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Construction of Defined Human Engineered Cardiac Tissues to Study Mechanisms of Cardiac Cell Therapy
Published on: March 1, 2016
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.
Abstract:
Cardiovascular disease (CVD) is a major health problem worldwide. Since adult cardiomyocytes irreversibly withdraw from the cell cycle soon after birth, it is hard for cardiac cells to proliferate and regenerate after myocardial injury, such as that caused myocardial infarction (MI). Live cell-based therapies, which we term as first generation of therapeutic strategies, have been widely used for the treatment of many diseases, including CVD. However, cellular approaches have the problems of poor retention of the transplanted cells and the significant entrapment of the cells in the lungs when delivered intravenously. Another big problem is the low storage/shipping stability of live cells, which limits the manufacturability of living cell products. The field of chemical engineering focuses on designing large-scale processes to convert chemicals, raw materials, living cells, microorganisms, and energy into useful forms and products. By definition, chemical engineers conceive and design processes to produce, transform, and transport materials. This matches the direction that cell therapies are heading toward: "produce", from live cells to synthetic artificial cells; "transform", from bare cells to cell/matrix/factor combinations; and "transport". from simple systemic injections to targeted delivery. Thus, we hereby introduce the "chemical engineering of cell therapies" as a concept. In this Account, we summarize our recent efforts to develop chemical engineering approaches to repair injured hearts. To address the limitations of poor cellular retention and integration, the first step was the artificial manipulation of stem cells before injections (we term this the second generation of therapeutic strategies). For example, we took advantage of the natural infarct-targeting ability of platelet membranes by fusing them onto the surface of cardiac stromal/stem cells (CSCs). By doing so, we improved the rate at which they were delivered through the vasculature to sites of MI. In addition to modifying natural CSCs, we described a bioengineering approach that involved the encapsulation of CSCs in a polymeric microneedle patch for myocardium regeneration. The painless microneedle patches were used as an in situ delivery device, which directly transported the loaded CSCs to the MI heart. In addition to low cell retention, there are some other barriers that need to be addressed before further clinical application is viable, including the storage/shipping stability of and the evident safety concerns about live cells. Therefore, we developed the third generation of therapeutic strategies, which utilize cell-free approaches for cardiac cell therapies. Numerous studies have indicated that paracrine mechanisms reasonably explain stem cell based heart repair. By imitating or adapting natural stem cells, as well as their secretions, and using them in conjunction with biocompatible materials, we can simulate the function of natural stem cells while avoiding the complications association with the first and second generation therapeutic options. Additionally, we can develop approaches to capture endogenous stem cells and directly transport them to the infarct site. Using these third generation therapeutic strategies, we can provide unprecedented opportunities for cardiac cell therapies. We hope that our designs will promote the use of chemical engineering approaches to transform, transport, and fabricate cell-free systems as novel cardiac cell therapeutic agents for clinical applications.
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