6YY4 image
Deposition Date 2020-05-04
Release Date 2021-01-20
Last Version Date 2024-06-19
Entry Detail
PDB ID:
6YY4
Keywords:
Title:
Parallel 17-mer DNA G-quadruplex
Biological Source:
Source Organism:
Method Details:
Experimental Method:
Conformers Calculated:
100
Conformers Submitted:
20
Selection Criteria:
structures with the lowest energy
Macromolecular Entities
Polymer Type:polydeoxyribonucleotide
Molecule:DNA (5'-D(*GP*GP*GP*TP*GP*GP*GP*AP*AP*GP*GP*GP*TP*GP*GP*GP*A)-3')
Chain IDs:A
Chain Length:17
Number of Molecules:1
Biological Source:synthetic construct
Ligand Molecules
Primary Citation
Overlapping but distinct: a new model for G-quadruplex biochemical specificity.
Nucleic Acids Res. 49 1816 1827 (2021)
PMID: 33544841 DOI: 10.1093/nar/gkab037

Abstact

G-quadruplexes are noncanonical nucleic acid structures formed by stacked guanine tetrads. They are capable of a range of functions and thought to play widespread biological roles. This diversity raises an important question: what determines the biochemical specificity of G-quadruplex structures? The answer is particularly important from the perspective of biological regulation because genomes can contain hundreds of thousands of G-quadruplexes with a range of functions. Here we analyze the specificity of each sequence in a 496-member library of variants of a reference G-quadruplex with respect to five functions. Our analysis shows that the sequence requirements of G-quadruplexes with these functions are different from one another, with some mutations altering biochemical specificity by orders of magnitude. Mutations in tetrads have larger effects than mutations in loops, and changes in specificity are correlated with changes in multimeric state. To complement our biochemical data we determined the solution structure of a monomeric G-quadruplex from the library. The stacked and accessible tetrads rationalize why monomers tend to promote a model peroxidase reaction and generate fluorescence. Our experiments support a model in which the sequence requirements of G-quadruplexes with different functions are overlapping but distinct. This has implications for biological regulation, bioinformatics, and drug design.

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Primary Citation of related structures