4.5 Article

The experimental study of regeneration of annulus fibrosus using decellularized annulus fibrosus matrix/poly(ether carbonate urethane)urea-blended fibrous scaffolds with varying elastic moduli

Journal

JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A
Volume 110, Issue 5, Pages 991-1003

Publisher

WILEY
DOI: 10.1002/jbm.a.37347

Keywords

annulus fibrosus-derived stem cells; coaxial electrospinning; decellularized annulus fibrosus matrix; elastic modulus; PECUU

Funding

  1. National Natural Science Foundation of China [81702158, 82172427]
  2. National Natural Science Foundation of Anhui Province [1708085QH205]
  3. Foreign Science and Technology Cooperation of Anhui Province [202004b11020027]
  4. Panfeng Innovation Team Project for Scientific Research of Yijishan Hospital, Wannan Medical College [PF2019007]
  5. Peak Training Program for Scientific Research of Yijishan Hospital, Wannan Medical College [GF2019T02, GF2019G07, GF2019G12]

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The study synthesized DAFM/PECUU-blended fibrous scaffolds using a coaxial electrospinning method to culture AFSCs, and found that with increased elasticity of the scaffold material, collagen type I gene expression increased, while collagen type II and aggrecan gene expression showed the opposite trend.
Although tissue engineering has attracted increasing attention for the treatment of degenerative intervertebral disc disease, the biochemical properties, structural organization, and mechanical characteristics of annulus fibrosus tissue have restricted progress. Differentiation of annulus fibrosus-derived stem cells (AFSCs) can be regulated by the elasticity of substrates such as poly(ether carbonate urethane)urea (PECUU). Decellularized annulus fibrosus matrix (DAFM) has good biocompatibility and biodegradability, making it suitable for cell adhesion, proliferation, and differentiation. In this study, we used a coaxial electrospinning method to synthesize DAFM/PECUU-blended fibrous scaffolds with elasticities approximating that of native inner and outer annulus fibrosus tissue. AFSCs cultured on DAFM/PECUU-blended fibrous scaffolds exhibited increased collagen type I gene expression with increasing elasticity of the scaffold material; notably, collagen type II and aggrecan gene expression exhibited the opposite trend. Regarding extracellular matrix secretion, collagen type I content gradually increased with substrate elasticity, while collagen type II and aggrecan contents decreased. In vivo evaluations employing magnetic resonance imaging, hematoxylin and eosin staining, and immunohistochemistry indicated that DAFM/PECUU-blended fibrous scaffolds could effectively repair defects of annulus fibrosus tissue. Our findings provide a theoretical and practical basis for the development of bionic annulus fibrosus tissue that closely mimics the biological properties, mechanical function, and matrix composition of native tissue.

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