一种基于多阳离子组装的抗唾液污染键合策略。

IF 5.7 1区 医学 Q1 DENTISTRY, ORAL SURGERY & MEDICINE
C Shu,Z Zhang,Y Wu,Y Lu,Y Chen,Q Luo,X Li
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引用次数: 0

摘要

唾液污染的高发生率是一个真正的威胁,牙本质结合的基础,当代预防性牙科和临床牙科。唾液污染可在脱矿牙本质基质(DDM)上形成高水合性的纳米级含细菌吸附膜,加剧了黏合剂渗入DDM的不足,造成细菌负荷。由此产生的细菌负载混合层具有更多缺陷,加剧了牙本质结合的耐久性问题,影响了全球数十亿人的口腔健康。为了解决唾液污染问题,研究人员开发了一种强大的聚阳离子组装辅助键合策略,该策略基于静电吸附杀菌聚阳离子在三维多孔负电荷DDM和被污染的DDM天然模板上,通过静电吸附形成稳定的静电配合物。生物膜中的残留细菌和唾液中的细菌都被杀死,水化的DDM被脱水,使界面约束水在不受污染的情况下释放出来,大大提高了粘合剂的渗透性。更有趣的是,由于多阳离子吸附引起的电荷反转,多阳离子/DDM络合物持续主动吸附带负电荷的唾液蛋白,形成稳定的多阳离子/DDM/唾液蛋白络合物,主动消除唾液污染对牙本质结合的不利影响。这是在唾液污染下首次成功构建持久抗菌和低缺陷杂交层。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Anti-saliva contamination Bonding Strategy Based on Polycation Assembly.
The high incidence of saliva contamination is a real threat to dentin bonding that underpins contemporary preventive dentistry and clinical dentistry. Saliva contamination can form a nanoscale bacteria-contained adsorption film with high hydration on demineralized dentin matrix (DDM), worsening the insufficient adhesive infiltration into the DDM and causing bacteria load. The resultant bacteria-loaded hybrid layer with more defects aggravates the durability issue of dentin bonding that affects the oral health of billions of people worldwide. To address the issue of saliva contamination, a robust polycation assembly-assisted bonding strategy was developed based on the electrostatic adsorption of bactericidal polycations on the natural template of a 3-dimensional, porous, negatively charged DDM as well as the contaminated DDM to form a stable electrostatic complex via electrostatic adsorption. Both residual bacteria in the biofilm and bacteria from saliva were killed, and the hydrated DDM was dehydrated, causing the release of interface-confined water regardless of the presence of contamination, which greatly improved adhesive infiltration. More interesting, due to the charge reversal caused by polycation adsorption, the polycation/DDM complex actively adsorbed negatively charged saliva proteins continuously and formed a stable polycation/DDM/saliva protein complex, actively erasing the adverse effect of saliva contamination on dentin bonding. This is the first successful construction of a persistently antibacterial and defect-low hybrid layer under saliva contamination.
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来源期刊
Journal of Dental Research
Journal of Dental Research 医学-牙科与口腔外科
CiteScore
15.30
自引率
3.90%
发文量
155
审稿时长
3-8 weeks
期刊介绍: The Journal of Dental Research (JDR) is a peer-reviewed scientific journal committed to sharing new knowledge and information on all sciences related to dentistry and the oral cavity, covering health and disease. With monthly publications, JDR ensures timely communication of the latest research to the oral and dental community.
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