Laboratorio de Biomembranas (LBM), Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes, IMBICE-CONICET-CICPBA, Argentina.
Laboratorio de Biomembranas (LBM), Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes, IMBICE-CONICET-CICPBA, Argentina; Instituto de Biofísica Carlos Chagas Filho, Universidade Federal do Rio de Janeiro, Brazil.
Mater Sci Eng C Mater Biol Appl. 2019 Oct;103:109813. doi: 10.1016/j.msec.2019.109813. Epub 2019 May 29.
A γ-irradiated bovine albumin serum-based nanoparticle was characterised structurally, and functionally. The nanoparticle was characterised by A.F.M., D.L.S, zeta potential, T.E.M., gel-electrophoresis, and spectroscopy. We studied the stability of the nanoparticle at different pH values and against time, by fluorescence spectroscopy following the changes in the tryptophan environment in the nanoparticle. The nanoparticle was also functionalized with Folic Acid, its function as a nanovehicle was evaluated through its interaction with the hydrophobic drug Emodin. The binding and kinetic properties of the obtained complex were evaluated by biophysical methods as well as its toxicity in tumor cells. According to its biophysics, the nanoparticle is a spherical nanosized vehicle with a hydrodynamic diameter of 70 nm. Data obtained describe the nanoparticle as nontoxic for cancer cell lines. When combined with Emodin, the nanoparticle proved to be more active on MCF-7 cancer cell lines than the nanoparticle without Emodin. Significantly, the albumin aggregate preserves the main activity-function of albumin and improved characteristics as an excellent carrier of molecules. More than carrier properties, the nanoparticle alone induced an immune response in macrophages which may be advantageous in vaccine and cancer therapy formulation.
一种经过 γ 射线辐照的牛血清白蛋白纳米颗粒在结构和功能上进行了表征。通过原子力显微镜、动态光散射、Zeta 电位、透射电子显微镜、凝胶电泳和光谱学对纳米颗粒进行了表征。通过荧光光谱法研究了纳米颗粒在不同 pH 值和不同时间下的稳定性,观察纳米颗粒中色氨酸环境的变化。纳米颗粒还被叶酸功能化,通过其与疏水性药物大黄素的相互作用评估其作为纳米载体的功能。通过生物物理方法以及其在肿瘤细胞中的毒性评估了所得复合物的结合和动力学特性。根据其生物物理特性,该纳米颗粒是一种具有 70nm 水动力直径的球形纳米尺寸载体。获得的数据表明,该纳米颗粒对癌细胞系没有毒性。当与大黄素结合时,与不含大黄素的纳米颗粒相比,该纳米颗粒在 MCF-7 癌细胞系上表现出更高的活性。值得注意的是,白蛋白聚集体保留了白蛋白的主要活性和功能特性,并改善了作为分子优秀载体的特性。除了载体特性外,纳米颗粒本身在巨噬细胞中诱导了免疫反应,这在疫苗和癌症治疗制剂中可能是有利的。