Hammerhead redux: does the new structure fit the old biochemical data?
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[1] K. Taira,et al. NMR-based reappraisal of the coordination of a metal ion at the pro-Rp oxygen of the A9/G10.1 site in a hammerhead ribozyme. , 2004, Journal of the American Chemical Society.
[2] B. Sproat,et al. Extending the cleavage rules for the hammerhead ribozyme: mutating adenosine15.1 to inosine15.1 changes the cleavage site specificity from N16.2U16.1H17 to N16.2C16.1H17. , 1998, Nucleic Acids Research.
[3] O. Uhlenbeck,et al. Involvement of a Specific Metal Ion in the Transition of the Hammerhead Ribozyme to Its Catalytic Conformation* , 1997, The Journal of Biological Chemistry.
[4] Ricardo Flores,et al. Effects of the trinucleotide preceding the self-cleavage site on eggplant latent viroid hammerheads: differences in co- and post-transcriptional self-cleavage may explain the lack of trinucleotide AUC in most natural hammerheads , 2006, Nucleic acids research.
[5] O. Uhlenbeck,et al. The effect of base mismatches in the substrate recognition helices of hammerhead ribozymes on binding and catalysis. , 1995, Nucleic acids research.
[6] R. Flores,et al. An Extra Nucleotide in the Consensus Catalytic Core of a Viroid Hammerhead Ribozyme , 2001, The Journal of Biological Chemistry.
[7] M. Fedor,et al. Role of an active site adenine in hairpin ribozyme catalysis. , 2005, Journal of molecular biology.
[8] S. Strobel,et al. Defining the chemical groups essential for Tetrahymena group I intron function by nucleotide analog interference mapping. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[9] O. Uhlenbeck,et al. Hammerhead cleavage of the phosphorodithioate linkage. , 2000, Biochemistry.
[10] K. Taira,et al. Significant change in the structure of a ribozyme upon introduction of a phosphorothioate linkage at P9: NMR reveals a conformational fluctuation in the core region of a hammerhead ribozyme , 2000, FEBS letters.
[11] O. Uhlenbeck,et al. A re-investigation of the thio effect at the hammerhead cleavage site. , 1999, Nucleic acids research.
[12] O. Uhlenbeck,et al. Minimal and extended hammerheads utilize a similar dynamic reaction mechanism for catalysis. , 2007, RNA.
[13] L. McLaughlin,et al. Importance of specific adenosine N7-nitrogens for efficient cleavage by a hammerhead ribozyme. A model for magnesium binding. , 1992, Biochemistry.
[14] J. Piccirilli,et al. General acid catalysis by the hepatitis delta virus ribozyme , 2005, Nature chemical biology.
[15] V. DeRose,et al. Characterization of a native hammerhead ribozyme derived from schistosomes. , 2005, RNA.
[16] C. Hammann,et al. The tolerance to exchanges of the Watson Crick base pair in the hammerhead ribozyme core is determined by surrounding elements. , 2007, RNA.
[17] R. Bald,et al. Complete identification of nonbridging phosphate oxygens involved in hammerhead cleavage. , 1997, RNA.
[18] T. S. Wadkins,et al. Chemical rescue, multiple ionizable groups, and general acid-base catalysis in the HDV genomic ribozyme. , 2006, RNA.
[19] Eric Westhof,et al. Functional Hammerhead Ribozymes Naturally Encoded in the Genome of Arabidopsis thalianaw⃞ , 2005, The Plant Cell Online.
[20] John M. Burke,et al. Model for general acid-base catalysis by the hammerhead ribozyme: pH-activity relationships of G8 and G12 variants at the putative active site. , 2005, Biochemistry.
[21] J. Wedekind,et al. Water in the active site of an all-RNA hairpin ribozyme and effects of Gua8 base variants on the geometry of phosphoryl transfer. , 2006, Biochemistry.
[22] O. Uhlenbeck,et al. Hammerheads derived from sTRSV show enhanced cleavage and ligation rate constants. , 2005, Biochemistry.
[23] R. Symons,et al. Self-cleavage of plus and minus RNAs of a virusoid and a structural model for the active sites , 1987, Cell.
[24] A. Pardi,et al. Efficient ligation of the Schistosoma hammerhead ribozyme. , 2007, Biochemistry.
[25] A. Pardi,et al. Identification and characterization of a novel high affinity metal-binding site in the hammerhead ribozyme. , 1999, RNA.
[26] O. Uhlenbeck,et al. Hammerhead ribozyme kinetics. , 1998, RNA.
[27] A. Karpeisky,et al. Chemically modified hammerhead ribozymes with improved catalytic rates. , 1996, Biochemistry.
[28] O. Uhlenbeck,et al. Steric interference modification of the hammerhead ribozyme. , 2002, Chemistry & biology.
[29] A Klug,et al. The crystal structure of an all-RNA hammerhead ribozyme. , 1995, Nucleic acids symposium series.
[30] F. Seela,et al. 1-Deazaadenosine: synthesis and activity of base-modified hammerhead ribozymes. , 1998, Nucleic acids research.
[31] J. Doudna,et al. Distinct sites of phosphorothioate substitution interfere with folding and splicing of the Anabaena group I intron. , 2004, Nucleic acids research.
[32] S. Nakano,et al. Mechanistic characterization of the HDV genomic ribozyme: a mutant of the C41 motif provides insight into the positioning and thermodynamic linkage of metal ions and protons. , 2007, Biochemistry.
[33] J. Grasby,et al. 7-Deazaadenosine: Oligoribonucleotide building block synthesis and autocatalytic hydrolysis of base-modified hammerhead ribozymes , 1993 .
[34] O. Uhlenbeck,et al. Thiophosphate interference experiments locate phosphates important for the hammerhead RNA self-cleavage reaction. , 1990, Nucleic acids research.
[35] D. Herschlag,et al. A core folding model for catalysis by the hammerhead ribozyme accounts for its extraordinary sensitivity to abasic mutations. , 1998, Biochemistry.
[36] Ricardo Flores,et al. Peripheral regions of natural hammerhead ribozymes greatly increase their self‐cleavage activity , 2003, The EMBO journal.
[37] F. Eckstein,et al. Hammerhead ribozyme mechanism: a ribonucleotide 5' to the substrate cleavage site is not essential. , 1999, Biochemistry.
[38] T. Tuschl,et al. Hammerhead ribozymes: importance of stem-loop II for activity. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[39] J. Wedekind,et al. Conformational heterogeneity at position U37 of an all-RNA hairpin ribozyme with implications for metal binding and the catalytic structure of the S-turn. , 2005, Biochemistry.
[40] L. McLaughlin,et al. Importance of specific adenosine N3-nitrogens for efficient cleavage by a hammerhead ribozyme. , 1996, Biochemistry.
[41] D. H. Burke,et al. Artificial tertiary motifs stabilize trans-cleaving hammerhead ribozymes under conditions of submillimolar divalent ions and high temperatures. , 2004, RNA.
[42] A. Rich,et al. Inter-strand C-H...O hydrogen bonds stabilizing four-stranded intercalated molecules: stereoelectronic effects of O4' in cytosine-rich DNA. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[43] N. Vaish,et al. Structure-function studies of the hammerhead ribozyme. , 1997, Current opinion in chemical biology.
[44] G D Stormo,et al. Sequence requirements of the hammerhead RNA self-cleavage reaction. , 1990, Biochemistry.
[45] Anastasia Khvorova,et al. Fast cleavage kinetics of a natural hammerhead ribozyme. , 2004, Journal of the American Chemical Society.
[46] K. Flaherty,et al. Three-dimensional structure of a hammerhead ribozyme , 1994, Nature.
[47] E. Nikonowicz,et al. Phosphorothioate substitution can substantially alter RNA conformation. , 2000, Biochemistry.
[48] D. H. Burke,et al. Extraordinary rates of transition metal ion-mediated ribozyme catalysis. , 2006, RNA.
[49] D. Herschlag,et al. Identification of the hammerhead ribozyme metal ion binding site responsible for rescue of the deleterious effect of a cleavage site phosphorothioate. , 1999, Biochemistry.
[50] B. Stoddard,et al. Capturing the Structure of a Catalytic RNA Intermediate: The Hammerhead Ribozyme , 1996, Science.
[51] D. Mckay,et al. Structure and function of the hammerhead ribozyme: an unfinished story. , 1996, RNA.
[52] Ronald R. Breaker,et al. Kinetics of RNA Degradation by Specific Base Catalysis of Transesterification Involving the 2‘-Hydroxyl Group , 1999 .
[53] O. Uhlenbeck,et al. The structure-function dilemma of the hammerhead ribozyme. , 2005, Annual review of biophysics and biomolecular structure.
[54] O. Uhlenbeck,et al. When to believe what you see. , 2006, Molecular cell.
[55] E. Westhof,et al. Sequence elements outside the hammerhead ribozyme catalytic core enable intracellular activity , 2003, Nature Structural Biology.
[56] W. Scott,et al. Tertiary Contacts Distant from the Active Site Prime a Ribozyme for Catalysis , 2006, Cell.