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基于糖的聚合物纳米粒的形态设计用于递送抗糖尿病肽。

Morphologic design of sugar-based polymer nanoparticles for delivery of antidiabetic peptides.

机构信息

Departments of Chemistry, Chemical Engineering, and Materials Science & Engineering, Texas A&M University, College Station, TX 77842, USA; Science Academy, Badr University in Cairo (BUC), Badr City, Cairo 11829, Egypt.

Departments of Chemistry, Chemical Engineering, and Materials Science & Engineering, Texas A&M University, College Station, TX 77842, USA.

出版信息

J Control Release. 2021 Jun 10;334:1-10. doi: 10.1016/j.jconrel.2021.04.006. Epub 2021 Apr 18.

Abstract

Zwitterionic polymer nanoparticles of diverse morphologies (spherical, cylindrical, and platelet-like) constructed from biocompatible sugar-based polymers are designed to extend the pharmacological activities of short- and long-acting insulin peptides, thereby providing potential for therapeutic systems capable of reducing the frequency of administration and improving patient compliance. Amphiphilic block copolymers composed of zwitterionic poly(d-glucose carbonate) and semicrystalline polylactide segments were synthesized, and the respective block length ratios were tuned to allow formation of nanoscopic assemblies having different morphologies. Insulin-loaded nanoparticles had similar sizes and morphologies to the unloaded nanoparticle counterparts. Laser scanning confocal microscopy imaging of three-dimensional spheroids of vascular smooth muscle cells and fibroblasts after treatment with LIVE/DEAD® stain and FITC-insulin-loaded nanoparticles demonstrated high biocompatibility for the nanoconstructs of the various morphologies and significant intracellular uptake of insulin in both cell lines, respectively. Binding of short-acting insulin and long-acting insulin glargine to nanoparticles resulted in extended hypoglycemic activities in rat models of diabetes. Following subcutaneous injection in diabetic rats, insulin- and insulin glargine-loaded nanoparticles of diverse morphologies had demonstrated up to 2.6-fold and 1.7-fold increase in pharmacological availability, in comparison to free insulin and insulin glargine, respectively. All together, the negligible cytotoxicity, immunotoxicity, and minimal cytokine adsorption onto nanoparticles (as have been demonstrated in our previous studies) provide exciting and promising evidence of biocompatible nanoconstructs that are poised for further development toward the management of diabetes.

摘要

设计了具有不同形态(球形、圆柱形和板状)的两性离子聚合物纳米粒子,由生物相容性的糖基聚合物构建,旨在延长短效和长效胰岛素肽的药理学活性,从而提供有潜力的治疗系统,能够减少给药频率并提高患者依从性。合成了由两性离子聚(D-葡萄糖碳酸盐)和半结晶聚乳酸段组成的两亲嵌段共聚物,并调整各自的嵌段长度比以允许形成具有不同形态的纳米级组装体。载胰岛素的纳米粒子具有与未载药纳米粒子相似的大小和形态。用 LIVE/DEAD®染色和 FITC-胰岛素载纳米粒子对血管平滑肌细胞和成纤维细胞的三维球体进行激光扫描共聚焦显微镜成像后,证明了各种形态的纳米结构具有高生物相容性,并且胰岛素在两种细胞系中均具有显著的细胞内摄取。将短效胰岛素和长效胰岛素甘精与纳米粒子结合,导致糖尿病大鼠模型中的降血糖活性延长。在糖尿病大鼠的皮下注射后,与游离胰岛素和胰岛素甘精相比,具有不同形态的载胰岛素和载胰岛素甘精纳米粒子的药理学可用性分别增加了 2.6 倍和 1.7 倍。所有这些,如我们之前的研究中所证明的,纳米粒子的可忽略的细胞毒性、免疫毒性和最小细胞因子吸附提供了令人兴奋和有前途的生物相容纳米结构的证据,这些纳米结构有望进一步开发用于糖尿病的治疗。

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