Cojocaru Elena, Ghitman Jana, Pircalabioru Gratiela Gradisteanu, Zaharia Anamaria, Iovu Horia, Sarbu Andrei
Advanced Polymer Materials Group, University Politehnica of Bucharest, 1-7 Gh. Polizu Street, 011061 Bucharest, Romania.
eBio-Hub Research Center, University Politehnica of Bucharest-CAMPUS, 6 Iuliu Maniu Boulevard, 061344 Bucharest, Romania.
Polymers (Basel). 2023 Jun 28;15(13):2854. doi: 10.3390/polym15132854.
This work reports the construction of a bicomponent scaffold co-loaded with both a prodrug and a drug (BiFp@Ht) as an efficient platform for wound dressing, by combining the electrospinning and 3D-printing technologies. The outer component consisted of a chitosan/polyethylene oxide-electrospun membrane loaded with the indomethacin-polyethylene glycol-indomethacin prodrug (Fp) and served as a support for printing the inner component, a gelatin methacryloyl/sodium alginate hydrogel loaded with tetracycline hydrochloride (Ht). The different architectural characteristics of the electrospun and 3D-printed layers were very well highlighted in a morphological analysis performed by Scanning Electron Microscopy (SEM). In vitro release profile studies demonstrated that both Fp and Ht layers were capable to release the loaded therapeutics in a controlled and sustained manner. According to a quantitative in vitro biological assessment, the bicomponent BiFp@Ht scaffold showed a good biocompatibility and no cytotoxic effect on HeLa cell cultures, while the highest proliferation level was noted in the case of HeLa cells seeded onto an Fp nanofibrous membrane. Furthermore, the BiFp@Ht scaffold presented an excellent antimicrobial activity against the and bacterial strains, along with promising anti-inflammatory and proangiogenic activities, proving its potential to be used for wound dressing.
本研究报告了一种双组分支架(BiFp@Ht)的构建,该支架同时负载前药和药物,通过结合静电纺丝和3D打印技术,作为一种高效的伤口敷料平台。外部组件由负载吲哚美辛-聚乙二醇-吲哚美辛前药(Fp)的壳聚糖/聚环氧乙烷静电纺丝膜组成,用作打印内部组件的支撑,内部组件是负载盐酸四环素(Ht)的甲基丙烯酰化明胶/海藻酸钠水凝胶。通过扫描电子显微镜(SEM)进行的形态分析很好地突出了静电纺丝层和3D打印层的不同结构特征。体外释放曲线研究表明,Fp层和Ht层都能够以可控和持续的方式释放负载的治疗药物。根据定量体外生物学评估,双组分BiFp@Ht支架显示出良好的生物相容性,对HeLa细胞培养物无细胞毒性作用,而接种在Fp纳米纤维膜上的HeLa细胞增殖水平最高。此外,BiFp@Ht支架对 和 细菌菌株具有优异的抗菌活性,同时具有良好的抗炎和促血管生成活性,证明了其用于伤口敷料的潜力。