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C2补体多聚腺苷酸化信号的上游序列元件通过两种不同机制激活mRNA 3'末端的形成。

The upstream sequence element of the C2 complement poly(A) signal activates mRNA 3' end formation by two distinct mechanisms.

作者信息

Moreira A, Takagaki Y, Brackenridge S, Wollerton M, Manley J L, Proudfoot N J

机构信息

Sir William Dunn School of Pathology, University of Oxford, Oxford OX1 3RE, UK.

出版信息

Genes Dev. 1998 Aug 15;12(16):2522-34. doi: 10.1101/gad.12.16.2522.

Abstract

The poly(A) signal of the C2 complement gene is unusual in that it possesses an upstream sequence element (USE) required for full activity in vivo. We describe here in vitro experiments demonstrating that this USE enhances both the cleavage and poly(A) addition reactions. We also show that the C2 USE can be cross-linked efficiently to a 55-kD protein that we identify as the polypyrimidine tract-binding protein (PTB), implicated previously in modulation of pre-mRNA splicing. Mutation of the PTB-binding site significantly reduces the efficiency of the C2 poly(A) site both in vivo and in vitro. Furthermore, addition of PTB to reconstituted processing reactions enhances cleavage at the C2 poly(A) site, indicating that PTB has a direct role in recognition of this signal. The C2 USE, however, also increases the affinity of general polyadenylation factors independently for the C2 poly(A) signal as detected by enhanced binding of cleavage-stimulaton factor (CstF). Strikingly, this leads to a novel CstF-dependant enhancement of the poly(A) synthesis phase of the reaction. These studies both emphasize the interconnection between splicing and polyadenylation and indicate an unexpected flexibility in the organization of mammalian poly(A) sites.

摘要

C2补体基因的多聚腺苷酸化信号不同寻常,因为它具有一个体内充分活性所需的上游序列元件(USE)。我们在此描述体外实验,证明该USE增强了切割和多聚腺苷酸化反应。我们还表明,C2 USE能有效地与一种55-kD蛋白交联,我们将其鉴定为多嘧啶序列结合蛋白(PTB),该蛋白先前与前体mRNA剪接的调控有关。PTB结合位点的突变在体内和体外均显著降低了C2多聚腺苷酸化位点的效率。此外,在重组加工反应中添加PTB可增强C2多聚腺苷酸化位点的切割,表明PTB在识别该信号中起直接作用。然而,如通过切割刺激因子(CstF)增强结合所检测到的,C2 USE还独立增加了一般多聚腺苷酸化因子对C2多聚腺苷酸化信号的亲和力。引人注目的是,这导致了反应的多聚腺苷酸合成阶段出现一种新的依赖CstF的增强。这些研究既强调了剪接与多聚腺苷酸化之间的相互联系,也表明了哺乳动物多聚腺苷酸化位点组织中存在意想不到的灵活性。

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