Cargando…

Native Osseous CaP Biomineral Coating on a Biomimetic Multi-Spiked Connecting Scaffold Prototype for Cementless Resurfacing Arthroplasty Achieved by Combined Electrochemical Deposition

The multi-spiked connecting scaffold (MSC-Scaffold) prototype with spikes mimicking the interdigitations of articular subchondral bone is an essential innovation in surgically initiated fixation of resurfacing arthroplasty (RA) endoprosthesis components. This paper aimed to present a determination o...

Descripción completa

Detalles Bibliográficos
Autores principales: Uklejewski, Ryszard, Winiecki, Mariusz, Krawczyk, Piotr, Tokłowicz, Renata
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6927003/
https://www.ncbi.nlm.nih.gov/pubmed/31810185
http://dx.doi.org/10.3390/ma12233994
_version_ 1783482224705798144
author Uklejewski, Ryszard
Winiecki, Mariusz
Krawczyk, Piotr
Tokłowicz, Renata
author_facet Uklejewski, Ryszard
Winiecki, Mariusz
Krawczyk, Piotr
Tokłowicz, Renata
author_sort Uklejewski, Ryszard
collection PubMed
description The multi-spiked connecting scaffold (MSC-Scaffold) prototype with spikes mimicking the interdigitations of articular subchondral bone is an essential innovation in surgically initiated fixation of resurfacing arthroplasty (RA) endoprosthesis components. This paper aimed to present a determination of the suitable range of conditions for the calcium phosphate (CaP) potentiostatic electrochemical deposition (ECD(V=const)) on the MSC-Scaffold prototype spikes to achieve a biomineral coating with a native Ca/P ratio. The CaP ECD(V=const) process on the MSC-Scaffold Ti4Al6V pre-prototypes was investigated for potential V(ECD)from −9 to −3 V, and followed by 48 h immersion in a simulated body fluid. An acid–alkaline pretreatment (AAT) was applied for a portion of the pre-prototypes. Scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDS) and X-ray diffraction (XRD) studies of deposited coatings together with coatings weight measurements were performed. Themost suitable V(ECD) range, from −5.25 to −4.75 V, was determined as the native biomineral Ca/P ratio of coatings was achieved. AAT increases the weight of deposited coatings (44% for V(ECD) = −5.25 V, 9% for V(ECD) = −5.00 V and 15% for V(ECD) = −4.75 V) and the coverage degree of the lateral spike surfaces (40% for V(ECD) = −5.25 V, 14% for V(ECD) = −5.00 V and 100% for V(ECD) = −4.75 V). XRD confirmed that the multiphasic CaP coating containing crystalline octacalcium phosphate is produced on the lateral surface of the spikes of the MSC-Scaffold. ECD(V=const) preceded by AAT prevents micro-cracks on the bone-contacting surfaces of the MSC-Scaffold prototype, increases its spikes’ lateral surface coverage, and results in the best modification effect at V(ECD) = −5.00 V. To conclude, the biomimetic MSC-Scaffold prototype with desired biomineral coating of native Ca/P ratio was obtained for cementless RA endoprostheses.
format Online
Article
Text
id pubmed-6927003
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-69270032019-12-24 Native Osseous CaP Biomineral Coating on a Biomimetic Multi-Spiked Connecting Scaffold Prototype for Cementless Resurfacing Arthroplasty Achieved by Combined Electrochemical Deposition Uklejewski, Ryszard Winiecki, Mariusz Krawczyk, Piotr Tokłowicz, Renata Materials (Basel) Article The multi-spiked connecting scaffold (MSC-Scaffold) prototype with spikes mimicking the interdigitations of articular subchondral bone is an essential innovation in surgically initiated fixation of resurfacing arthroplasty (RA) endoprosthesis components. This paper aimed to present a determination of the suitable range of conditions for the calcium phosphate (CaP) potentiostatic electrochemical deposition (ECD(V=const)) on the MSC-Scaffold prototype spikes to achieve a biomineral coating with a native Ca/P ratio. The CaP ECD(V=const) process on the MSC-Scaffold Ti4Al6V pre-prototypes was investigated for potential V(ECD)from −9 to −3 V, and followed by 48 h immersion in a simulated body fluid. An acid–alkaline pretreatment (AAT) was applied for a portion of the pre-prototypes. Scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDS) and X-ray diffraction (XRD) studies of deposited coatings together with coatings weight measurements were performed. Themost suitable V(ECD) range, from −5.25 to −4.75 V, was determined as the native biomineral Ca/P ratio of coatings was achieved. AAT increases the weight of deposited coatings (44% for V(ECD) = −5.25 V, 9% for V(ECD) = −5.00 V and 15% for V(ECD) = −4.75 V) and the coverage degree of the lateral spike surfaces (40% for V(ECD) = −5.25 V, 14% for V(ECD) = −5.00 V and 100% for V(ECD) = −4.75 V). XRD confirmed that the multiphasic CaP coating containing crystalline octacalcium phosphate is produced on the lateral surface of the spikes of the MSC-Scaffold. ECD(V=const) preceded by AAT prevents micro-cracks on the bone-contacting surfaces of the MSC-Scaffold prototype, increases its spikes’ lateral surface coverage, and results in the best modification effect at V(ECD) = −5.00 V. To conclude, the biomimetic MSC-Scaffold prototype with desired biomineral coating of native Ca/P ratio was obtained for cementless RA endoprostheses. MDPI 2019-12-02 /pmc/articles/PMC6927003/ /pubmed/31810185 http://dx.doi.org/10.3390/ma12233994 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Uklejewski, Ryszard
Winiecki, Mariusz
Krawczyk, Piotr
Tokłowicz, Renata
Native Osseous CaP Biomineral Coating on a Biomimetic Multi-Spiked Connecting Scaffold Prototype for Cementless Resurfacing Arthroplasty Achieved by Combined Electrochemical Deposition
title Native Osseous CaP Biomineral Coating on a Biomimetic Multi-Spiked Connecting Scaffold Prototype for Cementless Resurfacing Arthroplasty Achieved by Combined Electrochemical Deposition
title_full Native Osseous CaP Biomineral Coating on a Biomimetic Multi-Spiked Connecting Scaffold Prototype for Cementless Resurfacing Arthroplasty Achieved by Combined Electrochemical Deposition
title_fullStr Native Osseous CaP Biomineral Coating on a Biomimetic Multi-Spiked Connecting Scaffold Prototype for Cementless Resurfacing Arthroplasty Achieved by Combined Electrochemical Deposition
title_full_unstemmed Native Osseous CaP Biomineral Coating on a Biomimetic Multi-Spiked Connecting Scaffold Prototype for Cementless Resurfacing Arthroplasty Achieved by Combined Electrochemical Deposition
title_short Native Osseous CaP Biomineral Coating on a Biomimetic Multi-Spiked Connecting Scaffold Prototype for Cementless Resurfacing Arthroplasty Achieved by Combined Electrochemical Deposition
title_sort native osseous cap biomineral coating on a biomimetic multi-spiked connecting scaffold prototype for cementless resurfacing arthroplasty achieved by combined electrochemical deposition
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6927003/
https://www.ncbi.nlm.nih.gov/pubmed/31810185
http://dx.doi.org/10.3390/ma12233994
work_keys_str_mv AT uklejewskiryszard nativeosseouscapbiomineralcoatingonabiomimeticmultispikedconnectingscaffoldprototypeforcementlessresurfacingarthroplastyachievedbycombinedelectrochemicaldeposition
AT winieckimariusz nativeosseouscapbiomineralcoatingonabiomimeticmultispikedconnectingscaffoldprototypeforcementlessresurfacingarthroplastyachievedbycombinedelectrochemicaldeposition
AT krawczykpiotr nativeosseouscapbiomineralcoatingonabiomimeticmultispikedconnectingscaffoldprototypeforcementlessresurfacingarthroplastyachievedbycombinedelectrochemicaldeposition
AT tokłowiczrenata nativeosseouscapbiomineralcoatingonabiomimeticmultispikedconnectingscaffoldprototypeforcementlessresurfacingarthroplastyachievedbycombinedelectrochemicaldeposition