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通过激光辅助仿生工艺快速且具有区域选择性地在牙齿表面涂覆含氟磷灰石层,实现牙齿表面功能化。

Rapid and area-specific coating of fluoride-incorporated apatite layers by a laser-assisted biomimetic process for tooth surface functionalization.

机构信息

Nanomaterials Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Central 5, 1-1-1 Higashi, Tsukuba, Ibaraki 305-8565, Japan.

Nanomaterials Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Central 5, 1-1-1 Higashi, Tsukuba, Ibaraki 305-8565, Japan.

出版信息

Acta Biomater. 2018 Oct 1;79:148-157. doi: 10.1016/j.actbio.2018.08.025. Epub 2018 Aug 25.

Abstract

UNLABELLED

Surface functionalization of teeth with fluoride-incorporated apatite layers displays great potential in treatments and prevention of dental disorders. In this study, we used a sintered hydroxyapatite (sHA) substrate as a model material of teeth, and established a rapid and area-specific coating technique of fluoride-incorporated apatite layers by using a laser-assisted biomimetic (LAB) process. In this technique, a sHA substrate was irradiated on the surface with a Nd:YAG pulsed UV laser for 30 min in supersaturated calcium phosphate (CaP) solutions with various fluoride concentrations. The fluoride concentration in the CaP solution was varied to control morphology, crystalline structure, and fluoride content of the resulting layers. Without fluoride in the CaP solution, an octacalcium phosphate (OCP) layer with a flake-like structure was formed on the laser-irradiated surface of the substrate. The addition of fluoride (1000 µM and 3000 µM) to the CaP solution led to the formation of fluoride-incorporated apatite layers with an enamel-like needle-like nanostructure. The fluoride-incorporated apatite layers adhered firmly to the sHA surface and reduced acid dissolution of the sHA substrate by acting as a protective covering. Additionally, the layers released fluoride ions for more than 24 h, and exhibited antibacterial activity relative to a caries-causing bacterium, namely Streptococcus mutans. Thus, our LAB process can potentially act as a new tool for functionalization of tooth surfaces.

STATEMENT OF SIGNIFICANCE

We used a sintered hydroxyapatite (sHA) substrate as a model material of teeth, and established a rapid and area-specific coating technique of fluoride-incorporated apatite layers on the sHA surface by using our laser-assisted biomimetic (LAB) process. In this process, pulsed laser was utilized to accelerate seeded crystal growth in supersaturated calcium phosphate solutions supplemented with NaF. The thus-fabricated fluoride-incorporated apatite layers consisted of enamel-like needle-like nanocrystals with c-axis orientation. These fluoride-incorporated apatite layers adhered firmly to the sHA surface, reduced acid dissolution of the sHA substrate by acting as a protective covering, and exhibited antibacterial activity against Streptococcus mutans through the fluoride release. Thus, our LAB process can potentially act as a new tool for functionalization of tooth surfaces.

摘要

未加说明

用含氟磷灰石层对牙齿进行表面功能化在牙齿疾病的治疗和预防方面显示出巨大的潜力。在本研究中,我们使用烧结羟磷灰石(sHA)作为牙齿模型材料,通过激光辅助仿生(LAB)工艺建立了一种快速且具有特定区域的含氟磷灰石层涂覆技术。在该技术中,将 sHA 基底在过饱和的磷酸钙(CaP)溶液中用 Nd:YAG 脉冲紫外激光照射表面 30 分钟,该溶液中氟化物的浓度不同以控制所得层的形态、晶体结构和氟化物含量。在 CaP 溶液中不含氟化物的情况下,在基底激光辐照表面上形成具有薄片状结构的八钙磷酸盐(OCP)层。向 CaP 溶液中添加氟化物(1000µM 和 3000µM),导致形成具有类似釉质的针状纳米结构的含氟磷灰石层。含氟磷灰石层牢固地附着在 sHA 表面上,并通过充当保护层来减少 sHA 基底的酸溶解。此外,这些层在超过 24 小时内释放氟化物离子,并表现出相对于致龋细菌变形链球菌的抗菌活性。因此,我们的 LAB 工艺可能成为牙齿表面功能化的新工具。

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