Loading
PDBj
MenuPDBj@FacebookPDBj@X(formerly Twitter)PDBj@BlueSkyPDBj@YouTubewwPDB FoundationwwPDB
RCSB PDBPDBeBMRBAdv. SearchSearch help

6TQI

I-MOTIF STRUCTURE FORMED FROM THE C STRAND OF A HUMAN TELOMERE FRAGMENT

Summary for 6TQI
Entry DOI10.2210/pdb6tqi/pdb
DescriptorDNA (5'-*TP*AP*AP*CP*CP*CP*TP*AP*A-3') (1 entity in total)
Functional Keywordstelomeric, i-motif, dna
Biological sourceHomo sapiens (Human)
Total number of polymer chains1
Total formula weight2683.80
Authors
Parkinson, G.N.,Wagner, A.,Viladoms-Claverol, J.,Duman, R.,El-Omari, K. (deposition date: 2019-12-16, release date: 2020-06-10, Last modification date: 2024-05-15)
Primary citationZhang, Y.,El Omari, K.,Duman, R.,Liu, S.,Haider, S.,Wagner, A.,Parkinson, G.N.,Wei, D.
Native de novo structural determinations of non-canonical nucleic acid motifs by X-ray crystallography at long wavelengths.
Nucleic Acids Res., 48:9886-9898, 2020
Cited by
PubMed Abstract: Obtaining phase information remains a formidable challenge for nucleic acid structure determination. The introduction of an X-ray synchrotron beamline designed to be tunable to long wavelengths at Diamond Light Source has opened the possibility to native de novo structure determinations by the use of intrinsic scattering elements. This provides opportunities to overcome the limitations of introducing modifying nucleotides, often required to derive phasing information. In this paper, we build on established methods to generate new tools for nucleic acid structure determinations. We report on the use of (i) native intrinsic potassium single-wavelength anomalous dispersion methods (K-SAD), (ii) use of anomalous scattering elements integral to the crystallization buffer (extrinsic cobalt and intrinsic potassium ions), (iii) extrinsic bromine and intrinsic phosphorus SAD to solve complex nucleic acid structures. Using the reported methods we solved the structures of (i) Pseudorabies virus (PRV) RNA G-quadruplex and ligand complex, (ii) PRV DNA G-quadruplex, and (iii) an i-motif of human telomeric sequence. Our results highlight the utility of using intrinsic scattering as a pathway to solve and determine non-canonical nucleic acid motifs and reveal the variability of topology, influence of ligand binding, and glycosidic angle rearrangements seen between RNA and DNA G-quadruplexes of the same sequence.
PubMed: 32453431
DOI: 10.1093/nar/gkaa439
PDB entries with the same primary citation
Experimental method
X-RAY DIFFRACTION (2.95 Å)
Structure validation

227344

PDB entries from 2024-11-13

PDB statisticsPDBj update infoContact PDBjnumon