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Macrophage-derived glutamine boosts satellite cells and muscle regeneration

机译:巨噬细胞衍生的谷氨酰胺促进卫星细胞和肌肉再生

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摘要

Muscle regeneration is sustained by infiltrating macrophages and the consequent activation of satellite cells(1-4). Macrophages and satellite cells communicate in different ways(1-5,) but their metabolic interplay has not been investigated. Here we show, in a mouse model, that muscle injuries and ageing are characterized by intra-tissue restrictions of glutamine. Low levels of glutamine endow macrophages with the metabolic ability to secrete glutamine via enhanced glutamine synthetase (GS) activity, at the expense of glutamine oxidation mediated by glutamate dehydrogenase 1 (GLUD1). Glud1-knockout macrophages display constitutively high GS activity, which prevents glutamine shortages. The uptake of macrophage-derived glutamine by satellite cells through the glutamine transporter SLC1A5 activates mTOR and promotes the proliferation and differentiation of satellite cells. Consequently, macrophage-specific deletion or pharmacological inhibition of GLUD1 improves muscle regeneration and functional recovery in response to acute injury, ischaemia or ageing. Conversely, SLC1A5 blockade in satellite cells or GS inactivation in macrophages negatively affects satellite cell functions and muscle regeneration. These results highlight the metabolic crosstalk between satellite cells and macrophages, in which macrophage-derived glutamine sustains the functions of satellite cells. Thus, the targeting of GLUD1 may offer therapeutic opportunities for the regeneration of injured or aged muscles.
机译:通过渗透巨噬细胞和随后的卫星细胞的激活来维持肌肉再生(1-4)。巨噬细胞和卫星细胞以不同的方式(1-5,)通信,但尚未调查它们的代谢相互作用。在这里,我们在鼠标模型中显示肌肉损伤和老化的特征在于谷氨酰胺的组织内限制。低水平的谷氨酰胺赋予巨噬细胞通过增强的谷氨酰胺合成酶(GS)活性来分泌谷氨酰胺的代谢能力,以谷氨酸脱氢酶1(Glud1)介导的谷氨酰胺氧化。 Glud1-kexpoutout巨噬细胞显示于含有高GS活性的巨大,可防止谷氨酰胺短缺。通过谷氨酰胺转运蛋白SLC1A5通过卫星细胞吸收巨噬细胞衍生的谷氨酰胺激活MTOR并促进卫星细胞的增殖和分化。因此,Glud1的巨噬细胞特异性缺失或药理学抑制改善了肌肉再生和功能恢复,响应急性损伤,缺血或老化。相反,巨噬细胞卫星细胞的SLC1A5封闭在巨噬细胞中产生负面影响卫星细胞功能和肌肉再生。这些结果突出了卫星细胞和巨噬细胞之间的代谢串扰,其中巨噬细胞衍生的谷氨酰胺维持卫星细胞的功能。因此,Glud1的靶向可以为受伤或老年肌肉再生提供治疗机会。

著录项

  • 来源
    《Nature》 |2020年第7835期|626-631|共6页
  • 作者单位

    VIB Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Katholieke Univ Leuven Dept Oncol Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium;

    VIB Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Katholieke Univ Leuven Dept Oncol Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium;

    VIB Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Katholieke Univ Leuven Dept Oncol Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Univ Minho Sch Med Life & Hlth Sci Res Inst Braga Portugal|ICVS & 3Bs PT Govt Associate Lab Braga Portugal|ICVS & 3Bs PT Govt Associate Lab Guimaraes Portugal;

    VIB Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Katholieke Univ Leuven Dept Oncol Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium;

    VIB Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Katholieke Univ Leuven Dept Oncol Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Univ Torino Mol Biotechnol Ctr Turin Italy|Univ Torino Dept Mol Biotechnol & Hlth Sci Turin Italy;

    VIB Lab Angiogenesis & Vasc Metab Ctr Canc Biol Leuven Belgium|Katholieke Univ Leuven Dept Oncol Lab Angiogenesis & Vasc Metab Ctr Canc Biol Leuven Belgium;

    Univ Geneva Dept Cell Physiol & Metab Med Ctr Geneva Switzerland;

    VIB KU Leuven Ctr Brain & Dis Res Leuven Belgium|Katholieke Univ Leuven Dept Neurosci Leuven Belgium|Fdn Cardiovasc Colombia Ctr Invest Floridablanca Colombia;

    Univ Geneva Dept Cell Physiol & Metab Med Ctr Geneva Switzerland;

    ETH Dept Hlth Sci & Technol Zurich Switzerland;

    Univ Lausanne Dept Oncol Ludwig Canc Res Epalinges Switzerland;

    Venetian Inst Mol Med Padua Italy|Univ Padua Dept Biomed Sci Padua Italy|McGill Univ Dept Med Montreal PQ Canada;

    VIB Ctr Canc Biol Metabol Core Facil Leuven Belgium|Katholieke Univ Leuven Dept Oncol Ctr Canc Biol Metabol Core Facil Leuven Belgium;

    VIB Lab Angiogenesis & Vasc Metab Ctr Canc Biol Leuven Belgium|Katholieke Univ Leuven Dept Oncol Lab Angiogenesis & Vasc Metab Ctr Canc Biol Leuven Belgium;

    VIB Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Katholieke Univ Leuven Dept Oncol Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium;

    VIB Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Katholieke Univ Leuven Dept Oncol Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Hasselt Univ UHasselt Fac Rehabil Sci REVAL Diepenbeek Belgium;

    VIB Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Katholieke Univ Leuven Dept Oncol Lab Tumor Inflammat & Angiogenesis Ctr Canc Biol Leuven Belgium|Univ Torino Mol Biotechnol Ctr Dept Mol Biotechnol & Hlth Sci Turin Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 22:15:35

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