Molecular dynamics investigations of DNA triple helical models: unique features of the Watson-Crick duplex.
暂无分享,去创建一个
[1] R. Sarma,et al. Structure and stability of a DNA triple helix in solution: NMR studies on d(T)6.cntdot.d(A)6.cntdot.d(T)6 and its complex with a minor groove binding drug , 1990 .
[2] Yuen-Kit Cheng,et al. Hoogsteen versus reversed-hoogsteen base pairing: DNA triple helices , 1992 .
[3] R. Wells,et al. The chemistry and biology of unusual DNA structures adopted by oligopurine · oligopyrimidine sequences , 1988, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[4] D W Hukins,et al. Optimised parameters for A-DNA and B-DNA. , 1972, Biochemical and biophysical research communications.
[5] B. Lee,et al. The interpretation of protein structures: estimation of static accessibility. , 1971, Journal of molecular biology.
[6] C. W. Hilbers,et al. Polypurine/polypyrimidine hairpins form a triple helix structure at low pH. , 1990, Nucleic acids research.
[7] E Westhof,et al. Crystallographic refinement of yeast aspartic acid transfer RNA. , 1985, Journal of molecular biology.
[8] E. Taillandier,et al. Triple helical polynucleotidic structures: an FTIR study of the C+ .G. Ctriplet. , 1992, Journal of biomolecular structure & dynamics.
[9] J. Francois,et al. Sequence-specific recognition of the major groove of DNA by oligodeoxynucleotides via triple helix formation. Footprinting studies. , 1988, Nucleic acids research.
[10] P. Dervan,et al. Different conformational families of pyrimidine.purine.pyrimidine triple helices depending on backbone composition. , 1994, Nucleic acids research.
[11] W. Shier. Modification of Tumour Growth with a Defined Glycoprotein Antigen , 1973, Nature.
[12] T. Ackermann,et al. Thermodynamics of double- and triple-helical aggregates formed by self-complementary oligoribonucleotides of the type rAxUy. , 1990, Biochemistry.
[13] D. Praseuth,et al. Sequence-specific binding and photocrosslinking of alpha and beta oligodeoxynucleotides to the major groove of DNA via triple-helix formation. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[14] H. Weintraub,et al. An altered DNA conformation detected by S1 nuclease occurs at specific regions in active chick globin chromatin , 1982, Cell.
[15] J. Dahlberg,et al. Single strands, triple strands, and kinks in H-DNA. , 1988, Science.
[16] J. Feigon,et al. Sugar conformations in intramolecular DNA triplexes determined by couping constants obtained by automated simulation of P.COSY cross peaks , 1992 .
[17] E. Taillandier,et al. Triple helical polynucleotidic structures: sugar conformations determined by FTIR spectroscopy. , 1991, Journal of biomolecular structure & dynamics.
[18] D W Hukins,et al. Optimised parameters for RNA double-helices. , 1972, Biochemical and biophysical research communications.
[19] P. Crosson,et al. Polyamines favor DNA triplex formation at neutral pH. , 1991, Biochemistry.
[20] G. A. van der Marel,et al. Triple helix formation by oligopurine-oligopyrimidine DNA fragments. Electrophoretic and thermodynamic behavior. , 1990, Journal of molecular biology.
[21] J. Feigon,et al. NMR studies of triple-strand formation from the homopurine-homopyrimidine deoxyribonucleotides d(GA)4 and d(TC)4. , 1989, Biochemistry.
[22] Alexander Rich,et al. FORMATION OF A THREE-STRANDED POLYNUCLEOTIDE MOLECULE , 1957 .
[23] J. Feigon,et al. Triple-strand formation in the homopurine:homopyrimidine DNA oligonucleotides d(G-A)4 and d(T-C)4 , 1989, Nature.
[24] R. Shafer,et al. Thermodynamics of triple helix formation: spectrophotometric studies on the d(A)10.2d(T)10 and d(C+3T4C+3).d(G3A4G3).d(C3T4C3) triple helices. , 1990, Nucleic acids research.
[25] R. Lavery,et al. A possible family of B-like triple helix structures: comparison with the Arnott A-like triple helix. , 1993, Biochemistry.
[26] S. Mirkin,et al. Structures of homopurine-homopyrimidine tract in superhelical DNA. , 1986, Journal of biomolecular structure & dynamics.
[27] R. Shafer,et al. Structural analysis of the (dA)10.2(dT)10 triple helix. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[28] P. Dervan,et al. Recognition of thymine adenine.base pairs by guanine in a pyrimidine triple helix motif. , 1989, Science.
[29] S. Diekmann,et al. Definitions and nomenclature of nucleic acid structure parameters. , 1989, The EMBO journal.
[30] S. Strobel,et al. Site-specific cleavage of a yeast chromosome by oligonucleotide-directed triple-helix formation. , 1990, Science.
[31] G. Manzini,et al. Spectroscopic and calorimetric investigation on the DNA triplex formed by d(CTCTTCTTTCTTTTCTTTCTTCTC) and d(GAGAAGAAAGA) at acidic pH. , 1990, Nucleic acids research.
[32] P. Dervan,et al. Thermodynamic characterization of the stability and the melting behavior of a DNA triplex: a spectroscopic and calorimetric study. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[33] L. Kan,et al. Proton NMR and optical spectroscopic studies on the DNA triplex formed by d-A-(G-A)7-G and d-C-(T-C)7-T. , 1991, Journal of biomolecular structure & dynamics.
[34] S. J. Flint,et al. Site-specific oligonucleotide binding represses transcription of the human c-myc gene in vitro. , 1988, Science.
[35] J. Feigon,et al. Proton nuclear magnetic resonance assignments and structural characterization of an intramolecular DNA triplex. , 1992, Journal of molecular biology.
[36] S. Mirkin,et al. DNA H form requires a homopurine–homopyrimidine mirror repeat , 1987, Nature.
[37] R Lavery,et al. Conformational and helicoidal analysis of 30 PS of molecular dynamics on the d(CGCGAATTCGCG) double helix: "curves", dials and windows. , 1989, Journal of biomolecular structure & dynamics.
[38] F. B. Howard,et al. Structure of d(T)n.d(A)n.d(T)n: the DNA triple helix has B-form geometry with C2'-endo sugar pucker. , 1992, Biochemistry.
[39] D. Patel,et al. NMR studies of DNA (R+)n.(Y-)n.(Y+)n triple helices in solution: imino and amino proton markers of T.A.T and C.G.C+ base-triple formation. , 1989, Biochemistry.
[40] S. Arnott,et al. Structures for the polynucleotide complexes poly(dA) with poly (dT) and poly(dT) with poly(dA) with poly (dT). , 1974, Journal of molecular biology.
[41] M. Sundaralingam,et al. Stereochemistry of nucleic acids and their constituents. IV. Allowed and preferred conformations of nucleosides, nucleoside mono‐, di‐, tri‐, tetraphosphates, nucleic acids and polynucleotides , 1969 .
[42] K. Breslauer,et al. Drug binding to higher ordered DNA structures: netropsin complexation with a nucleic acid triple helix. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[43] M. Lenkevich,et al. Slowly Dechlorinated Organic Chloramines , 1982, Science.
[44] R. Rossen,et al. Inhibition of transcription of HIV-1 in infected human cells by oligodeoxynucleotides designed to form DNA triple helices. , 1992, The Journal of biological chemistry.
[45] T. Povsic,et al. Triple helix formation by oligonucleotides on DNA extended to the physiological pH range , 1989 .
[46] C R Calladine,et al. Mechanics of sequence-dependent stacking of bases in B-DNA. , 1982, Journal of molecular biology.
[47] B. Froehler,et al. Oligonucleotide-mediated triple helix formation using an N3-protonated deoxycytidine analog exhibiting pH-independent binding within the physiological range. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[48] P. Dervan,et al. Sequence-specific cleavage of double helical DNA by triple helix formation. , 1987, Science.
[49] S Neidle,et al. Molecular dynamics simulation of the DNA triplex d(TC)5.d(GA)5.d(C+T)5. , 1992, Journal of molecular biology.
[50] Jones Ta,et al. Diffraction methods for biological macromolecules. Interactive computer graphics: FRODO. , 1985, Methods in enzymology.
[51] A. Weis,et al. Elucidation of the sequence-specific third-strand recognition of four Watson-Crick base pairs in a pyrimidine triple-helix motif: T.AT, C.GC, T.CG, and G.TA. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[52] U. Singh,et al. Can oligonucleoside methylphosphonates form a stable triplet with a double DNA helix? , 1990, Anti-cancer drug design.
[53] D. Patel,et al. Three-dimensional homonuclear NOESY-TOCSY of an intramolecular pyrimidine.purine.pyrimidine DNA triplex containing a central G.TA triple: nonexchangeable proton assignments and structural implications. , 1992, Biochemistry.