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T Tuschl

Publications and source records attributed to T Tuschl.

21 records · Page 2Linked to original sources

Importance of exocyclic base functional groups of central core guanosines for hammerhead ribozyme activity.

The three guanosines of the central core of a hammerhead ribozyme were replaced by 2-aminopurine ribonucleoside, xanthosine, isoguanosine, inosine, and deoxyguanosine. These analogues were incorporated by automated solid-phase synthesis, with the exception of isoguanosine. This was introduced by ligating a donor, which carried the isoguanosine at its 5'-end, and an acceptor oligoribonucleotide by a T4 DNA ligase-catalyzed reaction. Most of these modifications lowered the rate constant of cleavage by the hammerhead ribozyme drastically. Inspection of the possible hydrogen-bonding interactions disturbed by these modifications suggests that there is no G12A9 or A13G8 mismatched base pair in the central region. Increasing the Mg2+ concentration from 10 to 50 mM did not enhance these rates appreciably. This makes it improbable that the guanosines, including their 2'-hydroxyl groups, are involved in the binding of the catalytically active Mg2+. Transition-state destabilizing energies of 0.6-4.7 kcal mol-1 suggest that essentially all guanosines are involved in a hydrogen-bonding network.

Bacteriophage T4↗

Hammerhead ribozymes: importance of stem-loop II for activity.

The activity of several hammerhead ribozyme constructs with constant lengths of stems I and III of 5 nt each but with variously shortened stems II is reported. Stems with 2 bp rather than the conventional 4 bp show essentially unaltered catalytic activity, independent of the composition of the tetraloop. Further reduction in size to 1 bp or 0 bp decreases activity drastically. Inversion of the G10.1.C11.1 bp next to the invariant core leads to a loss in activity, even when the stem consists of 4 bp. Thus, the minimal structural requirement for stem-loop II is a 2-bp stem with a conserved G.C bp. The reduction in catalytic activity is predominantly a result of a decrease of catalytic constant kcat, whereas Km is only slightly affected. Thus, the structural requirement for optimal activity in these constructs where the chemical-cleavage step is rate limiting is determined by the stabilization of the transition state.

Base Sequence↗