4.7 Article

Development of secretome-based strategies to improve cell culture protocols in tissue engineering

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SCIENTIFIC REPORTS
卷 12, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41598-022-14115-y

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资金

  1. Spanish Plan Nacional de Investigacion Cientifica, Desarrollo e Innovacion Tecnologica (I + D + I) of the Spanish Ministry of Science and Innovation (Instituto de Salud Carlos III) [FIS PI18/0331, FIS PI21/0980, FIS PI18/0332, FIS PI20/0317, ICI19/00024, ICI21/00010]
  2. Consejeria de Salud y Familias, Junta de Andalucia, Spain [PE-0395-2019, PI-0442-2019]
  3. proyectos de I + D + i en el marco del Programa Operativo FEDER Andalucia , University of Granada and Consejeria de Transformacion Economica, Industria, Conocimiento y Universidades [B-CTS-450-UGR20]
  4. European Regional Development Fund (ERDF)

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Advancements in skin tissue engineering have led to the development of artificial skin substitutes for treating severe skin loss conditions. However, the need for large amounts of viable epithelial cells in a short amount of time poses a challenge in the fabrication process. The use of mesenchymal stem cells secretome has shown potential in enhancing cell proliferation and improving biofabrication strategies, with dental pulp and umbilical cord derived secretomes yielding better results than adipose cell derived secretome.
Advances in skin tissue engineering have promoted the development of artificial skin substitutes to treat large burns and other major skin loss conditions. However, one of the main drawbacks to bioengineered skin is the need to obtain a large amount of viable epithelial cells in short periods of time, making the skin biofabrication process challenging and slow. Enhancing skin epithelial cell cultures by using mesenchymal stem cells secretome can favor the scalability of manufacturing processes for bioengineered skin. The effects of three different types of secretome derived from human mesenchymal stem cells, e.g. hADSC-s (adipose cells), hDPSC-s (dental pulp) and hWJSC-s (umbilical cord), were evaluated on cultured skin epithelial cells during 24, 48, 72 and 120 h to determine the potential of this product to enhance cell proliferation and improve biofabrication strategies for tissue engineering. Then, secretomes were applied in vivo in preliminary analyses carried out on Wistar rats. Results showed that the use of secretomes derived from mesenchymal stem cells enhanced currently available cell culture protocols. Secretome was associated with increased viability, proliferation and migration of human skin epithelial cells, with hDPSC-s and hWJSC-s yielding greater inductive effects than hADSC-s. Animals treated with hWJSC-s and especially, hDPSC-s tended to show enhanced wound healing in vivo with no detectable side effects. Mesenchymal stem cells derived secretomes could be considered as a promising approach to cell-free therapy able to improve skin wound healing and regeneration.

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