» Articles » PMID: 24874652

Cotton-wool-like Bioactive Glasses for Bone Regeneration

Overview
Journal Acta Biomater
Publisher Elsevier
Date 2014 May 31
PMID 24874652
Citations 19
Authors
Affiliations
Soon will be listed here.
Abstract

Inorganic sol-gel solutions were electrospun to produce the first bioactive three-dimensional (3-D) scaffolds for bone tissue regeneration with a structure like cotton-wool (or cotton candy). This flexible 3-D fibrous structure is ideal for packing into complex defects. It also has large inter-fiber spaces to promote vascularization, penetration of cells and transport of nutrients throughout the scaffold. The 3-D fibrous structure was obtained by electrospinning, where the applied electric field and the instabilities exert tremendous force on the spinning jet, which is required to be viscoelastic to prevent jet break up. Previously, polymer binding agents were used with inorganic solutions to produce electrospun composite two-dimensional fibermats, requiring calcination to remove the polymer. This study presents novel reaction and processing conditions for producing a viscoelastic inorganic sol-gel solution that results in fibers by the entanglement of the intermolecularly overlapped nanosilica species in the solution, eliminating the need for a binder. Three-dimensional cotton-wool-like structures were only produced when solutions containing calcium nitrate were used, suggesting that the charge of the Ca(2+) ions had a significant effect. The resulting bioactive silica fibers had a narrow diameter range of 0.5-2μm and were nanoporous. A hydroxycarbonate apatite layer was formed on the fibers within the first 12h of soaking in simulated body fluid. MC3T3-E1 preosteoblast cells cultured on the fibers showed no adverse cytotoxic effect and they were observed to attach to and spread in the material.

Citing Articles

Flexible and high-strength bioactive glass fiber membrane for bone regeneration with the aid of alkoxysilane sol spinnability.

Mao J, Sun J, Wang L, Liu X, Bi J Mater Today Bio. 2024; 28:101224.

PMID: 39290465 PMC: 11407074. DOI: 10.1016/j.mtbio.2024.101224.


Assessment of Physicochemical Characterization and Mineralization of Nanofibrous Scaffold Incorporated With Aspartic Acid for Dental Mineralization: An In Vitro Study.

Krishnan A, Raghu S, Arumugam P, Eswaramoorthy R Cureus. 2024; 16(6):e61741.

PMID: 38975499 PMC: 11226181. DOI: 10.7759/cureus.61741.


Design of Multi-Functional Bio-Safe Dental Resin Composites with Mineralization and Anti-Biofilm Properties.

Yun J, Burrow M, Matinlinna J, Ding H, Chan S, Tsoi J J Funct Biomater. 2024; 15(5).

PMID: 38786632 PMC: 11122376. DOI: 10.3390/jfb15050120.


Silver-doped bioactive glass fibres as a potential treatment for wound-associated bacterial biofilms.

Shirgill S, Poologasundarampillai G, Jabbari S, Ward J, Kuehne S Biofilm. 2023; 5:100115.

PMID: 37252225 PMC: 10209705. DOI: 10.1016/j.bioflm.2023.100115.


Unveiling the Mechanism of the Formation of 3D Fiber Macroassemblies with Controlled Properties.

Dong S, Maciejewska B, Lissner M, Thomson D, Townsend D, Millar R ACS Nano. 2023; 17(7):6800-6810.

PMID: 36988309 PMC: 10100559. DOI: 10.1021/acsnano.3c00289.