» Articles » PMID: 35541414

TiO Doped Chitosan/hydroxyapatite/halloysite Nanotube Membranes with Enhanced Mechanical Properties and Osteoblast-like Cell Response for Application in Bone Tissue Engineering

Overview
Journal RSC Adv
Specialty Chemistry
Date 2022 May 11
PMID 35541414
Authors
Affiliations
Soon will be listed here.
Abstract

The current therapeutic strategies for healing bone defects commonly suffer from the occurrence of bacterial contamination on the graft, resulting in nonunion in the segmental bone defects and the requirement for secondary surgery to remove or sterilize the primary graft. A membrane with enhanced anti-bacterial efficacy, mechanical strength and osteoconductivity would represent an improvement in the therapeutic strategy for guided bone regeneration. The present study aims to optimize the content of halloysite nanotubes (HNTs) and TiO in the polymer matrix of chitosan (CTS) with a constant amount of nano-hydroxyapatite (5%) with the objective of mimicking the mechanical and biological microenvironment of the natural bone extracellular matrix with enhanced anti-bacterial efficacy. HNTs are a low-cost alternative to MWNCTs for enhancing the mechanical properties and anti-bacterial efficacy of the composite. From the first stage of the study, it was concluded that the membranes possessed enhanced mechanical properties and optimum biological properties at 7.5% (w/w) loading of HNTs in the composite. In the second stage of this investigation, we studied the effect of the addition of TiO nanoparticles (NPs) and TiO nanotubes (NTs) in small amounts to the CTS/n-HAP/HNT nanocomposite at 7.5% HNT loading, with an aim to augment the anti-bacterial efficacy and osteoconductivity of this mechanically strong membrane. The study revealed a significant enhancement in the anti-bacterial efficacy, osteoblast-like MG-63 cell proliferation and ALP expression with the addition of TiO NTs. The CHH-TiT membrane successfully inhibited the and growth within 16 hours and simultaneously assisted the enhanced proliferation of osteoblast-like cells on its surface. The study supports the potential exploitation of CHH-TiT (7.5% HNT & 0.2% TiO NT) membranes as a template for guided bone tissue regeneration.

Citing Articles

Magnesium-Doped Nano-Hydroxyapatite/Polyvinyl Alcohol/Chitosan Composite Hydrogel: Preparation and Characterization.

Zhang K, Liu Y, Zhao Z, Shi X, Zhang R, He Y Int J Nanomedicine. 2024; 19:651-671.

PMID: 38269254 PMC: 10807547. DOI: 10.2147/IJN.S434060.


Production and Characterization of Poly (Lactic Acid)/Nanostructured Carboapatite for 3D Printing of Bioactive Scaffolds for Bone Tissue Engineering.

Palhares T, de Menezes L, Kronemberger G, Borchio P, Baptista L, Da Cunha Boldrini Pereira L 3D Print Addit Manuf. 2023; 8(4):227-237.

PMID: 36654836 PMC: 9828613. DOI: 10.1089/3dp.2020.0211.

References
1.
Tong G, Yulong M, Peng G, Zirong X . Antibacterial effects of the Cu(II)-exchanged montmorillonite on Escherichia coli K88 and Salmonella choleraesuis. Vet Microbiol. 2005; 105(2):113-22. DOI: 10.1016/j.vetmic.2004.11.003. View

2.
Wang B, Li L, Zheng Y . In vitro cytotoxicity and hemocompatibility studies of Ti-Nb, Ti-Nb-Zr and Ti-Nb-Hf biomedical shape memory alloys. Biomed Mater. 2010; 5(4):044102. DOI: 10.1088/1748-6041/5/4/044102. View

3.
Soucacos P, Johnson E, Babis G . An update on recent advances in bone regeneration. Injury. 2008; 39 Suppl 2:S1-4. DOI: 10.1016/S0020-1383(08)70009-3. View

4.
Finkemeier C . Bone-grafting and bone-graft substitutes. J Bone Joint Surg Am. 2002; 84(3):454-64. DOI: 10.2106/00004623-200203000-00020. View

5.
Bhowmick A, Pramanik N, Jana P, Mitra T, Gnanamani A, Das M . Development of bone-like zirconium oxide nanoceramic modified chitosan based porous nanocomposites for biomedical application. Int J Biol Macromol. 2016; 95:348-356. DOI: 10.1016/j.ijbiomac.2016.11.052. View