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T K Stage-Zimmermann

Publications and source records attributed to T K Stage-Zimmermann.

4 recordsLinked to original sources

A covalent crosslink converts the hammerhead ribozyme from a ribonuclease to an RNA ligase.

The hammerhead ribozyme is a more efficient ribonuclease than an RNA ligase. Under typical reaction conditions, the rate of RNA chain cleavage is approximately 100-fold faster than the rate of the reverse ligation reaction such that virtually all of the hammerhead is in its cleaved form at equilibrium. Here we show that the introduction of a crosslink away from the catalytic core of the hammerhead has little effect on the cleavage rate but dramatically increases the ligation rate, thereby making the hammerhead an efficient RNA ligase. This experiment emphasizes the role of molecular flexibility in defining the properties of a macromolecular catalyst and suggests why other small ribozymes are more efficient ligases than ribonucleases.

Base Sequence↗

Thermodynamic dissection of the substrate-ribozyme interaction in the hammerhead ribozyme.

The free energy of substrate binding to the hammerhead ribozyme was compared for 10 different hammerheads that differed in the length and sequence of their substrate recognition helices. These hammerheads were selected because neither ribozyme nor substrate oligonucleotide formed detectable alternate secondary structures. The observed free energies of binding varied from -8 to -24 kcal/mol and agreed very well with binding energies calculated from the nearest-neighbor free energies if a constant energetic penalty of DeltaG degreescore = +3.3 +/- 1 kcal/mol is used for the catalytic core. A set of substrates that contained a competing hairpin secondary structure showed weaker binding to the ribozyme by an amount consistent with the predicted free energy for hairpin formation. These thermodynamic conclusions permit the prediction of substrate binding affinities for ribozyme-substrate pairs of any helix length and sequence, and thus, should be very valuable for the rational design of ribozymes directed toward gene inactivation.

Models, Chemical↗

Circular substrates of the hammerhead ribozyme shift the internal equilibrium further toward cleavage.

To test whether the Y-shaped conformation of the hammerhead ribozyme is maintained throughout the catalytic pathway, the cleavage properties of circular substrates which bind the ribozyme through helices I and II were determined. Constraining the position of helices I and II in this manner did not significantly alter the rate constant for cleavage, consistent with no large rearrangement of the helices occurring during catalysis. Unexpectedly, the "internal" equilibrium between the cleavage and ligation reactions for the circular hammerheads was shifted further toward cleavage. This effect was due to the rate of ligation of the circular substrate being slower than the corresponding linear substrate. The temperature dependence of the internal equilibrium of the circular substrate revealed that although restricting the flexibility of the hammerhead reduced the favorable entropy change associated with cleavage as expected, the unfavorable enthalpy change was reduced as well, resulting in greater overall cleavage.

Base Sequence↗