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Cessation of biomechanical stretch model of C2C12 cells models myocyte atrophy and anaplerotic changes in metabolism using non-targeted metabolomics analysis

机译:使用非靶向代谢组学分析终止C2C12细胞生物力学拉伸模型模拟心肌萎缩和代谢的动脉粥样硬化变化

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摘要

Studies of skeletal muscle disuse, either in patients on bed rest or experimentally in animals (immobilization), have demonstrated that decreased protein synthesis is common, with transient parallel increases in protein degradation. Muscle disuse atrophy involves a process of transition from slow to fast myosin fiber types. A shift toward glycolysis, decreased capacity for fat oxidation, and substrate accumulation in atrophied muscles have been reported, as has accommodation of the liver with an increased gluconeogenic capacity. Recent studies have modeled skeletal muscle disuse by using cyclic stretch of differentiated myotubes (C2C12), which mimics the loading pattern of mature skeletal muscle, followed by cessation of stretch. We utilized this model to determine the metabolic changes using non-targeted metabolomics analysis of the media. We identified increases in amino acids resulting from protein degradation (largely sarcomere) that occurs with muscle atrophy that are involved in feeding the Kreb’s cycle through anaplerosis. Specifically, we identified increased alanine/proline metabolism (significantly elevated proline, alanine, glutamine, and asparagine) and increased α-ketoglutaric acid, the proposed Kreb’s cycle intermediate being fed by the alanine/proline metabolic anaplerotic mechanism. Additionally, several unique pathways not clearly delineated in previous studies of muscle unloading were seen, including: 1) elevated keto-acids derived from branched chain amino aicds (i.e. 2-ketoleucine and 2-keovaline), which feed into a metabolic pathway supplying acetyl-CoA and 2-hydroxybutyrate (also significantly increased); and 2) elevated guanine, an intermediate of purine metabolism, was seen at 12 hours unloading. Given the interest in targeting different aspects of the ubiquitin proteasome system to inhibit protein degradation, this C2C12 system may allow the identification of direct and indirect alterations in metabolism due to anaplerosis or through other yet to be identified mechanisms using a non-targeted metabolomics approach.
机译:对卧床休息的患者或实验动物(固定化)的骨骼肌废用的研究表明,蛋白质合成减少是常见的,蛋白质降解的瞬时平行增加。肌肉废用性萎缩涉及从慢肌球蛋白纤维类型到快肌球蛋白纤维类型的转变过程。已经报道了向糖酵解的转变,脂肪氧化能力的下降以及萎缩性肌肉中底物的积累,以及肝脏中糖原异生能力的增强。最近的研究通过使用分化的肌管(C2C12)的周期性拉伸来模拟骨骼肌的消耗,该循环拉伸模仿了成熟骨骼肌的负荷模式,然后停止拉伸。我们利用该模型通过对介质的非靶向代谢组学分析来确定代谢变化。我们确定了由于肌肉萎缩引起的蛋白质降解(主要是肌节蛋白)降解而导致的氨基酸增加,而肌肉萎缩与通过动脉硬化促进克雷布循环的发生有关。具体来说,我们发现丙氨酸/脯氨酸代谢增加(脯氨酸,丙氨酸,谷氨酰胺和天冬酰胺明显升高)和α-酮戊二酸增加,拟议的Kreb循环中间体是由丙氨酸/脯氨酸代谢过早反应机制提供的。此外,还观察到了在以前的肌肉卸载研究中未明确描述的几种独特途径,包括:1)支链氨基酸(例如2-酮精氨酸和2-酮戊酸)衍生的酮酸含量升高,它们会进入提供乙酰基的代谢途径-CoA和2-羟基丁酸酯(也显着增加); 2)卸荷12小时后发现鸟嘌呤升高,这是嘌呤代谢的中间产物。鉴于有兴趣靶向泛素蛋白酶体系统的不同方面以抑制蛋白质降解,因此该C2C12系统可通过使用非靶向代谢组学方法鉴定由于过早代谢或通过其他尚未被鉴定的机制来识别代谢的直接和间接改变。

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