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原子力显微镜测量及由阿拉伯糖操纵子蛋白结合导致的DNA弯曲模型

Atomic force microscopy measurements and model of DNA bending caused by binding of AraC protein.

作者信息

Lowe Mary, Glezer Benjamin, Toulan Brendan, Hess Brian

机构信息

Physics Department, Loyola University Maryland, Baltimore, Maryland, USA.

出版信息

J Mol Recognit. 2023 Jan;36(1):e2993. doi: 10.1002/jmr.2993. Epub 2022 Sep 30.

Abstract

Atomic force microscopy (AFM) was used to conduct single-molecule imaging of protein/DNA complexes involved in the regulation of the arabinose operon of Escherichia coli. In the presence of arabinose, the transcription regulatory protein AraC binds to a 38 bp region consisting of the araI1 and araI2 half-sites. The domain positioning of full-length AraC, when bound to DNA, was not previously known. In this study, AraC was combined with 302 and 560 bp DNA and arabinose, deposited on a mica substrate, and imaged with AFM in air. High resolution images of 560 bp DNA, where bound protein was visible, showed that AraC induces a bend in the DNA with an angle 60° ± 12° with a median of 55°. These results are consistent with earlier gel electrophoresis measurements that measured the DNA bend angle based on migration rates. By using known domain structures of AraC, geometric constraints, and contacts determined from biochemical experiments, we developed a model of the tertiary and quaternary structure of DNA-bound AraC in the presence of arabinose. The DNA bend angle predicted by the model is in agreement with the measurement values. We discuss the results in view of other regulatory proteins that cause DNA bending and formation of the open complex to initiate transcription.

摘要

原子力显微镜(AFM)被用于对参与大肠杆菌阿拉伯糖操纵子调控的蛋白质/DNA复合物进行单分子成像。在阿拉伯糖存在的情况下,转录调节蛋白AraC与由araI1和araI2半位点组成的38 bp区域结合。全长AraC与DNA结合时的结构域定位此前并不清楚。在本研究中,将AraC与302和560 bp的DNA以及阿拉伯糖混合,沉积在云母基质上,并在空气中用AFM成像。在560 bp DNA的高分辨率图像中可见结合的蛋白质,结果表明AraC使DNA弯曲,弯曲角度为60°±12°,中位数为55°。这些结果与早期基于迁移率测量DNA弯曲角度的凝胶电泳测量结果一致。通过使用已知的AraC结构域结构、几何约束以及从生化实验确定的接触情况,我们构建了在阿拉伯糖存在下与DNA结合的AraC的三级和四级结构模型。该模型预测的DNA弯曲角度与测量值一致。我们结合其他导致DNA弯曲并形成开放复合物以启动转录的调节蛋白来讨论这些结果。

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