Functional Evaluation of Human Bioengineered Cardiac Tissue Using iPS Cells Derived from a Patient with Lamin Variant

Koichiro Miura1,2, Katsuhisa Matsuura1,2, Yu Yamasaki Itoyama1

  • 1Institute of Advanced Biomedical Engineering and Science, Tokyo Women's Medical University.

Insights

Cardiac cell sheets derived from induced pluripotent stem cells of patients with lamin variant dilated cardiomyopathy (DCM) showed impaired contractile function. This model may help understand DCM mechanisms.

Area of Science:

  • Cardiology
  • Stem Cell Biology
  • Genetics

Background:

  • Dilated cardiomyopathy (DCM) is a heart muscle disease often caused by genetic variants, leading to systolic dysfunction.
  • Lamin variants are associated with poor prognosis in DCM, and current therapies are insufficient.
  • Induced pluripotent stem (iPS) cells offer a platform for studying genetic disorders, but their use in evaluating cardiac tissue function in lamin variant DCM is limited.

Purpose of the Study:

  • To investigate the functional properties of cardiac cell sheet tissue derived from patients with lamin A/C (LMNA) gene-mutant DCM.
  • To establish a human iPS-derived cardiac tissue model for understanding LMNA-mutant DCM.

Main Methods:

  • Generated iPS cells from a patient with LMNA p.R225X mutation-DCM.
  • Differentiated iPS cells into cardiomyocytes and formed cardiac cell sheets.
  • Cultured cell sheets on a temperature-responsive dish and measured contractile force on fibrin gel.

Main Results:

  • Cardiac cell sheets with the lamin variant exhibited significantly decreased contractile force and maximum contraction velocity.
  • Maximum relaxation velocity was not significantly affected.
  • Downregulation of mRNA expression for contractile proteins, cardiac transcription factors, Ca2+-handling genes, and ion channels was observed.

Conclusions:

  • Human iPS-derived bioengineered cardiac tissue with the LMNA p.R225X mutation displays systolic dysfunction.
  • This model shows promise for elucidating the mechanisms underlying lamin variant DCM.

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