Extracellular rigidity sensing by talin isoform-specific mechanical linkages

Katharina Austen, Pia Ringer, Alexander Mehlich, Anna Chrostek-Grashoff, Carleen Kluger, Christoph Klingner, Benedikt Sabass, Roy Zent, Matthias Rief, Carsten Grashoff

Research output: Contribution to journalArticlepeer-review

271 Scopus citations

Abstract

The ability of cells to adhere and sense differences in tissue stiffness is crucial for organ development and function. The central mechanisms by which adherent cells detect extracellular matrix compliance, however, are still unknown. Using two single-molecule-calibrated biosensors that allow the analysis of a previously inaccessible but physiologically highly relevant force regime in cells, we demonstrate that the integrin activator talin establishes mechanical linkages following cell adhesion, which are indispensable for cells to probe tissue stiffness. Talin linkages are exposed to a range of piconewton forces and bear, on average, 7-10 pN during cell adhesion depending on their association with F-actin and vinculin. Disruption of talin's mechanical engagement does not impair integrin activation and initial cell adhesion but prevents focal adhesion reinforcement and thus extracellular rigidity sensing. Intriguingly, talin mechanics are isoform specific so that expression of either talin-1 or talin-2 modulates extracellular rigidity sensing.

Original languageEnglish
Pages (from-to)1597-1606
Number of pages10
JournalNature Cell Biology
Volume17
Issue number12
DOIs
StatePublished - 27 Nov 2015

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