Collard Laura, Herledan Gaëlle, Pincini Alessandra, Guerci Aline, Randrianarison-Huetz Voahangy, Sotiropoulos Athanassia
Inserm U1016, Institut Cochin, F-75014 Paris, France CNRS UMR8104, F-75014 Paris, France Université Paris Descartes, F-75006 Paris, France.
Inserm U1016, Institut Cochin, F-75014 Paris, France CNRS UMR8104, F-75014 Paris, France Université Paris Descartes, F-75006 Paris, France
J Cell Sci. 2014 Dec 15;127(Pt 24):5157-63. doi: 10.1242/jcs.155911. Epub 2014 Oct 24.
Skeletal muscle atrophy is a debilitating process that is associated with a wide variety of conditions including inactivity, disease and aging. Here, we demonstrate that the actin, myocardin-related transcription factors and serum response factor (actin-Mrtf-Srf) pathway is specifically downregulated in the muscle atrophy that is induced through disuse in mice. We show in vivo that the abolition of mechanical signals leads to the rapid accumulation of G-actin in myonuclei and the export of the Srf coactivator Mrtf-A, resulting in a decrease of Mrtf-Srf-dependent transcription that contributes to atrophy. We demonstrate that inhibition of the actin-Mrtf-Srf axis through overexpression of nuclear non-polymerizable actin, through pharmacological inhibition of Mrtf-Srf and through muscle-specific Srf deletion worsens denervation-induced atrophy. Conversely, maintenance of high levels of activity of Srf or Mrtfs in denervated muscle, through overexpression of constitutively active derivatives, counteracts atrophy. Altogether, our data provide new mechanistic insights into the control of muscle mass upon disuse atrophy by the actin-Mrtf-Srf pathway, highlighting Srf as a key mediator of mechanotransduction in muscle.
骨骼肌萎缩是一个使人衰弱的过程,与包括缺乏运动、疾病和衰老在内的多种情况相关。在此,我们证明肌动蛋白、心肌素相关转录因子和血清反应因子(肌动蛋白-Mrtf-Srf)通路在小鼠因废用诱导的肌肉萎缩中特异性下调。我们在体内表明,机械信号的消除导致G-肌动蛋白在肌核中快速积累以及Srf共激活因子Mrtf-A的输出,导致依赖Mrtf-Srf的转录减少,这促成了萎缩。我们证明,通过过表达核内不可聚合的肌动蛋白、通过药理学抑制Mrtf-Srf以及通过肌肉特异性缺失Srf来抑制肌动蛋白-Mrtf-Srf轴会加重去神经支配诱导的萎缩。相反,通过过表达组成型活性衍生物来维持去神经支配肌肉中Srf或Mrtfs的高水平活性可抵消萎缩。总之,我们的数据为肌动蛋白-Mrtf-Srf通路在废用性萎缩时对肌肉质量的控制提供了新的机制见解,突出了Srf作为肌肉机械转导的关键介质。