Chemical Engineering of Cell Therapy for Heart Diseases

Zhenhua Li1,2,3, Shiqi Hu1,2,3, Ke Cheng1,2,3

  • 1Department of Molecular Biomedical Sciences and Comparative Medicine Institute , North Carolina State University , Raleigh , North Carolina 27607 , United States.

Insights

Chemical engineering principles are applied to advance cardiac cell therapies, moving from live cells to cell-free strategies. This approach enhances myocardial repair by improving cell delivery, stability, and safety for cardiovascular disease treatment.

Area of Science:

  • Biomedical Engineering
  • Chemical Engineering
  • Regenerative Medicine

Background:

  • Cardiovascular disease (CVD) poses a significant global health challenge, with limited natural regeneration capacity in adult cardiomyocytes post-myocardial infarction (MI).
  • Current live cell-based therapies (first generation) face limitations including poor cell retention, lung entrapment after intravenous delivery, and poor storage stability.
  • The principles of chemical engineering, focusing on process design for production, transformation, and transportation, align with the evolving needs of cell therapies.

Purpose of the Study:

  • To introduce and explore the concept of 'chemical engineering of cell therapies' for repairing injured hearts.
  • To summarize recent efforts in developing chemical engineering approaches to overcome limitations of existing cardiac cell therapies.
  • To present advancements from second-generation (manipulated cells) to third-generation (cell-free) therapeutic strategies.

Main Methods:

  • Second-generation strategies involved artificial manipulation of stem cells, such as fusing platelet membranes onto cardiac stromal/stem cells (CSCs) to improve infarct targeting.
  • Bioengineering approaches included encapsulating CSCs in microneedle patches for direct, in situ delivery to the infarcted myocardium.
  • Third-generation strategies focused on cell-free approaches, mimicking stem cell paracrine functions and utilizing biocompatible materials for cardiac repair.

Main Results:

  • Modified CSCs demonstrated improved delivery to MI sites, addressing poor cellular retention.
  • Microneedle patches provided a painless, in situ delivery system for enhanced myocardium regeneration.
  • Cell-free strategies offer a promising alternative to live cell therapies, mitigating issues of stability, safety, and manufacturing.

Conclusions:

  • Chemical engineering offers innovative solutions to transform cell therapies from live cells to advanced cell-free systems.
  • These engineered approaches address critical barriers in cell retention, delivery, stability, and safety for cardiovascular applications.
  • The development of cell-free systems presents unprecedented opportunities for novel cardiac cell therapeutic agents in clinical practice.

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