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用于骨再生和组织工程医疗应用的生物活性玻璃和玻璃陶瓷

Bioactive Glasses and Glass-Ceramics for Healthcare Applications in Bone Regeneration and Tissue Engineering.

作者信息

Fernandes Hugo R, Gaddam Anuraag, Rebelo Avito, Brazete Daniela, Stan George E, Ferreira José M F

机构信息

Department of Materials and Ceramic Engineering, CICECO, University of Aveiro, 3810-193 Aveiro, Portugal.

National Institute of Materials Physics, RO-077125 Magurele, Romania.

出版信息

Materials (Basel). 2018 Dec 12;11(12):2530. doi: 10.3390/ma11122530.

Abstract

The discovery of bioactive glasses (BGs) in the late 1960s by Larry Hench et al. was driven by the need for implant materials with an ability to bond to living tissues, which were intended to replace inert metal and plastic implants that were not well tolerated by the body. Among a number of tested compositions, the one that later became designated by the well-known trademark of 45S5 Bioglass excelled in its ability to bond to bone and soft tissues. Bonding to living tissues was mediated through the formation of an interfacial bone-like hydroxyapatite layer when the bioglass was put in contact with biological fluids in vivo. This feature represented a remarkable milestone, and has inspired many other investigations aiming at further exploring the in vitro and in vivo performances of this and other related BG compositions. This paradigmatic example of a target-oriented research is certainly one of the most valuable contributions that one can learn from Larry Hench. Such a goal-oriented approach needs to be continuously stimulated, aiming at finding out better performing materials to overcome the limitations of the existing ones, including the 45S5 Bioglass. Its well-known that its main limitations include: (i) the high pH environment that is created by its high sodium content could turn it cytotoxic; (ii) and the poor sintering ability makes the fabrication of porous three-dimensional (3D) scaffolds difficult. All of these relevant features strongly depend on a number of interrelated factors that need to be well compromised. The selected chemical composition strongly determines the glass structure, the biocompatibility, the degradation rate, and the ease of processing (scaffolds fabrication and sintering). This manuscript presents a first general appraisal of the scientific output in the interrelated areas of bioactive glasses and glass-ceramics, scaffolds, implant coatings, and tissue engineering. Then, it gives an overview of the critical issues that need to be considered when developing bioactive glasses for healthcare applications. The aim is to provide knowledge-based tools towards guiding young researchers in the design of new bioactive glass compositions, taking into account the desired functional properties.

摘要

20世纪60年代末,拉里·亨奇等人发现了生物活性玻璃(BGs),这一发现源于对能够与活组织结合的植入材料的需求,这类材料旨在替代人体耐受性不佳的惰性金属和塑料植入物。在众多经过测试的成分中,后来以著名商标45S5生物玻璃命名的那种成分在与骨骼和软组织结合的能力方面表现出色。当生物玻璃在体内与生物流体接触时,通过形成界面类骨羟基磷灰石层来介导与活组织的结合。这一特性代表了一个显著的里程碑,并激发了许多其他研究,旨在进一步探索这种及其他相关BG成分的体外和体内性能。这个以目标为导向的研究的典型例子无疑是人们可以从拉里·亨奇那里学到的最有价值的贡献之一。这种以目标为导向的方法需要不断受到激励,旨在找出性能更优的材料,以克服现有材料的局限性,包括45S5生物玻璃。众所周知,其主要局限性包括:(i)其高钠含量所产生的高pH环境可能使其具有细胞毒性;(ii)烧结能力差使得制造多孔三维(3D)支架变得困难。所有这些相关特性都强烈依赖于许多需要妥善协调的相互关联的因素。所选的化学成分强烈地决定了玻璃结构、生物相容性、降解速率以及加工的难易程度(支架制造和烧结)。本手稿首次对生物活性玻璃和玻璃陶瓷、支架、植入物涂层及组织工程等相关领域的科学成果进行了总体评估。然后,概述了在开发用于医疗保健应用的生物活性玻璃时需要考虑的关键问题。目的是提供基于知识的工具,以指导年轻研究人员设计新的生物活性玻璃成分时考虑所需的功能特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5fa9/6316906/7b3549408703/materials-11-02530-g001.jpg

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