双功能乳铁蛋白衍生的淀粉样蛋白涂层可防止细菌粘附,并通过深层再矿化作用堵塞牙管。

Bing Sun, Jiao Sun, Kai Zhang, Yanyun Pang, Cheng Zhi, Fan Li, Yangyang Ye, Jinglin Wang, Yongchun Liu, Jiayin Deng, Peng Yang, Xu Zhang
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引用次数: 0

摘要

牙本质过敏症(DH)表现为牙齿釉质被侵蚀后,牙本质小管(DTs)暴露而引起的剧烈和不舒服的疼痛。临床上常用的脱敏剂有其局限性,如渗透深度有限、再矿化速度慢、无抗菌特性等。为了缓解这些挑战,我们的研究受唾液获得膜(SAP)的启发,设计了一种乳铁蛋白衍生淀粉样纳米薄膜(PTLF 纳米薄膜)。这种纳米薄膜利用三(2-羧乙基)膦(TCEP)在生理条件下破坏乳铁蛋白(LF)的二硫键。PTLF 纳米薄膜能改变各种基质的表面,有效防止变异链球菌和嗜酸乳杆菌等致癌细菌的早期稳定粘附。同时,它还能快速、牢固地附着在脱矿的牙本质表面,通过简单的浸泡过程促进 HAP 的原位再矿化。这样就形成了类似天然牙本质的再矿化层,三天后牙本质小管的咬合深度超过 80 微米。体内和体外实验结果证实,PTLF 纳米薄膜具有良好的生物相容性,能够同时发挥抗菌作用和牙本质再矿化作用。因此,这种创新的双功能 PTLF 淀粉样蛋白涂层为治疗 DH 相关疾病提供了广阔的前景。意义说明:我们设计了一种简单、快速、廉价且易于加工的 PTLF 纳米薄膜,几乎适用于任何材料的表面或形状。PTLF 纳米薄膜能改变各种基质的表面,有效防止变异链球菌和嗜酸乳杆菌等致癌细菌的粘附。PTLF 纳米薄膜表面丰富的官能团可促进生物活性羟基磷灰石(HAP)的形成,并保持 HAP 再矿化界面的稳定性。
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A bifunctional lactoferrin-derived amyloid coating prevents bacterial adhesion and occludes dentinal tubules via deep remineralization.

Dentin hypersensitivity (DH) manifests as sharp and uncomfortable pain due to the exposure of dentinal tubules (DTs) following the erosion of tooth enamel. Desensitizing agents commonly used in clinical practice have limitations such as limited depth of penetration, slow remineralization and no antimicrobial properties. To alleviate these challenges, our study designed a lactoferrin-derived amyloid nanofilm (PTLF nanofilm) inspired by the saliva-acquired membrane (SAP). The nanofilm utilises Tris(2-carboxyethyl)phosphine (TCEP) to disrupt the disulfide bonds of lactoferrin (LF) under physiological conditions. The PTLF nanofilm modifies surfaces across various substrates and effectively prevents the early and stable adhesion of cariogenic bacteria, such as Streptococcus mutans and Lactobacillus acidophilus. Simultaneously, it adheres rapidly and securely to demineralized dentin surfaces, facilitating in-situ remineralization of HAP through a simple immersion process. This leads to the formation of a remineralized layer resembling natural dentin, with an occlusion depth of dentinal tubules exceeding 80 µm after three days. The in vivo and vitro results confirm that the PTLF nanofilm possesses good biocompatibility and its ability to exert simultaneous antimicrobial effects and dentin remineralization. Accordingly, this innovative bifunctional PTLF amyloid coating offers promising prospects for the management of DH-related conditions. STATEMENT OF SIGNIFICANCE.

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