| Literature DB >> 32003928 |
Idan Gal1, Reuven Edri1, Nadav Noor1,2, Matan Rotenberg2, Michael Namestnikov1, Itai Cabilly1, Assaf Shapira1, Tal Dvir1,2,3,4.
Abstract
One of the strategies for heart regeneration includes cell delivery to the defected heart. However, most of the injected cells do not form quick cell-cell or cell-matrix interactions, therefore, their ability to engraft at the desired site and improve heart function is poor. Here, the use of a microfluidic system is reported for generating personalized hydrogel-based cellular microdroplets for cardiac cell delivery. To evaluate the system's limitations, a mathematical model of oxygen diffusion and consumption within the droplet is developed. Following, the microfluidic system's parameters are optimized and cardiac cells from neonatal rats or induced pluripotent stem cells are encapsulated. The morphology and cardiac specific markers are assessed and cell function within the droplets is analyzed. Finally, the cellular droplets are injected to mouse gastrocnemius muscle to validate cell retention, survival, and maturation within the host tissue. These results demonstrate the potential of this approach to generate personalized cellular microtissues, which can be injected to distinct regions in the body for treating damaged tissues.Entities:
Keywords: cell delivery; droplets; hydrogels; microfluidics; microscale
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Year: 2020 PMID: 32003928 PMCID: PMC7113023 DOI: 10.1002/smll.201904806
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281