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Implant Materials Generate Different Peri-implant Inflammatory Factors: Poly-ether-ether-ketone Promotes Fibrosis and Microtextured Titanium Promotes Osteogenic Factors

STUDY DESIGN. An in vitro study examining factors produced by human mesenchymal stem cells on spine implant materials. OBJECTIVE. The aim of this study was to examine whether the inflammatory microenvironment generated by cells on titanium-aluminum-vanadium (Ti-alloy, TiAlV) surfaces is affected by...

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Autores principales: Olivares-Navarrete, Rene, Hyzy, Sharon L., Slosar, Paul J., Schneider, Jennifer M., Schwartz, Zvi, Boyan, Barbara D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4363266/
https://www.ncbi.nlm.nih.gov/pubmed/25584952
http://dx.doi.org/10.1097/BRS.0000000000000778
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author Olivares-Navarrete, Rene
Hyzy, Sharon L.
Slosar, Paul J.
Schneider, Jennifer M.
Schwartz, Zvi
Boyan, Barbara D.
author_facet Olivares-Navarrete, Rene
Hyzy, Sharon L.
Slosar, Paul J.
Schneider, Jennifer M.
Schwartz, Zvi
Boyan, Barbara D.
author_sort Olivares-Navarrete, Rene
collection PubMed
description STUDY DESIGN. An in vitro study examining factors produced by human mesenchymal stem cells on spine implant materials. OBJECTIVE. The aim of this study was to examine whether the inflammatory microenvironment generated by cells on titanium-aluminum-vanadium (Ti-alloy, TiAlV) surfaces is affected by surface microtexture and whether it differs from that generated on poly-ether-ether-ketone (PEEK). SUMMARY OF BACKGROUND DATA. Histologically, implants fabricated from PEEK have a fibrous connective tissue surface interface whereas Ti-alloy implants demonstrate close approximation with surrounding bone. Ti-alloy surfaces with complex micron/submicron scale roughness promote osteoblastic differentiation and foster a specific cellular environment that favors bone formation whereas PEEK favors fibrous tissue formation. METHODS. Human mesenchymal stem cells were cultured on tissue culture polystyrene, PEEK, smooth TiAlV, or macro-/micro-/nano-textured rough TiAlV (mmnTiAlV) disks. Osteoblastic differentiation and secreted inflammatory interleukins were assessed after 7 days. Fold changes in mRNAs for inflammation, necrosis, DNA damage, or apoptosis with respect to tissue culture polystyrene were measured by low-density polymerase chain reaction array. Data were analyzed by analysis of variance, followed by Bonferroni's correction of Student's t-test. RESULTS. Cells on PEEK upregulated mRNAs for chemokine ligand-2, interleukin (IL) 1β, IL6, IL8, and tumor necrosis factor. Cells grown on the mmnTiAlV had an 8-fold reduction in mRNAs for toll-like receptor-4. Cells grown on mmnTiAlV had reduced levels of proinflammatory interleukins. Cells on PEEK had higher mRNAs for factors strongly associated with cell death/apoptosis, whereas cells on mmnTiAlV exhibited reduced cytokine factor levels. All results were significant (P < 0.05). CONCLUSION. These results suggest that fibrous tissue around PEEK implants may be due to several factors: reduced osteoblastic differentiation of progenitor cells and production of an inflammatory environment that favors cell death via apoptosis and necrosis. Ti alloy surfaces with complex macro/micro/nanoscale roughness promote osteoblastic differentiation and foster a specific cellular environment that favors bone formation. Level of Evidence: N/A
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spelling pubmed-43632662015-04-06 Implant Materials Generate Different Peri-implant Inflammatory Factors: Poly-ether-ether-ketone Promotes Fibrosis and Microtextured Titanium Promotes Osteogenic Factors Olivares-Navarrete, Rene Hyzy, Sharon L. Slosar, Paul J. Schneider, Jennifer M. Schwartz, Zvi Boyan, Barbara D. Spine (Phila Pa 1976) Epidemiology STUDY DESIGN. An in vitro study examining factors produced by human mesenchymal stem cells on spine implant materials. OBJECTIVE. The aim of this study was to examine whether the inflammatory microenvironment generated by cells on titanium-aluminum-vanadium (Ti-alloy, TiAlV) surfaces is affected by surface microtexture and whether it differs from that generated on poly-ether-ether-ketone (PEEK). SUMMARY OF BACKGROUND DATA. Histologically, implants fabricated from PEEK have a fibrous connective tissue surface interface whereas Ti-alloy implants demonstrate close approximation with surrounding bone. Ti-alloy surfaces with complex micron/submicron scale roughness promote osteoblastic differentiation and foster a specific cellular environment that favors bone formation whereas PEEK favors fibrous tissue formation. METHODS. Human mesenchymal stem cells were cultured on tissue culture polystyrene, PEEK, smooth TiAlV, or macro-/micro-/nano-textured rough TiAlV (mmnTiAlV) disks. Osteoblastic differentiation and secreted inflammatory interleukins were assessed after 7 days. Fold changes in mRNAs for inflammation, necrosis, DNA damage, or apoptosis with respect to tissue culture polystyrene were measured by low-density polymerase chain reaction array. Data were analyzed by analysis of variance, followed by Bonferroni's correction of Student's t-test. RESULTS. Cells on PEEK upregulated mRNAs for chemokine ligand-2, interleukin (IL) 1β, IL6, IL8, and tumor necrosis factor. Cells grown on the mmnTiAlV had an 8-fold reduction in mRNAs for toll-like receptor-4. Cells grown on mmnTiAlV had reduced levels of proinflammatory interleukins. Cells on PEEK had higher mRNAs for factors strongly associated with cell death/apoptosis, whereas cells on mmnTiAlV exhibited reduced cytokine factor levels. All results were significant (P < 0.05). CONCLUSION. These results suggest that fibrous tissue around PEEK implants may be due to several factors: reduced osteoblastic differentiation of progenitor cells and production of an inflammatory environment that favors cell death via apoptosis and necrosis. Ti alloy surfaces with complex macro/micro/nanoscale roughness promote osteoblastic differentiation and foster a specific cellular environment that favors bone formation. Level of Evidence: N/A Lippincott Williams & Wilkins 2015-03-15 2015-03-13 /pmc/articles/PMC4363266/ /pubmed/25584952 http://dx.doi.org/10.1097/BRS.0000000000000778 Text en © 2015 Wolters Kluwer Health, Inc. All rights reserved.
spellingShingle Epidemiology
Olivares-Navarrete, Rene
Hyzy, Sharon L.
Slosar, Paul J.
Schneider, Jennifer M.
Schwartz, Zvi
Boyan, Barbara D.
Implant Materials Generate Different Peri-implant Inflammatory Factors: Poly-ether-ether-ketone Promotes Fibrosis and Microtextured Titanium Promotes Osteogenic Factors
title Implant Materials Generate Different Peri-implant Inflammatory Factors: Poly-ether-ether-ketone Promotes Fibrosis and Microtextured Titanium Promotes Osteogenic Factors
title_full Implant Materials Generate Different Peri-implant Inflammatory Factors: Poly-ether-ether-ketone Promotes Fibrosis and Microtextured Titanium Promotes Osteogenic Factors
title_fullStr Implant Materials Generate Different Peri-implant Inflammatory Factors: Poly-ether-ether-ketone Promotes Fibrosis and Microtextured Titanium Promotes Osteogenic Factors
title_full_unstemmed Implant Materials Generate Different Peri-implant Inflammatory Factors: Poly-ether-ether-ketone Promotes Fibrosis and Microtextured Titanium Promotes Osteogenic Factors
title_short Implant Materials Generate Different Peri-implant Inflammatory Factors: Poly-ether-ether-ketone Promotes Fibrosis and Microtextured Titanium Promotes Osteogenic Factors
title_sort implant materials generate different peri-implant inflammatory factors: poly-ether-ether-ketone promotes fibrosis and microtextured titanium promotes osteogenic factors
topic Epidemiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4363266/
https://www.ncbi.nlm.nih.gov/pubmed/25584952
http://dx.doi.org/10.1097/BRS.0000000000000778
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