4.7 Article

Impairment of the ER/mitochondria compartment in human cardiomyocytes with PLN p.Arg14del mutation

Journal

EMBO MOLECULAR MEDICINE
Volume 13, Issue 6, Pages -

Publisher

WILEY
DOI: 10.15252/emmm.202013074

Keywords

endoplasmic reticulum; engineered heart tissue; human‐ induced pluripotent stem cells; mitochondria; phospholamban p; Arg14del

Funding

  1. British Heart Foundation [RM/13/30157]
  2. European Research Council (ERC-AG IndivuHeart)
  3. Deutsche Forschungsgemeinschaft [DFG Es 88/12-1, DFG HA 3423/5-1, DFG CU 53/5-1]
  4. Werner-Otto-Stiftung [7/92]
  5. Deutsche Stiftung fur Herzforschung [F/19/19]
  6. British National Centre for the Replacement Refinement AMP
  7. Reduction of Animals in Research (NC3Rs CRACK-IT grant) [35911-259146]
  8. German Ministry of Education and Research (BMBF)
  9. Centre for Cardiovascular Research (DZHK)
  10. Freie und Hansestadt Hamburg
  11. British Heart Foundation (BHF) [CH/16/3/32406]
  12. BHF program [RG/16/14/32397]
  13. Studienstiftung des deutschen Volkes
  14. Projekt DEAL

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The PLN p.Arg14del mutation causes dilated cardiomyopathy with impairment of the ER/mitochondria compartment, leading to prolonged Ca2+ transient decay time and irregular beating pattern. Interventions with Ca2+-binding proteins improved the disease phenotype, suggesting impaired local Ca2+ cycling as an important disease culprit.
The phospholamban (PLN) p.Arg14del mutation causes dilated cardiomyopathy, with the molecular disease mechanisms incompletely understood. Patient dermal fibroblasts were reprogrammed to hiPSC, isogenic controls were established by CRISPR/Cas9, and cardiomyocytes were differentiated. Mutant cardiomyocytes revealed significantly prolonged Ca2+ transient decay time, Ca2+-load dependent irregular beating pattern, and lower force. Proteomic analysis revealed less endoplasmic reticulum (ER) and ribosomal and mitochondrial proteins. Electron microscopy showed dilation of the ER and large lipid droplets in close association with mitochondria. Follow-up experiments confirmed impairment of the ER/mitochondria compartment. PLN p.Arg14del end-stage heart failure samples revealed perinuclear aggregates positive for ER marker proteins and oxidative stress in comparison with ischemic heart failure and non-failing donor heart samples. Transduction of PLN p.Arg14del EHTs with the Ca2+-binding proteins GCaMP6f or parvalbumin improved the disease phenotype. This study identified impairment of the ER/mitochondria compartment without SR dysfunction as a novel disease mechanism underlying PLN p.Arg14del cardiomyopathy. The pathology was improved by Ca2+-scavenging, suggesting impaired local Ca2+ cycling as an important disease culprit.

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