4.8 Article

An Abl-FBP17 mechanosensing system couples local plasma membrane curvature and stress fiber remodeling during mechanoadaptation

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NATURE COMMUNICATIONS
卷 10, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-019-13782-2

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资金

  1. Spanish Ministry of Economy, Industry and Competitiveness (MINECO)/Agencia Estatal de Investigacion (AEI)/European Regional Development Fund (ARDF/FEDER) A way to make Europe Grant (MINECO) [SAF2011-25047, SAF2014-51876-R, SAF2017-83130-R, MINSEV1512-07-2016, CSD2009-0016, BFU2016-81912-REDC]
  2. Fundacio La Marato de TV3 [674/C/2013]
  3. Worldwide Cancer Research Foundation [15-0404]
  4. FPU fellowship [FPU15/03776]
  5. European Union [641639]
  6. Spanish Ministry of Science, Innovation and Universities [PGC2018-099321-B-I00, RYC-2016-19590]
  7. MINECO [BIO2017-83640-P, RYC-2014-16604]
  8. Tec4Bio consortium [P2018/NMT4443]
  9. FPI predoctoral fellowship [BES-2015-073191]
  10. Curie Institute, INSERM
  11. Association Francaise contre les Myopathies (CAV-STRESS-MUS) [14293]
  12. Agence Nationale de la Recherche [MOTICAV ANR-17-CE13-0020-01]
  13. Fondation ARC pour la Recherche sur le Cancer (Programme Labellise) [PGA1-RF20170205456]
  14. programme ECOS [C17S03]
  15. National Health and Medical Research Council (NHMRC) of Australia [APP1037320, 569452]
  16. Australian Research Council Centre of Excellence [CE140100036]
  17. Instituto de Salud Carlos III (ISCIII)
  18. Ministerio de Ciencia, Innovacion y Universidades (MCNU)
  19. Pro CNIC Foundation
  20. Severo Ochoa Center of Excellence [SEV-2015-0505]
  21. CNRS

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Cells remodel their structure in response to mechanical strain. However, how mechanical forces are translated into biochemical signals that coordinate the structural changes observed at the plasma membrane (PM) and the underlying cytoskeleton during mechanoadaptation is unclear. Here, we show that PM mechanoadaptation is controlled by a tension-sensing pathway composed of c-Abl tyrosine kinase and membrane curvature regulator FBP17. FBP17 is recruited to caveolae to induce the formation of caveolar rosettes. FBP17 deficient cells have reduced rosette density, lack PM tension buffering capacity under osmotic shock, and cannot adapt to mechanical strain. Mechanistically, tension is transduced to the FBP17 F-BAR domain by direct phosphorylation mediated by c-Abl, a mechanosensitive molecule. This modification inhibits FBP17 membrane bending activity and releases FBP17-controlled inhibition of mDia1-dependent stress fibers, favoring membrane adaptation to increased tension. This mechanoprotective mechanism adapts the cell to changes in mechanical tension by coupling PM and actin cytoskeleton remodeling.

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