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Co(0.5)Mn(0.5)Fe(2)O(4)@PMMA Nanoparticles Promotes Preosteoblast Differentiation through Activation of OPN-BGLAP2-DMP1 Axis and Modulates Osteoclastogenesis under Magnetic Field Conditions

The prevalence of osteoporosis in recent years is rapidly increasing. For this reason, there is an urgent need to develop bone substitutes and composites able to enhance the regeneration of damaged tissues which meet the patients’ needs. In the case of osteoporosis, personalized, tailored materials...

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Autores principales: Marycz, Krzysztof, Turlej, Eliza, Kornicka-Garbowska, Katarzyna, Zachanowicz, Emilia, Tomaszewska, Anna, Kulpa-Greszta, Magdalena, Pązik, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8434396/
https://www.ncbi.nlm.nih.gov/pubmed/34501099
http://dx.doi.org/10.3390/ma14175010
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author Marycz, Krzysztof
Turlej, Eliza
Kornicka-Garbowska, Katarzyna
Zachanowicz, Emilia
Tomaszewska, Anna
Kulpa-Greszta, Magdalena
Pązik, Robert
author_facet Marycz, Krzysztof
Turlej, Eliza
Kornicka-Garbowska, Katarzyna
Zachanowicz, Emilia
Tomaszewska, Anna
Kulpa-Greszta, Magdalena
Pązik, Robert
author_sort Marycz, Krzysztof
collection PubMed
description The prevalence of osteoporosis in recent years is rapidly increasing. For this reason, there is an urgent need to develop bone substitutes and composites able to enhance the regeneration of damaged tissues which meet the patients’ needs. In the case of osteoporosis, personalized, tailored materials should enhance the impaired healing process and restore the balance between osteoblast and osteoclast activity. In this study, we fabricated a novel hybrid material (Co(0.5)Mn(0).(5)Fe(2)O(4)@PMMA) and investigated its properties and potential utility in the treatment of osteoporosis. The material structure was investigated with X-ray diffraction, Fourier-transform infrared spectroscopy with attenuated total reflectance, FTIR-ATR, transmission electron microscopy (TEM), scanning electron microscopy (SEM) and selected area (electron) diffraction (SAED). Then, the biological properties of the material were investigated with pre-osteoblast (MC3T3-E1) and pre-osteoclasts (4B12) and in the presence or absence of magnetic field, using RT-qPCR and RT-PCR. During the studies, we established that the impact of the new hybrids on the pre-osteoblasts and pre-osteoclasts could be modified by the presence of the magnetic field, which could influence on the PMMA covered by magnetic nanoparticles impact on the expression of genes related to the apoptosis, cells differentiation, adhesion, microRNAs or regulating the inflammatory processes in both murine cell lines. In summary, the Co(0.5)Mn(0).(5)Fe(2)O(4)@PMMA hybrid may represent a novel approach for material optimization and may be a way forward in the fabrication of scaffolds with enhanced bioactivity that benefits osteoporotic patients.
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spelling pubmed-84343962021-09-12 Co(0.5)Mn(0.5)Fe(2)O(4)@PMMA Nanoparticles Promotes Preosteoblast Differentiation through Activation of OPN-BGLAP2-DMP1 Axis and Modulates Osteoclastogenesis under Magnetic Field Conditions Marycz, Krzysztof Turlej, Eliza Kornicka-Garbowska, Katarzyna Zachanowicz, Emilia Tomaszewska, Anna Kulpa-Greszta, Magdalena Pązik, Robert Materials (Basel) Article The prevalence of osteoporosis in recent years is rapidly increasing. For this reason, there is an urgent need to develop bone substitutes and composites able to enhance the regeneration of damaged tissues which meet the patients’ needs. In the case of osteoporosis, personalized, tailored materials should enhance the impaired healing process and restore the balance between osteoblast and osteoclast activity. In this study, we fabricated a novel hybrid material (Co(0.5)Mn(0).(5)Fe(2)O(4)@PMMA) and investigated its properties and potential utility in the treatment of osteoporosis. The material structure was investigated with X-ray diffraction, Fourier-transform infrared spectroscopy with attenuated total reflectance, FTIR-ATR, transmission electron microscopy (TEM), scanning electron microscopy (SEM) and selected area (electron) diffraction (SAED). Then, the biological properties of the material were investigated with pre-osteoblast (MC3T3-E1) and pre-osteoclasts (4B12) and in the presence or absence of magnetic field, using RT-qPCR and RT-PCR. During the studies, we established that the impact of the new hybrids on the pre-osteoblasts and pre-osteoclasts could be modified by the presence of the magnetic field, which could influence on the PMMA covered by magnetic nanoparticles impact on the expression of genes related to the apoptosis, cells differentiation, adhesion, microRNAs or regulating the inflammatory processes in both murine cell lines. In summary, the Co(0.5)Mn(0).(5)Fe(2)O(4)@PMMA hybrid may represent a novel approach for material optimization and may be a way forward in the fabrication of scaffolds with enhanced bioactivity that benefits osteoporotic patients. MDPI 2021-09-02 /pmc/articles/PMC8434396/ /pubmed/34501099 http://dx.doi.org/10.3390/ma14175010 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Marycz, Krzysztof
Turlej, Eliza
Kornicka-Garbowska, Katarzyna
Zachanowicz, Emilia
Tomaszewska, Anna
Kulpa-Greszta, Magdalena
Pązik, Robert
Co(0.5)Mn(0.5)Fe(2)O(4)@PMMA Nanoparticles Promotes Preosteoblast Differentiation through Activation of OPN-BGLAP2-DMP1 Axis and Modulates Osteoclastogenesis under Magnetic Field Conditions
title Co(0.5)Mn(0.5)Fe(2)O(4)@PMMA Nanoparticles Promotes Preosteoblast Differentiation through Activation of OPN-BGLAP2-DMP1 Axis and Modulates Osteoclastogenesis under Magnetic Field Conditions
title_full Co(0.5)Mn(0.5)Fe(2)O(4)@PMMA Nanoparticles Promotes Preosteoblast Differentiation through Activation of OPN-BGLAP2-DMP1 Axis and Modulates Osteoclastogenesis under Magnetic Field Conditions
title_fullStr Co(0.5)Mn(0.5)Fe(2)O(4)@PMMA Nanoparticles Promotes Preosteoblast Differentiation through Activation of OPN-BGLAP2-DMP1 Axis and Modulates Osteoclastogenesis under Magnetic Field Conditions
title_full_unstemmed Co(0.5)Mn(0.5)Fe(2)O(4)@PMMA Nanoparticles Promotes Preosteoblast Differentiation through Activation of OPN-BGLAP2-DMP1 Axis and Modulates Osteoclastogenesis under Magnetic Field Conditions
title_short Co(0.5)Mn(0.5)Fe(2)O(4)@PMMA Nanoparticles Promotes Preosteoblast Differentiation through Activation of OPN-BGLAP2-DMP1 Axis and Modulates Osteoclastogenesis under Magnetic Field Conditions
title_sort co(0.5)mn(0.5)fe(2)o(4)@pmma nanoparticles promotes preosteoblast differentiation through activation of opn-bglap2-dmp1 axis and modulates osteoclastogenesis under magnetic field conditions
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8434396/
https://www.ncbi.nlm.nih.gov/pubmed/34501099
http://dx.doi.org/10.3390/ma14175010
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