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首页> 外文期刊>Cell stem cell >Disrupting Mitochondrial Copper Distribution Inhibits Leukemic Stem Cell Self-Renewal
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Disrupting Mitochondrial Copper Distribution Inhibits Leukemic Stem Cell Self-Renewal

机译:破坏线粒体铜分布抑制白血病干细胞自我更新

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摘要

Leukemic stem cells (LSCs) rely on oxidative metabolism and are differentially sensitive to targeting mitochondrial pathways, which spares normal hematopoietic cells. A subset of mitochondrial proteins is folded in the intermembrane space via the mitochondrial intermembrane assembly (MIA) pathway. We found increased mRNA expression of MIA pathway substrates in acute myeloid leukemia (AML) stem cells. Therefore, we evaluated the effects of inhibiting this pathway in AML. Genetic and chemical inhibition of ALR reduces AML growth and viability, disrupts LSC self-renewal, and induces their differentiation. ALR inhibition preferentially decreases its substrate COX17, a mitochondrial copper chaperone, and knockdown of COX17 phenocopies ALR loss. Inhibiting ALR and COX17 increases mitochondrial copper levels which in turn inhibit S-adenosylhomocysteine hydrolase (SAHH) and lower levels of S-adenosylmethionine (SAM), DNA methylation, and chromatin accessibility to lower LSC viability. These results provide insight into mechanisms through which mitochondrial copper controls epigenetic status and viability of LSCs.
机译:白血病干细胞(LSC)依赖于氧化代谢,对靶向线粒体途径具有差异敏感性,而线粒体途径可以替代正常的造血细胞。线粒体蛋白质的一个子集通过线粒体膜间组装(MIA)途径在膜间空间折叠。我们发现急性髓系白血病(AML)干细胞中MIA通路底物的mRNA表达增加。因此,我们评估了在AML中抑制该途径的效果。ALR的遗传和化学抑制会降低AML的生长和生存能力,扰乱LSC的自我更新,并诱导其分化。ALR抑制优先降低其底物COX17,线粒体铜伴侣,并击倒COX17表型拷贝ALR丢失。抑制ALR和COX17会增加线粒体铜水平,进而抑制S-腺苷高半胱氨酸水解酶(SAHH)和较低水平的S-腺苷甲硫氨酸(SAM)、DNA甲基化和染色质可及性,从而降低LSC活力。这些结果提供了线粒体铜控制LSC表观遗传状态和生存能力的机制。

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  • 来源
    《Cell stem cell》 |2020年第6期|共22页
  • 作者单位

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Toronto Donnelly Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Toronto Donnelly Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Toronto Donnelly Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

    Univ Hlth Network Princess Margaret Canc Ctr Toronto ON Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

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