4.7 Article

Biomimetic Scaffolds for Spinal Cord Applications Exhibit Stiffness-Dependent Immunomodulatory and Neurotrophic Characteristics

期刊

ADVANCED HEALTHCARE MATERIALS
卷 11, 期 3, 页码 -

出版社

WILEY
DOI: 10.1002/adhm.202101663

关键词

astrocyte; immunomodulation; mechanotransduction; scaffolds; spinal cord injury; tissue engineering

资金

  1. joint funding initiative of the Irish Rugby Football Union Charitable Trust (IRFU-CT)
  2. Advanced Materials and Bioengineering Research (AMBER) Centre through Science Foundation Ireland [SFI/12/RC/2278]
  3. Irish Research Council Postgraduate Fellowship (Government of Ireland) [GOIPD/2021/262]
  4. EPSRC/SFI Centre for Doctoral Training in the Advanced Characterisation of Materials [18/EPSRC-CDT/3581 15735]
  5. Anatomical Society Student Fellowship
  6. Science Foundation Ireland (SFI) [18/EPSRC-CDT/3581] Funding Source: Science Foundation Ireland (SFI)

向作者/读者索取更多资源

The study found that Coll-IV/Fn mixture in scaffolds can promote axonal extension of neurons and induce morphological features of astrocytes. By using materials of different stiffness in the scaffold, astrocyte behavior can be regulated, and the production of anti-inflammatory cytokines can be stimulated.
After spinal cord injury (SCI), tissue engineering scaffolds offer a potential bridge for regeneration across the lesion and support repair through proregenerative signaling. Ideal biomaterial scaffolds that mimic the physicochemical properties of native tissue have the potential to provide innate trophic signaling while also minimizing damaging inflammation. To address this challenge, taking cues from the spinal cord's structure, the proregenerative signaling capabilities of native cord components are compared in vitro. A synergistic mix of collagen-IV and fibronectin (Coll-IV/Fn) is found to optimally enhance axonal extension from neuronal cell lines (SHSY-5Y and NSC-34) and induce morphological features typical of quiescent astrocytes. This optimal composition is incorporated into hyaluronic acid scaffolds with aligned pore architectures but varying stiffnesses (0.8-3 kPa). Scaffolds with biomimetic mechanical properties (<1 kPa), functionalized with Coll-IV/Fn, not only modulate primary astrocyte behavior but also stimulate the production of anti-inflammatory cytokine IL-10 in a stiffness-dependent manner. Seeded SHSY-5Y neurons generate distributed neuronal networks, while softer biomimetic scaffolds promote axonal outgrowth in an ex vivo model of axonal regrowth. These results indicate that the interaction of stiffness and biomaterial composition plays an essential role in vitro in generating repair-critical cellular responses and demonstrates the potential of biomimetic scaffold design.

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