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一项关于人类Staf/ZNF143结合位点的全基因组规模定位分析表明,人类Staf/ZNF143在哺乳动物启动子中发挥着广泛作用。

A genome scale location analysis of human Staf/ZNF143-binding sites suggests a widespread role for human Staf/ZNF143 in mammalian promoters.

作者信息

Myslinski Evelyne, Gérard Marie-Aline, Krol Alain, Carbon Philippe

机构信息

Institut de Biologie Moléculaire et Cellulaire, UPR CNRS Architecture et Réactivité de l'ARN, Université Louis Pasteur, 15 Rue René Descartes, 67084 Strasbourg Cedex, France.

出版信息

J Biol Chem. 2006 Dec 29;281(52):39953-62. doi: 10.1074/jbc.M608507200. Epub 2006 Nov 7.

DOI:10.1074/jbc.M608507200
PMID:17092945
Abstract

Staf was originally identified as the transcriptional activator of Xenopus tRNA(Sec) and small nuclear (sn) RNA-type genes. Recently, transcription of seven human (h) protein coding genes was reported to be activated by the human ortholog hStaf/ZNF143. Here we have used a combined in silico and biochemical approach to identify 1175 conserved hStaf/ZNF143-binding sites (SBS) distributed in 938 promoters of four mammalian genomes. The SBS shows a significant positional preference and occurs mostly within 200 bp upstream of the transcription start site. Chromatin immunoprecipitation assays with 295 of the promoters established that 90% contain bona fide SBS. By extrapolating the values of this mapping to the full sizes of the mammalian genomes, we can infer the existence of at least 2500 SBS distributed in 2000 promoters. This unexpected large number strongly suggests that SBS constitutes one of the most widespread transcription factor-binding sites in mammalian promoters. Furthermore, we demonstrated that the presence of the SBS alone is sufficient to direct expression of a luciferase reporter gene, suggesting that hStaf/ZNF143 can recruit per se the transcription machinery.

摘要

Staf最初被鉴定为非洲爪蟾tRNA(Sec)和小核(sn)RNA类型基因的转录激活因子。最近,据报道人类直系同源物hStaf/ZNF143可激活7个人类(h)蛋白质编码基因的转录。在此,我们采用计算机模拟和生化相结合的方法,在四个哺乳动物基因组的938个启动子中鉴定出1175个保守的hStaf/ZNF143结合位点(SBS)。SBS显示出显著的位置偏好性,大多出现在转录起始位点上游200 bp范围内。对295个启动子进行染色质免疫沉淀分析表明,90%的启动子含有真正的SBS。通过将此定位值外推至哺乳动物基因组的完整大小,我们可以推断至少有2500个SBS分布在2000个启动子中。这一意外的庞大数量强烈表明SBS是哺乳动物启动子中分布最广泛的转录因子结合位点之一。此外,我们证明单独存在SBS就足以指导荧光素酶报告基因的表达,这表明hStaf/ZNF143本身就可以招募转录机器。

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