Contribution of the intercalated adenosine at the helical junction to the stability of the gag-pro frameshifting pseudoknot from mouse mammary tumor virus
about
Frameshifting RNA pseudoknots: structure and mechanismRibosomal frameshifting and transcriptional slippage: From genetic steganography and cryptography to adventitious useA loop 2 cytidine-stem 1 minor groove interaction as a positive determinant for pseudoknot-stimulated -1 ribosomal frameshiftingProbKnot: fast prediction of RNA secondary structure including pseudoknots.Comparative studies of frameshifting and nonframeshifting RNA pseudoknots: a mutational and NMR investigation of pseudoknots derived from the bacteriophage T2 gene 32 mRNA and the retroviral gag-pro frameshift site.Salt contribution to RNA tertiary structure folding stabilityThe global structures of a wild-type and poorly functional plant luteoviral mRNA pseudoknot are essentially identical.Overriding standard decoding: implications of recoding for ribosome function and enrichment of gene expression.A conserved RNA pseudoknot in a putative molecular switch domain of the 3'-untranslated region of coronaviruses is only marginally stable.Revealing -1 programmed ribosomal frameshifting mechanisms by single-molecule techniques and computational methodsSingle-molecule mechanical unfolding and folding of a pseudoknot in human telomerase RNA.Predicting electrostatic forces in RNA folding.Importance of diffuse metal ion binding to RNAAssembly mechanisms of RNA pseudoknots are determined by the stabilities of constituent secondary structures.Cooperative and directional folding of the preQ1 riboswitch aptamer domain.Structural lability in stem-loop 1 drives a 5' UTR-3' UTR interaction in coronavirus replication.Pairwise coupling analysis of helical junction hydrogen bonding interactions in luteoviral RNA pseudoknots.Fluorescence competition assay measurements of free energy changes for RNA pseudoknots.The influence of monovalent cation size on the stability of RNA tertiary structures.Predicting 3D structure and stability of RNA pseudoknots in monovalent and divalent ion solutions.Monovalent ions modulate the flux through multiple folding pathways of an RNA pseudoknot
P2860
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P2860
Contribution of the intercalated adenosine at the helical junction to the stability of the gag-pro frameshifting pseudoknot from mouse mammary tumor virus
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2000 nî lūn-bûn
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2000年の論文
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Contribution of the intercalat ...... from mouse mammary tumor virus
@ast
Contribution of the intercalat ...... from mouse mammary tumor virus
@en
Contribution of the intercalat ...... from mouse mammary tumor virus
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type
label
Contribution of the intercalat ...... from mouse mammary tumor virus
@ast
Contribution of the intercalat ...... from mouse mammary tumor virus
@en
Contribution of the intercalat ...... from mouse mammary tumor virus
@nl
prefLabel
Contribution of the intercalat ...... from mouse mammary tumor virus
@ast
Contribution of the intercalat ...... from mouse mammary tumor virus
@en
Contribution of the intercalat ...... from mouse mammary tumor virus
@nl
P2860
P1433
P1476
Contribution of the intercalat ...... from mouse mammary tumor virus
@en
P2093
C A Theimer
P2860
P304
P356
10.1017/S1355838200992057
P407
P577
2000-03-01T00:00:00Z