Department of Restorative Dentistry- Dental Materials Area, Piracicaba Dental School, State University of Campinas - UNICAMP, S.P, Brazil.
Department of Mechanical and Materials Engineering, Military Institute of Engineering- IME, Rio de Janeiro, Brazil.
J Biomater Appl. 2023 Apr;37(9):1605-1616. doi: 10.1177/08853282231155570. Epub 2023 Feb 5.
The aim of this paper was to synthesize and characterize polymeric scaffolds of Chitosan/Xanthan/Hydroxyapatite-Graphene Oxide nanocomposite associated with mesenchymal stem cells for regenerative dentistry application. The chitosan-xanthan gum (CX) complex was associated with Hydroxyapatite-Graphene Oxide (HA-GO) nanocomposite with different Graphene Oxides (GO) concentration (0.5 wt%; 1.0 wt%; 1.5 wt%). The scaffolds characterizations were performed by X-ray diffraction (XRD), Fourier Transform Infrared Spectroscopy (FTIR), Raman spectroscopy, thermogravimetric analysis (TGA), scanning electron microscopy (SEM) and contact angle. The mechanical properties were assessed by compressive strength. The bioactivity and the cytotoxicity test (MTT test) were analyzed as well. The data was submitted to the Normality and Homogeneity tests. Indirect Cytotoxicity assay data was statistically analyzed by ANOVA two-way, followed by Tukey's test (α = 0.05). Compressive strength and contact angle data were statistically analyzed by one-way ANOVA, followed by Tukey's test (α = 0.05). XRD showed the presence of Hydroxyapatite (HA) peaks in the structures CXHA, CXHAGO 0.5%,1.0% and 1.5%. FT-IR showed amino and carboxylic bands characteristic of CX. Raman spectroscopy analysis evidenced a high quality of the GO. In the TGA it was observed the mass loss associated with the CX degradation by depolymerization. SEM analysis showed pores in the scaffolds, in addition to HA incorporated and adhered to the polymer. Contact angle test showed that scaffolds have a hydrophilic characteristic, with the CX group the highest contact angle and CXHA the lowest ( < 0.05). 1.0 wt% GO significantly increased the compressive strength compared to other compositions. In the bioactivity test, the apatite crystals precipitation on the scaffold surface was observed. MTT test showed high cell viability in CXHAGO 1.0% and CXHAGO 1.5% scaffold. CXHAGO scaffolds are promising for regenerative dentistry application because they have morphological characteristics, mechanical and biological properties favorable for the regeneration process.
本文旨在合成并表征壳聚糖/黄原胶/羟基磷灰石-氧化石墨烯纳米复合材料的聚合物支架,并与间充质干细胞联合用于再生牙科应用。壳聚糖-黄原胶(CX)复合物与不同氧化石墨烯(GO)浓度(0.5wt%; 1.0wt%; 1.5wt%)的羟基磷灰石-氧化石墨烯(HA-GO)纳米复合材料相关联。通过 X 射线衍射(XRD)、傅里叶变换红外光谱(FTIR)、拉曼光谱、热重分析(TGA)、扫描电子显微镜(SEM)和接触角对支架进行了表征。通过抗压强度评估了机械性能。还分析了生物活性和细胞毒性试验(MTT 试验)。数据提交给正态性和同质性检验。通过方差分析双向,然后进行 Tukey 检验(α=0.05)对间接细胞毒性试验数据进行了统计学分析。通过单向方差分析,然后进行 Tukey 检验(α=0.05)对压缩强度和接触角数据进行了统计学分析。XRD 显示结构 CXHA、CXHAGO 0.5%、1.0%和 1.5%中存在羟基磷灰石(HA)峰。FT-IR 显示了 CX 的氨基和羧基特征带。拉曼光谱分析证明 GO 的质量很高。在 TGA 中观察到与 CX 降解相关的质量损失,通过解聚。SEM 分析显示支架上有孔,此外还有 HA 掺入并附着在聚合物上。接触角试验表明支架具有亲水特性,其中 CX 组的接触角最高,CXHA 的接触角最低(<0.05)。与其他成分相比,1.0wt%GO 显著提高了抗压强度。在生物活性试验中,观察到支架表面有磷灰石晶体沉淀。MTT 试验表明 CXHAGO 1.0%和 CXHAGO 1.5%支架的细胞存活率很高。CXHAGO 支架具有形态特征、机械性能和生物性能,有利于再生过程,有望用于再生牙科应用。