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用于牙髓复合体的基于硅酸钙的生物相容性光固化牙科材料。

Calcium Silicate-Based Biocompatible Light-Curable Dental Material for Dental Pulpal Complex.

作者信息

Park Sung-Min, Rhee Woo-Rim, Park Kyu-Min, Kim Yu-Jin, Ahn Junyong, Knowles Jonathan C, Kim Jongbin, Shin Jisun, Jang Tae-Su, Jun Soo-Kyung, Lee Hae-Hyoung, Lee Jung-Hwan

机构信息

Institute of Tissue Regeneration Engineering (ITREN), Dankook University, 119 Dandae-ro, Cheonan 31116, Chungcheongnam-do, Korea.

UCL Eastman-Korea Dental Medicine Innovation Centre, Dankook University, 119 Dandae-ro, Cheonan 31116, Chungcheongnam-do, Korea.

出版信息

Nanomaterials (Basel). 2021 Feb 27;11(3):596. doi: 10.3390/nano11030596.

Abstract

Dental caries causes tooth defects and clinical treatment is essential. To prevent further damage and protect healthy teeth, appropriate dental material is a need. However, the biocompatibility of dental material is needed to secure the oral environment. For this purpose, biocompatible materials were investigated for incorporated with dental capping material. Among them, nanomaterials are applied to dental materials to enhance their chemical, mechanical, and biological properties. This research aimed to study the physicochemical and mechanical properties and biocompatibility of a recently introduced light-curable mineral trioxide aggregate (MTA)-like material without bisphenol A-glycidyl methacrylate (Bis-GMA). To overcome the compromised mechanical properties in the absence of Bis-GMA, silica nanoparticles were synthesized and blended with a dental polymer for the formation of a nano-network. This material was compared with a conventional light-curable MTA-like material that contains Bis-GMA. Investigation of the physiochemical properties followed ISO 4049. Hydroxyl and calcium ion release from the materials was measured over 21 days. The Vickers hardness test and three-point flexural strength test were used to assess the mechanical properties. Specimens were immersed in solutions that mimicked human body plasma for seven days, and surface characteristics were analyzed. Biological properties were assessed by cytotoxicity and biomineralization tests. There was no significant difference between the tested materials with respect to overall physicochemical properties and released calcium ions. The newly produced material released more calcium ions on the third day, but 14 days later, the other material containing Bis-GMA released higher levels of calcium ions. The microhardness was reduced in a low pH environment, and differences between the specimens were observed. The flexural strength of the newly developed material was significantly higher, and different surface morphologies were detected. The recently produced extract showed higher cell viability at an extract concentration of 100%, while mineralization was clear at the conventional concentration of 25%. No significant changes in the physical properties between Bis-GMA incorporate material and nanoparticle incorporate materials.

摘要

龋齿会导致牙齿缺损,临床治疗至关重要。为防止进一步损害并保护健康牙齿,需要合适的牙科材料。然而,牙科材料的生物相容性对于确保口腔环境是必要的。为此,研究了与牙科盖髓材料结合的生物相容性材料。其中,纳米材料被应用于牙科材料以增强其化学、机械和生物学性能。本研究旨在研究一种最近引入的不含双酚A-甲基丙烯酸缩水甘油酯(Bis-GMA)的光固化类三氧化矿物凝聚体(MTA)材料的物理化学、机械性能和生物相容性。为克服在没有Bis-GMA时机械性能受损的问题,合成了二氧化硅纳米颗粒并与牙科聚合物混合以形成纳米网络。将该材料与含有Bis-GMA的传统光固化类MTA材料进行比较。按照ISO 4049对物理化学性能进行研究。在21天内测量材料中羟基和钙离子的释放量。采用维氏硬度测试和三点弯曲强度测试来评估机械性能。将标本浸泡在模拟人体血浆的溶液中7天,并分析表面特征。通过细胞毒性和生物矿化测试评估生物学性能。在整体物理化学性能和释放的钙离子方面,测试材料之间没有显著差异。新制备的材料在第三天释放出更多的钙离子,但14天后,另一种含有Bis-GMA的材料释放出更高水平的钙离子。在低pH环境中显微硬度降低,并且观察到标本之间存在差异。新开发材料的弯曲强度显著更高,并且检测到不同的表面形态。最近制备的提取物在提取物浓度为100%时显示出更高的细胞活力,而在传统浓度25%时矿化明显。含Bis-GMA材料和含纳米颗粒材料之间的物理性能没有显著变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/95a6/7997209/373c2ab66243/nanomaterials-11-00596-g001.jpg

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