6I1V image
Deposition Date 2018-10-30
Release Date 2019-11-20
Last Version Date 2024-05-15
Entry Detail
PDB ID:
6I1V
Keywords:
Title:
Structure of the RNA duplex containing pseudouridine residue (5'-Cp(PSU)pG-3' sequence context)
Biological Source:
Source Organism:
Method Details:
Experimental Method:
Conformers Calculated:
100
Conformers Submitted:
10
Selection Criteria:
structures with the least restraint violations
Macromolecular Entities
Polymer Type:polyribonucleotide
Molecule:RNA (5'-R(*UP*CP*AP*CP*(PSU)P*GP*AP*GP*U)-3')
Chain IDs:A
Chain Length:9
Number of Molecules:1
Biological Source:synthetic construct
Polymer Type:polyribonucleotide
Molecule:RNA (5'-R(*AP*CP*UP*CP*AP*GP*UP*GP*A)-3')
Chain IDs:B
Chain Length:9
Number of Molecules:1
Biological Source:synthetic construct
Ligand Molecules
Primary Citation
Computational and NMR studies of RNA duplexes with an internal pseudouridine-adenosine base pair.
Sci Rep 9 16278 16278 (2019)
PMID: 31700156 DOI: 10.1038/s41598-019-52637-0

Abstact

Pseudouridine (Ψ) is the most common chemical modification present in RNA. In general, Ψ increases the thermodynamic stability of RNA. However, the degree of stabilization depends on the sequence and structural context. To explain experimentally observed sequence dependence of the effect of Ψ on the thermodynamic stability of RNA duplexes, we investigated the structure, dynamics and hydration of RNA duplexes with an internal Ψ-A base pair in different nearest-neighbor sequence contexts. The structures of two RNA duplexes containing 5'-GΨC/3'-CAG and 5'-CΨG/3'-GAC motifs were determined using NMR spectroscopy. To gain insight into the effect of Ψ on duplex dynamics and hydration, we performed molecular dynamics (MD) simulations of RNA duplexes with 5'-GΨC/3'-CAG, 5'-CΨG/3'-GAC, 5'-AΨU/3'-UAA and 5'-UΨA/3'-AAU motifs and their unmodified counterparts. Our results showed a subtle impact from Ψ modification on the structure and dynamics of the RNA duplexes studied. The MD simulations confirmed the change in hydration pattern when U is replaced with Ψ. Quantum chemical calculations showed that the replacement of U with Ψ affected the intrinsic stacking energies at the base pair steps depending on the sequence context. The calculated intrinsic stacking energies help to explain the experimentally observed sequence dependent changes in the duplex stability from Ψ modification.

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