聚合动力学的分子动力学模拟,尺寸稳定性,和硅毒性的下一代硅树脂印模材料在牙科。

IF 4.5 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Ravinder S Saini, Doni Dermawan, Abdullah Hasan A Alshehri, Rayan Ibrahim H Binduhayyim, Rajesh Vyas, Abdulkhaliq Ali F Alshadidi, Lujain Ibrahim N Aldosari, Masroor Ahmed Kanji, Mario Alberto Alarcón-Sánchez, Artak Heboyan
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引用次数: 0

摘要

本研究评估了用于牙科用途的下一代硅树脂印模材料在聚合过程中的表现,以及它们的尺寸稳定性、机械性能、降解模式和硅毒性水平。有机硅材料是牙科应用的首选,因为它们具有出色的机械性能和与生物组织的相容性。这些材料的性能容易受到环境条件的影响,包括温度变化、湿度水平和接触口服液。患者安全需要对降解产物毒性问题进行评估。在临床使用过程中,在分子水平上检查这些特性以提高材料的耐久性和安全性至关重要。利用BIOVIA materials Studio 2020进行分子动力学(MD)模拟,模拟了有机硅材料的结构、机械和稳定性。Forcite模块使用compassion力场对材料进行表征和力学性能评估。本研究通过模拟聚合动力学来了解反应机理,同时利用Kinetix和DMol3模块分析不同环境应力下的尺寸稳定性。CASTEP和DMol3模块以及OSIRIS DataWarrior用于预测降解途径和潜在毒性。弹性模量为2.533 GPa,抗拉强度为5.387 MPa,使聚二甲基硅氧烷(PDMS)具有优越的柔韧性和刚性,是牙科印模材料的最佳选择。甲基丙烯氧基丙基三甲氧基硅烷(3.248 GPa)和六苯基环三硅氧烷(3.017 GPa)的刚度增强,表明它们在承重场景中有用。在硅毒性预测表明,大多数有机硅衍生物表现出可接受的生物相容性,尽管一些硅烷化合物显示出潜在的风险,需要进一步的实验验证。在模拟条件下,材料保持稳定的结构,并表现出正聚合动力学,表明它们可以为牙科使用提供高耐久性和尺寸稳定性。本研究强调了PDMS在柔韧性、刚性和安全性方面的卓越平衡,同时也确定了甲基丙烯氧基丙基三甲氧基硅烷和六苯基环三硅氧烷作为特殊承重牙科应用的候选材料。有希望的硅发现需要实验验证和临床测试,以建立其实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular dynamics simulation of polymerization kinetics, dimensional stability, and in silico toxicity of nextgeneration silicone impression materials in dentistry.

This study evaluates how next-generation silicone impression materials intended for dental use behave during polymerization, as well as their dimensional stability, mechanical properties, degradation patterns, and in silico toxicity levels. Silicone materials are preferred for dental applications because of their outstanding mechanical properties and compatibility with biological tissues. The performance of these materials is susceptible to environmental conditions including temperature changes, humidity levels, and exposure to oral fluids. Patient safety requires evaluation of degradation product toxicity concerns. It is crucial to examine these properties at the molecular level to enhance material durability and safety during clinical use. The structural, mechanical, and stability properties of silicone materials were modeled through molecular dynamics (MD) simulations using BIOVIA Materials Studio 2020. Material characterization and evaluation of mechanical properties were performed with the Forcite module using the COMPASSIII force field. The study simulated polymerization dynamics to understand the reaction mechanisms while employing the Kinetix and DMol3 modules to analyze dimensional stability under various environmental stresses. The CASTEP and DMol3 modules, along with the OSIRIS DataWarrior, were employed to forecast degradation pathways and potential toxicity. The combination of an elastic modulus of 2.533 GPa and tensile strength of 5.387 MPa allows Polydimethylsiloxane (PDMS) to show superior flexibility and rigidity, which qualifies it as the best choice for dental impression materials. Methacryloxypropyltrimethoxysilane (3.248 GPa) and hexaphenylcyclotrisiloxane (3.017 GPa) exhibited enhanced stiffness, suggesting their usefulness in load-bearing scenarios. In silico toxicity predictions indicated that most silicone derivatives demonstrated acceptable biocompatibility, although some silane compounds showed potential risks requiring further experimental validation. Under simulated conditions, the materials maintained stable configurations and exhibited positive polymerization dynamics, indicating that they could provide high durability along with dimensional stability for dental usage. This study highlights the superior balance of flexibility, rigidity, and safety exhibited by PDMS, while also identifying Methacryloxypropyltrimethoxysilane and hexaphenylcyclotrisiloxane as candidates for specialized load-bearing dental applications. Promising in silico findings require experimental validation and clinical testing to establish their practical applications.

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来源期刊
Journal of Materials Science: Materials in Medicine
Journal of Materials Science: Materials in Medicine 工程技术-材料科学:生物材料
CiteScore
8.00
自引率
0.00%
发文量
73
审稿时长
3.5 months
期刊介绍: The Journal of Materials Science: Materials in Medicine publishes refereed papers providing significant progress in the application of biomaterials and tissue engineering constructs as medical or dental implants, prostheses and devices. Coverage spans a wide range of topics from basic science to clinical applications, around the theme of materials in medicine and dentistry. The central element is the development of synthetic and natural materials used in orthopaedic, maxillofacial, cardiovascular, neurological, ophthalmic and dental applications. Special biomedical topics include biomaterial synthesis and characterisation, biocompatibility studies, nanomedicine, tissue engineering constructs and cell substrates, regenerative medicine, computer modelling and other advanced experimental methodologies.
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