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Six1和Eya1的表达可将成年肌肉从慢肌表型重编程为快肌表型。

Six1 and Eya1 expression can reprogram adult muscle from the slow-twitch phenotype into the fast-twitch phenotype.

作者信息

Grifone Raphaelle, Laclef Christine, Spitz François, Lopez Soledad, Demignon Josiane, Guidotti Jacques-Emmanuel, Kawakami Kiyoshi, Xu Pin-Xian, Kelly Robert, Petrof Basil J, Daegelen Dominique, Concordet Jean-Paul, Maire Pascal

机构信息

Departement Génétique, Développement et Pathologie Moléculaire, Institut Cochin-INSERM 567, CNRS UMR 8104, Université Paris V, France.

出版信息

Mol Cell Biol. 2004 Jul;24(14):6253-67. doi: 10.1128/MCB.24.14.6253-6267.2004.

Abstract

Muscle fibers show great differences in their contractile and metabolic properties. This diversity enables skeletal muscles to fulfill and adapt to different tasks. In this report, we show that the Six/Eya pathway is implicated in the establishment and maintenance of the fast-twitch skeletal muscle phenotype. We demonstrate that the MEF3/Six DNA binding element present in the aldolase A pM promoter mediates the high level of activation of this promoter in fast-twitch glycolytic (but not in slow-twitch) muscle fibers. We also show that among the Six and Eya gene products expressed in mouse skeletal muscle, Six1 and Eya1 proteins accumulate preferentially in the nuclei of fast-twitch muscles. The forced expression of Six1 and Eya1 together in the slow-twitch soleus muscle induced a fiber-type transition characterized by the replacement of myosin heavy chain I and IIA isoforms by the faster IIB and/or IIX isoforms, the activation of fast-twitch fiber-specific genes, and a switch toward glycolytic metabolism. Collectively, these data identify Six1 and Eya1 as the first transcriptional complex that is able to reprogram adult slow-twitch oxidative fibers toward a fast-twitch glycolytic phenotype.

摘要

肌纤维在收缩和代谢特性上表现出很大差异。这种多样性使骨骼肌能够完成并适应不同任务。在本报告中,我们表明Six/Eya信号通路与快肌骨骼肌表型的建立和维持有关。我们证明,醛缩酶A pM启动子中存在的MEF3/Six DNA结合元件介导了该启动子在快肌糖酵解(而非慢肌)肌纤维中的高水平激活。我们还表明,在小鼠骨骼肌中表达的Six和Eya基因产物中,Six1和Eya1蛋白优先在快肌细胞核中积累。在慢肌比目鱼肌中共同强制表达Six1和Eya1会诱导纤维类型转变,其特征是肌球蛋白重链I和IIA亚型被更快的IIB和/或IIX亚型取代、快肌纤维特异性基因的激活以及向糖酵解代谢的转变。总体而言,这些数据确定Six1和Eya1是首个能够将成年慢肌氧化纤维重编程为快肌糖酵解表型的转录复合体。

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