4.7 Article

Plectin-mediated cytoskeletal crosstalk controls cell tension and cohesion in epithelial sheets

期刊

JOURNAL OF CELL BIOLOGY
卷 221, 期 3, 页码 -

出版社

ROCKEFELLER UNIV PRESS
DOI: 10.1083/jcb.202105146

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资金

  1. Grant Agency of the Ministry of Health of the Czech Republic [17-31538A]
  2. Grant Agency of the Czech Republic [21-21736S]
  3. Czech Academy of Sciences [L200521951]
  4. Grant Agency of Charles University [374221]
  5. Institutional Research Project of the Czech Academy of Sciences [RVO 68378050]
  6. COST Action [CA15214]
  7. MEYS CR projects [LQ1604 NPU II, LM2018129, LTC17063, LM2015062, LO1419, LM2015040]
  8. MEYS CR/ERDF projects [OP RDI CZ.1.05/2.1.00/19.0395, CZ.1.05/1.1.00/02.0109]
  9. MEYS CR/ESIF projects OP RDE [CZ.02.1.01/0.0/0.0/16_ 013/0001775, CZ. 02.1.01/0.0/0.0/18_046/0016045]
  10. Operational Program Prague-Competitiveness project [CZ.2.16/3.1.00/21547]
  11. German Research Council (DFG) [GR 3399/5-1, SPP1782]

向作者/读者索取更多资源

This study reveals the crucial role of plectin in supporting intercellular junctions through organizing cortical cytoskeletal networks in epithelial sheets. Deficiency of plectin leads to abnormal cytoarchitecture, elevated intracellular tension, and reduced intercellular cohesion, resulting in destabilization of tissues under mechanical stress.
The coordinated interplay of cytoskeletal networks critically determines tissue biomechanics and structural integrity. Here, we show that plectin, a major intermediate filament-based cytolinker protein, orchestrates cortical cytoskeletal networks in epithelial sheets to support intercellular junctions. By combining CRISPR/Cas9-based gene editing and pharmacological inhibition, we demonstrate that in an F-actin-dependent context, plectin is essential for the formation of the circumferential keratin rim, organization of radial keratin spokes, and desmosomal patterning. In the absence of plectin-mediated cytoskeletal cross-linking, the aberrant keratin-desmosome (DSM)-network feeds back to the actin cytoskeleton, which results in elevated actomyosin contractility. Also, by complementing a predictive mechanical model with Forster resonance energy transfer-based tension sensors, we provide evidence that in the absence of cytoskeletal cross-linking, major intercellular junctions (adherens junctions and DSMs) are under intrinsically generated tensile stress. Defective cytoarchitecture and tensional disequilibrium result in reduced intercellular cohesion, associated with general destabilization of plectin-deficient sheets upon mechanical stress.

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