Ávila-Cossío Martha E, Rivero Ignacio A, García-González Victor, Alatorre-Meda Manuel, Rodríguez-Velázquez Eustolia, Calva-Yáñez Julio C, Espinoza Karla A, Pulido-Capiz Ángel
Tecnológico Nacional de México/Instituto Tecnológico de Tijuana, Centro de Graduados e Investigación en Química, Blvd. Alberto Limón Padilla S/N, 22510 Tijuana, Baja California, Mexico.
Departamento de Bioquímica, Facultad de Medicina Mexicali, Universidad Autónoma de Baja California, 21100 Mexicali, Baja California, Mexico.
ACS Omega. 2020 Mar 2;5(10):5249-5257. doi: 10.1021/acsomega.9b04313. eCollection 2020 Mar 17.
This study reports the synthesis of thin polymeric films by the layer-by-layer deposition and covalent cross-linking of polyvinyl dimethylazlactone and polyethylene imine, which were functionalized with lauric (12-C), myristic (14-C), and palmitic (16-C) saturated fatty acids, whose high levels in the bloodstream are correlated with insulin resistance and the potential development of type 2 diabetes mellitus. Aiming to assess the effect of the fatty acids on the adhesion and proliferation of Langerhans β-cells, all prepared films (35 and 35.5 bilayers with and without functionalization with the fatty acids) were characterized in terms of their physical, chemical, and biological properties by a battery of experimental techniques including H and C NMR, mass spectrometry, attenuated total reflectance-Fourier transform infrared spectroscopy, field emission scanning electron microscopy, atomic force microscopy, cell staining, and confocal laser scanning microscopy among others. In general, the developed films were found to be nanometric, transparent, resistant against manipulation, chemically reactive, and highly cytocompatible. On the other hand, in what the effect of the fatty acids is concerned, palmitic acid was found to impair the proliferation of the cultured β-cells, contrary to its homologues which did not alter this biological process. In our opinion, the multidisciplinary study presented here might be of interest for the research community working on the development of cytocompatible 2D model substrates for the safe and reproducible characterization of cell responses.
本研究报道了通过聚乙烯二甲基乙内酰脲和聚乙烯亚胺的逐层沉积和共价交联来合成聚合物薄膜,这两种聚合物用月桂酸(12 - C)、肉豆蔻酸(14 - C)和棕榈酸(16 - C)饱和脂肪酸进行了功能化,血液中这些脂肪酸的高水平与胰岛素抵抗和2型糖尿病的潜在发展相关。为了评估脂肪酸对朗格汉斯β细胞粘附和增殖的影响,通过一系列实验技术,包括氢核磁共振和碳核磁共振、质谱、衰减全反射 - 傅里叶变换红外光谱、场发射扫描电子显微镜、原子力显微镜、细胞染色和共聚焦激光扫描显微镜等,对所有制备的薄膜(35层和35.5层,有无脂肪酸功能化)的物理、化学和生物学性质进行了表征。总体而言,发现所制备的薄膜具有纳米级、透明、耐操作、化学反应性和高细胞相容性。另一方面,就脂肪酸的影响而言,发现棕榈酸会损害培养的β细胞的增殖,而其同系物则不会改变这一生物学过程。我们认为,这里提出的多学科研究可能会引起致力于开发细胞相容性二维模型底物以安全、可重复地表征细胞反应的研究群体的兴趣。