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Acetylation-dependent regulation of endothelial Notch signalling by the SIRT1 deacetylase

机译:SIRT1脱乙酰基酶对内皮Notch信号的乙酰化依赖性调节

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摘要

Notch signalling is a key intercellular communication mechanism that is essential for cell specification and tissue patterning, and which coordinates critical steps of blood vessel growth. Although subtle alterations in Notch activity suffice to elicit profound differences in endothelial behaviour and blood vessel formation, little is known about the regulation and adaptation of endothelial Notch responses. Here we report that the NAD~+-dependent deacetylase SIRT1acts as an intrinsic negative modulator of Notch signalling in endothelial cells. We show that acetylation of the Notch 1 intracellular domain (NICD) on conserved lysines controls the amplitude and duration of Notch responses by altering NICD protein turnover. SIRT1 associates with NICD and functions as a NICD deacetylase, which opposes the acetylation-induced NICD stabilization. Consequently, endothelial cells lacking SIRT1 activity are sensitized to Notch signalling, resulting in impaired growth, sprout elongation and enhanced Notch target gene expression in response to DLL4 stimulation, thereby promoting a non-sprouting, stalk-cell-like phenotype. In vivo, inactivation of Sirtl in zebrafish and mice causes reduced vascular branching and density as a consequence of enhanced Notch signalling. Our findings identify reversible acetylation of the NICD as a molecular mechanism to adapt the dynamics of Notch signalling, and indicate that SIRT1 acts as rheostat to fine-tune endothelial Notch responses.
机译:Notch信号传导是关键的细胞间通讯机制,对于细胞规格和组织模式至关重要,并且可以协调血管生长的关键步骤。尽管Notch活性的细微变化足以引起内皮细胞行为和血管形成的深刻差异,但对内皮Notch反应的调节和适应性知之甚少。在这里我们报道NAD +依赖的脱乙酰基酶SIRT1充当内皮细胞Notch信号的内在负调节剂。我们显示保守的赖氨酸上的Notch 1细胞内域(NICD)的乙酰化通过改变NICD蛋白更新控制Notch反应的幅度和持续时间。 SIRT1与NICD结合并起NICD脱乙酰酶的作用,它反对乙酰化诱导的NICD稳定。因此,缺乏SIRT1活性的内皮细胞对Notch信号敏感,从而响应DLL4刺激导致生长受损,发芽伸长和Notch靶基因表达增强,从而促进了非发芽的茎细胞样表型。在体内,由于Notch信号增强,导致Sirtl在斑马鱼和小鼠体内失活导致血管分支和密度降低。我们的发现确定了NICD的可逆乙酰化是一种适应Notch信号动力学的分子机制,并表明SIRT1充当变阻剂,以微调内皮Notch反应。

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  • 来源
    《Nature》 |2011年第7346期|p.234-238|共5页
  • 作者单位

    Institute for Cardiovascular Regeneration,Centre of Molecular Medicine, Goethe University, D-60590 Frankfurt, Germany;

    IFOM,the FIRC Instituteof Molecular Oncology, IFOM-IEO Campus, 20139 Milan,Italy;

    Vascular Biology Laboratory, London Research Institute - Cancer Research UK, WC2A 3LY London, UK;

    Max Planck Institute for Heart and Lung Research, Department of Cardiac Development and Remodeling, D-61231 Bad Nauheim, Germany;

    Cell Biology and Biophysics, European Molecular Biology Laboratory, D-69117Heidelberg, Germany;

    Vascular Biology Laboratory, London Research Institute - Cancer Research UK, WC2A 3LY London, UK;

    Laboratory of Protein Signaling and Interactions, GxABT, B-5030Gemblouxand Interdisciplinary Cluster for Applied Genoproteomics(GIGA-R), University of Liege, B-4000 Sart-Tilman, Belgium;

    rnLaboratory of Protein Signaling and Interactions, GxABT, B-5030Gemblouxand Interdisciplinary Cluster for Applied Genoproteomics(GIGA-R), University of Liege, B-4000 Sart-Tilman, Belgium;

    Massachusetts General Hospital Cancer Center, Harvard Medical School, Boston, Massachusetts 02114, USA;

    Molecular Signal Transduction, Institute of Neurology (Edinger Institute), Goethe University, D-60590 Frankfurt, Germany;

    Institute for Cardiovascular Regeneration,Centre of Molecular Medicine, Goethe University, D-60590 Frankfurt, Germany;

    Vascular Research Centre, Institute for Cardiovascular Physiology, Goethe University, D-60590 Frankfurt, Germany;

    IFOM,the FIRC Instituteof Molecular Oncology, IFOM-IEO Campus, 20139 Milan,Italy;

    Sirtris,a GSK Company, Cambridge, Massachusetts 02139, USA;

    Molecular Signal Transduction, Institute of Neurology (Edinger Institute), Goethe University, D-60590 Frankfurt, Germany;

    Department of Cardiology, Internal Medicine III, Goethe University, D-60590 Frankfurt, Germany;

    Vascular Biology Laboratory, London Research Institute - Cancer Research UK, WC2A 3LY London, UK, Consultant Group Leader, Vascular Patterning Laboratory, Vesalius Research Center, VIB, Campus Gasthuisberg, B-3000 Leuven, Belgium;

    Institute for Cardiovascular Regeneration,Centre of Molecular Medicine, Goethe University, D-60590 Frankfurt, Germany;

    Institute for Cardiovascular Regeneration,Centre of Molecular Medicine, Goethe University, D-60590 Frankfurt, Germany, Department of Cardiology, Internal Medicine III, Goethe University, D-60590 Frankfurt, Germany;

  • 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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