Nanoscale Surface Topography Reduces Focal Adhesions and Cell Stiffness by Enhancing Integrin Endocytosis

  • Xiao Li
  • , Lasse H. Klausen
  • , Wei Zhang
  • , Zeinab Jahed
  • , Ching Ting Tsai
  • , Thomas L. Li
  • , Bianxiao Cui

Research output: Contribution to journalArticlepeer-review

76 Scopus citations

Abstract

Both substrate stiffness and surface topography regulate cell behavior through mechanotransduction signaling pathways. Such intertwined effects suggest that engineered surface topographies might substitute or cancel the effects of substrate stiffness in biomedical applications. However, the mechanisms by which cells recognize topographical features are not fully understood. Here we demonstrate that the presence of nanotopography drastically alters cell behavior such that neurons and stem cells cultured on rigid glass substrates behave as if they were on soft hydrogels. With atomic force microscopy, we show that rigid nanotopography resembles the effects of soft hydrogels in reducing cell stiffness and membrane tension. Further, we reveal that nanotopography reduces focal adhesions and cell stiffness by enhancing the endocytosis and the subsequent removal of integrin receptors. This mechanistic understanding will support the rational design of nanotopography that directs cells on rigid materials to behave as if they were on soft ones.

Original languageEnglish
Pages (from-to)8518-8526
Number of pages9
JournalNano Letters
Volume21
Issue number19
DOIs
StatePublished - 13 Oct 2021
Externally publishedYes

Keywords

  • endocytosis
  • integrin
  • mechanotransduction
  • membrane curvature
  • nanotopography
  • substrate stiffness

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