Varghese Beena, González-Navarro José Alfredo, Guerra Valentino Libero Pio, Faizulina Margarita, Artemieva Daria, Chum Tomáš, Ramakrishna Tejaswini Rama Bangalore, Cebecauer Marek, Kovaříček Petr
Department of Organic Chemistry, Faculty of Chemical Technology, University of Chemistry and Technology Prague, 166 28 Prague, Czechia.
Department of Biophysical Chemistry, J. Heyrovsky Institute of Physical Chemistry, Czech Academy of Sciences, Dolejškova 2155/3, 182 23 Prague, Czechia.
iScience. 2024 Sep 26;27(11):111033. doi: 10.1016/j.isci.2024.111033. eCollection 2024 Nov 15.
Studying the complex realm of cellular communication and interactions by fluorescence microscopy requires sample fixation on a transparent substrate. To activate T cells, which are pivotal in controlling the immune system, it is important to present the activating antigen in a spatial arrangement similar to the nature of the antigen-presenting cell, including the presence of ligands on microvilli. Similar arrangement is predicted for some other immune cells. In this work, immune cell-stimulating platform based on nanoparticle-ligand conjugates have been developed using a scalable, affordable, and broadly applicable technology, which can be readily deployed without the need for state-of-the-art nanofabrication instruments. The validation of surface biofunctionalization was performed by combination of fluorescence and atomic force microscopy techniques. We demonstrate that the targeted system serves as a biomimetic scaffold on which immune cells make primary contact with the microvilli-mimicking substrate and exhibit stimulus-specific activation.
通过荧光显微镜研究细胞通讯和相互作用的复杂领域需要将样品固定在透明基板上。为了激活在免疫系统控制中起关键作用的T细胞,以类似于抗原呈递细胞性质的空间排列呈现激活抗原很重要,包括微绒毛上配体的存在。预计其他一些免疫细胞也有类似的排列。在这项工作中,基于纳米颗粒-配体缀合物的免疫细胞刺激平台已使用一种可扩展、经济且广泛适用的技术开发出来,该技术无需最先进的纳米制造仪器即可轻松部署。通过荧光和原子力显微镜技术相结合对表面生物功能化进行了验证。我们证明,该靶向系统可作为一种仿生支架,免疫细胞在其上与模拟微绒毛的底物进行初次接触并表现出刺激特异性激活。