Belibel R, Sali S, Marinval N, Garcia-Sanchez A, Barbaud C, Hlawaty H
KymiaNova, F-92290 Châtenay Malabry, France.
Université Sorbonne Paris Nord, Institut Galilée, Laboratory for Vascular Transitional Science (LVTS), INSERM UMR 1148, F-93430 Villetaneuse, France.
Mater Sci Eng C Mater Biol Appl. 2020 Dec;117:111284. doi: 10.1016/j.msec.2020.111284. Epub 2020 Jul 24.
To reduce the risk of intra-stent restenosis and improve hemocompatibility of biomaterials, the therapeutic re-endothelialization is required. Indeed, the behavior of endothelial cells is affected by several factors such as wettability and surface energy of biomaterial in contact with cells and blood. The aim of this study was to evaluate the physicochemical and biological properties of new polymers derived from poly((R,S)-3,3-dimethylmalic acid) (PDMMLA) that will be used as cardiovascular stents coating. In fact, a comprehensive study of the roughness and topography and the thermal and rheological properties of these materials were investigated. Furthermore, this was correlated with the biological response of human vascular endothelial cells (HUVECs) and monocytes (MM6) to these biomaterials. Our results revealed very interesting surface properties of PDMMLAs, excellent thermal and thermo-mechanical properties and a suitable biological response. All these properties can be adjusted by simple chemical modification of the side chain of the studied polymers.
为降低支架内再狭窄风险并改善生物材料的血液相容性,需要进行治疗性再内皮化。事实上,内皮细胞的行为受多种因素影响,如与细胞和血液接触的生物材料的润湿性和表面能。本研究的目的是评估源自聚((R,S)-3,3-二甲基苹果酸)(PDMMLA)的新型聚合物的物理化学和生物学特性,这些聚合物将用作心血管支架涂层。实际上,对这些材料的粗糙度、形貌以及热学和流变学特性进行了全面研究。此外,还将其与人类血管内皮细胞(HUVECs)和单核细胞(MM6)对这些生物材料的生物学反应相关联。我们的结果揭示了PDMMLAs非常有趣的表面特性、优异 的热学和热机械特性以及合适的生物学反应。所有这些特性都可以通过对所研究聚合物侧链进行简单的化学修饰来调节。