» Articles » PMID: 36838717

Characteristics of Hybrid Bioglass-Chitosan Coatings on the Plasma Activated PEEK Polymer

Overview
Journal Molecules
Publisher MDPI
Specialty Biology
Date 2023 Feb 25
PMID 36838717
Authors
Affiliations
Soon will be listed here.
Abstract

Polyetheretherketone (PEEK) is a biocompatible, chemically and physically stable radiolucent polymer that exhibits a similar elastic modulus to the normal human bone, making it an attractive orthopedic implant material. However, PEEK is biologically inert, preventing strong enough bonding with the surrounding bone tissue when implanted in vivo. Surface modification and composite preparation are the two main strategies for the improvement of the bioactivity of PEEK. In this study, the plasma activated PEEK surfaces with the embedded bioglass, chitosan, and bioglass-chitosan mixed layers applying from the solution dip-coating technique were investigated. The most prominent factors affecting the coating biocompatibility are strictly connected with the composition of its outer surface (its charge and functional groups), hydrophilic-hydrophobic character, wettability and surface free energy, and topography (size of pores/substructures, roughness, stiffness), as well as the personal characteristics of the patient. The obtained surfaces were examined in terms of wettability and surface-free energy changes. Additionally, FTIR (Fourier Transformation Infrared Spectrometry) and SIMS (Secondary Ion Mass Spectrometry) were applied to establish and control the coating composition. Simultaneously the structure of coatings was visualized with the aid of SEM (Scanning Electron Microscopy). Finally, the obtained systems were incubated in SBF (Simulated Body Fluid) to verify the modifications' influence on the bioactivity/biocompatibility of the PEEK surface. Different structures with variable compositions, as well as changes of the wettability, were observed depending on the applied modification. In addition, the incubation in SBF suggested that the bioglass-chitosan ratio influenced the formation of apatite-like structures on the modified PEEK surfaces.

Citing Articles

Chitosan-Surfactant Composite Nanocoatings on Glass and Zinc Surfaces Prepared from Aqueous Solutions.

Marton P, Ader L, Kemeny D, Racz A, Kovacs D, Nagy N Molecules. 2024; 29(13).

PMID: 38999062 PMC: 11243197. DOI: 10.3390/molecules29133111.


Different Polymers for the Base of Removable Dentures? Part II: A Narrative Review of the Dynamics of Microbial Plaque Formation on Dentures.

Le Bars P, Kouadio A, Amouriq Y, Bodic F, Blery P, Bandiaky O Polymers (Basel). 2024; 16(1).

PMID: 38201705 PMC: 10780608. DOI: 10.3390/polym16010040.


Bioglass and Vitamin D3 Coatings for Titanium Implants: Osseointegration and Corrosion Protection.

Negut I, Gradisteanu-Pircalabioru G, Dinu M, Bita B, Parau A, Grumezescu V Biomedicines. 2023; 11(10).

PMID: 37893145 PMC: 10604371. DOI: 10.3390/biomedicines11102772.


Antimicrobial Peptide Conjugated on Graphene Oxide-Containing Sulfonated Polyetheretherketone Substrate for Effective Antibacterial Activities against .

Kumar S, Hu C, Vi T, Chen D, Lue S Antibiotics (Basel). 2023; 12(9).

PMID: 37760704 PMC: 10525520. DOI: 10.3390/antibiotics12091407.


Preparation and Surface Characterization of Chitosan-Based Coatings for PET Materials.

Szafran K, Jurak M, Mroczka R, Wiacek A Molecules. 2023; 28(5).

PMID: 36903621 PMC: 10005435. DOI: 10.3390/molecules28052375.

References
1.
Aguilar A, Zein N, Harmouch E, Hafdi B, Bornert F, Offner D . Application of Chitosan in Bone and Dental Engineering. Molecules. 2019; 24(16). PMC: 6720623. DOI: 10.3390/molecules24163009. View

2.
Rehman M, Bastan F, Nawaz Q, Goldmann W, Maqbool M, Virtanen S . Electrophoretic deposition of lawsone loaded bioactive glass (BG)/chitosan composite on polyetheretherketone (PEEK)/BG layers as antibacterial and bioactive coating. J Biomed Mater Res A. 2018; 106(12):3111-3122. DOI: 10.1002/jbm.a.36506. View

3.
Saini M, Singh Y, Arora P, Arora V, Jain K . Implant biomaterials: A comprehensive review. World J Clin Cases. 2015; 3(1):52-7. PMC: 4295219. DOI: 10.12998/wjcc.v3.i1.52. View

4.
Pajares-Chamorro N, Chatzistavrou X . Bioactive Glass Nanoparticles for Tissue Regeneration. ACS Omega. 2020; 5(22):12716-12726. PMC: 7288353. DOI: 10.1021/acsomega.0c00180. View

5.
Terzopoulou Z, Baciu D, Gounari E, Steriotis T, Charalambopoulou G, Tzetzis D . Composite Membranes of Poly(ε-caprolactone) with Bisphosphonate-Loaded Bioactive Glasses for Potential Bone Tissue Engineering Applications. Molecules. 2019; 24(17). PMC: 6749304. DOI: 10.3390/molecules24173067. View