Ferrer Pablo Ramos, Sakiyama-Elbert Shelly
bioRxiv. 2024 Sep 27:2024.09.25.614803. doi: 10.1101/2024.09.25.614803.
Sustained release of bioactive molecules via affinity-based interactions presents a promising approach for controlled delivery of growth factors. Insulin-like growth factor-1 (IGF-1) has gained increased attention due to its ability to promote axonal growth in the central nervous system. In this work, we aimed to evaluate the effect of IGF-1 delivery from polyethylene-glycol diacrylate (PEG-DA) microparticles using affinity-based sustained release on neurons. We developed PEG-DA-based microparticles with varying levels of acrylic acid (AA) as a comonomer to tune their overall charge. The particles were synthesized via precipitation polymerization under UV light, yielding microparticles (MPs) with a relatively low polydispersity index. IGF-1 was incubated with the PEG-DA particles overnight, and formulations with a higher AA content resulted in higher loading efficiency and slower release rates over 4 weeks, suggesting the presence of binding interactions between the positively charged IGF-1 and negatively charged particles containing AA. The released IGF-1 was tested in dorsal root ganglion (DRG) neurite outgrowth assay and found to retain its biological activity for up to two weeks after encapsulation. Furthermore, the trophic effect of IGF-1 was tested with stem cell-derived V2a interneurons and found to have a synergistic effect when combined with neurotrophin-3 (NT3). To assess the potential of a combinatorial approach, IGF-1-releasing MPs were encapsulated within a hyaluronic acid (HA) hydrogel and showed promise as a dual delivery system. Overall, the PEG-DA MPs developed herein deliver bioactive IGF-1 for a period of weeks and hold potential to enable axonal growth of injured neurons via sustained release.
通过基于亲和力的相互作用实现生物活性分子的持续释放,为生长因子的可控递送提供了一种很有前景的方法。胰岛素样生长因子-1(IGF-1)因其促进中枢神经系统轴突生长的能力而受到越来越多的关注。在这项工作中,我们旨在评估使用基于亲和力的持续释放从聚乙二醇二丙烯酸酯(PEG-DA)微粒递送IGF-1对神经元的影响。我们开发了以不同丙烯酸(AA)含量作为共聚单体的基于PEG-DA的微粒,以调节其整体电荷。通过紫外光下的沉淀聚合合成颗粒,得到多分散指数相对较低的微粒(MPs)。将IGF-1与PEG-DA颗粒孵育过夜,AA含量较高的制剂在4周内具有更高的负载效率和更慢的释放速率,这表明带正电的IGF-1与含AA的带负电颗粒之间存在结合相互作用。在背根神经节(DRG)神经突生长试验中对释放的IGF-1进行了测试,发现其在包封后长达两周内仍保留其生物活性。此外,用干细胞衍生的V2a中间神经元测试了IGF-1的营养作用,发现与神经营养因子-3(NT3)联合使用时具有协同作用。为了评估组合方法的潜力,将释放IGF-1的MPs封装在透明质酸(HA)水凝胶中,并显示出作为双递送系统的前景。总体而言,本文开发的PEG-DA MPs可在数周内递送生物活性IGF-1,并具有通过持续释放促进受损神经元轴突生长的潜力。