Abstract 4366316: Sarcoplasmic Reticulum Ca <sup>2+</sup> Leak Drives Arrhythmogenesis During In Vivo Maturation of Stem Cell-Derived Cardiomyocytes
Abstract
Heart regeneration via transplantation of human induced pluripotent stem cell-derived cardiomyocyte (hiPSC-CMs) holds significant clinical potential. However, a transient, yet severe, period of ventricular arrhythmia, termed engraftment arrhythmia (EA), has limited bench-to-bedside translation. EA begins ~1-week post-transplant and persists for ~1-month, coinciding with the period when transplanted cells form intercellular connections to host myocardium but have not fully matured. Immature hiPSC-CMs display automaticity similar to sinoatrial nodal cells where pacemaker activity is regulated by sarcolemmal ion channel currents and spontaneous sarcoplasmic reticulum (SR) calcium (Ca 2+ ) leak. In this study, we hypothesize that dysfunctional excitation-contraction (EC) coupling and aberrant SR Ca 2+ leak are mechanistic drivers of EA. To test this, WTC-11 hiPSC-CMs were generated that stably express the cytosolic Ca 2+ sensor jGCaMP8f and a membrane targeted RFP. hiPSC-CMs were transplanted into a rat acute myocardial infarction model to mature in-vivo. Cells were re-isolated for experiments after 1 week, coinciding with arrhythmia onset, and after 4 weeks, when arrhythmias terminate. We found hiPSC-CMs remain morphologically immature even after 4-weeks in-vivo. Surprisingly, compared to cells in-vitro, the cells re-isolated at 1-week showed significantly impaired Ca 2+ dynamics including ~3-fold reduction in Ca 2+ transient amplitude and slower kinetics which recovered by 4-weeks. And only ~20% of the non-transplanted or 1-week re-isolated cells adhered to 1 Hz pacing at room temperature compared to ~80% of the 4-week ex-vivo cells, suggesting more mature electrophysiology. High-spatiotemporal resolution Ca 2+ imaging revealed the 1-week ex-vivo hiPSC-CMs have a significant ~2-fold surge in Ca 2+ spark rate with a greater number of slowly terminating Ca 2+ sparks than in the non-transplanted or 4-week re-isolated cells. Single-cell resolution spatial transcriptomics revealed heterogeneity within grafts, with progressive maturation over time. These data suggest excess SR Ca 2+ leak and inefficient EC coupling promote EA early after cardiac cell therapy which improves as cells mature. Therapeutic strategies aimed at reducing SR Ca 2+ leak or promoting further maturation of hiPSC-CMs could potentially reduce arrhythmogenicity.
Article Details
Authors (9)
Andrew Wescott
University of Washington, Seattle, Washington, United States
Elaheh Karbassi
University of Washington, Seattle, Washington, United States
Silvia Marchiano
University of Washington, Seattle, Washington, United States
Likitha Nimmagadda
University of Washington, Seattle, Washington, United States
Nora Perrault
University of Washington, Seattle, Washington, United States
Leslie Blakely
University of Washington, Seattle, Washington, United States
Robb Maclellan
University of Washington, Seattle, Washington, United States
Jennifer Davis
Chuck Murry
University of Southern California, Los Angeles, California, United States