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On-growth and in-growth osseointegration enhancement in PM porous Ti-scaffolds by two different bioactivation strategies: alkali thermochemical treatment and RGD peptide coating

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Steffaine Rappe, Katrin
Ortiz Hernández, MónicaMés informació
Punset Fuste, MiquelMés informacióMés informacióMés informació
Molmeneu Trias, MeritxellMés informacióMés informacióMés informació
Barba Serrahima, Albert
Mas Moruno, CarlosMés informacióMés informacióMés informació
Guillem Martí, JordiMés informacióMés informacióMés informació
Caparrós, Cristina
Rupérez de Gracia, ElisaMés informacióMés informacióMés informació
Calero, José
Manzanares, Maria Cristina
Gil Mur, Javier
Franch, Jordi
CovenanteeUniversitat Autònoma de Barcelona; Institut de Recerca Sant Joan de Déu; AMES; Universitat de Barcelona; Universitat Internacional de Catalunya
Document typeArticle
Defense date2022-02-01
Rights accessOpen Access
Attribution-NonCommercial-NoDerivs 4.0 International
Except where otherwise noted, content on this work is licensed under a Creative Commons license : Attribution-NonCommercial-NoDerivs 4.0 International
Abstract
A lack of primary stability and osteointegration in metallic implants may result in implant loosening and failure. Adding porosity to metallic implants reduces the stress shielding effect and improves implant performance, allowing the surrounding bone tissue to grow into the scaffold. However, a bioactive surface is needed to stimulate implant osteointegration and improve mechanical stability. In this study, porous titanium implants were produced via powder sintering to create different porous diameters and open interconnectivity. Two strategies were used to generate a bioactive surface on the metallic foams: (1) an inorganic alkali thermochemical treatment, (2) grafting a cell adhesive tripeptide (RGD). RGD peptides exhibit an affinity for integrins expressed by osteoblasts, and have been reported to improve osteoblast adhesion, whereas the thermochemical treatment is known to improve titanium implant osseointegration upon implantation. Bioactivated scaffolds and control samples were implanted into the tibiae of rabbits to analyze the effect of these two strategies in vivo regarding bone tissue regeneration through interconnected porosity. Histomorphometric evaluation was performed at 4 and 12 weeks after implantation. Bone-to-implant contact (BIC) and bone in-growth and on-growth were evaluated in different regions of interest (ROIs) inside and outside the implant. The results of this study show that after a long-term postoperative period, the RGD-coated samples presented higher quantification values of quantified newly formed bone tissue in the implant’s outer area. However, the total analyzed bone in-growth was observed to be slightly greater in the scaffolds treated with alkali thermochemical treatment. These results suggest that both strategies contribute to enhancing porous metallic implant stability and osteointegration, and a combination of both strategies might be worth pursuing.
CitationKatrin S. Rappe [et al.]. On-growth and in-growth osseointegration enhancement in PM porous Ti-scaffolds by two different bioactivation strategies: alkali thermochemical treatment and RGD peptide coating. "International journal of molecular sciences", 1 Febrer 2022, vol. 23, núm. 1750. 
URIhttp://hdl.handle.net/2117/370206
DOI10.3390/ijms23031750
ISSN1422-0067
Publisher versionhttps://www.mdpi.com/1422-0067/23/3/1750
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  • Departament de Ciència i Enginyeria de Materials - Articles de revista [544]
  • BBT - Grup de recerca en Biomaterials, Biomecànica i Enginyeria de Teixits - Articles de revista [387]
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