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Simvastatin disrupts cytoskeleton and decreases cardiac fibroblast adhesion, migration and viability
Authors:Copaja Miguel  Venegas Daniel  Aranguiz Pablo  Canales Jimena  Vivar Raul  Avalos Yennifer  Garcia Lorena  Chiong Mario  Olmedo Ivonne  Catalán Mabel  Leyton Lisette  Lavandero Sergio  Díaz-Araya Guillermo
Institution:Centro Estudios Moleculares de la Célula, Facultad Ciencias Químicas y Farmacéuticas, Universidad de Chile, Santiago, Chile.
Abstract:Statins reduce the isoprenoids farnesyl and geranylgeranyl pyrophosphate, essential intermediates, which control a diversity of cellular events such as cytoskeleton integrity, adhesion, migration and viability. Cardiac fibroblasts are the major non-myocyte cell constituent in the normal heart, and play a key role in the maintenance of extracellular matrix. The effects of simvastatin on cardiac fibroblast processes previously mentioned remain unknown. Our aims were to investigate the effects of simvastatin on cytoskeleton structure and focal adhesion complex assembly and their relationships with cell adhesion, migration and viability in cultured cardiac fibroblasts. To this end, cells were treated with simvastatin for 24 h and changes in actin cytoskeleton, levels of vimentin and paxillin as well as their subcellular localization were analyzed by Western blot and immunocytochemistry, respectively. Cell adhesion to plastic or collagen coated dishes, migration in Transwell chambers, and cell viability were analyzed after simvastatin treatment. Our results show that simvastatin disrupts actin cytoskeleton and focal adhesion complex evaluated by phalloidin stain and immunocytochemistry for paxillin and vinculin. All these effects occurred by a cholesterol synthesis-independent mechanism. Simvastatin decreased cell adhesion, migration and viability in a concentration-dependent manner. Finally, simvastatin decreased angiotensin II-induced phospho-paxillin levels and cell adhesion. We concluded that simvastatin disrupts cytoskeleton integrity and focal adhesion complex assembly in cultured cardiac fibroblasts by a cholesterol-independent mechanism and consequently decreases cell migration, adhesion and viability.
Keywords:Ang II  angiotensin II  BSA  bovine serum albumin  CF  cardiac fibroblasts  ECM  extracellular matrix  FAK  focal adhesion kinase  FBS  fetal bovine serum  FPP  farnesylpyrophosphate  GGPP  geranylgeranyl pyrophosphate  HMG-CoA  3-hydroxy 3-methylglutaryl coenzyme A  MVA  mevalonate  PBS  phosphate-buffered saline  PI  propidium iodide  RhoA  Ras homologue gene family member A  SQ  squalene  α-SMA  alpha-smooth muscle actin  TRITC  tetrarhodamine isothiocyanate
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