Department of Physics, Biomolecular Sciences Institute, Florida International University, FL, 33199, USA.
Department of Chemistry and Biochemistry, Biomolecular Sciences Institute, Florida International University, FL, 33199, USA.
Macromol Biosci. 2019 Feb;19(2):e1800271. doi: 10.1002/mabi.201800271. Epub 2018 Dec 13.
In-depth understanding of the biophysicochemical interactions at the nano-bio interface is important for basic cell biology and applications in nanomedicine and nanobiosensors. Here, the extracellular surface potential and topography changes of live cell membranes interacting with polymeric nanomaterials using a scanning ion conductance microscopy-based potential imaging technique are investigated. Two structurally similar amphiphilic conjugated polymer nanoparticles (CPNs) containing different functional groups (i.e., primary amine versus guanidine) are used to study incubation time and functional group-dependent extracellular surface potential and topographic changes. Transmembrane pores, which induce significant changes in potential, only appear transiently in the live cell membranes during the initial interactions. The cells are able to self-repair the damaged membrane and become resilient to prolonged CPN exposure. This study provides an important observation on how the cells interact with and respond to extracellular polymeric nanomaterials at the early stage. This study also demonstrates that extracellular surface potential imaging can provide a new insight to help understand the complicated interactions at the nano-bio interface and the following cellular responses.
深入了解纳米生物界面的生物物理化学相互作用对于基础细胞生物学以及纳米医学和纳米生物传感器的应用都很重要。在这里,使用基于扫描离子电导显微镜的电位成像技术研究了与聚合纳米材料相互作用的活细胞膜的细胞外表面电势和形貌变化。两种结构相似的含有不同官能团(即伯胺与胍基)的两亲性共轭聚合物纳米粒子(CPN)用于研究孵育时间和官能团依赖性细胞外表面电势和形貌变化。仅在初始相互作用过程中,跨膜孔会在活细胞膜中短暂出现,从而引起显著的电势变化。细胞能够自我修复受损的膜,并对 CPN 的长时间暴露产生弹性。这项研究提供了一个重要的观察结果,即细胞如何在早期与细胞外的聚合物纳米材料相互作用并对其作出响应。这项研究还表明,细胞外表面电势成像可以提供新的见解,以帮助理解纳米生物界面的复杂相互作用和随后的细胞反应。