Cellular and Molecular Research Center, Cellular and Molecular Medicine Institute, Urmia University of Medical Sciences, Urmia, Iran.
Stem Cell Research Center, Tabriz University of Medical Sciences, Tabriz, Iran.
Int J Pharm. 2020 Sep 25;587:119656. doi: 10.1016/j.ijpharm.2020.119656. Epub 2020 Jul 18.
The present research aims to design and develop a sustained drug release system to support the long-term proliferation of human adipose-derived stem cells (hADSCs) without losing their stemness and entering the cellular senescence through providing typical cell culture conditions. For this purpose, Curcumin-loaded mesoporous silica nanoparticles (CUR@MSNs) incorporated into Poly-ε-Caprolactone/Gelatin (PCL/GEL) hybrid were prepared via blend electrospinning and their impact was evaluated on cell adhesion, viability, proliferation and also the expression of senescence markers and stemness genes after a long-term in vitro culturing. The in vitro release findings proved that the MSNs incorporated into the electrospun nanofibers (NFs) allowed a sustained release of CUR. According to MTT and PicoGreen assays, the significant metabolic activity and proliferation of hADSCs were detected on CUR@MSNs-NFs after 14 and 28 days of incubation. Furthermore, CUR@MSNs-NFs showed better adhesion and spreading of hADSCs compared to other types of NFs. The sustained and prolonged delivery of CUR inhibited the stem cell senescence through the down-regulation of p16 and up-regulation of hTERT. It also led to an increased stemness potency in growing hADSCs on the fibers. These results confirmed that the nanofiber-based sustained drug delivery system might provide a promising approach in designing highly programmable culture platforms to generate sufficient numbers of biologically functional hADSCs for clinical translation.
本研究旨在设计和开发一种持续药物释放系统,以提供典型的细胞培养条件,支持人脂肪来源干细胞(hADSCs)的长期增殖,而不会失去其干性并进入细胞衰老。为此,通过共混静电纺丝制备了载姜黄素的介孔硅纳米粒子(CUR@MSNs)掺入聚己内酯/明胶(PCL/GEL)杂化体,并评估了它们对细胞黏附、活力、增殖的影响,以及在长期体外培养后衰老标志物和干性基因的表达。体外释放结果证明,掺入电纺纳米纤维(NFs)中的 MSNs 允许 CUR 的持续释放。根据 MTT 和 PicoGreen 测定,在孵育 14 和 28 天后,CUR@MSNs-NFs 上检测到 hADSCs 的显著代谢活性和增殖。此外,与其他类型的 NFs 相比,CUR@MSNs-NFs 显示出更好的 hADSCs 黏附和铺展。CUR 的持续和延长递送通过下调 p16 和上调 hTERT 抑制了干细胞衰老。它还导致在纤维上生长的 hADSCs 的干性潜能增加。这些结果证实,基于纳米纤维的持续药物递送系统可能为设计高度可编程的培养平台提供一种有前途的方法,以生成足够数量的具有生物功能的 hADSCs 用于临床转化。