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仿生制造和纤维状纳米管的应用。

Biomimetic fabrication and application of fibrous-like nanotubes.

机构信息

Department of Prosthodontics, The Affiliated Hospital of Stomatology, School of Stomatology, Zhejiang University School of Medicine, Yan'an Road 395, Hangzhou, Zhejiang 310006, China; Key Laboratory of Oral Biomedical Research of Zhejiang Province, Hangzhou, Zhejiang 310006, China.

Department of Prosthodontics, The Affiliated Hospital of Stomatology, School of Stomatology, Zhejiang University School of Medicine, Yan'an Road 395, Hangzhou, Zhejiang 310006, China; Key Laboratory of Oral Biomedical Research of Zhejiang Province, Hangzhou, Zhejiang 310006, China.

出版信息

Life Sci. 2021 Apr 1;270:119126. doi: 10.1016/j.lfs.2021.119126. Epub 2021 Jan 26.

Abstract

AIMS

To investigate the biomimetic fabrication of fibrous-like organic-inorganic hybrid structures via a simple bottom-up approach, viz. self-assembly of simple molecules, and apply fibrous-like composites as a novel primer to improve dentin bond strengths of self-etch adhesives.

MATERIALS AND METHODS

The resultants of commercial amorphous calcium phosphate (ACP) nanoparticles and 10-methacryloyloxydecyl dihydrogen phosphate (MDP) ethanol-aqueous solution were analyzed by TEM, SEM, XRD, DLS and AFM. The acid and alkali resistance of abovementioned self-assembled composites were analyzed with TEM. Micro-tensile bond strengths (MTBS) tests were performed after polished dentin surfaces were pretreated with self-assembled composites. The pretreated dentin surfaces and dentin-resin interfaces were characterized by SEM/TEM.

KEY FINDINGS

ACP nanoparticles in MDP solution could self-assemble into fibrous-like nanotube structures in 8 nm diameter. Self-assembly and self-proliferation process went from ACP nanoparticles, dissolved ACP nanoparticles (less than 50 nm), twig-like structures and fibrous-like nanotubes to cellular networks. The fibrous-like nanotubes were only detected when the amount of ACP in reaction system were more than 0.01 g. The more ACP interacted with MDP, the more fibrous-like nanotubes were formed. After the dentin surfaces were treated with fibrous-like nanotube composites, MTBS could be significantly improved. Moreover, the fibrous-like nanotube structures could be resistant to acidic challenge, and were stable at least for 3 months.

SIGNIFICANCE

The fibrous-like nanotube structures could be self-assembled via a bottom-up approach at certain ratio of MDP and commercial ACP nanoparticles. The application of fibrous-like nanotube composites as a novel primer prior to self-etch adhesives greatly improved dentin bond strengths.

摘要

目的

通过简单的自下而上的方法,即简单分子的自组装,研究纤维状有机-无机杂化结构的仿生制备,并将纤维状复合材料用作新型底漆,以提高自酸蚀粘结剂的牙本质粘结强度。

材料与方法

用 TEM、SEM、XRD、DLS 和 AFM 分析商业无定形磷酸钙 (ACP) 纳米粒子和 10-甲氧基丙烯酰氧癸基二氢磷酸酯 (MDP) 乙醇-水溶液的产物。用 TEM 分析上述自组装复合材料的耐酸碱性。用自组装复合材料预处理抛光牙本质表面后进行微拉伸粘结强度 (MTBS) 测试。用 SEM/TEM 对预处理牙本质表面和牙本质-树脂界面进行了表征。

主要发现

MDP 溶液中的 ACP 纳米颗粒可自组装成 8nm 直径的纤维状纳米管结构。自组装和自增殖过程从 ACP 纳米颗粒、溶解的 ACP 纳米颗粒(小于 50nm)、小枝状结构和纤维状纳米管到细胞网络进行。只有当反应体系中 ACP 的量大于 0.01g 时,才能检测到纤维状纳米管。ACP 与 MDP 相互作用越多,形成的纤维状纳米管越多。用纤维状纳米管复合材料处理牙本质表面后,MTBS 显著提高。此外,纤维状纳米管结构能够抵抗酸性挑战,至少在 3 个月内保持稳定。

意义

在 MDP 和商业 ACP 纳米粒子的一定比例下,可以通过自下而上的方法自组装纤维状纳米管结构。在自酸蚀粘结剂之前,将纤维状纳米管复合材料用作新型底漆,可显著提高牙本质粘结强度。

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