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Vadim Nikiforov

Publications and source records attributed to Vadim Nikiforov.

3 recordsLinked to original sources

Unified two-metal mechanism of RNA synthesis and degradation by RNA polymerase.

In DNA-dependent RNA polymerases, reactions of RNA synthesis and degradation are performed by the same active center (in contrast to DNA polymerases in which they are separate). We propose a unified catalytic mechanism for multisubunit RNA polymerases based on the analysis of its 3'-5' exonuclease reaction in the context of crystal structure. The active center involves a symmetrical pair of Mg(2+) ions that switch roles in synthesis and degradation. One ion is retained permanently and the other is recruited ad hoc for each act of catalysis. The weakly bound Mg(2+) is stabilized in the active center in different modes depending on the type of reaction: during synthesis by the beta,gamma-phosphates of the incoming substrate; and during hydrolysis by the phosphates of a non-base-paired nucleoside triphosphate. The latter mode defines a transient, non-specific nucleoside triphosphate-binding site adjacent to the active center, which may serve as a gateway for polymerization of substrates.

Binding Sites↗

A broad host range plasmid vector that does not encode replication proteins.

The 640-bp minimal replication region derived from a plasmid DNA preparation from an Acidothiobacillus ferrooxidans strain capable of autonomous replication in a range of Gram-negative bacteria (Escherichia coli, Pseudomonas aeruginosa, Acinetobacter calcoaceticus and Alcaligenes faecalis) was identified. This DNA fragment (named TFK replicon) does not encode Rep proteins and appears to be unrelated to other known replicons.

Bacterial Proteins↗

Swing-gate model of nucleotide entry into the RNA polymerase active center.

Each elementary step of transcription involves translocation of the 3' terminus of RNA in the RNA polymerase active center, followed by the entry of a nucleoside triphosphate. The structural basis of these transitions was studied using RNA-protein crosslinks. The contacts were mapped and projected onto the crystal structure, in which the "F bridge" helix in the beta' subunit is either bent or relaxed. Bending/relaxation of the F bridge correlates with lateral movements of the RNA 3' terminus. The bent conformation is sterically incompatable with the occupancy of the nucleotide site, suggesting that the switch regulates both the entry of substrates and the translocation of the transcript. The switch occurs as part of a cooperative transition of a larger structural domain that consists of the F helix and the supporting G loop.

Binding Sites↗