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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >Bioactive mesoporous calcium-silicate nanoparticles with excellent mineralization ability, osteostimulation, drug-delivery and antibacterial properties for filling apex roots of teeth
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Bioactive mesoporous calcium-silicate nanoparticles with excellent mineralization ability, osteostimulation, drug-delivery and antibacterial properties for filling apex roots of teeth

机译:具有出色的矿化能力,骨刺激,药物传递和抗菌特性的生物活性介孔硅酸钙纳米颗粒,可填充牙齿的根尖

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摘要

Bioactive materials are playing an important role in sealing apical root canals of teeth, inducing bone/ cementum tissue regeneration and inhibiting bacterial viability. Conventional Ca(OH)2 materials have limitations for filling apical root canals of teeth due to their low mineralization ability and potential cytotoxicity. The aim of this study is to prepare bioactive mesoporous calcium-silicate (MCS) nanoparticles for the potential application of filling an apical root canal of a tooth. The mesoporous structure, specific surface area, pore volume and morphology of MCS particles were characterized. The apatite-mineralization ability, in vitro osteogenesis, drug delivery and antibacterial properties were further investigated. The results showed that MCS nanoparticles (around 100 nm) with high specific surface area and pore volume were successfully prepared by a facile template method. The prepared MCS could be easily injected to fill the apical root canal of a tooth. MCS nanoparticles induced apatite-mineralization in DMEM solution, did not show cytotoxicity, and their ionic products could stimulate the proliferation of periodontal ligament cells (PDLCs). In contrast, conventional Ca(OH)2 materials did not induce mineralization and showed significant cytotoxic effects on PDLCs. Furthermore, MCS extracts at low concentrations (12.5 and 25 mg mL~(-1)) induced higher ALP activity of PDLCs than those at high concentrations (50 and 100 mg mL~(-1)). In addition, MCS extracts significantly stimulated osteogenic gene expression (OPN, ALP and OCN) of PDLCs compared to a blank control, indicating the excellent osteostimulation property of MCS. MCS nanoparticles could be used for loading the antibiotic ampicillin due to their mesoporous microstructures, and the loaded ampicillin in MCS nanoparticles could be released with a slow and sustained release profile. Moreover, it was found that pure MCS nanoparticles revealed antibacterial effects, while the delivery of ampicillin from MCS nanoparticles further inhibited bacterial viability. Therefore, the results suggest that MCS nanoparticles are an advanced biomaterial with multiple functions for filling the apical root canal of a tooth due to their unique nanostructure, injectability, apatite-mineralization, osteostimulation, drug-delivery and antibacterial properties.
机译:生物活性材料在密封牙齿的根尖根管,诱导骨骼/牙骨质组织再生和抑制细菌生存能力方面发挥着重要作用。常规的Ca(OH)2材料由于其低矿化能力和潜在的细胞毒性而在填充牙根管方面具有局限性。这项研究的目的是制备具有生物活性的介孔硅酸钙(MCS)纳米颗粒,用于填充牙根尖的潜在应用。表征了MCS颗粒的介孔结构,比表面积,孔体积和形貌。进一步研究了磷灰石矿化能力,体外成骨作用,药物传递和抗菌性能。结果表明,通过简便的模板法成功制备了具有高比表面积和孔体积的MCS纳米粒子(约100 nm)。准备好的MCS可以很容易地注射以填充牙齿的根尖根管。 MCS纳米颗粒在DMEM溶液中诱导磷灰石矿化,没有细胞毒性,其离子产物可以刺激牙周膜细胞(PDLC)的增殖。相反,常规的Ca(OH)2材料不会诱导矿化,并且对PDLC表现出明显的细胞毒性作用。此外,低浓度(12.5和25 mg mL〜(-1))的MCS提取物诱导的PDLC的ALP活性高于高浓度(50和100 mg mL〜(-1))的PDLC。此外,与空白对照相比,MCS提取物可显着刺激PDLC的成骨基因表达(OPN,ALP和OCN),表明MCS具有出色的骨刺激特性。由于它们的中孔微结构,MCS纳米颗粒可用于装载抗生素氨苄青霉素,而MCS纳米颗粒中装载的氨苄青霉素可以缓慢且持续的释放方式释放。而且,发现纯的MCS纳米颗粒显示出抗菌作用,而从MCS纳米颗粒递送氨苄青霉素进一步抑制了细菌的生存力。因此,结果表明,由于其独特的纳米结构,可注射性,磷灰石矿化,骨刺激,药物传递和抗菌特性,MCS纳米颗粒是一种具有多种功能的先进生物材料,可填充牙齿的根尖根管。

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