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Present and future of glass-ionomers and calcium-silicate cements as bioactive materials in dentistry: Biophotonics-based interfacial analyses in health and disease

机译:玻璃离聚物和硅酸钙水泥作为牙科生物活性材料的现状和未来:基于生物光子学的健康和疾病界面分析

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摘要

Objective. Since their introduction, calcium silicate cements have primarily found use as endodontic sealers, due to long setting times. While similar in chemistry, recent variations such as constituent proportions, purities and manufacturing processes mandate a critical understanding of service behavior differences of the new coronal restorative material variants. Of particular relevance to minimally invasive philosophies is the potential for ion supply, from initial hydration to mature set in dental cements. They may be capable of supporting repair and remineralization of dentin left after decay and cavity preparation, following the concepts of ion exchange from glass ionomers. Methods. This paper reviews the underlying chemistry and interactions of glass ionomer and calcium silicate cements, with dental tissues, concentrating on dentin-restoration interface reactions. We additionally demonstrate a new optical technique, based around high resolution deep tissue, two-photon fluorescence and lifetime imaging, which allows monitoring of undisturbed cement-dentin interface samples behavior over time. Results. The local bioactivity of the calcium-silicate based materials has been shown to produce mineralization within the subjacent dentin substrate, extending deep within the tissues. This suggests that the local ion-rich alkaline environment may be more favorable to mineral repair and re-construction, compared with the acidic environs of comparable glass ionomer based materials. Significance. The advantages of this potential re-mineralization phenomenon for minimally invasive management of carious dentin are self-evident. There is a clear need to improve the bioactivity of restorative dental materials and these calcium silicate cement systems offer exciting possibilities in realizing this goal.
机译:目的。自引入以来,由于凝固时间长,硅酸钙水泥主要被用作牙髓封闭剂。尽管化学性质相似,但最近的变化(例如成分比例,纯度和制造工艺)要求对新的冠状修复材料变体的服务行为差异有严格的了解。与微创哲学特别相关的是离子供应的潜力,从最初的水合作用到牙水泥的成熟凝结。遵循玻璃离聚物的离子交换概念,它们可能能够支持腐烂和腔制备后残留的牙本质的修复和再矿化。方法。本文综述了玻璃离聚物和硅酸钙水泥与牙齿组织之间的基本化学作用和相互作用,重点研究了牙本质-修复界面反应。我们还演示了一种基于高分辨率深层组织,双光子荧光和寿命成像的新光学技术,该技术可以随时间监视未受干扰的骨水泥-牙本质界面样品的行为。结果。已显示基于硅酸钙的材料的局部生物活性在牙本质下面的基质内产生矿化作用,并在组织内深处延伸。这表明,与可比的玻璃离聚物基材料的酸性环境相比,局部富含离子的碱性环境可能更有利于矿物修复和重建。意义。对于龋齿牙本质的微创治疗,这种潜在的再矿化现象的优势不言而喻。显然需要改善修复性牙科材料的生物活性,而这些硅酸钙水泥体系为实现这一目标提供了令人兴奋的可能性。

著录项

  • 来源
    《Dental materials》 |2014年第1期|50-61|共12页
  • 作者单位

    King's College London Dental Institute, Biomaterials, Biomimetics & Biophotonics (B~3), Floor 17, Guy's Tower Wing, Guy's Hospital, London Bridge SE1 9RT, United Kingdom;

    King's College London Dental Institute, Biomaterials, Biomimetics & Biophotonics (B~3), Floor 17, Guy's Tower Wing, Guy's Hospital, London Bridge SE1 9RT, United Kingdom;

    King's College London Dental Institute, Biomaterials, Biomimetics & Biophotonics (B~3), Floor 17, Guy's Tower Wing, Guy's Hospital, London Bridge SE1 9RT, United Kingdom;

    King's College London Dental Institute, Biomaterials, Biomimetics & Biophotonics (B~3), Floor 17, Guy's Tower Wing, Guy's Hospital, London Bridge SE1 9RT, United Kingdom;

    King's College London Dental Institute, Biomaterials, Biomimetics & Biophotonics (B~3), Floor 17, Guy's Tower Wing, Guy's Hospital, London Bridge SE1 9RT, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Bioactivity; Calcium silicate; Glass ionomer; Cements; Caries; Remineralization; Biophotonic imaging;

    机译:生物活性硅酸钙;玻璃离聚物;水泥;龋齿;再矿化;生物光子成像;
  • 入库时间 2022-08-18 03:46:56

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