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用透明质酸-聚(乳酸-co-乙醇酸)纳米粒修饰猪小肠黏膜下层以增强其血管生成:从制备到临床前验证。

Enhanced angiogenesis of modified porcine small intestinal submucosa with hyaluronic acid-poly(lactide-co-glycolide) nanoparticles: from fabrication to preclinical validation.

机构信息

Department of Chemical, Biological and Materials Engineering, University of Oklahoma, Norman, Oklahoma 73019, USA.

出版信息

J Biomed Mater Res A. 2010 Sep 1;94(3):712-9. doi: 10.1002/jbm.a.32748.

Abstract

Hyaluronic acid-poly(de-co-glycolide) nanoparticles (HA-PLGA NPs) were synthesized to stabilize the porous structure of porcine small intestinal submucosa (SIS), to improve surface biocompatibility and to enhance performance in tissue regeneration. HA-PLGA NPs were characterized for size, zeta potential, surface morphology, and HA loading. Human microvascular endothelial cells responded to HA-PLGA NPs and HA-PLGA modified SIS (HA-PLGA-SIS) with elevated cell proliferation. HA-PLGA-SIS significantly enhanced neo-vascularization in an in ovo chorioallantoic membrane angiogenesis model. The angiogenic capability of the newly fabricated HA-PLGA-SIS was tested in a canine bladder augmentation model. Urinary bladder augmentation was performed in beagle dogs following hemi-cystectomy using HA-PLGA-SIS. The regenerated bladder was harvested at 10 weeks post augmentation and vascularization was evaluated using CD31 immunohistochemical staining. Bladder regenerated with HA-PLGA-SIS had significantly higher vascular ingrowth compared to unmodified SIS. This study shows that HA-PLGA NPs may represent a new approach for modifying naturally derived SIS biomaterials in regenerative medicine.

摘要

透明质酸-聚(-癸二酸-丙二醇酸)纳米粒子(HA-PLGA NPs)被合成以稳定猪小肠黏膜下层(SIS)的多孔结构,提高表面生物相容性并增强组织再生性能。对 HA-PLGA NPs 的粒径、Zeta 电位、表面形态和 HA 负载进行了表征。人微血管内皮细胞对 HA-PLGA NPs 和 HA-PLGA 修饰的 SIS(HA-PLGA-SIS)的反应表现出细胞增殖的增加。HA-PLGA-SIS 在鸡胚绒毛尿囊膜血管生成模型中显著增强了新血管生成。新制备的 HA-PLGA-SIS 的血管生成能力在犬膀胱扩张模型中进行了测试。在半胱囊切除术后,使用 HA-PLGA-SIS 在比格犬中进行膀胱扩张。在扩张后 10 周收获再生的膀胱,并通过 CD31 免疫组织化学染色评估血管化。与未修饰的 SIS 相比,用 HA-PLGA-SIS 再生的膀胱具有明显更高的血管生长。本研究表明,HA-PLGA NPs 可能代表一种用于修饰再生医学中天然衍生的 SIS 生物材料的新方法。

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