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UBR5 is a novel E3 ubiquitin ligase involved in skeletal muscle hypertrophy and recovery from atrophy

机译:UBR5是一种新型E3泛素连接酶,涉及骨骼肌肥大和萎缩的恢复

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摘要

Key points We have recently identified that a HECT domain E3 ubiquitin ligase, named UBR5, is altered epigenetically (via DNA methylation) after human skeletal muscle hypertrophy, where its gene expression is positively correlated with increasing lean leg mass after training and retraining. In the present study we extensively investigate this novel and uncharacterised E3 ubiquitin ligase (UBR5) in skeletal muscle atrophy, recovery from atrophy and injury, anabolism and hypertrophy. We demonstrated that UBR5 was epigenetically altered via DNA methylation during recovery from atrophy. We also determined that UBR5 was alternatively regulated versus well characterised E3 ligases, MuRF1/MAFbx, at the gene expression level during atrophy, recovery from atrophy and hypertrophy. UBR5 also increased at the protein level during recovery from atrophy and injury, hypertrophy and during human muscle cell differentiation. Finally, in humans, genetic variations of the UBR5 gene were strongly associated with larger fast‐twitch muscle fibres and strength/power performance versus endurance/untrained phenotypes. Abstract We aimed to investigate a novel and uncharacterized E3 ubiquitin ligase in skeletal muscle atrophy, recovery from atrophy/injury, anabolism and hypertrophy. We demonstrated an alternate gene expression profile for UBR5 vs . well characterized E3‐ligases, MuRF1/MAFbx, where, after atrophy evoked by continuous‐low‐frequency electrical‐stimulation in rats, MuRF1/MAFbx were both elevated, yet UBR5 was unchanged. Furthermore, after recovery of muscle mass post TTX‐induced atrophy in rats, UBR5 was hypomethylated and increased at the gene expression level, whereas a suppression of MuRF1/MAFbx was observed. At the protein level, we also demonstrated a significant increase in UBR5 after recovery of muscle mass from hindlimb unloading in both adult and aged rats, as well as after recovery from atrophy evoked by nerve crush injury in mice. During anabolism and hypertrophy, UBR5 gene expression increased following acute loading in three‐dimensional bioengineered mouse muscle in vitro , and after chronic electrical stimulation‐induced hypertrophy in rats in vivo , without increases in MuRF1/MAFbx. Additionally, UBR5 protein abundance increased following functional overload‐induced hypertrophy of the plantaris muscle in mice and during differentiation of primary human muscle cells. Finally, in humans, genetic association studies (700,000 single nucleotide polymorphisms) demonstrated that the A alleles of rs10505025 and rs4734621 single nucleotide polymorphisms in the UBR5 gene were strongly associated with larger cross‐sectional area of fast‐twitch muscle fibres and favoured strength/power vs . endurance/untrained phenotypes. Overall, we suggest that: (i) UBR5 comprises a novel E3 ubiquitin ligase that is inversely regulated to MuRF1/MAFbx; (ii) UBR5 is epigenetically regulated; and (iii) UBR5 is elevated at both the gene expression and protein level during recovery from skeletal muscle atrophy and hypertrophy.
机译:我们最近鉴定了一个名为Ubr5的张开域E3泛素连接酶,在人骨骼肌肥大后被逐步改变(通过DNA甲基化),其基因表达与训练后的倾斜腿部质量呈正相关。在本研究中,我们在骨骼肌萎缩中广泛地研究了这种新颖的和无特征化的E3泛素连接酶(UBR5),从萎缩和损伤,合成代谢和肥大中恢复。我们证明ubr5在从萎缩期间通过DNA甲基化进行表述表述地改变。我们还确定ubr5在萎缩期间,在基因表达水平下,ubr5与良好的E3连接酶,Murf1 / mafbx在基因表达水平上,从萎缩和肥大中恢复。在萎缩和损伤,肥大和人肌细胞分化期间,ubr5也在蛋白质水平上增加。最后,在人类中,UBR5基因的遗传变化与较大的快速抽搐肌纤维和强度/功率性能相比,与耐久/未训练表型强烈相关。摘要我们旨在探讨一种新颖和无声的E3泛素连接酶在骨骼肌萎缩中,从萎缩/损伤,代谢和肥大中恢复。我们展示了UBR5 VS的替代基因表达谱。精心特征的E3-连接酶,Murf1 / MAFBX,在大鼠中连续低频电刺激引起的萎缩后,Murf1 / Mafbx均升高,但UBr5不变。此外,在大鼠中培养TTX诱导的TTX诱导的萎缩后,UBR5在基因表达水平下uBr5升高,而观察到Murf1 / mafbx的抑制。在蛋白质水平,我们还表明,在成人和老年大鼠中从后肢卸载肌肉质量恢复后,ubr5的显着增加,以及通过小鼠神经压碎损伤引起的萎缩后恢复。在原始和肥大期间,UBR5基因表达在体外急性载荷的急性载荷和体内大鼠大鼠中的慢性电刺激诱导的肥大后增加,而不增加Murf1 / Mafbx。另外,ubr5蛋白质丰度在小鼠的植物肌肉的功能性过载诱导的肥大和原发性人肌细胞的分化期间增加。最后,在人类中,遗传结合研究(& 700,000个单核苷酸多态性)证明了rs10505025和rs4734621的等位基因与ubr5基因中的单核苷酸多态性的单核苷酸多态性与快速抽搐肌纤维的较大横截面积强烈相关/ power vs。耐力/未经训练的表型。总体而言,我们建议:(i)UBR5包括一种新型E3泛素连接酶,其与Murf1 / Mafbx相反; (ii)ubr5在考虑监管; (iii)ubr5在骨骼肌萎缩和肥大恢复期间在基因表达和蛋白质水平中升高。

著录项

  • 来源
    《The Journal of Physiology》 |2019年第14期|共23页
  • 作者单位

    Stem Cells Ageing and Molecular Physiology Unit Exercise Metabolism and Adaptation Research;

    Department of Internal Medicine Division of Endocrinology and Metabolism Carver College of;

    Stem Cells Ageing and Molecular Physiology Unit Exercise Metabolism and Adaptation Research;

    Stem Cells Ageing and Molecular Physiology Unit Exercise Metabolism and Adaptation Research;

    Department of Internal Medicine Division of Endocrinology and Metabolism Carver College of;

    Stem Cells Ageing and Molecular Physiology Unit Exercise Metabolism and Adaptation Research;

    Department of Molecular Biology and GeneticsFederal Research and Clinical Center of Physical;

    Department of Molecular Biology and GeneticsFederal Research and Clinical Center of Physical;

    Department of Molecular Biology and GeneticsFederal Research and Clinical Center of Physical;

    Laboratory of Exercise PhysiologyInstitute of Biomedical Problems of the Russian Academy of;

    Department of Molecular Biology and GeneticsFederal Research and Clinical Center of Physical;

    Exercise Metabolism and Adaptation Research Group Research Institute for Sport and Exercise;

    Department of Molecular Biology and GeneticsFederal Research and Clinical Center of Physical;

    Exercise Metabolism and Adaptation Research Group Research Institute for Sport and Exercise;

    Department of Internal Medicine Division of Endocrinology and Metabolism Carver College of;

    Stem Cells Ageing and Molecular Physiology Unit Exercise Metabolism and Adaptation Research;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 人体生理学;
  • 关键词

    UBR5; EDD1; E3 Ubiquitin Ligase; Hypertrophy; muscle atrophy; muscle injury; DNA methylation; remodelling;

    机译:UBR5;EDD1;E3泛素连接酶;肥大;肌肉萎缩;肌肉损伤;DNA甲基化;重塑;

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