Sequence-resolved free energy profiles of stress-bearing vimentin intermediate filaments

Beatrice Ramm, Johannes Stigler, Michael Hinczewski, D. Thirumalai, Harald Herrmann, Günther Woehlke, Matthias Rief

Research output: Contribution to journalArticlepeer-review

18 Scopus citations

Abstract

Intermediate filaments (IFs) are key to the mechanical strength of metazoan cells. Their basic building blocks are dimeric coiled coils mediating hierarchical assembly of the full-length filaments. Here we use single-molecule force spectroscopy by optical tweezers to assess the folding and stability of coil 2B of the model IF protein vimentin. The coiled coil was unzipped from its N and C termini. When pulling from the C terminus, we observed that the coiled coil was resistant to force owing to the high stability of the C-terminal region. Pulling from the N terminus revealed that the N-terminal half is considerably less stable. The mechanical pulling assay is a unique tool to study and control seed formation and structure propagation of the coiled coil. We then used rigorous theory-based deconvolution for a model-free extraction of the energy landscape and local stability profiles. The data obtained from the two distinct pulling directions complement each other and reveal a tripartite stability of the coiled coil: a labile N-terminal half, followed by a medium stability section and a highly stable region at the far C-terminal end. The different stability regions provide important insight into the mechanics of IF assembly.

Original languageEnglish
Pages (from-to)11359-11364
Number of pages6
JournalProceedings of the National Academy of Sciences of the United States of America
Volume111
Issue number31
DOIs
StatePublished - 5 Aug 2014

Keywords

  • Brownian dynamics simulation
  • Protein folding
  • Trigger sequence

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