Yucel Tuna, Lovett Michael L, Kaplan David L
Tufts University, Department of Biomedical Engineering, Medford, MA 02155, USA; Ekteino Laboratories, New York, NY 10022, USA.
Tufts University, Department of Biomedical Engineering, Medford, MA 02155, USA.
J Control Release. 2014 Sep 28;190:381-97. doi: 10.1016/j.jconrel.2014.05.059. Epub 2014 Jun 5.
Silk presents a rare combination of desirable properties for sustained drug delivery, including aqueous-based purification and processing options without chemical cross-linkers, compatibility with common sterilization methods, controllable and surface-mediated biodegradation into non-inflammatory by-products, biocompatibility, utility in drug stabilization, and robust mechanical properties. A versatile silk-based toolkit is currently available for sustained drug delivery formulations of small molecule through macromolecular drugs, with a promise to mitigate several drawbacks associated with other degradable sustained delivery technologies in the market. Silk-based formulations utilize silk's well-defined nano- through microscale structural hierarchy, stimuli-responsive self-assembly pathways and crystal polymorphism, as well as sequence and genetic modification options towards targeted pharmaceutical outcomes. Furthermore, by manipulating the interactions between silk and drug molecules, near-zero order sustained release may be achieved through diffusion- and degradation-based release mechanisms. Because of these desirable properties, there has been increasing industrial interest in silk-based drug delivery systems currently at various stages of the developmental pipeline from pre-clinical to FDA-approved products. Here, we discuss the unique aspects of silk technology as a sustained drug delivery platform and highlight the current state of the art in silk-based drug delivery. We also offer a potential early development pathway for silk-based sustained delivery products.
丝绸具有一系列适合持续药物递送的理想特性,包括基于水的纯化和无需化学交联剂的加工方式、与常见灭菌方法的兼容性、可控的表面介导生物降解为非炎性副产物、生物相容性、药物稳定作用以及强大的机械性能。目前,一个多功能的基于丝绸的工具包可用于小分子到大分子药物的持续药物递送制剂,有望减轻市场上其他可降解持续递送技术的若干缺点。基于丝绸的制剂利用丝绸明确的纳米至微米级结构层次、刺激响应性自组装途径和晶体多态性,以及针对靶向药物效果的序列和基因修饰选项。此外,通过操纵丝绸与药物分子之间的相互作用,可通过基于扩散和降解的释放机制实现近零级持续释放。由于这些理想特性,目前在从临床前到FDA批准产品的各个开发阶段,基于丝绸的药物递送系统在工业上的关注度不断提高。在此,我们讨论丝绸技术作为持续药物递送平台的独特方面,并突出基于丝绸的药物递送的当前技术水平。我们还为基于丝绸的持续递送产品提供了一条潜在的早期开发途径。