Blyakhman Felix A, Safronov Alexander P, Makarova Emilia B, Fadeyev Fedor A, Shklyar Tatyana F, Shabadrov Pavel A, Armas Sergio Fernandez, Kurlyandskaya Galina V
Institute of Natural Sciences and Mathematics, Ural State Medical University, 620028 Ekaterinburg, Russia.
Institute of Natural Sciences and Mathematics, Ural Federal University, 620002 Ekaterinburg, Russia.
Nanomaterials (Basel). 2021 Apr 19;11(4):1041. doi: 10.3390/nano11041041.
Two series of composite polyacrylamide (PAAm) gels with embedded superparamagnetic FeO or diamagnetic AlO nanoparticles were synthesized, aiming to study the direct contribution of the magnetic interactions to the ferrogel biocompatibility. The proliferative activity was estimated for the case of human dermal fibroblast culture grown onto the surfaces of these types of substrates. Spherical non-agglomerated nanoparticles (NPs) of 20-40 nm in diameter were prepared by laser target evaporation (LTE) electrophysical technique. The concentration of the NPs in gel was fixed at 0.0, 0.3, 0.6, or 1.2 wt.%. Mechanical, electrical, and magnetic properties of composite gels were characterized by the dependence of Young's modulus, electrical potential, magnetization measurements on the content of embedded NPs. The fibroblast monolayer density grown onto the surface of composite substrates was considered as an indicator of the material biocompatibility after 96 h of incubation. Regardless of the superparamagnetic or diamagnetic nature of nanoparticles, the increase in their concentration in the PAAm composite provided a parallel increase in the cell culture proliferation when grown onto the surface of composite substrates. The effects of cell interaction with the nanostructured surface of composites are discussed in order to explain the results.
合成了两组分别嵌入超顺磁性FeO或抗磁性AlO纳米颗粒的复合聚丙烯酰胺(PAAm)凝胶,旨在研究磁相互作用对铁凝胶生物相容性的直接贡献。针对在这些类型底物表面生长的人皮肤成纤维细胞培养物,评估了其增殖活性。通过激光靶蒸发(LTE)电物理技术制备了直径为20 - 40 nm的球形非团聚纳米颗粒(NPs)。凝胶中NPs的浓度固定为0.0、0.3、0.6或1.2 wt.%。通过杨氏模量、电势、磁化测量对嵌入NPs含量的依赖性来表征复合凝胶的机械、电学和磁学性质。在培养96小时后,将生长在复合底物表面的成纤维细胞单层密度视为材料生物相容性的指标。无论纳米颗粒是超顺磁性还是抗磁性,当在复合底物表面生长时,PAAm复合材料中其浓度的增加会使细胞培养增殖同步增加。为了解释结果,讨论了细胞与复合材料纳米结构表面相互作用的影响。