Vitolo Joseph M, Yang Zungyoon, Basavappa Ravi, Hayes Jeffrey J
Department of Biochemistry and Biophysics, University of Rochester Medical Center, Rochester, NY 14625, USA.
Mol Cell Biol. 2004 Jan;24(2):697-707. doi: 10.1128/MCB.24.2.697-707.2004.
Assembly of a DNA fragment containing a Xenopus borealis somatic-type 5S RNA gene into a nucleosome greatly restricts binding of the 5S gene-specific transcription factor IIIA (TFIIIA) to the 5S internal promoter. However, TFIIIA binds with high affinity to 5S nucleosomes lacking the N-terminal tail domains of the core histones or to nucleosomes in which these domains are hyperacetylated. The degree to which tail acetylation or removal improves TFIIIA binding cannot be simply explained by a commensurate change in the general accessibility of nucleosomal DNA. In order to investigate the molecular basis of how TFIIIA binds to the nucleosome and to ascertain if binding involves all nine zinc fingers and/or displacement of histone-DNA interactions, we examined the TFIIIA-nucleosome complex by hydroxyl radical footprinting and site-directed protein-DNA cross-linking. Our data reveal that the first six fingers of TFIIIA bind and displace approximately 20 bp of histone-DNA interactions at the periphery of the nucleosome, while binding of fingers 7 to 9 appears to overlap with histone-DNA interactions. Molecular modeling based on these results and the crystal structures of a nucleosome core and a TFIIIA-DNA cocomplex yields a precise picture of the ternary complex and a potentially important intermediate in the transition from naïve chromatin structure to productive polymerase III transcription complex.
将含有非洲爪蟾体细胞型5S RNA基因的DNA片段组装到核小体中,会极大地限制5S基因特异性转录因子IIIA(TFIIIA)与5S内部启动子的结合。然而,TFIIIA能以高亲和力结合缺乏核心组蛋白N端尾部结构域的5S核小体,或结合这些结构域发生高度乙酰化的核小体。尾部乙酰化或去除对TFIIIA结合的改善程度,不能简单地用核小体DNA总体可及性的相应变化来解释。为了研究TFIIIA如何与核小体结合的分子基础,并确定结合是否涉及所有九个锌指和/或组蛋白 - DNA相互作用的取代,我们通过羟基自由基足迹法和定点蛋白质 - DNA交联法研究了TFIIIA - 核小体复合物。我们的数据表明,TFIIIA的前六个锌指结合并取代了核小体周边约20 bp的组蛋白 - DNA相互作用,而第7至9个锌指的结合似乎与组蛋白 - DNA相互作用重叠。基于这些结果以及核小体核心和TFIIIA - DNA共复合物的晶体结构进行的分子建模,得出了三元复合物的精确图像以及从原始染色质结构向有活性的聚合酶III转录复合物转变过程中一个潜在重要的中间体。