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本文引用的文献

1
Requirement of Neuronal Ribosome Synthesis for Growth and Maintenance of the Dendritic Tree.树突状树的生长和维持对神经元核糖体合成的需求。
J Biol Chem. 2016 Mar 11;291(11):5721-5739. doi: 10.1074/jbc.M115.682161. Epub 2016 Jan 12.
2
L-leucine partially rescues translational and developmental defects associated with zebrafish models of Cornelia de Lange syndrome.L-亮氨酸部分挽救了与科妮莉亚·德·朗格综合征斑马鱼模型相关的翻译和发育缺陷。
Hum Mol Genet. 2015 Mar 15;24(6):1540-55. doi: 10.1093/hmg/ddu565. Epub 2014 Nov 6.
3
A novel ribosomopathy caused by dysfunction of RPL10 disrupts neurodevelopment and causes X-linked microcephaly in humans.由RPL10功能障碍引起的一种新型核糖体病会破坏神经发育并导致人类X连锁小头畸形。
Genetics. 2014 Oct;198(2):723-33. doi: 10.1534/genetics.114.168211.
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Primordial dwarfism gene maintains Lin28 expression to safeguard embryonic stem cells from premature differentiation.原始侏儒症基因维持Lin28表达以保护胚胎干细胞免于过早分化。
Cell Rep. 2014 May 8;7(3):735-46. doi: 10.1016/j.celrep.2014.03.053. Epub 2014 Apr 24.
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Nucleolar stress in Diamond Blackfan anemia pathophysiology.核仁应激在先天性纯红细胞再生障碍性贫血病理生理学中的作用
Biochim Biophys Acta. 2014 Jun;1842(6):765-8. doi: 10.1016/j.bbadis.2013.12.013. Epub 2014 Jan 8.
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Glutamine methylation in histone H2A is an RNA-polymerase-I-dedicated modification.组蛋白 H2A 中的谷氨酰胺甲基化是一种 RNA 聚合酶 I 特异性修饰。
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The central dogma decentralized: new perspectives on RNA function and local translation in neurons.中央教条去中心化:神经元中 RNA 功能和局部翻译的新观点。
Neuron. 2013 Oct 30;80(3):648-57. doi: 10.1016/j.neuron.2013.10.036.
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Stimulation of mTORC1 with L-leucine rescues defects associated with Roberts syndrome.用 L-亮氨酸刺激 mTORC1 可挽救罗伯茨综合征相关缺陷。
PLoS Genet. 2013;9(10):e1003857. doi: 10.1371/journal.pgen.1003857. Epub 2013 Oct 3.
10
Knockdown of human TCF4 affects multiple signaling pathways involved in cell survival, epithelial to mesenchymal transition and neuronal differentiation.敲低人 TCF4 会影响涉及细胞存活、上皮间质转化和神经元分化的多个信号通路。
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在人类神经发育中起关键作用的脑蛋白在核仁中的富集

Nucleolar Enrichment of Brain Proteins with Critical Roles in Human Neurodevelopment.

作者信息

Slomnicki Lukasz P, Malinowska Agata, Kistowski Michal, Palusinski Antoni, Zheng Jing-Juan, Sepp Mari, Timmusk Tonis, Dadlez Michal, Hetman Michal

机构信息

From the ‡Kentucky Spinal Cord Injury Research Center and the Departments of Neurological Surgery and.

¶Mass Spectrometry Laboratory, Institute of Biochemistry and Biophysics, Polish Academy of Sciences, Warsaw, Poland;

出版信息

Mol Cell Proteomics. 2016 Jun;15(6):2055-75. doi: 10.1074/mcp.M115.051920. Epub 2016 Apr 6.

DOI:10.1074/mcp.M115.051920
PMID:27053602
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5083102/
Abstract

To study nucleolar involvement in brain development, the nuclear and nucleolar proteomes from the rat cerebral cortex at postnatal day 7 were analyzed using LC-MS/iTRAQ methodology. Data of the analysis are available via ProteomeXchange with identifier PXD002188. Among 504 candidate nucleolar proteins, the overrepresented gene ontology terms included such cellular compartmentcategories as "nucleolus", "ribosome" and "chromatin". Consistent with such classification, the most overrepresented functional gene ontology terms were related to RNA metabolism/ribosomal biogenesis, translation, and chromatin organization. Sixteen putative nucleolar proteins were associated with neurodevelopmental phenotypes in humans. Microcephaly and/or cognitive impairment were the most common phenotypic manifestations. Although several such proteins have links to ribosomal biogenesis and/or genomic stability/chromatin structure (e.g. EMG1, RPL10, DKC1, EIF4A3, FLNA, SMC1, ATRX, MCM4, NSD1, LMNA, or CUL4B), others including ADAR, LARP7, GTF2I, or TCF4 have no such connections known. Although neither the Alazami syndrome-associated LARP7nor the Pitt-Hopkins syndrome-associated TCF4 were reported in nucleoli of non-neural cells, in neurons, their nucleolar localization was confirmed by immunostaining. In cultured rat hippocampal neurons, knockdown of LARP7 reduced both perikaryal ribosome content and general protein synthesis. Similar anti-ribosomal/anti-translation effects were observed after knockdown of the ribosomal biogenesis factor EMG1 whose deficiency underlies Bowen-Conradi syndrome. Finally, moderate reduction of ribosome content and general protein synthesis followed overexpression of two Pitt-Hopkins syndrome mutant variants of TCF4. Therefore, dysregulation of ribosomal biogenesis and/or other functions of the nucleolus may disrupt neurodevelopment resulting in such phenotypes as microcephaly and/or cognitive impairment.

摘要

为研究核仁在脑发育中的作用,利用液相色谱 - 质谱联用/同位素标记相对和绝对定量(LC-MS/iTRAQ)方法分析了出生后第7天大鼠大脑皮质的细胞核和核仁蛋白质组。分析数据可通过ProteomeXchange获得,标识符为PXD002188。在504种候选核仁蛋白中,过度富集的基因本体术语包括“核仁”、“核糖体”和“染色质”等细胞区室类别。与此分类一致,过度富集的最主要功能基因本体术语与RNA代谢/核糖体生物合成、翻译及染色质组织有关。16种推定的核仁蛋白与人类神经发育表型相关。小头畸形和/或认知障碍是最常见的表型表现。尽管其中一些蛋白与核糖体生物合成和/或基因组稳定性/染色质结构有关(如EMG1、RPL10、DKC1、EIF4A3、FLNA、SMC1、ATRX、MCM4、NSD1、LMNA或CUL4B),但其他蛋白如ADAR、LARP7、GTF2I或TCF4则无此类已知联系。尽管与阿拉扎米综合征相关的LARP7和与皮特 - 霍普金斯综合征相关的TCF4在非神经细胞的核仁中均未被报道,但在神经元中,通过免疫染色证实了它们的核仁定位。在培养的大鼠海马神经元中,敲低LARP7会降低胞体核糖体含量和总体蛋白质合成。在敲低核糖体生物合成因子EMG1后也观察到了类似的抗核糖体/抗翻译作用,EMG1的缺陷是博文 - 康拉迪综合征的病因。最后,在过表达两种皮特 - 霍普金斯综合征突变型TCF4后,核糖体含量和总体蛋白质合成适度降低。因此,核糖体生物合成失调和/或核仁的其他功能可能会破坏神经发育,导致小头畸形和/或认知障碍等表型。