Effects of Mg2+, K+, and H+ on an equilibrium between alternative conformations of an RNA pseudoknot.
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[1] D. Crothers,et al. Conformational changes of transfer RNA. The role of magnesium(II). , 1976, Biochemistry.
[2] H. Krakauer. A thermodynamic analysis of the influence of simple mono-and divalent cations on the conformational transitions of polynucleotide complexes. , 1974, Biochemistry.
[3] J L Sussman,et al. RNA-ligant interactions. (I) Magnesium binding sites in yeast tRNAPhe. , 1977, Nucleic acids research.
[4] D. Herschlag,et al. An RNA chaperone activity of non‐specific RNA binding proteins in hammerhead ribozyme catalysis. , 1994, The EMBO journal.
[5] P. Schimmel,et al. Effects of abnormal base ionizations on Mg2 plus binding to transfer ribonucleic acid as studied by a fluorescent probe. , 1974, Biochemistry.
[6] Lance G. Laing,et al. Stabilization of RNA structure by Mg ions. Specific and non-specific effects. , 1994, Journal of molecular biology.
[7] C Urbanke,et al. Tertiary structure of tRNAPhe (yeast): kinetics and electrostatic repulsion. , 1975, European journal of biochemistry.
[8] D M Crothers,et al. Equilibrium binding of magnesium(II) by Escherichia coli tRNAfMet. , 1976, Biochemistry.
[9] D. Herschlag. RNA Chaperones and the RNA Folding Problem (*) , 1995, The Journal of Biological Chemistry.
[10] P. Zarrinkar,et al. Kinetic intermediates in RNA folding. , 1994, Science.
[11] M. Belfort,et al. Escherichia coli proteins, including ribosomal protein S12, facilitate in vitro splicing of phage T4 introns by acting as RNA chaperones. , 1994, Genes & development.
[12] D. Crothers,et al. Conformational changes of transfer ribonucleic acid. Equilibrium phase diagrams. , 1972, Biochemistry.
[13] P. Traub,et al. Structure and function of Escherichia coli ribosomes. VI. Mechanism of assembly of 30 s ribosomes studied in vitro. , 1969, Journal of molecular biology.
[14] N. Pace,et al. Ion dependence of the Bacillus subtilis RNase P reaction. , 1985, The Journal of biological chemistry.
[15] R. Lecanidou,et al. The thermodynamics and kinetics of conformational changes in 5-S RNA from Escherichia coli. , 1975, European journal of biochemistry.
[16] A Klug,et al. A crystallographic study of metal-binding to yeast phenylalanine transfer RNA. , 1977, Journal of molecular biology.
[17] C. Fierke,et al. Magnesium ions are required by Bacillus subtilis ribonuclease P RNA for both binding and cleaving precursor tRNAAsp. , 1996, Biochemistry.
[18] A. Lesk,et al. Stabilization of the native tertiary stucture of yeast tRNALeu3 by cationic metal complexes. , 1975, Journal of molecular biology.
[19] D. Draper. On the coordination properties of Eu3+ bound to tRNA. , 1985, Biophysical chemistry.
[20] C. Kundrot,et al. Crystal Structure of a Group I Ribozyme Domain: Principles of RNA Packing , 1996, Science.
[21] P. Zarrinkar,et al. Slow folding kinetics of RNase P RNA. , 1996, RNA.
[22] D. Draper,et al. Unusual mRNA pseudoknot structure is recognized by a protein translational repressor , 1989, Cell.
[23] T. Cech,et al. Two major tertiary folding transitions of the Tetrahymena catalytic RNA. , 1994, The EMBO journal.
[24] M. Record. Effects of Na+ and Mg++ ions on the helix–coil transition of DNA , 1975 .
[25] J. Feigon,et al. Proton nuclear magnetic resonance assignments and structural characterization of an intramolecular DNA triplex. , 1992, Journal of molecular biology.
[26] Mark S. Thomas,et al. S4-α mRNA translation repression complex: I. Thermodynamics of formation , 1987 .
[27] P. Schimmel,et al. Cooperative binding of magnesium to transfer ribonucleic acid studied by a fluorescent probe. , 1974, Biochemistry.
[28] D. Bedwell,et al. Regulation of alpha operon gene expression in Escherichia coli. A novel form of translational coupling. , 1987, Journal of molecular biology.
[29] D. Crothers,et al. Conformational changes of transfer ribonucleic acid. Relaxation kinetics of the early melting transition of methionine transfer ribonucleic acid (Escherichia coli). , 1972, Biochemistry.
[30] Sarah A. Woodson,et al. In vivo facilitation of Tetrahymena group I intron splicing in Escherichia coli pre-ribosomal RNA. , 1995, RNA.
[31] Lance G. Laing,et al. Thermodynamics of RNA folding in a conserved ribosomal RNA domain. , 1994, Journal of molecular biology.
[32] D M Crothers,et al. Relaxation kinetics of dimer formation by self complementary oligonucleotides. , 1971, Journal of molecular biology.
[33] T. Cech,et al. Metal ion requirements for sequence-specific endoribonuclease activity of the Tetrahymena ribozyme. , 1989, Biochemistry.
[34] D. Draper,et al. Thermodynamics of folding a pseudoknotted mRNA fragment. , 1994, Journal of molecular biology.
[35] W. Saenger,et al. DNA—Ligand Interactions , 1987, NATO ASI Series.
[36] I. Tinoco,et al. Solution conformation of an RNA hairpin loop. , 1990, Biochemistry.
[37] A. Pardi,et al. In situ Probing of Adenine Protonation in RNA by 13C NMR , 1994 .
[38] J. Changeux,et al. ON THE NATURE OF ALLOSTERIC TRANSITIONS: A PLAUSIBLE MODEL. , 1965, Journal of molecular biology.
[39] T. Lohman,et al. Ion effects on ligand-nucleic acid interactions. , 1976, Journal of molecular biology.
[40] A. Stein,et al. Allosteric interpretation of Mg2+ binding to the denaturable Escherichia coli tRNAGlu2+. , 1976, Biochemistry.