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用于再生医学的介孔生物活性玻璃

Mesoporous bioactive glasses for regenerative medicine.

作者信息

Vallet-Regi M, Salinas A J

机构信息

Department Chemistry in Pharmaceutical Sciences, Universidad Complutense (UCM) Madrid, Spain.

IIS, Hospital 12 de Octubre (imas12), Madrid, Spain.

出版信息

Mater Today Bio. 2021 Jun 29;11:100121. doi: 10.1016/j.mtbio.2021.100121. eCollection 2021 Jun.

Abstract

Stem cells are the central element of regenerative medicine (RM). However, in many clinical applications, the use of scaffolds fabricated with biomaterials is required. In this sense, mesoporous bioactive glasses (MBGs) are going to play an important role in bone regeneration because of their striking textural properties, quick bioactive response, and biocompatibility. As other bioactive glasses, MBGs are mainly formed by silicon, calcium, and phosphorus oxides whose ions play an important role in cell proliferation as well as in homeostasis and bone remodeling process. A common improvement of bioactive glasses for RM is by adding small amounts of oxides of elements that confer them additional biological capacities, including osteogenic, angiogenic, antibacterial, anti-inflammatory, hemostatic, or anticancer properties. Moreover, MBGs are versatile in terms of the different ways in which they can be processed, such as scaffolds, fibers, coatings, or nanoparticles. MBGs are unique because their textural properties are so high that they still exhibit outstanding bioactive responses even after adding extra inorganic ions or being processed as scaffolds or nanoparticles. Moreover, they can be further improved by loading with biomolecules, drugs, and stem cells. This article reviews the state of the art and future perspectives of MBGs in the field of RM of hard tissues.

摘要

干细胞是再生医学(RM)的核心要素。然而,在许多临床应用中,需要使用由生物材料制成的支架。从这个意义上讲,介孔生物活性玻璃(MBGs)因其显著的结构特性、快速的生物活性响应和生物相容性,将在骨再生中发挥重要作用。与其他生物活性玻璃一样,MBGs主要由硅、钙和磷的氧化物组成,这些离子在细胞增殖以及体内平衡和骨重塑过程中发挥着重要作用。RM中生物活性玻璃的一个常见改进方法是添加少量具有额外生物学能力的元素氧化物,包括成骨、血管生成、抗菌、抗炎、止血或抗癌特性。此外,MBGs在加工方式上具有多样性,例如制成支架、纤维、涂层或纳米颗粒。MBGs很独特,因为它们的结构特性非常高,以至于即使添加了额外的无机离子或加工成支架或纳米颗粒后,仍能表现出出色的生物活性响应。此外,它们可以通过负载生物分子、药物和干细胞进一步得到改善。本文综述了MBGs在硬组织RM领域的研究现状和未来展望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf66/8327654/b7ebfa649b11/ga1.jpg

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