Conformations of p53 response elements in solution deduced using site-directed spin labeling and Monte Carlo sampling

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Abstract

The tumor suppressor protein p53 regulates numerous signaling pathways by specifically recognizing diverse p53 response elements (REs). Understanding the mechanisms of p53-DNA interaction requires structural information on p53 REs. However, such information is limited as a 3D structure of any RE in the unbound form is not available yet. Here, site-directed spin labeling was used to probe the solution structures of REs involved in p53 regulation of the p21 and Bax genes. Multiple nanometer distances in the p21-RE and BAX-RE, measured using a nucleotide-independent nitroxide probe and double-electron-electron-resonance spectroscopy, were used to derive molecular models of unbound REs from pools of all-atom structures generated by Monte-Carlo simulations, thus enabling analyses to reveal sequence-dependent DNA shape features of unbound REs in solution. The data revealed distinct RE conformational changes on binding to the p53 core domain, and support the hypothesis that sequence-dependent properties encoded in REs are exploited by p53 to achieve the energetically most favorable mode of deformation, consequently enhancing binding specificity. This work reveals mechanisms of p53-DNA recognition, and establishes a new experimental/ computational approach for studying DNA shape in solution that has far-reaching implications for studying protein-DNA interactions. © 2013 The Author(s). Published by Oxford University Press.

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Zhang, X., Dantas Machado, A. C., Ding, Y., Chen, Y., Lu, Y., Duan, Y., … Qin, P. Z. (2014). Conformations of p53 response elements in solution deduced using site-directed spin labeling and Monte Carlo sampling. Nucleic Acids Research, 42(4), 2789–2797. https://doi.org/10.1093/nar/gkt1219

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