Tufts University, Department of Biomedical Engineering, Medford, MA 02155, USA.
Expert Opin Drug Deliv. 2011 Jun;8(6):797-811. doi: 10.1517/17425247.2011.568936. Epub 2011 Apr 1.
Given the benefits of polymer drug delivery implants over traditional periodic systemic administration, the development of biomaterial systems with the necessary properties (biocompatibility, degradation, stabilization, controllability) is paramount. Silk fibroin represents a promising, naturally derived polymer for local, controlled, sustained drug release from fully degrading implants and the polymer can be processed into a broad array of material formats.
This review provides an overview of silk biomaterials for drug delivery, especially those that can function as long-term depots. Fundamentals of structure and assembly, processing options, control points and specific examples of implantable silk drug delivery systems (sponges, films) and injectable systems (microspheres, hydrogels) from the 1990s and onwards are reviewed.
Owing to its unique material properties, stabilization effects and tight controllability, silk fibroin is a promising biomaterial for implantable and injectable drug delivery applications. Many promising control points have been identified, and characterization of the relationships between silk processing and/or material properties and the resulting drug loading and release kinetics will ultimately enhance the overall utility of this unique biomaterial. The ever-expanding biomaterial 'tool kit' that silk provides will eventually allow the simultaneous optimization of implant structure, material properties and drug release behavior that is needed to maximize the cost-efficiency, convenience, efficacy and safety of many new and existing therapeutics, especially those that cannot be delivered by means of traditional administration approaches.
鉴于聚合物药物输送植入物相对于传统的定期系统给药的优势,开发具有必要特性(生物相容性、降解、稳定性、可控性)的生物材料系统至关重要。丝素蛋白是一种很有前途的天然衍生聚合物,可用于完全降解植入物的局部、控制和持续药物释放,并且该聚合物可以加工成多种材料形式。
本文综述了用于药物输送的丝生物材料,特别是那些可作为长效储库的生物材料。综述了从 20 世纪 90 年代开始的丝素药物输送系统(海绵、薄膜)和可注射系统(微球、水凝胶)的结构和组装基础、加工选择、控制要点以及具体实例。
由于其独特的材料特性、稳定作用和严格的可控性,丝素蛋白是一种很有前途的可植入和可注射药物输送应用的生物材料。已经确定了许多有前途的控制要点,并且丝加工和/或材料特性与药物负载和释放动力学之间的关系的表征最终将提高这种独特生物材料的整体实用性。丝提供的不断扩展的生物材料“工具包”最终将允许同时优化植入物结构、材料特性和药物释放行为,以最大限度地提高许多新的和现有的治疗方法的成本效益、便利性、疗效和安全性,特别是那些无法通过传统给药方法输送的治疗方法。