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Osteogenic Properties of 3D-Printed Silica-Carbon-Calcite Composite Scaffolds: Novel Approach for Personalized Bone Tissue Regeneration

机译:3D印刷二氧化硅 - 碳结石复合支架的成骨特性:个性化骨组织再生的新方法

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摘要

Carbon enriched bioceramic (C-Bio) scaffolds have recently shown exceptional results in terms of their biological and mechanical properties. The present study aims at assessing the ability of the C-Bio scaffolds to affect the commitment of canine adipose-derived mesenchymal stem cells (cAD-MSCs) and investigating the influence of carbon on cell proliferation and osteogenic differentiation of cAD-MSCs in vitro. The commitment of cAD-MSCs to an osteoblastic phenotype has been evaluated by expression of several osteogenic markers using real-time PCR. Biocompatibility analyses through 3-(4,5-dimethyl- thiazol-2-yl)-2,5-diphenyl tetrazolium bromide (MTT), lactate dehydrogenase (LDH) activity, hemolysis assay, and Ames test demonstrated excellent biocompatibility of both materials. A significant increase in the extracellular alkaline phosphatase (ALP) activity and expression of runt-related transcription factor (RUNX), ALP, osterix (OSX), and receptor activator of nuclear factor kappa-Β ligand (RANKL) genes was observed in C-Bio scaffolds compared to those without carbon (Bio). Scanning electron microscopy (SEM) demonstrated excellent cell attachment on both material surfaces; however, the cellular layer on C-Bio fibers exhibited an apparent secretome activity. Based on our findings, graphene can improve cell adhesion, growth, and osteogenic differentiation of cAD-MSCs in vitro. This study proposed carbon as an additive for a novel three-dimensional (3D)-printable biocompatible scaffold which could become the key structural material for bone tissue reconstruction.
机译:碳富集的生物陶瓷(C-Bio)支架最近在其生物和机械性能方面表现出卓越的结果。本研究旨在评估C-BIO支架影响犬脂肪衍生的间充质干细胞(CAD-MSC)的承诺的能力,并研究碳对体外CAD-MSCs对细胞增殖和骨质发生分化的影响。通过使用实时PCR表达几种成骨标志物,评估CAD-MSCs对骨细胞表型的承诺。生物相容性通过3-(4,5-二甲基 - 噻唑-2-基)-2,5-二苯基四唑溴铵(MTT),乳酸脱氢酶(LDH)活性,溶血测定和AMES测试证明了两种材料的优异生物相容性。在C-中观察到细胞外碱性磷酸酶(ALP)活性和runt相关转录因子(RUNX),ALP,Ostrix(OSX)和受体活化剂的核因子Kappa-β配体(RANKL)基因的受体激活剂的显着增加。与没有碳(生物)的人相比,生物脚手架。扫描电子显微镜(SEM)在两种材料表面上显示出优异的电池附着;然而,C-BIO纤维上的细胞层表现出明显的秘密活性。基于我们的研究结果,石墨烯可以改善体外CAD-MSCs的细胞粘附,生长和成骨分化。本研究提出了一种用于新型三维(3D)的添加剂的碳,其可成为可成为骨组织重建的关键结构材料。

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