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Mechanical regulation of glycolysis via cytoskeleton architecture.
Park, Jin Suk; Burckhardt, Christoph J; Lazcano, Rossana; Solis, Luisa M; Isogai, Tadamoto; Li, Linqing; Chen, Christopher S; Gao, Boning; Minna, John D; Bachoo, Robert; DeBerardinis, Ralph J; Danuser, Gaudenz.
Afiliação
  • Park JS; Lyda Hill Department of Bioinformatics, UT Southwestern Medical Center, Dallas, TX, USA.
  • Burckhardt CJ; Department of Cell Biology, UT Southwestern Medical Center, Dallas, TX, USA.
  • Lazcano R; Lyda Hill Department of Bioinformatics, UT Southwestern Medical Center, Dallas, TX, USA. christoph.burckhardt@utsouthwestern.edu.
  • Solis LM; Department of Cell Biology, UT Southwestern Medical Center, Dallas, TX, USA. christoph.burckhardt@utsouthwestern.edu.
  • Isogai T; Department of Translational Molecular Pathology, UT MD Anderson Cancer Center, Houston, TX, USA.
  • Li L; Department of Translational Molecular Pathology, UT MD Anderson Cancer Center, Houston, TX, USA.
  • Chen CS; Lyda Hill Department of Bioinformatics, UT Southwestern Medical Center, Dallas, TX, USA.
  • Gao B; Department of Cell Biology, UT Southwestern Medical Center, Dallas, TX, USA.
  • Minna JD; Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA, USA.
  • Bachoo R; The Biological Design Center and Department of Biomedical Engineering, Boston University, Boston, MA, USA.
  • DeBerardinis RJ; Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA, USA.
  • Danuser G; The Biological Design Center and Department of Biomedical Engineering, Boston University, Boston, MA, USA.
Nature ; 578(7796): 621-626, 2020 02.
Article em En | MEDLINE | ID: mdl-32051585
ABSTRACT
The mechanics of the cellular microenvironment continuously modulates cell functions such as growth, survival, apoptosis, differentiation and morphogenesis via cytoskeletal remodelling and actomyosin contractility1-3. Although all of these processes consume energy4,5, it is unknown whether and how cells adapt their metabolic activity to variable mechanical cues. Here we report that the transfer of human bronchial epithelial cells from stiff to soft substrates causes a downregulation of glycolysis via proteasomal degradation of the rate-limiting metabolic enzyme phosphofructokinase (PFK). PFK degradation is triggered by the disassembly of stress fibres, which releases the PFK-targeting E3 ubiquitin ligase tripartite motif (TRIM)-containing protein 21 (TRIM21). Transformed non-small-cell lung cancer cells, which maintain high glycolytic rates regardless of changing environmental mechanics, retain PFK expression by downregulating TRIM21, and by sequestering residual TRIM21 on a stress-fibre subset that is insensitive to substrate stiffness. Our data reveal a mechanism by which glycolysis responds to architectural features of the actomyosin cytoskeleton, thus coupling cell metabolism to the mechanical properties of the surrounding tissue. These processes enable normal cells to tune energy production in variable microenvironments, whereas the resistance of the cytoskeleton in response to mechanical cues enables the persistence of high glycolytic rates in cancer cells despite constant alterations of the tumour tissue.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Citoesqueleto / Células Epiteliais / Microambiente Celular / Glucose / Glicólise / Dureza Limite: Animals / Humans Idioma: En Revista: Nature Ano de publicação: 2020 Tipo de documento: Article País de afiliação: Estados Unidos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Citoesqueleto / Células Epiteliais / Microambiente Celular / Glucose / Glicólise / Dureza Limite: Animals / Humans Idioma: En Revista: Nature Ano de publicação: 2020 Tipo de documento: Article País de afiliação: Estados Unidos