氯己定介孔二氧化硅纳米颗粒改性的可流动树脂基复合材料具有卓越的抗生物膜性能

IF 2.1 4区 材料科学 Q3 CHEMISTRY, MULTIDISCIPLINARY
Barsha Shrestha, Sultan Aati, Sheetal Maria Rajan, Amr Fawzy
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引用次数: 0

摘要

牙科树脂复合材料修复体的临床失败主要是由于细菌介导的二次龋形成。因此,开发具有固有抗菌特性的可流动树脂复合材料对于提高牙科修复体的耐久性至关重要。在本文中,牙科可流动树脂复合材料经氯己定负载介孔二氧化硅纳米粒子(CHX-MSN)改性后,可诱导原位抗菌性,以对抗突变菌。制备了负载洗必泰的介孔二氧化硅纳米颗粒(CHX-MSN),并对其药物负载/包囊效率、电子显微镜下的形态和红外光谱分析进行了表征。CHX-MSN以 1%、5% 和 10%(重量比)的不同浓度加入到可流动复合材料中,并在两个时间点(基线和人工唾液中的 3 个月)进行检测。CHX-MSN 改性复合材料表现出最初的 CHX 释放爆发,随后稳定释放达 30 天。改性复合材料的抗菌功效通过水晶紫检测法、MTT 检测法和共聚焦激光扫描显微镜进行了评估。除了测量转化程度和细胞毒性外,还通过表面微硬度和抗折强度对机械性能进行了表征。与未改性的对照组相比,改性复合材料的抗菌性能显著提高(p < 0.05),这与 CHX-MSN 纳米粒子的浓度有关。此外,改性复合材料具有可接受的生物相容性,且不会对机械性能和转化率产生不利影响,CHX-MSN 纳米粒子的添加量最高可达 5%。本研究介绍了一种开发树脂基可流动牙科复合材料的方案,该材料对致癌生物膜具有卓越的抗菌性能,旨在提高牙科修复体的临床使用寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Flowable resin-based composites modified with chlorhexidine-loaded mesoporous silica nanoparticles induce superior antibiofilm properties

Flowable resin-based composites modified with chlorhexidine-loaded mesoporous silica nanoparticles induce superior antibiofilm properties

Clinical failure of dental resin-composite restorations is mainly due to bacterial-mediated secondary caries formation. Therefore, the development of a flowable resin-composite material having inherent antibacterial properties is crucial to enhance the durability of dental restorations. Herein, dental flowable resin-composite material was modified with chlorhexidine-loaded mesoporous silica nanoparticles (CHX-MSN) to induce in situ antibacterial properties against S. mutans. Mesoporous silica nanoparticles loaded with chlorhexidine (CHX-MSN) were formulated and characterized for drug-loading/encapsulation efficiency, morphology by electron microscopy, and infrared spectral analysis. CHX-MSN were incorporated into the flowable composite material at different concentrations of 1, 5, and 10% (w/w) and examined at two time points (baseline and 3 months in artificial saliva). The CHX-MSN modified composites exhibited an initial CHX release burst followed by a steady release up to 30 days. The antimicrobial efficacy of the modified composites was evaluated by crystal violet assay, MTT assay, and confocal laser scanning microscopy. In addition to measuring the degree of conversion and cytotoxicity, the mechanical properties were characterized by surface microhardness and flexural strength. The modified composites demonstrated a significant increase in antimicrobial properties compared to the unmodified control (p < 0.05) which is dependent on the concentration of the CHX-MSN nanoparticles. In addition, the modified composites possessed acceptable biocompatibility without adversely affecting mechanical properties and degree of conversion up to 5% addition of CHX-MSN nanoparticles. This study introduced a protocol to develop resin-based flowable dental composite material having superior antibacterial property against cariogenic biofilms aiming for enhancing clinical longevity of dental restorations.

Graphical Abstract

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来源期刊
Journal of Nanoparticle Research
Journal of Nanoparticle Research 工程技术-材料科学:综合
CiteScore
4.40
自引率
4.00%
发文量
198
审稿时长
3.9 months
期刊介绍: The objective of the Journal of Nanoparticle Research is to disseminate knowledge of the physical, chemical and biological phenomena and processes in structures that have at least one lengthscale ranging from molecular to approximately 100 nm (or submicron in some situations), and exhibit improved and novel properties that are a direct result of their small size. Nanoparticle research is a key component of nanoscience, nanoengineering and nanotechnology. The focus of the Journal is on the specific concepts, properties, phenomena, and processes related to particles, tubes, layers, macromolecules, clusters and other finite structures of the nanoscale size range. Synthesis, assembly, transport, reactivity, and stability of such structures are considered. Development of in-situ and ex-situ instrumentation for characterization of nanoparticles and their interfaces should be based on new principles for probing properties and phenomena not well understood at the nanometer scale. Modeling and simulation may include atom-based quantum mechanics; molecular dynamics; single-particle, multi-body and continuum based models; fractals; other methods suitable for modeling particle synthesis, assembling and interaction processes. Realization and application of systems, structures and devices with novel functions obtained via precursor nanoparticles is emphasized. Approaches may include gas-, liquid-, solid-, and vacuum-based processes, size reduction, chemical- and bio-self assembly. Contributions include utilization of nanoparticle systems for enhancing a phenomenon or process and particle assembling into hierarchical structures, as well as formulation and the administration of drugs. Synergistic approaches originating from different disciplines and technologies, and interaction between the research providers and users in this field, are encouraged.
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