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细胞核前体mRNA的区室化:释放的转录本向剪接因子储存库的转运。

Nuclear pre-mRNA compartmentalization: trafficking of released transcripts to splicing factor reservoirs.

作者信息

Melcák I, Cermanová S, Jirsová K, Koberna K, Malínský J, Raska I

机构信息

Department of Cell Biology, Institute of Experimental Medicine, Academy of Sciences of Czech Republic, Czech Republic.

出版信息

Mol Biol Cell. 2000 Feb;11(2):497-510. doi: 10.1091/mbc.11.2.497.

Abstract

In the present study, the spatial organization of intron-containing pre-mRNAs of Epstein-Barr virus (EBV) genes relative to location of splicing factors is investigated. The intranuclear position of transcriptionally active EBV genes, as well as of nascent transcripts, is found to be random with respect to the speckled accumulations of splicing factors (SC35 domains) in Namalwa cells, arguing against the concept of the locus-specific organization of mRNA genes with respect to the speckles. Microclusters of splicing factors are, however, frequently superimposed on nascent transcript sites. The transcript environment is a dynamic structure consisting of both nascent and released transcripts, i.e., the track-like transcript environment. Both EBV sequences of the chromosome 1 homologue are usually associated with the track, are transcriptionally active, and exhibit in most cases a polar orientation. In contrast to nascent transcripts (in the form of spots), the association of a post-transcriptional pool of viral pre-mRNA (in the form of tracks) with speckles is not random and is further enhanced in transcriptionally silent cells when splicing factors are sequestered in enlarged accumulations. The transcript environment reflects the intranuclear transport of RNA from the sites of transcription to SC35 domains, as shown by concomitant mapping of DNA, RNA, and splicing factors. No clear vectorial intranuclear trafficking of transcripts from the site of synthesis toward the nuclear envelope for export into the cytoplasm is observed. Using Namalwa and Raji cell lines, a correlation between the level of viral gene transcription and splicing factor accumulation within the viral transcript environment has been observed. This supports a concept that the level of transcription can alter the spatial relationship among intron-containing genes, their transcripts, and speckles attributable to various levels of splicing factors recruited from splicing factor reservoirs. Electron microscopic in situ hybridization studies reveal that the released transcripts are directed toward reservoirs of splicing factors organized in clusters of interchromatin granules. Our results point to the bidirectional intranuclear movement of macromolecular complexes between intron-containing genes and splicing factor reservoirs: the recruitment of splicing factors to transcription sites and movement of released transcripts from DNA loci to reservoirs of splicing factors.

摘要

在本研究中,我们调查了爱泼斯坦-巴尔病毒(EBV)基因含内含子前体mRNA相对于剪接因子位置的空间组织。发现在纳马瓦细胞中,转录活跃的EBV基因以及新生转录本的核内位置相对于剪接因子(SC35结构域)的斑点状聚集是随机的,这与mRNA基因相对于斑点的位点特异性组织概念相悖。然而,剪接因子的微簇经常叠加在新生转录本位点上。转录本环境是一个由新生转录本和释放的转录本组成的动态结构,即轨道状转录本环境。1号染色体同源物的两个EBV序列通常与该轨道相关联,具有转录活性,并且在大多数情况下呈现极性取向。与新生转录本(呈斑点形式)不同,病毒前体mRNA的转录后池(呈轨道形式)与斑点的关联并非随机,并且在转录沉默的细胞中,当剪接因子被隔离在扩大的聚集体中时,这种关联会进一步增强。如DNA、RNA和剪接因子的同步定位所示,转录本环境反映了RNA从转录位点到SC35结构域的核内运输。未观察到转录本从合成位点向核膜进行矢量核内运输以输出到细胞质中的明显现象。使用纳马瓦和拉吉细胞系,我们观察到病毒基因转录水平与病毒转录本环境内剪接因子积累之间的相关性。这支持了一个概念,即转录水平可以改变含内含子基因、其转录本以及由于从剪接因子储存库募集的不同水平剪接因子而产生的斑点之间的空间关系。电子显微镜原位杂交研究表明,释放的转录本指向由染色质间颗粒簇组织的剪接因子储存库方向。我们的结果表明含内含子基因和剪接因子储存库之间存在大分子复合物的双向核内移动:剪接因子被募集到转录位点以及释放的转录本从DNA位点移动到剪接因子储存库。

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