Abstract 4366316: Sarcoplasmic Reticulum Ca <sup>2+</sup> Leak Drives Arrhythmogenesis During In Vivo Maturation of Stem Cell-Derived Cardiomyocytes

A Andrew Wescott (University of Washington, Seattle, Washington, United States) E Elaheh Karbassi (University of Washington, Seattle, Washington, United States) S Silvia Marchiano (University of Washington, Seattle, Washington, United States) L Likitha Nimmagadda (University of Washington, Seattle, Washington, United States) N Nora Perrault (University of Washington, Seattle, Washington, United States) L Leslie Blakely (University of Washington, Seattle, Washington, United States) R Robb Maclellan (University of Washington, Seattle, Washington, United States) J Jennifer Davis C Chuck Murry (University of Southern California, Los Angeles, California, United States)

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

Journal Circulation
Volume / Issue Vol. 152, Issue Suppl_3
Published November 04, 2025
ISSN 0009-7322
Publisher Lippincott Williams & Wilkins

Journal Info

Circulation

Lippincott Williams & Wilkins

ISSN: 0009-7322 Health Sciences

Authors (9)

A

Andrew Wescott

University of Washington, Seattle, Washington, United States

E

Elaheh Karbassi

University of Washington, Seattle, Washington, United States

S

Silvia Marchiano

University of Washington, Seattle, Washington, United States

L

Likitha Nimmagadda

University of Washington, Seattle, Washington, United States

N

Nora Perrault

University of Washington, Seattle, Washington, United States

L

Leslie Blakely

University of Washington, Seattle, Washington, United States

R

Robb Maclellan

University of Washington, Seattle, Washington, United States

J

Jennifer Davis

C

Chuck Murry

University of Southern California, Los Angeles, California, United States