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The role of biodegradable engineered nanofiber scaffolds seeded with hair follicle stem cells for tissue engineering. | LitMetric

AI Article Synopsis

  • The study focused on creating a poly caprolactone (PCL) nanofiber scaffold to support the growth and differentiation of rat hair follicle stem cells (HFSC) for tissue engineering.
  • Electrospinning was employed to produce the PCL scaffolds, and various methods like SEM and MTT assays were used to assess the biological interactions of HFSC with the scaffolds.
  • Results indicated high cell viability, proliferation, and successful attachment of HFSC to the scaffolds, demonstrating their potential for future applications in tissue engineering.

Article Abstract

Background: The aim of this study was to fabricate the poly caprolactone (PCL) aligned nanofiber scaffold and to evaluate the survival, adhesion, proliferation, and differentiation of rat hair follicle stem cells (HFSC) in the graft material using electrospun PCL nanofiber scaffold for tissue engineering applications.

Methods: The bulge region of rat whisker was isolated and cultured in DMEM: nutrient mixture F-12 supplemented with epidermal growth factor. The morphological and biological features of cultured bulge cells were observed by light microscopy using immunocytochemistry methods. Electrospinning was used for production of PCL nanofiber scaffolds. Scanning electron microscopy (SEM), 3-(4, 5-di-methylthiazol- 2-yl)-2, 5-diphenyltetrazolium bromide (MTT) assay, and histology analysis were used to investigate the cell morphology, viability, attachment and infiltration of the HFSC on the PCL nanofiber scaffolds.

Results: The results of the MTT assay showed cell viability and cell proliferation of the HFSC on PCL nanofiber scaffolds. SEM microscopy images indicated that HFSC are attached, proliferated and spread on PCL nanofiber scaffolds. Also, immunocytochemical analysis showed cell infiltration and cell differentiation on the scaffolds.

Conclusion: The results of this study reveal that PCL nanofiber scaffolds are suitable for cell culture, proliferation, differentiation and attachment. Furthermore, HFSC are attached and proliferated on PCL nanofiber scaffolds.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3600961PMC

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