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Focal adhesion kinase is a load-dependent governor of the slow contractile and oxidative muscle phenotype

机译:黏着斑激酶是慢收缩和氧化性肌肉表型的负荷依赖调控因子

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摘要

Striated muscle exhibits a pronounced structural–functional plasticity in response to chronic alterations in loading. We assessed the implication of focal adhesion kinase (FAK) signalling in mechano-regulated differentiation of slow-oxidative muscle. Load-dependent consequences of FAK signal modulation were identified using a multi-level approach after electrotransfer of rat soleus muscle with FAK-expression plasmid vs. empty plasmid-transfected contralateral controls. Muscle fibre-targeted over-expression of FAK in anti-gravitational muscle for 9 days up-regulated transcript levels of gene ontologies underpinning mitochondrial metabolism and contraction in the transfected belly portion. Concomitantly, mRNA expression of the major fast-type myosin heavy chain (MHC) isoform, MHC2A, was reduced. The promotion of the slow-oxidative expression programme by FAK was abolished after co-expression of the FAK inhibitor FAK-related non-kinase (FRNK). Elevated protein content of MHC1 (+9%) and proteins of mitochondrial respiration (+165–610%) with FAK overexpression demonstrated the translation of transcript differentiation in targeted muscle fibres towards a slow-oxidative muscle phenotype. Coincidentally MHC2A protein was reduced by 50% due to protection of muscle from de-differentiation with electrotransfer. Fibre cross section in FAK-transfected muscle was elevated by 6%. The FAK-modulated muscle transcriptome was load-dependent and regulated in correspondence to tyrosine 397 phosphorylation of FAK. In the context of overload, the FAK-induced gene expression became manifest at the level of contraction by a slow transformation and the re-establishment of normal muscle force from the lowered levels with transfection. These results highlight the analytic power of a systematic somatic transgene approach by mapping a role of FAK in the dominant mechano-regulation of muscular motor performance via control of gene expression.
机译:横纹肌表现出明显的结构-功能可塑性,以应对慢性负荷变化。我们评估了粘着斑激酶(FAK)信号传导在慢氧化肌的机械调节分化中的意义。用FAK表达质粒与空质粒转染的对侧对照电转移大鼠比目鱼肌后,采用多级方法鉴定了FAK信号调节的负荷依赖性后果。在反重力肌肉中,针对肌纤维的FAK过表达持续9天,上调了基因本体的转录水平,该水平是转染腹部线粒体代谢和收缩的基础。同时,主要快速型肌球蛋白重链(MHC)亚型MHC2A的mRNA表达降低。在FAK抑制剂FAK相关的非激酶(FRNK)共表达后,FAK取消了慢氧化表达程序的促进作用。具有FAK过表达的MHC1蛋白含量(+ 9%)和线粒体呼吸蛋白含量(+ 165–610%)表明,目标肌纤维向慢氧化表型转化了转录本分化。巧合的是,MHC2A蛋白由于保护肌肉免受电转移引起的去分化而减少了50%。 FAK转染的肌肉中的纤维横截面增加了6%。 FAK调节的肌肉转录组是负载依赖性的,并且与FAK的酪氨酸397磷酸化相对应。在过载的情况下,FAK诱导的基因表达通过缓慢的转化在收缩水平上表现出来,并通过转染降低水平来恢复正常的肌肉力量。这些结果通过定位FAK在通过控制基因表达控制肌肉运动表现的主要机械调节中的作用,突显了系统的体细胞转基因方法的分析能力。

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