Intra-condensate demixing of TDP-43 inside stress granules generates pathological aggregates

Research output: Preprint/Documentation/ReportPreprint

Contributors

  • Xiao Yan - , Max Planck Institute of Molecular Cell Biology and Genetics (Author)
  • David Kuster - , Max Planck Institute of Molecular Cell Biology and Genetics (Author)
  • Priyesh Mohanty - , Texas A&M University (Author)
  • Jik Nijssen - , Max Planck Institute of Molecular Cell Biology and Genetics (Author)
  • Karina Pombo-García - , Max Planck Institute of Molecular Cell Biology and Genetics (Author)
  • Azamat Rizuan - , Texas A&M University (Author)
  • Titus Marcellus Franzmann - , Chair of Cellular Biochemistry (Author)
  • Aleksandra Sergeeva - , Chair of Cellular Biochemistry, Max Planck Institute of Molecular Cell Biology and Genetics (Author)
  • Patricia M Passos - , University of Missouri at St. Louis (Author)
  • Leah George - , University of Missouri at St. Louis (Author)
  • Szu-Huan Wang - , Brown University (Author)
  • Jayakrishna Shenoy - , Brown University (Author)
  • Helen L Danielson - , Brown University (Author)
  • Alf Honigmann - , Chair of Biophysics (Author)
  • Yuna M Ayala - , University of Missouri at St. Louis (Author)
  • Nicolas L Fawzi - , Brown University (Author)
  • Jeetain Mittal - , Texas A&M University (Author)
  • Simon Alberti - , Chair of Cellular Biochemistry (Author)
  • Anthony Hyman - , Max Planck Institute of Molecular Cell Biology and Genetics (Author)

Abstract

Cytosolic aggregation of the nuclear protein TDP-43 is associated with many neurodegenerative diseases, but the triggers for TDP-43 aggregation are still debated. Here, we demonstrate that TDP-43 aggregation requires a double event. One is up-concentration in stress granules beyond a threshold, and the other is oxidative stress. These two events collectively induce intra-condensate demixing, giving rise to a dynamic TDP-43 enriched phase within stress granules, which subsequently transitions into pathological aggregates. Mechanistically, intra-condensate demixing is triggered by local unfolding of the RRM1 domain for intermolecular disulfide bond formation and by increased hydrophobic patch interactions in the C-terminal domain. By engineering TDP-43 variants resistant to intra-condensate demixing, we successfully eliminate pathological TDP-43 aggregates in cells. We conclude that up-concentration inside condensates and simultaneous exposure to environmental stress could be a general pathway for protein aggregation, with intra-condensate demixing constituting a key intermediate step.

Details

Original languageEnglish
Publication statusPublished - 24 May 2024
No renderer: customAssociatesEventsRenderPortal,dk.atira.pure.api.shared.model.researchoutput.WorkingPaper

External IDs

PubMed 38328053
ORCID /0000-0003-4017-6505/work/173516821
ORCID /0000-0003-0475-3790/work/173517309

Keywords