High Density of Aligned Nanowire Treated with Polydopamine for Efficient Gene Silencing by siRNA According to Cell Membrane Perturbation

ACS Appl Mater Interfaces. 2016 Jul 27;8(29):18693-700. doi: 10.1021/acsami.6b04913. Epub 2016 Jul 15.

Abstract

High aspect ratio nanomaterials, such as vertically aligned silicon nanowire (SiNW) substrates, are three-dimensional topological features for cell manipulations. A high density of SiNWs significantly affects not only cell adhesion and proliferation but also the delivery of biomolecules to cells. Here, we used polydopamine (PD) that simply formed a thin coating on various material surfaces by the action of dopamine as a bioinspired approach. The PD coating not only enhanced cell adhesion, spreading, and growth but also anchored more siRNA by adsorption and provided more surface concentration for substrate-mediated delivery. By comparing plain and SiNW surfaces with the same amount of loaded siRNA, we quantitatively found that PD coating efficiently anchored siRNA on the surface, which knocked down the expression of a specific gene by RNA interference. It was also found that the interaction of SiNWs with the cell membrane perturbed the lateral diffusion of lipids in the membrane by fluorescence recovery after photobleaching. The perturbation was considered to induce the effective delivery of siRNA into cells and allow the cells to carry out their biological functions. These results suggest promising applications of PD-coated, high-density SiNWs as simple, fast, and versatile platforms for transmembrane delivery of biomolecules.

Keywords: RNA interference; bioinspired materials; high-density nanowires; nanotopography; polydopamine; transmembrane delivery.

MeSH terms

  • Cell Membrane
  • Gene Silencing
  • Indoles
  • Nanowires*
  • Polymers
  • RNA, Small Interfering

Substances

  • Indoles
  • Polymers
  • RNA, Small Interfering
  • polydopamine