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载有明胶纳米球的静电纺丝纳米纤维丝素蛋白膜,用于生物分子的控制释放。

Electrospun Nanofibrous Silk Fibroin Membranes Containing Gelatin Nanospheres for Controlled Delivery of Biomolecules.

机构信息

Department of Biomaterials, Radboud University Medical Centre, P.O. Box 9101, 6500, HB, Nijmegen, The Netherlands.

Prometheus, Division of Skeletal Tissue Engineering, Katholieke Universiteit Leuven, 3000, Leuven, Belgium.

出版信息

Adv Healthc Mater. 2017 Jul;6(14). doi: 10.1002/adhm.201700014. Epub 2017 May 2.

Abstract

Development of novel and effective drug delivery systems for controlled release of bioactive molecules is of critical importance in the field of regenerative medicine. Here, oppositely charged gelatin nanospheres are incorporated into silk fibroin nanofibers through a colloidal electrospinning technique. A novel fibrous nano-in-nano drug delivery system is fabricated without the use of any organic solvent. The distribution of fluorescently labeled gelatin A and B nanospheres inside the nanofibers can be fine-tuned by simple adjustment of the weight ratio between the nanospheres and the relative feeding rate of core and shell solutions containing nanospheres by using single and coaxial nozzle electrospinning, respectively. Incorporation of vancomycin-loaded gelatin B nanospheres into the silk fibroin nanofibrous membranes results in a more sustained release of vancomycin, compared to the gelatin nanospheres free membranes. In addition, these membranes exhibit excellent and prolonged antibacterial effects against Staphylococcus aureus. Moreover, these membranes support the attachment, spreading, and proliferation of periodontal ligament cells. These results suggest that the beneficial properties of gelatin nanospheres can be exploited to improve the biological functionality of electrospun nanofibrous silk fibroin membranes.

摘要

开发新型有效的药物传递系统,用于生物活性分子的控制释放,在再生医学领域至关重要。在这里,通过胶体静电纺丝技术将带相反电荷的明胶纳米球掺入丝素纳米纤维中。通过使用单喷嘴和同轴喷嘴静电纺丝,分别通过简单地调整纳米球与包含纳米球的核/壳溶液的相对进料速率之间的纳米球的重量比,可精细调节荧光标记的明胶 A 和 B 纳米球在纳米纤维中的分布。与不含明胶纳米球的纳米纤维膜相比,将载万古霉素的明胶 B 纳米球掺入丝素纳米纤维膜中导致万古霉素的释放更持久。此外,这些膜对金黄色葡萄球菌表现出优异且持久的抗菌作用。此外,这些膜支持牙周韧带细胞的附着、铺展和增殖。这些结果表明,可以利用明胶纳米球的有益特性来提高静电纺丝纳米纤维丝素膜的生物学功能。

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