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Oriented and Ordered Biomimetic Remineralization of the Surface of Demineralized Dental Enamel Using HAP@ACP Nanoparticles Guided by Glycine

机译:使用甘氨酸引导的HAP @ ACP纳米粒子定向和有序仿生再矿化牙釉质的表面

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摘要

Achieving oriented and ordered remineralization on the surface of demineralized dental enamel, thereby restoring the satisfactory mechanical properties approaching those of sound enamel, is still a challenge for dentists. To mimic the natural biomineralization approach for enamel remineralization, the biological process of enamel development proteins, such as amelogenin, was simulated in this study. In this work, carboxymethyl chitosan (CMC) conjugated with alendronate (ALN) was applied to stabilize amorphous calcium phosphate (ACP) to form CMC/ACP nanoparticles. Sodium hypochlorite (NaClO) functioned as the protease which decompose amelogenin in vivo to degrade the CMC-ALN matrix and generate HAP@ACP core-shell nanoparticles. Finally, when guided by 10 mM glycine (Gly), HAP@ACP nanoparticles can arrange orderly and subsequently transform from an amorphous phase to well-ordered rod-like apatite crystals to achieve oriented and ordered biomimetic remineralization on acid-etched enamel surfaces. This biomimetic remineralization process is achieved through the oriented attachment (OA) of nanoparticles based on non-classical crystallization theory. These results indicate that finding and developing analogues of natural proteins such as amelogenin involved in the biomineralization by natural macromolecular polymers and imitating the process of biomineralization would be an effective strategy for enamel remineralization. Furthermore, this method represents a promising method for the management of early caries in minimal invasive dentistry (MID).
机译:在脱矿的牙釉质的表面上实现定向的和有序的再矿化,从而使令人满意的机械性能恢复到接近搪瓷的机械性能,对于牙医来说仍然是一个挑战。为了模仿牙釉质再矿化的自然生物矿化方法,本研究模拟了牙釉质发育蛋白(例如牙釉蛋白)的生物学过程。在这项工作中,与阿仑膦酸(ALN)共轭的羧甲基壳聚糖(CMC)用于稳定无定形磷酸钙(ACP)以形成CMC / ACP纳米颗粒。次氯酸钠(NaClO)充当蛋白酶,可在体内分解牙釉蛋白,从而降解CMC-ALN基质并生成HAP @ ACP核壳纳米粒子。最后,在10μmM甘氨酸(Gly)的引导下,HAP @ ACP纳米颗粒可以有序排列,随后从非晶相转变为规则有序的棒状磷灰石晶体,从而在酸蚀的瓷釉表面实现定向有序的仿生再矿化。这种仿生再矿化过程是通过基于非经典结晶理论的纳米粒子定向附着(OA)来实现的。这些结果表明,发现和开发与天然大分子聚合物参与生物矿化并模拟生物矿化过程有关的天然蛋白质(例如牙釉蛋白)的类似物将是搪瓷再矿化的有效策略。此外,该方法代表了一种在微创牙科(MID)中管理早期龋齿的有前途的方法。

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