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本文引用的文献

1
Notch-Jagged complex structure implicates a catch bond in tuning ligand sensitivity.Notch-Jagged复合体结构表明存在一种捕捉键来调节配体敏感性。
Science. 2017 Mar 24;355(6331):1320-1324. doi: 10.1126/science.aaf9739. Epub 2017 Mar 2.
2
Keratins Are Going Nuclear.角蛋白正在进入细胞核。
Dev Cell. 2016 Aug 8;38(3):227-33. doi: 10.1016/j.devcel.2016.07.022.
3
Vimentin coordinates fibroblast proliferation and keratinocyte differentiation in wound healing via TGF-β-Slug signaling.波形蛋白通过转化生长因子-β-锌指蛋白Snail信号通路协调成纤维细胞增殖和角质形成细胞分化,促进伤口愈合。
Proc Natl Acad Sci U S A. 2016 Jul 26;113(30):E4320-7. doi: 10.1073/pnas.1519197113. Epub 2016 Jul 8.
4
Defining Single Molecular Forces Required for Notch Activation Using Nano Yoyo.使用纳米悠悠球定义 Notch 激活所需的单分子力。
Nano Lett. 2016 Jun 8;16(6):3892-7. doi: 10.1021/acs.nanolett.6b01403. Epub 2016 May 12.
5
Role of Intermediate Filaments in Vesicular Traffic.中间丝在囊泡运输中的作用。
Cells. 2016 Apr 25;5(2):20. doi: 10.3390/cells5020020.
6
The Notch meeting: an odyssey from structure to function.Notch会议:从结构到功能的探索之旅。
Development. 2016 Feb 15;143(4):547-53. doi: 10.1242/dev.131086.
7
Notch signal strength controls cell fate in the haemogenic endothelium.Notch信号强度控制造血内皮中的细胞命运。
Nat Commun. 2015 Oct 14;6:8510. doi: 10.1038/ncomms9510.
8
Keratin-dependent regulation of Aire and gene expression in skin tumor keratinocytes.角蛋白依赖性调节皮肤肿瘤角质形成细胞中Aire和基因表达。
Nat Genet. 2015 Aug;47(8):933-8. doi: 10.1038/ng.3355. Epub 2015 Jul 13.
9
The intracellular domains of Notch1 and Notch2 are functionally equivalent during development and carcinogenesis.在发育和致癌过程中,Notch1和Notch2的细胞内结构域在功能上是等效的。
Development. 2015 Jul 15;142(14):2452-63. doi: 10.1242/dev.125492. Epub 2015 Jun 10.
10
Bidirectional Interplay between Vimentin Intermediate Filaments and Contractile Actin Stress Fibers.中间丝波形蛋白与收缩性肌动蛋白应力纤维的双向相互作用。
Cell Rep. 2015 Jun 16;11(10):1511-8. doi: 10.1016/j.celrep.2015.05.008. Epub 2015 May 28.

Notch 配体在血管生成过程中的选择性调节是由波形蛋白介导的。

Selective regulation of Notch ligands during angiogenesis is mediated by vimentin.

机构信息

Cell Biology, Biosciences, Faculty of Science and Engineering, Åbo Akademi University, FI-20520 Turku, Finland.

Turku Centre for Biotechnology, University of Turku and Åbo Akademi University, FI-20520 Turku, Finland.

出版信息

Proc Natl Acad Sci U S A. 2017 Jun 6;114(23):E4574-E4581. doi: 10.1073/pnas.1703057114. Epub 2017 May 22.

DOI:10.1073/pnas.1703057114
PMID:28533359
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5468602/
Abstract

Notch signaling is a key regulator of angiogenesis, in which sprouting is regulated by an equilibrium between inhibitory Dll4-Notch signaling and promoting Jagged-Notch signaling. Whereas Fringe proteins modify Notch receptors and strengthen their activation by Dll4 ligands, other mechanisms balancing Jagged and Dll4 signaling are yet to be described. The intermediate filament protein vimentin, which has been previously shown to affect vascular integrity and regenerative signaling, is here shown to regulate ligand-specific Notch signaling. Vimentin interacts with Jagged, impedes basal recycling endocytosis of ligands, but is required for efficient receptor ligand transendocytosis and Notch activation upon receptor binding. Analyses of Notch signal activation by using chimeric ligands with swapped intracellular domains (ICDs), demonstrated that the Jagged ICD binds to vimentin and contributes to signaling strength. Vimentin also suppresses expression of Fringe proteins, whereas depletion of vimentin enhances Fringe levels to promote Dll4 signaling. In line with these data, the vasculature in vimentin knockout (VimKO) embryos and placental tissue is underdeveloped with reduced branching. Disrupted angiogenesis in aortic rings from VimKO mice and in endothelial 3D sprouting assays can be rescued by reactivating Notch signaling by recombinant Jagged ligands. Taken together, we reveal a function of vimentin and demonstrate that vimentin regulates Notch ligand signaling activities during angiogenesis.

摘要

Notch 信号通路是血管生成的关键调节因子,其中发芽是由抑制性 Dll4-Notch 信号通路和促进 Jagged-Notch 信号通路之间的平衡来调节的。虽然 Fringe 蛋白修饰 Notch 受体并通过 Dll4 配体增强其激活,但其他平衡 Jagged 和 Dll4 信号通路的机制尚未被描述。中间丝蛋白波形蛋白以前被证明会影响血管完整性和再生信号,在这里被证明可以调节配体特异性 Notch 信号通路。波形蛋白与 Jagged 相互作用,阻碍配体的基础循环内吞作用,但在受体结合时,它对于有效受体-配体转胞吞作用和 Notch 激活是必需的。使用具有交换细胞内结构域 (ICD) 的嵌合配体分析 Notch 信号激活,表明 Jagged ICD 与波形蛋白结合并有助于信号强度。波形蛋白还抑制 Fringe 蛋白的表达,而波形蛋白的耗竭则增强 Fringe 水平以促进 Dll4 信号通路。与这些数据一致的是,波形蛋白敲除 (VimKO) 胚胎和胎盘组织中的血管发育不良,分支减少。通过重组 Jagged 配体重新激活 Notch 信号,可以挽救 VimKO 小鼠主动脉环和内皮 3D 发芽测定中的血管生成中断。总之,我们揭示了波形蛋白的功能,并证明了波形蛋白在血管生成过程中调节 Notch 配体信号通路活性。