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基于鸟粪石的锌掺杂磷酸钙镁骨水泥及其抗菌性能

Zn-Doped Calcium Magnesium Phosphate Bone Cement Based on Struvite and Its Antibacterial Properties.

作者信息

Krokhicheva Polina A, Goldberg Margarita A, Fomin Alexander S, Khayrutdinova Dinara R, Antonova Olga S, Baikin Alexander S, Leonov Aleksander V, Merzlyak Ekaterina M, Mikheev Ivan V, Kirsanova Valentina A, Sviridova Irina K, Akhmedova Suraya A, Sergeeva Natalia S, Barinov Sergey M, Komlev Vladimir S

机构信息

A.A. Baikov Institute of Metallurgy and Materials Science, Russian Academy of Sciences, Moscow 119334, Russia.

Department of Chemistry, M.V. Lomonosov Moscow State University, Moscow 119991, Russia.

出版信息

Materials (Basel). 2023 Jul 4;16(13):4824. doi: 10.3390/ma16134824.

Abstract

The development of magnesium calcium phosphate bone cements (MCPCs) has garnered substantial attention. MCPCs are bioactive and biodegradable and have appropriate mechanical and antimicrobial properties for use in reconstructive surgery. In this study, the cement powders based on a (Ca + Mg)/P = 2 system doped with Zn at 0.5 and 1.0 wt.% were obtained and investigated. After mixing with a cement liquid, the structural and phase composition, morphology, chemical structure, setting time, compressive strength, degradation behavior, solubility, antibacterial activities, and in vitro behavior of the cement materials were examined. A high compressive strength of 48 ± 5 MPa (mean ± SD) was achieved for the cement made from Zn 1.0 wt.%-substituted powders. Zn introduction led to antibacterial activity against and strains, with an inhibition zone diameter of up to 8 mm. Biological assays confirmed that the developed cement is cytocompatible and promising as a potential bone substitute in reconstructive surgery.

摘要

磷酸镁钙骨水泥(MCPCs)的发展已引起广泛关注。MCPCs具有生物活性和可生物降解性,并且具有适用于重建手术的机械性能和抗菌性能。在本研究中,制备并研究了基于(Ca + Mg)/P = 2体系且掺杂0.5 wt.%和1.0 wt.%锌的骨水泥粉末。与骨水泥液体混合后,对骨水泥材料的结构和相组成、形态、化学结构、凝固时间、抗压强度、降解行为、溶解度、抗菌活性和体外行为进行了检测。由1.0 wt.%锌取代粉末制成的骨水泥实现了48±5 MPa(平均值±标准差)的高抗压强度。锌的引入导致对金黄色葡萄球菌和大肠杆菌菌株具有抗菌活性,抑菌圈直径高达8 mm。生物学试验证实,所研制的骨水泥具有细胞相容性,有望成为重建手术中潜在的骨替代物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b105/10343539/00d1d27313a8/materials-16-04824-g001.jpg

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