Department of Chemistry, Faculty of Sciences, Tarbiat Modares University, Tehran, Iran.
Medical Biomaterial Research Centre (MBRC), Tehran University of Medical Sciences, Tehran, Iran.
Sci Rep. 2022 Nov 1;12(1):18407. doi: 10.1038/s41598-022-18632-8.
The present study aimed to synthesis a proper scaffold consisting of hydroxylated polyphosphazene and polycaprolactone (PCL), focusing on its potential use in tissue engineering applications. The first grafting of PCL to poly(propylene glycol)phosphazene (PPGP) was performed via ROP of ε-caprolactone, whereas PPGP act as a multisite macroinitiator. The prepared poly(propylene glycol phosphazene)-graft-polycaprolactone (PPGP-g-PCL) were evaluated by essential tests, including NMR, FTIR, FESEM-EDS, TGA, DSC and contact angle measurement. The quantum calculations were performed to investigate molecular geometry and its energy, and HOMO and LUMO of PPGP-g-PCL in Materials Studio2017. MD simulations were applied to describe the interaction of the polymer on phospholipid membrane (POPC128b) in Material Studio2017. The C2C12 and L929 cells were used to probe the cell-surface interactions on synthetic polymers surfaces. Cells adhesion and proliferation onto scaffolds were evaluated using FESEM and MTT assay. In vitro analysis indicated enhanced cell adhesion, high proliferation rate, and excellent viability on scaffolds for both cell types. The polymer was further tested via intraperitoneal implantation in mice that showed no evidence of adverse inflammation and necrosis at the site of the scaffold implantation; in return, osteogenesis, new-formed bone and in vivo degradation of the scaffold were observed. Herein, in vitro and in vivo assessments confirm PPGP-g-PCL, as an appropriate scaffold for tissue engineering applications.
本研究旨在合成一种由羟化聚磷腈和聚己内酯(PCL)组成的合适支架,重点关注其在组织工程应用中的潜在用途。首先通过ε-己内酯的 ROP 将 PCL 接枝到聚(丙二醇)磷腈(PPGP)上,而 PPGP 则作为多官能团大分子引发剂。通过 NMR、FTIR、FESEM-EDS、TGA、DSC 和接触角测量对制备的聚(丙二醇磷腈)-接枝-聚己内酯(PPGP-g-PCL)进行了评估。通过量子计算研究了 PPGP-g-PCL 的分子几何形状和能量,以及 HOMO 和 LUMO。在 Materials Studio2017 中应用 MD 模拟来描述聚合物在磷脂膜(POPC128b)上的相互作用。使用 C2C12 和 L929 细胞来探测合成聚合物表面上的细胞表面相互作用。通过 FESEM 和 MTT 测定评估细胞在支架上的粘附和增殖。体外分析表明,两种细胞类型在支架上的细胞粘附增强、增殖率高、活力良好。该聚合物进一步通过小鼠腹腔内植入进行测试,结果显示在支架植入部位没有炎症和坏死的证据;相反,观察到成骨作用、新形成的骨和支架的体内降解。在此,体外和体内评估证实 PPGP-g-PCL 是一种适用于组织工程应用的合适支架。