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用于开发基于磷酸钙的微创生物纳米复合材料的抗菌咪唑鎓离子液体

Antimicrobial Imidazolium Ionic Liquids for the Development of Minimal Invasive Calcium Phosphate-Based Bionanocomposites.

作者信息

Raucci Maria Grazia, Fasolino Ines, Pastore Stella G, Soriente Alessandra, Capeletti Larissa B, Dessuy Morgana B, Giannini Cinzia, Schrekker Henri S, Ambrosio Luigi

机构信息

Institute of Polymers, Composites and Biomaterials-National Research Council (IPCB-CNR) , Mostra d'Oltremare Pad. 20-Viale J.F. Kennedy 54 , Naples 80125 , Italy.

Institute of Crystallography-National Research Council (IC-CNR) . Via G. Amendola 122-O , Bari 70125 , Italy.

出版信息

ACS Appl Mater Interfaces. 2018 Dec 12;10(49):42766-42776. doi: 10.1021/acsami.8b12696. Epub 2018 Nov 30.

DOI:10.1021/acsami.8b12696
PMID:30456941
Abstract

Biofilm formation is one of the main obstacles that occur during in vivo implantation, which compromises the implant functionality and patients' health. This is the inspiration for the development of novel implant materials that contain broad-spectrum antimicrobial activity, including antibacterial and antifungal, and enable the local release of antimicrobial agents. Here, multifunctional calcium phosphate-ionic liquid (IL) materials, possessing antimicrobial and repair/regeneration features plus injectability, are proposed as implants in minimally invasive surgery. This approach was based on the loading of 1-alkyl-3-alkylimidazolium chloride ionic liquids (ILs) (C MImCl ( n = 4, 10, 16) and (C)MImCl) during the in situ sol-gel synthesis of calcium phosphates (CaP) and study of their effects on CaP crystallization and biological properties. Physical, morphological, and biological investigations were performed to evaluate the bionanocomposites' properties. The IL N-alkyl chain length influenced the crystallization of CaP and, consequently, the biological properties, which afforded bionanocomposites (when loaded with CMImCl or (C)MImCl) that, (i) inhibit both in vitro bacterial and fungal growth; (ii) reduce the in vitro inflammatory response; (iii) induce osteogenic differentiation in the basal medium of human mesenchymal stem cells; and (iv) are injectable. This will enable the design of multifunctional injectable implants with antimicrobial, anti-inflammatory, and regenerative properties to be used in minimally invasive surgery of bone and maxillofacial defects.

摘要

生物膜形成是体内植入过程中出现的主要障碍之一,它会损害植入物的功能和患者的健康。这激发了新型植入材料的开发,这些材料具有广谱抗菌活性,包括抗菌和抗真菌,并能实现抗菌剂的局部释放。在此,提出了具有抗菌、修复/再生功能以及可注射性的多功能磷酸钙-离子液体(IL)材料作为微创手术中的植入物。这种方法基于在磷酸钙(CaP)的原位溶胶-凝胶合成过程中负载1-烷基-3-烷基咪唑鎓氯化物离子液体(ILs)(C MImCl(n = 4, 10, 16)和(C)MImCl),并研究它们对CaP结晶和生物学特性的影响。进行了物理、形态学和生物学研究以评估生物纳米复合材料的性能。IL的N-烷基链长度影响了CaP的结晶,进而影响了生物学特性,这使得生物纳米复合材料(负载CMImCl或(C)MImCl时)具有以下特性:(i)抑制体外细菌和真菌生长;(ii)降低体外炎症反应;(iii)在人间充质干细胞的基础培养基中诱导成骨分化;(iv)具有可注射性。这将有助于设计具有抗菌、抗炎和再生特性的多功能可注射植入物,用于骨和颌面缺损的微创手术。

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