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Electrospun Nanofiber Scaffolds with Gradations in Fiber Organization
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Electrospun nanofibers for bone regeneration: from biomimetic composition, structure to function.

Tianbao Zhao1, Jianhua Zhang2, Xiaoyan Gao3

  • 1College of Materials Science and Engineering, Xihua University, Chengdu 610039, P. R. China.

Journal of Materials Chemistry. B
|August 5, 2022
PubMed
Summary

Electrospun nanofibers mimic natural bone extracellular matrix, offering advanced solutions for bone regeneration. This review highlights recent progress in materials, structures, and functions for tissue engineering scaffolds.

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Area of Science:

  • Biomaterials Science
  • Tissue Engineering
  • Regenerative Medicine

Background:

  • Novel materials and processing technologies are crucial for developing effective bone defect repair scaffolds.
  • Electrospun nanofibers are highly promising due to their ability to mimic the natural bone extracellular matrix.
  • Significant advancements have been made in electrospun nanofiber technology for bone regeneration.

Purpose of the Study:

  • To review recent progress in electrospun nanofibers for bone regeneration applications.
  • To focus on material compositions, structural regulation, and functional achievements.
  • To discuss the integration of electrospun nanofibers with other emerging scaffold fabrication technologies.

Main Methods:

  • Review of recent literature on electrospun nanofibers for bone regeneration.
  • Categorization of nanofibers by material composition (synthetic, natural, composite, hybrid).
  • Analysis of structural regulation strategies (aligned, core-shell, gradient, 3D).
  • Examination of functional regulation achievements (biomineralization, osteogenesis, vascularization, immunomodulation, anti-infection).
  • Discussion of combinations with technologies like 3D printing, electrospraying, and microfluidics.

Main Results:

  • Electrospun nanofibers offer tunable properties for bone tissue engineering.
  • Diverse material compositions and structural designs enhance scaffold performance.
  • Functionalization strategies promote biomineralization, osteogenesis, vascularization, and immune response.
  • Integration with other technologies expands fabrication possibilities for complex scaffolds.

Conclusions:

  • Electrospun nanofibers represent a significant advancement in bone regeneration scaffolds.
  • Continued research into material design, structural control, and functionalization is essential.
  • Addressing future challenges will further optimize nanofibrous scaffolds for clinical applications.