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Mineralocorticoid receptor antagonists improve membrane integrity independent of muscle force in muscular dystrophy

机译:矿物皮质激素受体拮抗剂改善膜完整性,与肌营养不良的肌肉力无关

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摘要

Mineralocorticoid receptor (MR) drugs have been used clinically for decades to treat cardiovascular diseases. MR antagonists not only show preclinical efficacy for heart in Duchenne muscular dystrophy (DMD) models but also improve skeletal muscle force and muscle membrane integrity. The mechanisms of action of MR antagonists in skeletal muscles are entirely unknown. Since MR are present in many cell types in the muscle microenvironment, it is critical to define cell-intrinsic functions in each cell type to ultimately optimize antagonist efficacy for use in the widest variety of diseases. We generated a new conditional knockout of MR in myofibers and quantified cell-intrinsic mechanistic effects on functional and histological parameters in a DMD mouse model. Skeletal muscle MR deficiency led to improved respiratory muscle force generation and less deleterious fibrosis but did not reproduce MR antagonist efficacy on membrane susceptibility to induced damage. Surprisingly, acute application of MR antagonist to muscles led to improvements in membrane integrity after injury independent of myofiber MR. These data demonstrate that MR antagonists are efficacious to dystrophic skeletal muscles through both myofiber intrinsic effects on muscle force and downstream fibrosis and extrinsic functions on membrane stability. MR antagonists may therefore be applicable for treating more general muscle weakness and possibly other conditions that result from cell injuries.
机译:矿物皮质激素受体(MR)药物已在临床上使用数十年来治疗心血管疾病。拮抗剂先生不仅显示了杜南肌营养不良(DMD)模型的心脏临床前疗效,还可以提高骨骼肌力量和肌膜完整性。骨骼肌拮抗剂MR拮抗剂的作用机制完全是未知的。由于MR在肌肉微环境中存在于许多细胞类型中,因此在每种细胞类型中定义细胞内在功能至关重要,以最终优化在最广泛的疾病中使用的拮抗效力。我们在DMD小鼠模型中产生了MINOBERS MR的新条件敲除,并对核心鼠标模型中的功能和组织学参数进行了量化的细胞内在机械作用。骨骼肌缺乏症导致改善呼吸肌肉力的产生和较少的有害纤维化,但未对膜易感性的抗拮抗效果造成MR拮抗剂疗效。令人惊讶的是,拮抗剂对肌肉的急性应用导致损伤后造成膜完整性的改善,伤势独立于MyoFiber Mr。这些数据表明,拮抗剂先生通过肌纤维的内在效果对肌肉力和下游纤维化和膜稳定性的外本功能有效。因此,拮抗剂可能适用于治疗更一般的肌肉弱点以及可能由细胞损伤引起的其他条件。

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  • 来源
    《Human Molecular Genetics》 |2019年第12期|共16页
  • 作者单位

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

    Ohio State Univ Coll Med Dept Physiol &

    Cell Biol 410 Hamilton Hall 1645 Neil Ave Columbus OH;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 医学遗传学;
  • 关键词

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