Multi-Functional Silica-Based Mesoporous Materials as Co-Delivery Systems for Biologically Active Ions and Therapeutic Biomolecules

Hui Zhu, K. Zheng, A. Boccaccini
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引用次数: 3

Abstract

Mesoporous silica-based materials, especially mesoporous bioactive glasses (MBGs), are widely used in biomedical applications including tissue engineering and drug delivery, not only because of their excellent bioactivity and biocompatibility but also due to their tunable composition and potential use as drug delivery carriers owing to their controllable nanoporous structure. Numerous researches have reported that MBGs can be doped with various therapeutic ions (strontium, copper, magnesium, zinc, lithium, silver, etc.) and loaded with specific biomolecules (e.g., therapeutic drugs, antibiotics, growth factors) achieving controllable loading and release kinetics. Therefore, co-delivery of ions and biomolecules using a single MBG carrier is highly interesting as this approach provides synergistic effects toward improved therapeutic outcomes in comparison to the strategy of sole drug or ion delivery. In this review, we discuss the state-of-the-art in the field of mesoporous silica-based materials used for co-delivery of ions and therapeutic drugs with osteogenesis/cementogenesis, angiogenesis, antibacterial and anticancer properties. The analysis of the literature reveals that specially designed mesoporous nanocarriers could controllably release multiple ions and drugs at therapeutically safe and relevant levels, achieving the desired biological effects (in vivo, in vitro) for specific biomedical applications. It is expected that this review on the ion/drug co-delivery concept using MBG carriers will shed light on the advantages of such co-delivery systems for clinical use. Areas for future research directions are identified and discussed.
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多功能硅基介孔材料作为生物活性离子和治疗性生物分子的共递送系统
介孔硅基材料,特别是介孔生物活性玻璃(MBGs),不仅因其优异的生物活性和生物相容性,而且由于其可调节的纳米孔结构和潜在的药物递送载体,在生物医学领域广泛应用于组织工程和药物递送。大量研究报道,MBGs可以掺杂各种治疗离子(锶、铜、镁、锌、锂、银等),并装载特定的生物分子(如治疗药物、抗生素、生长因子),实现可控的装载和释放动力学。因此,使用单一MBG载体的离子和生物分子的共同递送是非常有趣的,因为与单一药物或离子递送策略相比,这种方法提供了改善治疗结果的协同效应。在这篇综述中,我们讨论了中孔硅基材料在离子和治疗药物共递送领域的最新进展,这些材料具有成骨/骨水泥生成、血管生成、抗菌和抗癌等特性。通过对文献的分析发现,经过特殊设计的介孔纳米载体能够在治疗安全性和相关水平上可控地释放多种离子和药物,从而达到特定生物医学应用所需的生物效应(体内和体外)。这篇关于使用MBG载体的离子/药物共给药概念的综述将揭示这种共给药系统在临床应用中的优势。确定并讨论了今后的研究方向。
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