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O C Uhlenbeck

Publications and source records attributed to O C Uhlenbeck.

At least 19 recordsLinked to original sources

Specificity of hammerhead ribozyme cleavage.

To be effective in gene inactivation, the hammerhead ribozyme must cleave a complementary RNA target without deleterious effects from cleaving non-target RNAs that contain mismatches and shorter stretches of complementarity. The specificity of hammerhead cleavage was evaluated using HH16, a well-characterized ribozyme designed to cleave a target of 17 residues. Under standard reaction conditions, HH16 is unable to discriminate between its full-length substrate and 3'-truncated substrates, even when six fewer base pairs are formed between HH16 and the substrate. This striking lack of specificity arises because all the substrates bind to the ribozyme with sufficient affinity so that cleavage occurs before their affinity differences are manifested. In contrast, HH16 does exhibit high specificity towards certain 3'-truncated versions of altered substrates that either also contain a single base mismatch or are shortened at the 5' end. In addition, the specificity of HH16 is improved in the presence of p7 nucleocapsid protein from human immunodeficiency virus (HIV)-1, which accelerates the association and dissociation of RNA helices. These results support the view that the hammerhead has an intrinsic ability to discriminate against incorrect bases, but emphasizes that the high specificity is only observed in a certain range of helix lengths.

Base Sequence

Kinetic characterization of two I/II format hammerhead ribozymes.

Five new hammerhead ribozymes were designed that assemble through the formation of helices I and II (I/II format) instead of the more standard assembly through helices I and III (I/III format). The substrate binding and cleavage properties of such hammerheads could potentially be different due to the absence of loop II and the requirement for the entire catalytic core to assemble. Two I/II format hammerheads, HHalpha1 and HHalpha5, which show structural homogeneity on native gels, were characterized kinetically. The association rate constants of both I/II hammerheads are unusually slow compared to the rate of RNA duplex formation. The dissociation rate constants indicate that the hammerhead core destabilizes an uninterrupted RNA helix somewhat less than was observed for I/III hammerheads. Whereas the cleavage rate constant of HHalpha5 is similar to that observed for I/III hammerheads, HHalpha1 cleaves 10-fold faster than any hammerhead previously reported. The temperature and pH dependence of the cleavage rate constant of HHalpha1 are similar to those reported for I/III hammerheads, suggesting a similar mechanism of cleavage.

Base Sequence

Divalent metal ions and the internal equilibrium of the hammerhead ribozyme.

Thermodynamics of RNA cleavage/ligation were measured for a self-cleaving hammerhead ribozyme in the presence of Ca2+, Co2+, Mg2+, and Mn2+. The internal equilibrium, the ratio of cleaved to ligated RNA, decreases with increasing concentrations of each of the four divalent metal ions in a hyperbolic dependence that shows saturation. The metal ion dependence is not due to changes in ionic strength, and the value of the equilibrium constant at saturation is different for each metal ion. The concentration required to achieve half-saturation of the equilibrium is also different for each metal ion, and the order of apparent metal ion dissociation constants correlates with those measured for dissociation of the same metal ions complexed with tRNA and nucleotides. We interpret the divalent metal ion dependence of the equilibrium in terms of a thermodynamic model invoking noncooperative metal ion dissociation from the cleaved RNA. Thus, at 10 mM Mg2+, a commonly employed condition for hammerhead kinetic studies, metal ion dissociation contributes substantially to the free energy of the equilibrium and drives the hammerhead reaction toward cleaved RNA. Temperature dependencies of the equilibrium reveal that while the entropy and enthalpy changes of the equilibrium depend on the identity of the divalent metal ion, in each case a large entropic driving force overcomes an unfavorable change in enthalpy. This agrees with thermodynamics previously measured for an intermolecular hammerhead in the presence of Mg2+ [Hertel, K. J., & Uhlenbeck, O. C. (1995) Biochemistry 34, 1744-1749].

Base Composition

The role of 2'-hydroxyl groups in an RNA-protein interaction.

The role of the 2'-hydroxyl group in RNA--protein interaction has been investigated using MS2 coat protein and its hairpin RNA operator as a model system. Derivatives of the MS2 translational operator were prepared where individual riboses were replaced by deoxyribose and their binding affinities to MS2 coat protein were determined. Only 1 (U-5) out of 15 positions tested reduced protein affinity by 1.6 kcal/mol. A variety of other 2'-modifications were tested at this position to understand the role of this particular 2'-hydroxyl group. Normal binding of the U-NH2 variant and weaker binding of the U-O-methyl variant are consistent with the ability of these functional groups to provide a hydrogen bond donor. This is also supported by recent crystallographic data which indicate a possible interaction between the 2'-hydroxyl of U-5 and the carboxylate group of glutamate 63 [Valegård et al. (1994) Nature 371, 623-626]. Complementary experiments introducing riboses into a DNA hairpin confirm the putative protein contact, and also identify a requirement for riboses in the two upper base pairs of the hairpin. Several arguments suggest these riboses are required to maintain an A-form helix in this region of the binding site. A minimum requirement of four 2'-hydroxyl groups for wild-type coat protein binding has been determined, one of which is at the -5 position and other three in the upper stem in any combination.(ABSTRACT TRUNCATED AT 250 WORDS)

Base Sequence

Neomycin inhibition of the hammerhead ribozyme involves ionic interactions.

To investigate the properties of the neomycin-hammerhead interaction, inhibition of hammerhead activity was measured as a function of magnesium concentration and pH. The data are consistent with a simple competition between magnesium and neomycin with about five magnesium ions required to displace neomycin from the hammerhead. The pH dependence of the inhibition of hammerhead cleavage by neomycin and two related aminoglycosides was also determined. The data indicate that at least three of the five positively charged ammonium ions present on neomycin are critical for inhibiting hammerhead function. Taken together, these results suggest that the neomycin-hammerhead interaction is mostly ionic in character.

Base Sequence

Mutants of the bacteriophage MS2 coat protein that alter its cooperative binding to RNA.

An RNA binding assay measuring cooperative protein binding has been used to evaluate the effects of mutations in the MS2 phage coat protein expected to disrupt capsid assembly. By using the crystal structure of the virus as a guide, six different mutations in the FG loop structure were selected in which hydrophobic residues were replaced with charged residues. Most of these proteins form capsids in Escherichia coli, but not in an in vitro assembly assay, suggesting that interdimer interactions are weaker than wild type. These mutant proteins reduce the free energy of cooperative protein binding to a double-hairpin RNA from its wild-type value of -1.9 kcal/mol. Several of the variants that have large effects on cooperativity have no effect on RNA affinity, suggesting that protein-RNA interactions can be affected independently of dimer-dimer interactions. The V75E;A81G protein, which shows no measurable cooperativity, binds operator RNA equally well as the wild-type protein under a variety of buffer conditions. Because this protein also exhibits similar specificity for variant RNA sequences, it will be useful for studying RNA binding properties independent of capsid assembly.

Base Sequence

The effect of base mismatches in the substrate recognition helices of hammerhead ribozymes on binding and catalysis.

The ability of the hammerhead ribozyme to distinguish between matched and mismatched substrates was evaluated using two kinetically defined ribozymes that differed in the length and sequence of the substrate recognition helices. A mismatch in the innermost base pair of helix I affected k2, the chemical cleavage step, while more distal mismatches had no such effect. In contrast, mismatches in any of the four innermost base pairs of helix III affected k2. Chase experiments indicated that mismatches also increased the rate of substrate dissociation by at least 20-100-fold, as expected from the stabilities of RNA helices.

Base Composition

Proton NMR and structural features of a 24-nucleotide RNA hairpin.

The three-dimensional conformation of a 24-nucleotide variant of the RNA binding sequence for the coat protein of bacteriophage R17 has been analyzed using NMR, molecular dynamics, and energy minimization. The imino proton spectrum is consistent with base pairing requirements for coat protein binding known from biochemical studies. All 185 of the nonexchangeable protons were assigned using a variety of homonuclear 2D and 3D NMR methods. Measurements of nuclear Overhauser enhancements and two-quantum correlations were made at 500 MHz. New procedures were developed to characterize as many resonances as possible, including deconvolution and path analysis methods. An average of 21 distance constraints per residue were used in molecular dynamics calculations to obtain preliminary folded structures for residues 3-21. The unpaired A8 residue is stacked in the stem, and the entire region from G7 to C15 in the upper stem and loop appears to be flexible. Several of these residues have a large fraction of S-puckered ribose rings, rather than the N-forms characteristic of RNA duplexes. There is considerable variation in the low-energy loop conformations that satisfy the distance constraints at this preliminary level of refinement. The Shine-Dalgarno ribosome binding site is exposed, and only two apparently weak base pairs would have to break for the 16S ribosomal RNA to bind and the ribosome to initiate translation of the replicase gene. Although the loop form must be regarded as tentative, the known interaction sites with the coat protein are easily accessible from the major groove side of the loop.

Base Sequence

Defining a smaller RNA substrate for elongation factor Tu.

A nuclease protection assay was used to obtain equilibrium dissociation constants of Thermus thermophilus EF-Tu with two well-characterized internal deletions of Escherichia coli Ala-tRNA(Ala) and yeast Phe-tRNA(Phe). Aminoacylated tRNAs with the anticodon hairpin substituted by a tetranucleotide bind to EF-Tu as well as the corresponding full-sized tRNAs. However, the Ala minihelix, where residue A7 is joined directly to A49, binds to EF-Tu less well than the full-sized Ala-tRNA(Ala). Similar data were obtained for Escherichia coli EF-Tu. An in vitro selection strategy was used to isolate a substrate for EF-Tu from an RNA library where nine random nucleotides inserted between A7 and A49 in the Ala minihelix. After six rounds of enrichment, two groups of RNA were obtained that bound T. thermophilus EF-Tu as well as Ala-tRNA(Ala). Group I molecules have the consensus sequence UNDUGACUY (N = U, C, A, G; D = U, G; Y = U, C) in the randomized region, and Group II molecules generally have 5'-terminal GUG, but are more variable in the remaining six nucleotides. The selected RNAs bind EF-Tu better than the minihelix either because they provide additional function groups for protein binding or because they have a structure more similar to the aminoacyl acceptor branch of tRNA.

Base Sequence

The internal equilibrium of the hammerhead ribozyme reaction.

The effects of temperature, pH, and magnesium ion concentration on the internal equilibrium of the hammerhead ribozyme reaction were determined in order to better understand why the ribozyme-bound substrate RNA is 99% cleaved at equilibrium. Cleavage of substrate is more efficient at higher temperatures because a large entropy gain upon cleavage outweighs an enthalpically unfavorable generation of a 2',3'-cyclic phosphate product. The delta H of the reaction is as expected from bond energies, and provides no indication of high-energy ribozyme/substrate interactions that are lost upon cleavage. The rate constants of both cleavage and ligation increase log-linearly with pH between 5.6 and 8.0, indicating that a deprotonation step is required for both cleavage and ligation. The magnesium ion dependence of the internal equilibrium suggests that either the number or the affinity of bound magnesium ions changes upon cleavage. Since the very slow rate of hydrolysis of the 2',3'-cyclic terminus of product P1 was unaffected by the presence of the ribozyme, we conclude that hydrolysis is not a significant side reaction of the hammerhead cleavage reaction.

Acid-Base Equilibrium

Keeping RNA happy.

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Nucleic Acid Conformation

Inhibition of the hammerhead ribozyme by neomycin.

A series of antibiotics was tested for stimulation or inhibition of the hammerhead ribozyme cleavage reaction. Neomycin was found to be a potent inhibitor of the reaction with a Kl of 13.5 microM. Two hammerheads with well-characterized kinetics were used to determine which steps in the reaction mechanism were inhibited by neomycin. The data suggest that neomycin interacts preferentially with the enzyme-substrate complex and that this interaction leads to a reduction in the cleavage rate by stabilizing the ground state of the complex and destabilizing the transition state of the cleavage step. A comparison of neomycin with other aminoglycosides and inhibitors of hammerhead cleavage implies that the ammonium ions of neomycin are important for the antibiotic-hammerhead interaction.

Base Sequence

An RNA-protein contact determined by 5-bromouridine substitution, photocrosslinking and sequencing.

An analogue of the replicase translational operator of bacteriophage R17, that contains a 5-bromouridine at position -5 (RNA 1), complexes with a dimer of the coat protein and photocrosslinks to the coat protein in high yield upon excitation at 308 nm with a xenon chloride excimer laser. Tryptic digestion of the crosslinked nucleoprotein complex followed by Edman degradation of the tryptic fragment bearing the RNA indicates crosslinking to tyrosine 85 of the coat protein. A control experiment with a Tyr 85 to Ser 85 variant coat protein showed binding but no photocrosslinking at saturating protein concentration. This is consistent with the observation from model compound studies of preferential photocrosslinking of BrU to the electron rich aromatic amino acids tryptophan, tyrosine, and histidine with 308 nm excitation.

Amino Acid Sequence

In vitro selection of small RNAs that bind to Escherichia coli phenylalanyl-tRNA synthetase.

Small RNAs were selected from a highly degenerate library on the basis of their ability to bind tightly to Escherichia coli phenylalanyl-tRNA synthetase (FRS). The 63 nucleotide library consisted of the acceptor stem and portions of the D and T stems of E. coli tRNA(Phe) flanking a 32 nucleotide randomized region. Because FRS binding relies on a correctly folded tRNA substrate, the selected variants from this library were expected to resemble tRNA(Phe) structure. After seven cycles of selection, the RNA library bound to FRS with similar affinity to that of the E. coli tRNA(Phe), but did not show detectable aminoacylation. Fourteen FRS-specific isolates were sequenced and found to contain an anticodon stem-loop including the anticodon triplet of tRNA(Phe). The tight-binding RNAs fell into two classes depending on the location of this step-loop within the sequence. The acceptor stem defined by the non-randomized sequence was also found to be essential for binding. Mutation of two residues within a common hexanucleotide sequence present in one of the classes reduced binding to FRS. Taken together, these results suggest that in order to bind RNAs tightly, FRS requires the simultaneous interaction of the anticodon stem-loop and acceptor stem, and additional sequences needed for proper folding. This approach should assist in the detection of motifs that resemble tRNA, but are too dissimilar to be identified by sequence comparison.

Base Sequence

Properties of an in vitro selected Pb2+ cleavage motif.

The addition of Pb2+ to a small RNA molecule consisting of an asymmetric internal loop of six nucleotides results in site-specific cleavage followed by hydrolysis of the 2',3'-cyclic phosphate intermediate [Pan, T., & Uhlenbeck, O.C. (1992) Nature 358, 560-563]. Here we show that the reaction is highly specific for Pb2+ and the cleavage rate increases exponentially with pH from 5.5 to 7.0, both in the presence and in the absence of Mg2+. This suggests that the reaction mechanism involves Pb2+ hydroxide acting as a base. Several sequence variants of the RNA are found to be equally active in both steps of the reaction, suggesting that they fold into a similar structure.

Cations, Divalent

RNA template-directed RNA synthesis by T7 RNA polymerase.

In an attempt to synthesize an oligoribonucleotide by run-off transcription by bacteriophage T7 RNA polymerase, a major transcript was produced that was much longer than expected. Analysis of the reaction indicated that the product resulted from initial DNA-directed run-off transcription followed by RNA template-directed RNA synthesis. This reaction occurred because the RNA made from the DNA template displayed self-complementarity at its 3' end and therefore could form an intra- or intermolecular primed template. In reactions containing only an RNA template, the rate of incorporation of NTPs was quite comparable to DNA-dependent transcription. RNA template-directed RNA synthesis has been found to occur with a great number of oligoribonucleotides, even with primed templates that are only marginally stable. In one instance, we observed a multistep extension reaction converting the oligonucleotide into a final product longer than twice its original length. Presumably, such a process could have generated some of the RNAs found to be efficiently replicated by T7 RNA polymerase.

Base Sequence