of Cardiothoracic Surgery, University of Utah, Salt Lake City, USA.
  • 4. Division of Cardiovascular Medicine, University of Utah, Salt Lake City, USA.
  • 5. Department of Cardiac and Vascular Surgery, Klinikum Bayreuth, Medical Campus Oberfranken of Friedrich Alexander University, Bayreuth, Germany.
Abstract

Aims: Deterioration of transverse-axial tubules (t-tubules) contributes to insufficient excitation-contraction coupling in Heart Failure, yet the key signals and mechanisms remain unclear. Here, we aimed to identify the signalling pathways that trigger cardiomyocyte t-tubule loss and its underlying cellular process.

Methods and results: Adult rat, rabbit, and human ventricular cardiomyocytes and living myocardial slices were exposed to pharmacological activators of protein kinase C (PKC). PKC activation caused rapid t-tubule loss and impaired Ca2+ transients, which were prevented by inhibition of protein kinase D (PKD) or NFκB. RNA Sequencing and phosphoprotein analysis showed activation and crosstalk between PKD-, ERK-, and NFκB-dependent pathways, with up-regulation of genes involved in membrane trafficking and endocytosis. Fluorescent dextran uptake assays revealed a clathrin-independent, PI3K- and myosin-I-dependent macropinocytic process whose rate matched the internalization of t-tubule membranes and which was blocked by NFκB inhibition. Constitutive activation of IKK2 in cardiomyocytes of transgenic mice reduced t-tubule density in vivo, confirming that prolonged NFκB activation is sufficient to induce t-tubule remodelling in intact Hearts. NFκB inhibition suppressed PKC-induced macropinocytosis also in non-cardiac human cell lines, suggesting that this process represents a conserved cellular response to inflammatory signalling.

Conclusion: PKC-PKD-NFκB signalling triggers a macropinocytic form of membrane remodelling that degrades the t-tubule network and impairs excitation-contraction coupling. This identifies a previously unrecognized mechanism linking inflammatory kinase activation to structural and functional decline of cardiomyocytes and suggests that targeting the PKD-NFκB axis could preserve t-tubule integrity and cardiac performance in Heart Failure.

Keywords
Cardiomyocytes; Endocytosis; Excitation-contraction coupling; NFκB; Protein kinase C; Protein kinase D; T-tubule remodelling; macropinocytosis.
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