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Base Hoogsteen

Fig. 8. Non-Watson-Crick base pairs occurring in double-stranded RNA where — represents the site of attachment to the sugar (a) A—U reverse-Watson-Crick (b) G—C reverse-Watson-Crick (c) A—U Hoogsteen (d) A—U reverse-Hoogsteen (e) G—U wobble and (f) G—U reverse-wobble. Fig. 8. Non-Watson-Crick base pairs occurring in double-stranded RNA where — represents the site of attachment to the sugar (a) A—U reverse-Watson-Crick (b) G—C reverse-Watson-Crick (c) A—U Hoogsteen (d) A—U reverse-Hoogsteen (e) G—U wobble and (f) G—U reverse-wobble.
Fig. 4.3 Triplex invasion by homopyrimidine PNA oligomers. One PNA strand binds via Watson-Crick base pairing (preferably in the antiparallel orientation), while the other binds via Hoogsteen base pairing (preferably in the parallel orientation). It is usually advanta-... Fig. 4.3 Triplex invasion by homopyrimidine PNA oligomers. One PNA strand binds via Watson-Crick base pairing (preferably in the antiparallel orientation), while the other binds via Hoogsteen base pairing (preferably in the parallel orientation). It is usually advanta-...
The formation of three-stranded nucleic acid complexes was first demonstrated over five decades ago [56] but the possible biological role of an extended triplex was expanded by the discovery of the H-DNA structure in natural DNA samples [57-59]. H-DNA is an intermolecular triplex that is generally of the pyrimidine-purine x pyrimidine type ( dot -Watson-Crick pairing and cross Hoogsteen base paring) and can be formed at mirror repeat sequences in supercoiled plasmids [59]. [Pg.162]

Three classes of nucleic acid triple helices have been described for oligonucleotides containing only natural units. They differ according to the base sequences and the relative orientation of the phosphate-deoxyribose backbone of the third strand. All the three classes involve Hoogsteen or reverse Hoogsteen-like hydrogen bonding interaction between the triple helix form-... [Pg.163]

Fig. 5. Possible base-pairing interactions for the quadruplex homodimer. Hoogsteen pairings of the parallel stranded PtDNA duplex requires protonation of the GC pair. Adapted from Ref. (28). Fig. 5. Possible base-pairing interactions for the quadruplex homodimer. Hoogsteen pairings of the parallel stranded PtDNA duplex requires protonation of the GC pair. Adapted from Ref. (28).
Fig. 38. Solid-state interactions of 37 involving Hoogsteen base-pairing of the coordinated adenine and the pendant thymine. Fig. 38. Solid-state interactions of 37 involving Hoogsteen base-pairing of the coordinated adenine and the pendant thymine.
Fig. 9.2 Part of a quantitative- /NN HNN-COSY spectrum of a 1.5 mM uniformly 13C/15N-labeled intramolecular DNA triplex. This triplex consists of five Hoogsteen-Watson-Crick T A-T and three Hoogsteen C+ G-C base triplets. The spectral region corresponds to the 10 imino resonances of the Hoogsteen-Watson-Crick T A-T triplets. The data matrix consisted of 250 (q) X1024 (i2) data points (where n refers to complex points) with acquisition times of 45 ms (tn) and 85 ms... Fig. 9.2 Part of a quantitative- /NN HNN-COSY spectrum of a 1.5 mM uniformly 13C/15N-labeled intramolecular DNA triplex. This triplex consists of five Hoogsteen-Watson-Crick T A-T and three Hoogsteen C+ G-C base triplets. The spectral region corresponds to the 10 imino resonances of the Hoogsteen-Watson-Crick T A-T triplets. The data matrix consisted of 250 (q) X1024 (i2) data points (where n refers to complex points) with acquisition times of 45 ms (tn) and 85 ms...

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See also in sourсe #XX -- [ Pg.259 , Pg.260 , Pg.267 , Pg.268 ]




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Base reverse Hoogsteen

Base-pairing, nucleic acids Hoogsteen

Hoogsteen

Hoogsteen base pair reversed

Hoogsteen base pairing

Hoogsteen base pairs

Hoogsteen/Watson-Crick base pairs

Nucleic Hoogsteen base pairs

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