Suppr超能文献

组蛋白八聚体、非洲爪蟾5S RNA基因与转录因子IIIA之间三元复合物的结构分析

Structural analysis of a triple complex between the histone octamer, a Xenopus gene for 5S RNA and transcription factor IIIA.

作者信息

Rhodes D

出版信息

EMBO J. 1985 Dec 16;4(13A):3473-82. doi: 10.1002/j.1460-2075.1985.tb04106.x.

Abstract

This paper reports three experiments concerning the structural relationship between the Xenopus transcription factor IIIA (TFIIIA), the histone octamer and the Xenopus somatic gene for 5S RNA. Quantitative footprinting methods have been used in order to discover where and how TFIIIA and the histone octamer bind to the same gene independently and also in a triple complex. First, DNaseI and DNaseII protection experiments show that TFIIIA binds to positions 45-97 within the gene, in agreement with other workers. Second, the histone octamer takes up a unique, well-defined position with respect to DNA sequence. The nucleosome core extends to position 78 of the gene and therefore overlaps the TFIIIA binding region by approximately 35 bp. Third, it is shown that a triple complex can be formed between TFIIIA, the histone octamer and the 5S RNA gene. TFIIIA displaces the DNA from the histone surface in the 35-bp region of overlap. This has led to a three-dimensional model which explains how RNA polymerase III could interact simultaneously with transcription factors bound at the internal control region of the 5S RNA gene and the start point of transcription. The model also explains how histone H1 could repress transcription of 5S RNA genes.

摘要

本文报道了三项关于非洲爪蟾转录因子IIIA(TFIIIA)、组蛋白八聚体与非洲爪蟾5S RNA体细胞基因之间结构关系的实验。为了探究TFIIIA和组蛋白八聚体分别在何处以及如何独立结合同一基因,以及在三元复合物中如何结合,采用了定量足迹法。首先,DNaseI和DNaseII保护实验表明,TFIIIA与基因内45 - 97位结合,这与其他研究者的结果一致。其次,组蛋白八聚体相对于DNA序列占据一个独特的、明确的位置。核小体核心延伸至基因的78位,因此与TFIIIA结合区域重叠约35个碱基对。第三,研究表明TFIIIA、组蛋白八聚体和5S RNA基因之间可形成三元复合物。在重叠的35个碱基对区域,TFIIIA将DNA从组蛋白表面置换出来。这产生了一个三维模型,该模型解释了RNA聚合酶III如何能同时与结合在5S RNA基因内部控制区域和转录起始点的转录因子相互作用。该模型还解释了组蛋白H1如何抑制5S RNA基因的转录。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67a6/554686/5cf43e7d554b/emboj00278-0111-a.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验