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PUBMED FOR HANDHELDS

Journal Abstract Search


219 related items for PubMed ID: 2752100

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  • 2. Long range structural communication between sequences in supercoiled DNA. Sequence dependence of contextual influence on cruciform extrusion mechanism.
    Sullivan KM, Murchie AI, Lilley DM.
    J Biol Chem; 1988 Sep 15; 263(26):13074-82. PubMed ID: 2843507
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  • 4. Studies of DNA dumbbells VIII. Melting analysis of DNA dumbbells with dinucleotide repeat stem sequences.
    Mandell KE, Vallone PM, Owczarzy R, Riccelli PV, Benight AS.
    Biopolymers; 2006 Jun 15; 82(3):199-221. PubMed ID: 16345003
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  • 8. Effect of magnesium on cruciform extrusion in supercoiled DNA.
    Vologodskaia MY, Vologodskii AV.
    J Mol Biol; 1999 Jun 18; 289(4):851-9. PubMed ID: 10369766
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  • 9. Allosteric interactions between DNA strands and monovalent cations in DNA quadruplex assembly: thermodynamic evidence for three linked association pathways.
    Hardin CC, Corregan MJ, Lieberman DV, Brown BA.
    Biochemistry; 1997 Dec 09; 36(49):15428-50. PubMed ID: 9398273
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  • 10. Melting studies of short DNA hairpins: influence of loop sequence and adjoining base pair identity on hairpin thermodynamic stability.
    Vallone PM, Paner TM, Hilario J, Lane MJ, Faldasz BD, Benight AS.
    Biopolymers; 1999 Oct 05; 50(4):425-42. PubMed ID: 10423551
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  • 11. Influence of global DNA topology on cruciform formation in supercoiled DNA.
    Oussatcheva EA, Pavlicek J, Sankey OF, Sinden RR, Lyubchenko YL, Potaman VN.
    J Mol Biol; 2004 May 07; 338(4):735-43. PubMed ID: 15099741
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  • 12. Large-scale stable opening of supercoiled DNA in response to temperature and supercoiling in (A + T)-rich regions that promote low-salt cruciform extrusion.
    Bowater R, Aboul-ela F, Lilley DM.
    Biochemistry; 1991 Dec 10; 30(49):11495-506. PubMed ID: 1747368
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  • 13. Temperature dependence of the Raman spectrum of DNA. II. Raman signatures of premelting and melting transitions of poly(dA).poly(dT) and comparison with poly(dA-dT).poly(dA-dT).
    Movileanu L, Benevides JM, Thomas GJ.
    Biopolymers; 2002 Mar 10; 63(3):181-94. PubMed ID: 11787006
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  • 14. Localized chemical hyperreactivity in supercoiled DNA: evidence for base unpairing in sequences that induce low-salt cruciform extrusion.
    Furlong JC, Sullivan KM, Murchie AI, Gough GW, Lilley DM.
    Biochemistry; 1989 Mar 07; 28(5):2009-17. PubMed ID: 2541769
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  • 17. Cyclic adduct formation at structural perturbations in supercoiled DNA molecules.
    Lilley DM.
    IARC Sci Publ; 1986 Mar 07; (70):83-99. PubMed ID: 3793194
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  • 19. Osmium tetroxide probing of local DNA structure in linear and supercoiled plasmids containing curvature-inducing sequences.
    Palecek E, Makaturová-Rasovská E, Diekmann S.
    Gen Physiol Biophys; 1988 Aug 07; 7(4):379-93. PubMed ID: 3181745
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  • 20. The mechanism of cruciform formation in supercoiled DNA: initial opening of central basepairs in salt-dependent extrusion.
    Murchie AI, Lilley DM.
    Nucleic Acids Res; 1987 Dec 10; 15(23):9641-54. PubMed ID: 3697079
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