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T R Cech

Publications and source records attributed to T R Cech.

At least 163 records · Page 9Linked to original sources

A Tetrahymena intron nucleotide connected to the GTP/arginine site.

We have substituted all nucleotides at intron nucleotide 260 (N260) in transcripts related to the self-splicing Tetrahymena rRNA. Substitution slightly affects the binding and reaction of GTP with this group I catalytic center; kcat/Km varies over a three-fold range. The base of N260 therefore communicates with the rG site, but is unlikely to bond directly to GTP. Different nucleotides at this position also alter the binding of L-arginine to the intron, measured by inhibition of the reaction with GTP. Effects of similar small magnitude on interaction of RNA with both GTP and L-arginine support the previous argument from kinetic and structural comparison (Yarus, M. (1988) Science 240, 1751) that placed the two ligands of the RNA in the same binding site. G260 RNA shows the greatest affinity for both D- and L-arginine, but uniquely lacks stereoselectivity for the amino acid. Therefore G260 alters spatial relations within the G site, otherwise conserved in C260, U260, and A260 RNA's. Guanyl urea was used as a probe for the G/guanidino H-bonding part of the rG/arginine site. G260 RNA's dissociation constant for guanyl urea is similar to that of the other RNA's, suggesting that G260 RNA is unaltered at the G/guanidino end of the rG/arginine binding site. To account for all observations, we suggest that the G260 substitution alters the relative location of the RNA backbone near the 5' exon-intron junction, making this location more flexible and closer to the alpha-NH3+'s of L- and D-arginine.

Animals↗

Metal ion requirements for sequence-specific endoribonuclease activity of the Tetrahymena ribozyme.

A shortened form of the self-splicing intervening sequence RNA of Tetrahymena thermophila acts as an enzyme, catalyzing sequence-specific cleavage of RNA substrates. We have now examined the metal ion requirements of this reaction. Mg2+ and Mn2+ are the only metal ions that by themselves give RNA enzyme activity. Atomic absorption spectroscopy indicates that Zn, Cu, Co, and Fe are not present in amounts equimolar to the RNA enzyme and when added to reaction mixtures do not facilitate cleavage. Thus, these ions can be eliminated as cofactors for the reaction. While Ca2+ has no activity by itself, it alleviates a portion of the Mg2+ requirement; 1 mM Ca2+ reduces the Mg2+ optimum from 2 to 1 mM. These results, combined with studies of the reactivity of mixtures of metal ions, lead us to postulate that two classes of metal ion binding sites are required for catalysis. Class 1 sites have more activity with Mn2+ than with Mg2+, with the other divalent ions and Na+ and K+ having no activity. It is not known if ions located at class 1 sites have specific structural roles or are directly involved in active-site chemistry. Class 2 sites, which are presumably structural, have an order of preference Mg2+ greater than or equal to Ca2+ greater than Mn2+ and Ca2+ greater than Sr2+ greater than Ba2+, with Zn2+, Cu2+, Co2+, Na+, and K+ giving no detectable activity over the concentration range tested.

Animals↗

Defining the inside and outside of a catalytic RNA molecule.

Ribozymes are RNA molecules that catalyze biochemical reactions. Fe(II)-EDTA, a solvent-based reagent which cleaves both double- and single-stranded RNA, was used to investigate the structure of the Tetrahymena ribozyme. Regions of cleavage alternate with regions of substantial protection along the entire RNA molecule. In particular, most of the catalytic core shows greatly reduced cleavage. These data constitute experimental evidence that an RNA enzyme, like a protein enzyme, has an interior and an exterior. Determination of positions where the phosphodiester backbone of the RNA is on the inside or on the outside of the molecule provides major constraints for modeling the three-dimensional structure of the Tetrahymena ribozyme. This approach should be generally informative for structured RNA molecules.

Animals↗

Oxytricha telomeric nucleoprotein complexes reconstituted with synthetic DNA.

The telomere binding protein from macronuclei of Oxytricha nova binds macronuclear DNA in vitro, protecting the 3'-terminal single-stranded (T4G4)2 tail from chemical and enzymatic probes. We have used synthetic oligodeoxynucleotides to study the binding properties of the telomere protein. It binds at the 3' end of single-stranded oligonucleotides that have the sequence (T4G4)n, where n greater than or equal to 2, reconstituting the methylation protection seen with macronuclear DNA. Three oligonucleotide.protein complexes are resolved in nondenaturing gels, all specific for this sequence. Single-stranded oligonucleotides that have one or more repeats of the sequence C4A4 are also recognized, forming a single complex. The dissociation constant for (T4G4)4 is about 19 nM, and for macronuclear DNA is at least 20-fold lower. The basis for this difference is not fully understood, but it is not simply due to the absence of a (C4A4)2.5.(G4T4)2.5 region on the oligonucleotide. Transversions of T's to A's or of G's to C's in the 3' tail portion prevent binding. Changing T's to dU's does not prevent binding, indicating that the hydrophobic 5-methyl group is not required for binding as had been suggested from the salt-stability of the complex. The properties of the DNA-protein complex suggest a revised model for telomere synthesis in Oxytricha.

Animals↗

Stereochemistry of RNA cleavage by the Tetrahymena ribozyme and evidence that the chemical step is not rate-limiting.

The intervening sequence of the ribosomal RNA precursor of Tetrahymena is a catalytic RNA molecule, or ribozyme. Acting as a sequence-specific endoribonuclease, it cleaves single-stranded RNA substrates with concomitant addition of guanosine. The chemistry of the reaction has now been studied by introduction of a single phosphorothioate in the substrate RNA at the cleavage site. Kinetic studies show no significant effect of this substitution on kcat (rate constant) or Km (Michaelis constant), providing evidence that some step other than the chemical step is rate-limiting. Product analysis reveals that the reaction proceeds with inversion of configuration at phosphorus, consistent with an in-line, SN2 (P) mechanism. Thus, the ribozyme reaction is in the same mechanistic category as the individual displacement reactions catalyzed by protein nucleotidyltransferases, phosphotransferases, and nucleases.

Animals↗

Reverse self-splicing of the tetrahymena group I intron: implication for the directionality of splicing and for intron transposition.

Using short oligoribonucleotides as ligated exon substrates, we show that splicing of the Tetrahymena rRNA group I intron is fully reversible in vitro. Incubation of ligated exon RNA with linear intron produces a molecule in which the splice site sequences of the precursor are reformed. Reversal of self-splicing is favored by high RNA concentration, high magnesium and temperature, and the absence of guanosine. 5' exon sequences that can pair with the internal guide sequence of the intron are required, whereas 3' exon sequences are not essential. Integration of the intron into ligated exon substrates that have the ability to form stem-loop structures is reduced at least one order of magnitude over short, unstructured substrates. We propose that the formation of these structures helps drive splicing in the forward direction. We also show that the Tetrahymena intron can integrate into a beta-globin transcript. This has implications for transposition of group I introns.

Animals↗

Properties of the telomeric DNA-binding protein from Oxytricha nova.

Telomeres of Oxytricha macronuclear DNA exist as discrete DNA-protein complexes. Different regions of each complex display characteristic DNA-protein interactions. In the most terminal region, binding of a 43- and a 55-kDa protein to the telomeric DNA appears to account for all the DNA-protein interactions that can be detected by chemical and nuclease footprinting. We have used gradient sedimentation and protein-protein cross-linking to establish that the 43- and 55-kDa proteins are subunits of a heterodimer. Both subunits are very basic, which is unexpected considering the resistance of the DNA-protein interaction to high concentrations of salt. It is extremely difficult to dissociate the two subunits either from telomeric DNA or from each other. Even after extensive treatment of protein preparations with nuclease, a fragment of the 3' tail from macronuclear DNA remains bound to the protein. A wide range of conditions was screened for dissociation of the subunits from the DNA and/or from each other. Dissociation was only obtained by using conditions that caused some inactivation of the DNA-binding capacity of the protein. The use of reagents that covalently modify sulfydryl groups during the purification procedure facilitates preparation of telomere protein with full DNA-binding activity.

Animals↗

A conserved base pair within helix P4 of the Tetrahymena ribozyme helps to form the tertiary structure required for self-splicing.

Site-specific mutagenesis of the self-splicing Tetrahymena intron has been used to investigate the function of C109-G212, a conserved base pair in the P4 stem of group I introns. Mutation of C109 to G affects splicing only slightly, whereas mutation of G212 to A or C reduces the rate of splicing substantially (500-fold reduction in kcat/Km under standard in vitro splicing conditions for the G212C mutant). Splicing activity of the compensatory double mutant (C109G:G212C) is intermediate between those of the two single mutants. Thus, the stability of the P4 stem as well as the identity of the base at position 212 are important for self-splicing. Single and double mutants containing the G212C substitution have a decreased temperature optimum for self-splicing and are partially Mg2+ suppressible, both indicative of structural destabilization. Chemical structure mapping indicates that the mutations do not redirect the global folding of the RNA, but affect the structure locally and at one other site (A183) that is distant in the secondary structure. We propose that, in addition to its pairing in P4, G212 is involved in a base triplet or an alternate base pair that contributes to the catalytically active tertiary structure of the ribozyme.

Animals↗

Specificity for 3',5'-linked substrates in RNA-catalyzed RNA polymerization.

The finding that ribozymes can catalyze RNA chain elongation has led to the proposal that an early self-replicating system could have consisted of RNA alone. In such a chain elongation reaction, the Tetrahymena ribozyme was found to select 3',5'-linked substrates from a pool that contained a large molar excess of 2',5'-linked dinucleotides. The enzyme neither reacted with nor was inhibited by 2',5' phosphodiester linkages. The ability to exclude incorrectly linked substrates would have conferred an important selective advantage to a primordial RNA molecule with RNA replicase activity.

Animals↗

Alteration of substrate specificity for the endoribonucleolytic cleavage of RNA by the Tetrahymena ribozyme.

A shortened form of the intervening sequence of the self-splicing RNA from Tetrahymena thermophila catalyzes sequence-specific cleavage of RNA. Cleavage site selection involves a base-pairing interaction between the substrate RNA and a binding site within the intervening sequence. Single-base changes in this binding site were previously shown to alter substrate specificity in a predictable manner. To examine the generality with which substrate specificity can be altered, six variant catalytic RNAs (ribozymes) have been produced with two- or three-base changes in the active site. Each ribozyme cleaves its predicted substrate. The conditions required for good reactivity and for discrimination against cleavage at mismatched sites vary and were independently determined for each ribozyme.

Animals↗

The conserved U.G pair in the 5' splice site duplex of a group I intron is required in the first but not the second step of self-splicing.

Group I self-splicing introns have a 5' splice site duplex (P1) that contains a single conserved base pair (U.G). The U is the last nucleotide of the 5' exon, and the G is part of the internal guide sequence within the intron. Using site-specific mutagenesis and analysis of the rate and accuracy of splicing of the Tetrahymena thermophila group I intron, we found that both the U and the G of the U.G pair are important for the first step of self-splicing (attack of GTP at the 5' splice site). Mutation of the U to a purine activated cryptic 5' splice sites in which a U.G pair was restored; this result emphasizes the preference for a U.G at the splice site. Nevertheless, some splicing persisted at the normal site after introduction of a purine, suggesting that position within the P1 helix is another determinant of 5' splice site choice. When the U was changed to a C, the accuracy of splicing was not affected, but the Km for GTP was increased by a factor of 15 and the catalytic rate constant was decreased by a factor of 7. Substitution of U.A, U.U, G.G, or A.G for the conserved U.G decreased the rate of splicing by an even greater amount. In contrast, mutation of the conserved G enhanced the second step of splicing, as evidenced by a trans-splicing assay. Furthermore, a free 5' exon ending in A or C instead of the conserved U underwent efficient ligation. Thus, unlike the remainder of the P1 helix, which functions in both the first and second steps of self-splicing, the conserved U.G appears to be important only for the first step.

Animals↗

RNA as an enzyme.

The catalytic activity of ribonucleic acid is reviewed, with the intervening sequence (IVS) of the ribosomal RNA precursor of Tetrahymena serving as a major example. The IVS catalyzes its own excision from the precursor RNA and at the same time ligation of the flanking sequences, a reaction termed self-splicing. The excised IVS RNA can act as an enzyme to catalyze sequence-specific cleavage and ligation reactions on substrate RNA molecules. The RNA polymerization activity of the IVS supports the possibility that RNA catalysis could have been important in establishing a prebiotic self-replicating system. Other systems in which RNA catalysis has been found include related group I IVSs, group II IVSs, ribonuclease P, and certain plant infectious RNAs.

Animals↗

Conserved sequences and structures of group I introns: building an active site for RNA catalysis--a review.

Group I introns fold to form an active site to mediate their own RNA splicing. Sequence elements conserved among the available set of 66 group I introns are compiled. Comparative sequence analysis leads to the prediction of some conserved structural features that have not been widely appreciated. The possible significance of conserved nucleotides within base-paired duplexes is discussed; they might be involved in base triplets or alternate pairing interactions.

Introns↗

Sequence-specific endoribonuclease activity of the Tetrahymena ribozyme: enhanced cleavage of certain oligonucleotide substrates that form mismatched ribozyme-substrate complexes.

A shortened form of the self-splicing intervening sequence RNA of Tetrahymena acts as a sequence-specific endoribonuclease. Specificity of cleavage is determined by Watson-Crick base pairing between the active site of the RNA enzyme (ribozyme) and its RNA substrate [Zaug, A. J., Been, M. D., & Cech, T. R. (1986) Nature (London) 324, 429-433]. Surprisingly, single-base changes in the substrate RNA 3 nucleotides preceding the cleavage site, giving a mismatched substrate-ribozyme complex, enhance the rate of cleavage. Mismatched substrates show up to a 100-fold increase in kcat and, in some cases, in kcat/Km. A mismatch introduced by changing a nucleotide in the active site of the ribozyme has a similar effect. Addition of 2.5 M urea or 3.8 M formamide or decreasing the divalent metal ion concentration from 10 to 2 mM reverses the substrate specificity, allowing the ribozyme to discriminate against the mismatched substrate. The effect of urea is to decrease kcat and kcat/Km for cleavage of the mismatched substrate; Km is not significantly affected at 0-2.5 M urea. Thus, progressive destabilization of ribozyme-substrate pairing by mismatches or by addition of a denaturant such as urea first increases the rate of cleavage to an optimum value and then decreases the rate.

Animals↗

Ribozymes and their medical implications.

Certain RNA molecules can mediate their own cleavage or splicing or act as enzymes to promote reactions on substrate RNA molecules. Thus, RNA is not restricted to being a passive carrier of genetic information but can have an active role in directing cellular biochemistry. These findings suggest the possibility that other cellular RNAs, including the RNA components of small nuclear ribonucleoproteins, of the ribosome, and of various ribonucleoprotein enzymes, are catalysts. RNA enzymes (ribozymes) can be used as sequence-specific RNA cleavage agents in vitro, providing useful tools for biochemical studies of RNA. On a more speculative note, ribozymes directed against viral RNAs have the potential of serving as therapeutic agents. Finally, some infectious agents, including hepatitis delta virus and perhaps poliovirus and rhinoviruses, are themselves ribozymes, providing potential targets for pharmaceuticals.

Catalysis↗

RNA as an RNA polymerase: net elongation of an RNA primer catalyzed by the Tetrahymena ribozyme.

A catalytic RNA (ribozyme) derived from an intervening sequence (IVS) RNA of Tetrahymena thermophila will catalyze an RNA polymerization reaction in which pentacytidylic acid (C5) is extended by the successive addition of mononucleotides derived from a guanylyl-(3',5')-nucleotide (GpN). Cytidines or uridines are added to C5 to generate chain lengths of 10 to 11 nucleotides, with longer products being generated at greatly reduced efficiency. The reaction is analogous to that catalyzed by a replicase with C5 acting as the primer, GpNs as the nucleoside triphosphates, and a sequence in the ribozyme providing a template. The demonstration that an RNA enzyme can catalyze net elongation of an RNA primer supports theories of prebiotic RNA self-replication.

Animals↗