<p>Current methods for producing cardiomyocytes from human induced pluripotent stem cells (hiPSCs) using 2D monolayer differentiation are often hampered by batch-to-batch variability and inefficient purification processes. Here, we introduce CM-AI, a novel artificial intelligence-guided laser cell processing platform designed for rapid, label-free purification of hiPSC-derived cardiomyocytes (hiPSC-CMs). This approach significantly reduces processing time without the need for chronic metabolic selection or antibody-based sorting. By integrating real-time cellular morphology analysis and targeted laser ablation, CM-AI selectively removes non-cardiomyocyte populations with high precision. This streamlined process preserves cardiomyocyte viability and function, offering a scalable and efficient solution for cardiac regenerative medicine, disease modeling, and drug discovery.</p>

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AI-guided laser purification of human iPSC-derived cardiomyocytes for next-generation cardiac cell manufacturing

  • Prakaimuk Saraithong,
  • Peyton Krajcarski,
  • Yukako Kusaka,
  • Moe Yamada,
  • Junichi Matsumoto,
  • Hailey Cunningham,
  • Sama Salih,
  • Darby Jones,
  • Devika Baddhan,
  • Christian Hausner,
  • Justus Anumonwo,
  • Anthony Rosenzweig,
  • Mary M. Navarro,
  • Luis Villa Diaz,
  • Joseph Criscione,
  • Deok-Ho Kim,
  • Todd J. Herron

摘要

Current methods for producing cardiomyocytes from human induced pluripotent stem cells (hiPSCs) using 2D monolayer differentiation are often hampered by batch-to-batch variability and inefficient purification processes. Here, we introduce CM-AI, a novel artificial intelligence-guided laser cell processing platform designed for rapid, label-free purification of hiPSC-derived cardiomyocytes (hiPSC-CMs). This approach significantly reduces processing time without the need for chronic metabolic selection or antibody-based sorting. By integrating real-time cellular morphology analysis and targeted laser ablation, CM-AI selectively removes non-cardiomyocyte populations with high precision. This streamlined process preserves cardiomyocyte viability and function, offering a scalable and efficient solution for cardiac regenerative medicine, disease modeling, and drug discovery.