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J Cell Sci. 2017 May 1;130(9):1501-1508. doi: 10.1242/jcs.199786. Epub 2017 Apr 12.
2
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3
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Nuclear genome organization: common themes and individual patterns.核基因组组织:共同主题与个体模式。
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6
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Genome organization around nuclear speckles drives mRNA splicing efficiency.基因组在核斑周围的组织驱动 mRNA 剪接效率。
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The probability of chromatin to be at the nuclear lamina has no systematic effect on its transcription level in fruit flies.在果蝇中,染色质位于核层的概率与其转录水平没有系统的关系。
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Distinguishing individual photobodies using Oligopaints reveals thermo-sensitive and -insensitive phytochrome B condensation at distinct subnuclear locations.利用寡核苷酸探针区分个体光体,揭示了在不同亚核位置热敏感和不敏感的光敏色素 B 的凝聚。
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Subnuclear localisation is associated with gene expression more than parental origin at the imprinted Dlk1-Dio3 locus.亚核定位与印迹基因 Dlk1-Dio3 座上的基因表达相关,而不是与亲本来源相关。
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Nuclear Transport Factor 2 (NTF2) suppresses WM983B metastatic melanoma by modifying cell migration, metastasis, and gene expression.核转运因子 2(NTF2)通过改变细胞迁移、转移和基因表达来抑制 WM983B 转移性黑色素瘤。
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Chromatin Conformation in Development and Disease.发育与疾病中的染色质构象
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本文引用的文献

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Chromosome folding and its regulation in health and disease.染色体折叠及其在健康与疾病中的调控。
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Nucleoporin-mediated regulation of cell identity genes.核孔蛋白介导的细胞身份基因调控。
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Spatial Genome Organization and Its Emerging Role as a Potential Diagnosis Tool.空间基因组组织及其作为潜在诊断工具的新作用。
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Compaction and segregation of sister chromatids via active loop extrusion.通过主动环挤压实现姐妹染色单体的凝聚和分离。
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Nucleoporin genes in human diseases.人类疾病中的核孔蛋白基因。
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The 3D Genome as Moderator of Chromosomal Communication.作为染色体通讯调节因子的三维基因组
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Strategies to regulate transcription factor-mediated gene positioning and interchromosomal clustering at the nuclear periphery.调控转录因子介导的基因在核周定位及染色体间聚集的策略。
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Perinuclear Anchoring of H3K9-Methylated Chromatin Stabilizes Induced Cell Fate in C. elegans Embryos.核周锚定 H3K9 甲基化染色质稳定线虫胚胎中诱导的细胞命运。
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Locus-specific gene repositioning in prostate cancer.前列腺癌中位点特异性基因重定位
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CTCF Binding Polarity Determines Chromatin Looping.CTCF 结合的极性决定染色质环。
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核基因定位的原因及后果。

Causes and consequences of nuclear gene positioning.

作者信息

Shachar Sigal, Misteli Tom

机构信息

National Cancer Institute, National Institutes of Health, Bethesda, MD 20892, USA

National Cancer Institute, National Institutes of Health, Bethesda, MD 20892, USA.

出版信息

J Cell Sci. 2017 May 1;130(9):1501-1508. doi: 10.1242/jcs.199786. Epub 2017 Apr 12.

DOI:10.1242/jcs.199786
PMID:28404786
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5450234/
Abstract

The eukaryotic genome is organized in a manner that allows folding of the genetic material in the confined space of the cell nucleus, while at the same time enabling its physiological function. A major principle of spatial genome organization is the non-random position of genomic loci relative to other loci and to nuclear bodies. The mechanisms that determine the spatial position of a locus, and how position affects function, are just beginning to be characterized. Initial results suggest that there are multiple, gene-specific mechanisms and the involvement of a wide range of cellular machineries. In this Commentary, we review recent findings from candidate approaches and unbiased screening methods that provide initial insight into the cellular mechanisms of positioning and their functional consequences. We highlight several specific mechanisms, including tethering of genome regions to the nuclear periphery, passage through S-phase and histone modifications, that contribute to gene positioning in yeast, plants and mammals.

摘要

真核生物基因组的组织方式使得遗传物质能够在细胞核的有限空间内折叠,同时实现其生理功能。空间基因组组织的一个主要原则是基因组位点相对于其他位点和核体的非随机位置。决定一个位点空间位置的机制,以及位置如何影响功能,才刚刚开始被阐明。初步结果表明存在多种基因特异性机制以及广泛的细胞机制的参与。在本述评中,我们回顾了来自候选方法和无偏筛选方法的最新发现,这些发现为定位的细胞机制及其功能后果提供了初步见解。我们重点介绍了几种特定机制,包括基因组区域与核周边的拴系、通过S期和组蛋白修饰,这些机制有助于酵母、植物和哺乳动物中的基因定位。