Tendon tears are common and healing often occurs incompletely and by fibrosis. Tissue engineering seeks to improve repair, and one approach under investigation uses cell-seeded scaffolds containing biomimetic factors. Retention of biomimetic factors on the scaffolds is likely critical to maximize their benefit, while minimizing the risk of adverse effects, and without losing the beneficial effects of the biomimetic factors. The aim of the current study was to evaluate cross-linking methods to enhance the retention of tendon-derived matrix (TDM) on electrospun poly(ε-caprolactone) (PCL) scaffolds. We tested the effects of ultraviolet (UV) or carbodiimide (EDC:NHS:COOH) crosslinking methods to better retain TDM to the scaffolds and stimulate tendon-like matrix synthesis. Initially, we tested various crosslinking configurations of carbodiimide (2.5:1:1, 5:2:1, and 10:4:1 EDC:NHS:COOH ratios) and UV (30âs 1âJ/cm(2) , 60âs 1âJ/cm(2) , and 60âs 4âJ/cm(2) ) on PCL films compared to un-crosslinked TDM. We found that no crosslinking tested retained more TDM than coating alone (Kruskal-Wallis: pâ>â.05), but that human adipose stem cells (hASCs) spread most on the 60âs 1âJ/cm(2) UV- and 2.5:1:1 EDC-crosslinked films (Kruskal-Wallis: pâ<â.05). Next, we compared the effects of 60âs 1âJ/cm(2) UV- and 2.5:1:1 EDC-crosslinked to TDM-coated and untreated PCL scaffolds on hASC-induced tendon-like differentiation. UV-crosslinked scaffolds had greater modulus and stiffness than PCL or TDM scaffolds, and hASCs spread more on UV-crosslinked scaffolds (ANOVA: pâ<â.05). Fourier transform infrared spectra revealed that UV- or EDC-crosslinking TDM did not affect the peaks at wavenumbers characteristic of tendon. Crosslinking TDM to electrospun scaffolds improves tendon-like matrix synthesis, providing a viable strategy for improving retention of TDM on electrospun PCL scaffolds.
Tendon-derived matrix crosslinking techniques for electrospun multi-layered scaffolds.
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作者:Jenkins Thomas L, Sarmiento Huertas Paula A, Umemori Kentaro, Guilak Farshid, Little Dianne
| 期刊: | Journal of Biomedical Materials Research Part A | 影响因子: | 3.900 |
| 时间: | 2023 | 起止号: | 2023 Dec;111(12):1875-1887 |
| doi: | 10.1002/jbm.a.37588 | ||
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