Dinuclear Zn(2+) complexes of synthetic heptapeptides as artificial nucleases.
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Biomedical subjects
Publications and source records attributed to P Tecilla.
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The previously synthesized, terminally blocked heptapeptide Ac-Aib-ATANP-Aib-Aib-ATANP-Aib-Aib-OMe (1a), where ATANP is (S)-2-amino-3-[1-(1,4,7-triazacyclononane)]propanoic acid and Aib is alpha-aminoisobutyric acid, which is soluble in neutral water where it largely adopts a 3(10)-helical conformation, has been studied, as bimetallic complex [metal ions: Cu(II), Ni(II), Zn(II)], for the transphosphorylation catalysis of the RNA-model substrate 2-(hydroxypropyl)-p-nitrophenyl phosphate (HPNP). A detailed analysis was carried out with the Zn(II) dinuclear complex. Comparison with the mononuclear Zn(II) complex with 1,4,7-triazacyclononane (3) points to cooperativity between the two Zn(II) ions in the process catalyzed by 1a-2Zn(II). On the contrary, the dinuclear Zn(II) complex of dipeptide Ac-(ATANP)(2)-OMe (2), lacking any ordered conformation, is less active than 3-Zn(II). The kinetic analysis suggests the following: (a) the peptide is conformationally very robust and does not loose activity up to 50 degrees C; (b) the substrate binds to the peptide-Zn(II) complex, although not all modes of complexation allow us to take advantage of the cooperativity between the two metal centers. The maximum rate acceleration estimated at pH 7 for the fully bound substrate is ca. 200-fold compared with the uncatalyzed process.
The hydrolytic activity of the 1,3,5-triaminocyclohexane derivatives TACH, TACI and TMCA complexed to Zn(II) and Cu(II) towards a model phosphoric ester and plasmid DNA has been evaluated by means of spectroscopic and gel-electrophoresis techniques. At conditions close to physiological, a prominent cleavage effect mediated by the nature of the ligand and metal ion was generally observed. TACI complexes are the most active in relaxing supercoiled DNA, the effect being explained by the affinity of the hydroxylated ligand for the nucleic acid. As indicated by the dependence of cleavage efficiency upon pH, Zn(II)-complexes act by a purely hydrolytic mechanism. In the case of Cu(II)-complexes, although hydrolysis should be prominent, involvement of an oxidative pathway cannot be completely ruled out.
Simply by mixing in water, a liphophilic dipeptide (L), a surfactant (S), and a fluorophore (F) self-assemble to give a sensor able to detect Cu(II) ions (see scheme). Despite the ease of construction, the sensor displays high selectivity and a low detection limit for the target ion. This new modular approach to sensing devices allows easy variations of the components, making optimization of the system very simple and fast.
Although aggregates of amphiphilic molecules have been studied for decades, systems are now being developed that are able to perform useful functions, including drug delivery, control of the availability of chemical species, sensing of ions or organic molecules, and, the most challenging, providing a reaction environment for chemical reactions that resembles that of the natural system. Such systems are therefore becoming more and more important in a variety of fields, ranging from material science to analytical chemistry and medicine.