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新组装的小核核糖核蛋白颗粒(snRNPs)在斑点形成之前先与卷曲小体结合,这提示了一种细胞核snRNP成熟途径。

Newly assembled snRNPs associate with coiled bodies before speckles, suggesting a nuclear snRNP maturation pathway.

作者信息

Sleeman J E, Lamond A I

机构信息

Department of Biochemistry University of Dundee Wellcome Trust Building, Dow Street, Dundee, DD1 5EH, UK.

出版信息

Curr Biol. 1999 Oct 7;9(19):1065-74. doi: 10.1016/s0960-9822(99)80475-8.

Abstract

BACKGROUND

Small nuclear ribonucleoproteins (snRNPs), which are essential components of the mRNA splicing machinery, comprise small nuclear RNAs, each complexed with a set of proteins. An early event in the maturation of snRNPs is the binding of the core proteins - the Sm proteins - to snRNAs in the cytoplasm followed by nuclear import. Immunolabelling with antibodies against Sm proteins shows that splicing snRNPs have a complex steady-state localisation within the nucleus, the result of the association of snRNPs with several distinct subnuclear structures. These include speckles, coiled bodies and nucleoli, in addition to a diffuse nucleoplasmic compartment. The reasons for snRNP accumulation in these different structures are unclear.

RESULTS

When mammalian cells were microinjected with plasmids encoding the Sm proteins B, D1 and E, each tagged with either the green fluorescent protein (GFP) or yellow-shifted GFP (YFP), a pulse of expression of the tagged proteins was observed. In each case, the newly synthesised GFP/YFP-labelled snRNPs accumulated first in coiled bodies and nucleoli, and later in nuclear speckles. Mature snRNPs localised immediately to speckles upon entering the nucleus after cell division.

CONCLUSIONS

The complex nuclear localisation of splicing snRNPs results, at least in part, from a specific pathway for newly assembled snRNPs. The data demonstrate that the distribution of snRNPs between coiled bodies and speckles is directed and not random.

摘要

背景

小核核糖核蛋白(snRNP)是mRNA剪接机制的重要组成部分,由小核RNA组成,每个小核RNA都与一组蛋白质复合。snRNP成熟的早期事件是核心蛋白(Sm蛋白)在细胞质中与snRNA结合,随后进行核输入。用抗Sm蛋白抗体进行免疫标记显示,剪接snRNP在细胞核内具有复杂的稳态定位,这是snRNP与几种不同的亚核结构结合的结果。这些结构包括斑点、卷曲体和核仁,此外还有弥漫性的核质区室。snRNP在这些不同结构中积累的原因尚不清楚。

结果

当用编码Sm蛋白B、D1和E的质粒对哺乳动物细胞进行显微注射时,每个质粒都标记有绿色荧光蛋白(GFP)或黄移GFP(YFP),观察到标记蛋白的脉冲表达。在每种情况下,新合成的GFP/YFP标记的snRNP首先在卷曲体和核仁中积累,随后在核斑点中积累。成熟的snRNP在细胞分裂后进入细胞核时立即定位于斑点。

结论

剪接snRNP复杂的核定位至少部分是由新组装的snRNP的特定途径导致的。数据表明,snRNP在卷曲体和斑点之间的分布是有方向的,而非随机的。

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