首页> 外文期刊>BMC Genomics >Swimming-induced exercise promotes hypertrophy and vascularization of fast skeletal muscle fibres and activation of myogenic and angiogenic transcriptional programs in adult zebrafish
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Swimming-induced exercise promotes hypertrophy and vascularization of fast skeletal muscle fibres and activation of myogenic and angiogenic transcriptional programs in adult zebrafish

机译:游泳引起的运动促进成年斑马鱼骨骼肌快速纤维的肥大和血管化,并激活成肌和血管生成转录程序

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The adult skeletal muscle is a plastic tissue with a remarkable ability to adapt to different levels of activity by altering its excitability, its contractile and metabolic phenotype and its mass. We previously reported on the potential of adult zebrafish as a tractable experimental model for exercise physiology, established its optimal swimming speed and showed that swimming-induced contractile activity potentiated somatic growth. Given that the underlying exercise-induced transcriptional mechanisms regulating muscle mass in vertebrates are not fully understood, here we investigated the cellular and molecular adaptive mechanisms taking place in fast skeletal muscle of adult zebrafish in response to swimming. Fish were trained at low swimming speed (0.1 m/s; non-exercised) or at their optimal swimming speed (0.4 m/s; exercised). A significant increase in fibre cross-sectional area (1.290?±?88 vs. 1.665?±?106 μm2) and vascularization (298?±?23 vs. 458?±?38 capillaries/mm2) was found in exercised over non-exercised fish. Gene expression profiling by microarray analysis evidenced the activation of a series of complex transcriptional networks of extracellular and intracellular signaling molecules and pathways involved in the regulation of muscle mass (e.g. IGF-1/PI3K/mTOR, BMP, MSTN), myogenesis and satellite cell activation (e.g. PAX3, FGF, Notch, Wnt, MEF2, Hh, EphrinB2) and angiogenesis (e.g. VEGF, HIF, Notch, EphrinB2, KLF2), some of which had not been previously associated with exercise-induced contractile activity. The results from the present study show that exercise-induced contractile activity in adult zebrafish promotes a coordinated adaptive response in fast muscle that leads to increased muscle mass by hypertrophy and increased vascularization by angiogenesis. We propose that these phenotypic adaptations are the result of extensive transcriptional changes induced by exercise. Analysis of the transcriptional networks that are activated in response to exercise in the adult zebrafish fast muscle resulted in the identification of key signaling pathways and factors for the regulation of skeletal muscle mass, myogenesis and angiogenesis that have been remarkably conserved during evolution from fish to mammals. These results further support the validity of the adult zebrafish as an exercise model to decipher the complex molecular and cellular mechanisms governing skeletal muscle mass and function in vertebrates.
机译:成年骨骼肌是一种塑料组织,通过改变其兴奋性,收缩和代谢表型及其质量,具有显着的适应不同水平活动的能力。我们以前曾报道过成年斑马鱼作为运动生理学的易处理实验模型的潜力,确立了其最佳游泳速度,并表明游泳引起的收缩活动增强了体细胞的生长。鉴于尚不完全了解调节脊椎动物肌肉运动的潜在运动诱导转录机制,因此我们研究了成年斑马鱼对游泳的快速骨骼肌中发生的细胞和分子适应机制。以低游泳速度(0.1 m / s;不运动)或以最佳游泳速度(0.4 m / s;运动)训练鱼。在非运动状态下进行运动时,发现纤维横截面积(1.290?±?88 vs. 1.665?±?106μm2)和血管形成(298?±?23 vs. 458?±?38 µs / mm2)显着增加。运动的鱼。通过微阵列分析进行的基因表达谱分析表明,一系列细胞外和细胞内信号分子的复杂转录网络以及参与调节肌肉质量(例如IGF-1 / PI3K / mTOR,BMP,MSTN)的通路的激活激活(例如PAX3,FGF,Notch,Wnt,MEF2,Hh,EphrinB2)和血管生成(例如VEGF,HIF,Notch,EphrinB2,KLF2),其中一些以前并未与运动诱导的收缩活性相关。本研究的结果表明,成年斑马鱼的运动诱发的收缩活动可促进快速肌肉的协调适应性反应,从而导致肥大引起的肌肉质量增加和血管生成引起的血管生成增加。我们建议这些表型适应是运动引起的广泛转录变化的结果。对成年斑马鱼快肌中响应运动而激活的转录网络的分析导致确定了关键的信号传导途径和调节骨骼肌质量,肌生成和血管生成的因子,这些因子在从鱼类到哺乳动物的进化过程中得到了显着的保护。 。这些结果进一步支持了成年斑马鱼作为一种运动模型来解释控制脊椎动物骨骼肌质量和功能的复杂分子和细胞机制的有效性。

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