Independent Laboratory of Pharmacokinetic and Clinical Pharmacy, Pomeranian Medical University, Rybacka 1, 70-204, Szczecin, Poland.
Department of General Pathology, Pomeranian Medical University, Rybacka 1, 70-204, Szczecin, Poland.
Sci Rep. 2023 Oct 20;13(1):17939. doi: 10.1038/s41598-023-45045-y.
Biomaterial science has contributed tremendously to developing nanoscale materials for delivering biologically active compounds, enhancing protein stability, and enabling its therapeutic use. This paper presents a process of formation of polyelectrolyte multilayer (PEM) prepared by sequential adsorption of positively charged polydiallyldimethylammonium chloride (PDADMAC) and negatively charged heparin sodium salt (HP), from low polyelectrolyte concentration, on a solid substrate. PEM was further applied as a platform for the adsorption of a brain-derived growth factor (BDNF), which is a protein capable of regulating neuronal cell development. The multilayers containing BDNF were thoroughly characterized by electrokinetic (streaming potential measurements, SPM) and optical (optical waveguide lightmode spectroscopy, OWLS) techniques. It was found that BDNF was significantly adsorbed onto polyelectrolyte multilayers terminated by HP under physiological conditions. We further explore the effect of established PEMs in vitro on the neuroblastoma SH-SY5Y cell line. An enzyme-linked immunosorbent assay (ELISA) confirmed that BDNF was released from multilayers, and the use of the PEMs intensified its cellular uptake. Compared to the control, PEMs with adsorbed BDNF significantly reduced cell viability and mitochondrial membrane polarization to as low as 72% and 58%, respectively. HPLC analysis showed that both PDADMAC-terminated and HP-terminated multilayers have antioxidative properties as they almost by half decreased lipid peroxidation in SH-SY5Y cells. Finally, enhanced formation of spheroid-like, 3D structures was observed by light microscopy. We offer a well-characterized PEM with antioxidant properties acting as a BDNF carrier, stabilizing BDNF and making it more accessible to cells in an inhomogeneous, dynamic, and transient in vitro environment. Described multilayers can be utilized in future biomedical applications, such as boosting the effect of treatment by selective anticancer as adjuvant therapy, and in biomedical research for future development of more precise neurodegenerative disease models, as they enhance cellular 3D structure formation.
生物材料科学在开发用于递送生物活性化合物、增强蛋白质稳定性并使其能够治疗应用的纳米级材料方面做出了巨大贡献。本文介绍了一种通过顺序吸附带正电荷的聚二烯丙基二甲基氯化铵(PDADMAC)和带负电荷的肝素钠盐(HP)在固体基底上制备聚电解质多层(PEM)的过程,该过程是在低聚电解质浓度下进行的。PEM 进一步用作脑源性生长因子(BDNF)的吸附平台,BDNF 是一种能够调节神经元细胞发育的蛋白质。通过电动(流动电势测量,SPM)和光学(光波导光模光谱学,OWLS)技术对含有 BDNF 的多层进行了彻底的表征。结果发现,BDNF 在生理条件下显著吸附在 HP 端接的聚电解质多层上。我们进一步探索了体外建立的 PEM 对神经母细胞瘤 SH-SY5Y 细胞系的影响。酶联免疫吸附测定(ELISA)证实 BDNF 从多层中释放出来,并且使用 PEM 增强了其细胞摄取。与对照组相比,吸附 BDNF 的 PEM 将细胞活力和线粒体膜极化分别降低至低至 72%和 58%。HPLC 分析表明,PDADMAC 端接和 HP 端接的多层都具有抗氧化性能,因为它们使 SH-SY5Y 细胞中的脂质过氧化几乎减少了一半。最后,通过相差显微镜观察到 3D 结构的形成增强。我们提供了一种具有抗氧化性能的良好表征的 PEM,作为 BDNF 载体,稳定 BDNF 并使其在不均匀、动态和瞬态的体外环境中更易于被细胞摄取。所描述的多层可用于未来的生物医学应用,例如通过选择性抗癌作为辅助治疗来增强治疗效果,以及在生物医学研究中用于开发更精确的神经退行性疾病模型,因为它们增强了细胞 3D 结构的形成。