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3D Printed Gene-activated Octacalcium Phosphate Implants for Large Bone Defects Engineering

The aim of the study was the development of three-dimensional (3D) printed gene-activated implants based on octacalcium phosphate (OCP) and plasmid DNA encoding VEGFA. The first objective of the present work involved design and fabrication of gene-activated bone substitutes based on the OCP and plas...

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Autores principales: Bozo, Ilya Y., Deev, Roman V., Smirnov, Igor V., Fedotov, Alexander Yu., Popov, Vladimir K., Mironov, Anton V., Mironova, Olga A., Gerasimenko, Alexander Yu., Komlev, Vladimir S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Whioce Publishing Pte. Ltd. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7557339/
https://www.ncbi.nlm.nih.gov/pubmed/33088987
http://dx.doi.org/10.18063/ijb.v6i3.275
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author Bozo, Ilya Y.
Deev, Roman V.
Smirnov, Igor V.
Fedotov, Alexander Yu.
Popov, Vladimir K.
Mironov, Anton V.
Mironova, Olga A.
Gerasimenko, Alexander Yu.
Komlev, Vladimir S.
author_facet Bozo, Ilya Y.
Deev, Roman V.
Smirnov, Igor V.
Fedotov, Alexander Yu.
Popov, Vladimir K.
Mironov, Anton V.
Mironova, Olga A.
Gerasimenko, Alexander Yu.
Komlev, Vladimir S.
author_sort Bozo, Ilya Y.
collection PubMed
description The aim of the study was the development of three-dimensional (3D) printed gene-activated implants based on octacalcium phosphate (OCP) and plasmid DNA encoding VEGFA. The first objective of the present work involved design and fabrication of gene-activated bone substitutes based on the OCP and plasmid DNA with VEGFA gene using 3D printing approach of ceramic constructs, providing the control of its architectonics compliance to the initial digital models. X-ray diffraction, scanning electron microscopy (SEM), Fourier transform infrared spectroscopy, and compressive strength analyses were applied to investigate the chemical composition, microstructure, and mechanical properties of the experimental samples. The biodegradation rate and the efficacy of plasmid DNA delivery in vivo were assessed during standard tests with subcutaneous implantation to rodents in the next stage. The final part of the study involved substitution of segmental tibia and mandibular defects in adult pigs with 3D printed gene-activated implants. Biodegradation, osteointegration, and effectiveness of a reparative osteogenesis were evaluated with computerized tomography, SEM, and a histological examination. The combination of gene therapy and 3D printed implants manifested the significant clinical potential for effective bone regeneration in large/critical size defect cases.
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spelling pubmed-75573392020-10-20 3D Printed Gene-activated Octacalcium Phosphate Implants for Large Bone Defects Engineering Bozo, Ilya Y. Deev, Roman V. Smirnov, Igor V. Fedotov, Alexander Yu. Popov, Vladimir K. Mironov, Anton V. Mironova, Olga A. Gerasimenko, Alexander Yu. Komlev, Vladimir S. Int J Bioprint Original Article The aim of the study was the development of three-dimensional (3D) printed gene-activated implants based on octacalcium phosphate (OCP) and plasmid DNA encoding VEGFA. The first objective of the present work involved design and fabrication of gene-activated bone substitutes based on the OCP and plasmid DNA with VEGFA gene using 3D printing approach of ceramic constructs, providing the control of its architectonics compliance to the initial digital models. X-ray diffraction, scanning electron microscopy (SEM), Fourier transform infrared spectroscopy, and compressive strength analyses were applied to investigate the chemical composition, microstructure, and mechanical properties of the experimental samples. The biodegradation rate and the efficacy of plasmid DNA delivery in vivo were assessed during standard tests with subcutaneous implantation to rodents in the next stage. The final part of the study involved substitution of segmental tibia and mandibular defects in adult pigs with 3D printed gene-activated implants. Biodegradation, osteointegration, and effectiveness of a reparative osteogenesis were evaluated with computerized tomography, SEM, and a histological examination. The combination of gene therapy and 3D printed implants manifested the significant clinical potential for effective bone regeneration in large/critical size defect cases. Whioce Publishing Pte. Ltd. 2020-06-03 /pmc/articles/PMC7557339/ /pubmed/33088987 http://dx.doi.org/10.18063/ijb.v6i3.275 Text en Copyright: © 2020 Bozo, et al. http://creativecommons.org/licenses/cc-by-nc/4.0/ This is an open-access article distributed under the terms of the Attribution-NonCommercial 4.0 International 4.0 (CC BY-NC 4.0), which permits all non-commercial use, distribution, and reproduction in any medium provided the original work is properly cited.
spellingShingle Original Article
Bozo, Ilya Y.
Deev, Roman V.
Smirnov, Igor V.
Fedotov, Alexander Yu.
Popov, Vladimir K.
Mironov, Anton V.
Mironova, Olga A.
Gerasimenko, Alexander Yu.
Komlev, Vladimir S.
3D Printed Gene-activated Octacalcium Phosphate Implants for Large Bone Defects Engineering
title 3D Printed Gene-activated Octacalcium Phosphate Implants for Large Bone Defects Engineering
title_full 3D Printed Gene-activated Octacalcium Phosphate Implants for Large Bone Defects Engineering
title_fullStr 3D Printed Gene-activated Octacalcium Phosphate Implants for Large Bone Defects Engineering
title_full_unstemmed 3D Printed Gene-activated Octacalcium Phosphate Implants for Large Bone Defects Engineering
title_short 3D Printed Gene-activated Octacalcium Phosphate Implants for Large Bone Defects Engineering
title_sort 3d printed gene-activated octacalcium phosphate implants for large bone defects engineering
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7557339/
https://www.ncbi.nlm.nih.gov/pubmed/33088987
http://dx.doi.org/10.18063/ijb.v6i3.275
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