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Crimped nanofiber scaffold mimicking tendon-to-bone interface for fatty-infiltrated massive rotator cuff repair.
- Source :
-
Bioactive materials [Bioact Mater] 2022 Jan 25; Vol. 16, pp. 149-161. Date of Electronic Publication: 2022 Jan 25 (Print Publication: 2022). - Publication Year :
- 2022
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Abstract
- Electrospun fibers, with proven ability to promote tissue regeneration, are widely being explored for rotator cuff repairing. However, without post treatment, the microstructure of the electrospun scaffold is vastly different from that of natural extracellular matrix (ECM). Moreover, during mechanical loading, the nanofibers slip that hampers the proliferation and differentiation of migrating stem cells. Here, electrospun nanofiber scaffolds, with crimped nanofibers and welded joints to biomimic the intricate natural microstructure of tendon-to-bone insertion, were prepared using poly(ester-urethane)urea and gelatin via electrospinning and double crosslinking by a multi-bonding network densification strategy. The crimped nanofiber scaffold (CNS) features bionic tensile stress and induces chondrogenic differentiation, laying credible basis for in vivo experimentation. After repairing a rabbit massive rotator cuff tear using a CNS for 3 months, the continuous translational tendon-to-bone interface was fully regenerated, and fatty infiltration was simultaneously inhibited. Instead of micro-CT, μCT was employed to visualize the integrity and intricateness of the three-dimensional microstructure of the CNS-induced-healed tendon-to-bone interface at an ultra-high resolution of less than 1 μm. This study sheds light on the correlation between nanofiber post treatment and massive rotator cuff repair and provides a general strategy for crimped nanofiber preparation and tendon-to-bone interface imaging characterization.<br />Competing Interests: The authors declare no competing financial interest.<br /> (© 2022 The Authors.)
Details
- Language :
- English
- ISSN :
- 2452-199X
- Volume :
- 16
- Database :
- MEDLINE
- Journal :
- Bioactive materials
- Publication Type :
- Academic Journal
- Accession number :
- 35386329
- Full Text :
- https://doi.org/10.1016/j.bioactmat.2022.01.031