羧甲基壳聚糖稳定的 AuNPs/ACP 纳米混合物在釉质白斑病变中的应用

Xiaohua Chen, Hengyu Liu, Qianqian Zhang, Xuehua Chen, Lihui Wang, Yanling Yu, Yuanping Hao
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摘要

酸性细菌生物膜相关的釉质白斑病(WSL)是早期龋病的标志之一,会导致牙齿硬组织脱矿和分解。因此,要有效预防和治疗牙釉质白斑病,必须抑制致龋细菌的活动,同时促进脱矿釉质的再矿化。无定形磷酸钙(ACP)具有生物活性,能释放大量的 Ca2+ 和 PO43-,有利于硬组织的再矿化。 然而,基于 ACP 的生物矿化技术由于缺乏抗菌特性而效果不佳。本文采用羧甲基壳聚糖(CMCS)作为还原剂和稳定剂,成功合成了具有抗生物膜和矿化特性的双功能纳米混合物 CMCS/AuNPs/ACP。AuNPs 的加入增强了抗菌活性,并参与调节羟基磷灰石(HAp)的形成。纳米杂化物对致癌细菌及其生物膜具有显著的破坏作用,并在细菌诱导的酸性条件下显示出杀菌活性。更重要的是,与氟化物和 CMCS/ACP 相比,这种纳米杂质在体外促进脱矿化珐琅质再矿化方面表现出卓越的效果。CMCS/AuNPs/ACP 纳米混合物不仅在微生物水平上逆转了致龋微环境,而且在微观结构上促进了珐琅质WSL的自我修复。本研究为将 CMCS/AuNPs/ACP 纳米杂化物作为一种潜在的双功能制剂用于临床治疗釉质 WSLs 提供了理论和实验依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Carboxymethyl chitosan stabilized AuNPs/ACP nanohybrids in enamel white spot lesions
Acidic bacterial biofilms-associated enamel white spot lesions (WSLs) are one of the hallmarks of early caries, causing demineralization and decomposition of dental hard tissues. Therefore, to effectively prevent and treat WSLs, it is important to inhibit the activity of cariogenic bacteria while promoting the remineralization of demineralized enamel. Amorphous calcium phosphate (ACP) favors hard tissue remineralization due to its biological activity and ability to release large amounts of Ca2+ and PO43-. However, ACP-based biomineralization technology is not effective due to its lack of antimicrobial properties. Here, carboxymethyl chitosan (CMCS) was employed as a reducing agent and stabilizer, and dual-functional nanohybrids CMCS/AuNPs/ACP with biofilm resistance and mineralization properties were successfully synthesized. The addition of AuNPs enhances the antimicrobial activity and participates in regulating the formation of hydroxyapatite (HAp). The nanohybrids exhibited significant destructive effects against cariogenic bacteria and their biofilms and showed bactericidal activity under bacteria-induced acidic conditions. More importantly, this nanohybrids showed superior results in promoting the remineralization of demineralized enamel, compared to fluoride and CMCS/ACP in vitro. The CMCS/AuNPs/ACP nanohybrids not only reverse the cariogenic microenvironment at the microbial level, but also promote self-repairing of enamel WSLs regarding the microstructure. The present work offers a theoretical and experimental basis for using the CMCS/AuNPs/ACP nanohybrids as a potential dual-functional agent for the clinical treatment of enamel WSLs.
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