4.8 Article

Mechanically cartilage-mimicking poly(PCL-PTHF urethane)/collagen nanofibers induce chondrogenesis by blocking NF-kappa B signaling pathway

Journal

BIOMATERIALS
Volume 178, Issue -, Pages 281-292

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2018.06.023

Keywords

Poly(e-caprolactone)/polytetrahydrofuran (PCL-PTHF) nanofibers; Collagen type I; Stiffness; Mesenchymal stem cells (MSCs); Cartilage tissue engineering

Funding

  1. National key research and development program of China [2016YFB0700804, 2016YFA0100900]
  2. National Natural Science Fund of China [81760326, 51673168]
  3. Guangxi Science and Technology Major Project [Guike AA17204085]
  4. High level innovation teams and outstanding scholars in Guangxi Universities (The third batch)
  5. Distinguished Young Scholars Program of Guangxi Medical University
  6. National Institutes of Health [CA195607, EB021339]
  7. NATIONAL CANCER INSTITUTE [R21CA195607] Funding Source: NIH RePORTER
  8. NATIONAL INSTITUTE OF BIOMEDICAL IMAGING AND BIOENGINEERING [R01EB021339] Funding Source: NIH RePORTER

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Cartilage cannot self-repair and thus regeneration is a promising approach to its repair. Here we developed new electrospun nanofibers, made of poly (epsilon-caprolactone)/polytetrahydrofuran (PCL-PTHF urethane) and collagen I from calf skin (termed PC), to trigger the chondrogenic differentiation of mesenchymal stem cells (MSCs) and the cartilage regeneration in vivo. We found that the PC nanofibers had a modulus (4.3 Mpa) lower than the PCL-PTHF urethane nanofibers without collagen I from calf skin (termed P) (6.8 Mpa) although both values are within the range of the modulus of natural cartilage (1-10 MPa). Both P and PC nanofibers did not show obvious difference in the morphology and size. Surprisingly, in the absence of the additional chondrogenesis inducers, the softer PC nanofibers could induce the chondrogenic differentiation in vitro and cartilage regeneration in vivo more efficiently than the stiffer P nanofibers. Using mRNA-sequence analysis, we found that the PC nanofibers outperformed P nanofibers in inducing chondrogenesis by specifically blocking the NF-kappa B signaling pathway to suppress inflammation. Our work shows that the PC nanofibers can serve as building blocks of new scaffolds for cartilage regeneration and provides new insights on the effect of the mechanical properties of the nanofibers on the cartilage regeneration. (C) 2018 Elsevier Ltd. All rights reserved.

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