» Articles » PMID: 12628828

A Biodegradable Nanofiber Scaffold by Electrospinning and Its Potential for Bone Tissue Engineering

Overview
Journal Biomaterials
Date 2003 Mar 12
PMID 12628828
Citations 300
Authors
Affiliations
Soon will be listed here.
Abstract

Microporous, non-woven poly( epsilon -caprolactone) (PCL) scaffolds were made by electrostatic fiber spinning. In this process, polymer fibers with diameters down to the nanometer range, or nanofibers, are formed by subjecting a fluid jet to a high electric field. Mesenchymal stem cells (MSCs) derived from the bone marrow of neonatal rats were cultured, expanded and seeded on electrospun PCL scaffolds. The cell-polymer constructs were cultured with osteogenic supplements under dynamic culture conditions for up to 4 weeks. The cell-polymer constructs maintained the size and shape of the original scaffolds. Scanning electron microscopy (SEM), histological and immunohistochemical examinations were performed. Penetration of cells and abundant extracellular matrix were observed in the cell-polymer constructs after 1 week. SEM showed that the surfaces of the cell-polymer constructs were covered with cell multilayers at 4 weeks. In addition, mineralization and type I collagen were observed at 4 weeks. This suggests that electrospun PCL is a potential candidate scaffold for bone tissue engineering.

Citing Articles

Nano-hydroxyapatite/natural polymer composite scaffolds for bone tissue engineering: a brief review of recent trend.

Radha G, Manjubaashini N, Balakumar S In Vitro Model. 2025; 2(5):125-151.

PMID: 39872168 PMC: 11756495. DOI: 10.1007/s44164-023-00049-w.


Electrospinning based biomaterials for biomimetic fabrication, bioactive protein delivery and wound regenerative repair.

Dai X, Nie W, Shen H, Machens H, Boker K, Taheri S Regen Biomater. 2025; 12:rbae139.

PMID: 39803356 PMC: 11723536. DOI: 10.1093/rb/rbae139.


Optimizations of Placenta Extracellular Matrix-Loaded Silk Fibroin/Alginate 3D-Printed Scaffolds Structurally and Functionally for Bone Tissue Engineering.

Bashiri Z, Khosrowpour Z, Moghaddaszadeh A, Jafari D, Alizadeh S, Nasiri H Eng Life Sci. 2025; 25(1):e202400085.

PMID: 39801563 PMC: 11717148. DOI: 10.1002/elsc.202400085.


Optimization and Implication of Adipose-Derived Stem Cells in Craniofacial Bone Regeneration and Repair.

Gu C, Tang Q, Li L, Chen Y Bioengineering (Basel). 2024; 11(11).

PMID: 39593759 PMC: 11592193. DOI: 10.3390/bioengineering11111100.


In vivo biocompatibility assessment of 3D printed bioresorbable polymers for brain tissue regeneration. A feasibility study.

Clauzel J, Colitti N, Combeau M, Labriji W, Robert L, Brilhault A Regen Ther. 2024; 26:941-955.

PMID: 39512739 PMC: 11541680. DOI: 10.1016/j.reth.2024.10.004.