A DNA enzyme that cleaves RNA.
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[1] A. Tulinsky,et al. The structure of alpha-thrombin inhibited by a 15-mer single-stranded DNA aptamer. , 1994, The Journal of biological chemistry.
[2] J W Szostak,et al. In vitro selection of catalytic RNAs. , 1994, Current opinion in structural biology.
[3] G. F. Joyce,et al. In vitro evolution of nucleic acids. , 1994, Current opinion in structural biology.
[4] Gérard Keith,et al. Structure primaire des tRNA , 1972 .
[5] J. Knowles,et al. Evolution of enzyme function and the development of catalytic efficiency. , 1976, Biochemistry.
[6] S. Swaminathan,et al. A DNA aptamer which binds to and inhibits thrombin exhibits a new structural motif for DNA. , 1993, Biochemistry.
[7] Tao Pan,et al. 12 Divalent Metal Ions in RNA Folding and Catalysis , 1993 .
[8] O. Uhlenbeck. A small catalytic oligoribonucleotide , 1987, Nature.
[9] J. Szostak,et al. Selection in vitro of single-stranded DNA molecules that fold into specific ligand-binding structures , 1992, Nature.
[10] J. Feigon,et al. Thrombin-binding DNA aptamer forms a unimolecular quadruplex structure in solution. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[11] R. Symons,et al. Self-cleavage of plus and minus RNAs of a virusoid and a structural model for the active sites , 1987, Cell.
[12] D. Ecker,et al. Combinatorially selected guanosine-quartet structure is a potent inhibitor of human immunodeficiency virus envelope-mediated cell fusion. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[13] A. Klug,et al. Pb(II)-catalysed cleavage of the sugar–phosphate backbone of yeast tRNAPhe—implications for lead toxicity and self-splicing RNA , 1983, Nature.
[14] R. Tritz,et al. RNA catalytic properties of the minimum (-)sTRSV sequence. , 1989, Biochemistry.
[15] G. F. Joyce,et al. Continuous in vitro evolution of bacteriophage RNA polymerase promoters. , 1994, Biochemistry.
[16] D. Williams,et al. Function of specific 2'-hydroxyl groups of guanosines in a hammerhead ribozyme probed by 2' modifications. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[17] N. Pace,et al. The RNA moiety of ribonuclease P is the catalytic subunit of the enzyme , 1983, Cell.
[18] G. F. Joyce,et al. Evolutionary optimization of the catalytic properties of a DNA-cleaving ribozyme. , 1994, Biochemistry.
[19] R. Cedergren,et al. Mixed deoxyribo- and ribo-oligonucleotides with catalytic activity , 1990, Nature.
[20] A. Pyle,et al. Ribozymes: a distinct class of metalloenzymes. , 1993, Science.
[21] M. Sundaralingam,et al. Lead ion binding and RNA chain hydrolysis in phenylalanine tRNA. , 1983, Journal of biomolecular structure & dynamics.
[22] T. Cech. 11 Structure and Mechanism of the Large Catalytic RNAs: Group I and Group II Introns and Ribonuclease P , 1993 .
[23] E. Vermaas,et al. Selection of single-stranded DNA molecules that bind and inhibit human thrombin , 1992, Nature.
[24] O. Uhlenbeck,et al. In vitro selection of RNAs that undergo autolytic cleavage with Pb2+. , 1992, Biochemistry.
[25] T. Cech,et al. Self-splicing RNA: Autoexcision and autocyclization of the ribosomal RNA intervening sequence of tetrahymena , 1982, Cell.
[26] R. Cedergren,et al. The conformation of single-stranded nucleic acids tDNA versus tRNA. , 1990, European journal of biochemistry.
[27] Aaron Klug,et al. Crystallographic and biochemical investigation of the lead(II)-catalyzed hydrolysis of yeast phenylalanine tRNA. , 1985 .
[28] R. Cedergren,et al. Minimum ribonucleotide requirement for catalysis by the RNA hammerhead domain. , 1992, Biochemistry.
[29] G. F. Joyce,et al. Inventing and improving ribozyme function: rational design versus iterative selection methods. , 1994, Trends in biotechnology.
[30] Tao Pan,et al. A small metalloribozyme with a two-step mechanism , 1992, Nature.