PubMed Health⌕ Search

Biomedical subjects

A Bernad

Publications and source records attributed to A Bernad.

41 records · Page 3Linked to original sources

Transition from initiation to elongation in protein-primed phi 29 DNA replication: salt-dependent stimulation by the viral protein p6.

The transition step from the p3-dAMP initiation complex to the first elongated products, p3-(dAMP)2 and p3-(dAMP)3, requires a dATP concentration higher than that needed for the initiation reaction or for the further elongation of the p3-(dAMP)3 complex. The elongation in phi 29 DNA-protein p3 replication in vitro was strongly inhibited by salt. Under inhibitory salt concentration, the viral protein p6 greatly stimulated phi 29 DNA-protein p3 replication. The effect of protein p6 was not on the rate of elongation but on the amount of elongated product, stimulating the transition from initiation to formation of the first elongation products.

Bacteriophages↗

Structural and functional relationships between prokaryotic and eukaryotic DNA polymerases.

The Bacillus subtilis phage luminal diameter 29 DNA polymerase, involved in protein-primed viral DNA replication, was inhibited by phosphonoacetic acid (PAA), a known inhibitor of alpha-like DNA polymerases, by decreasing the rate of elongation. Three highly conserved regions of amino acid homology, found in several viral alpha-like DNA polymerases and in the luminal diameter 29 DNA polymerase, one of them proposed to be the PAA binding site, were also found in the T4 DNA polymerase. This prokaryotic enzyme was highly sensitive to the drugs aphidicolin and the nucleotide analogues butylanilino dATP (BuAdATP) and butylphenyl dGTP (BuPdGTP), known to be specific inhibitors of eukaryotic alpha-like DNA polymerases. Two potential DNA polymerases from the linear plasmid pGKL1 from yeast and the S1 mitochondrial DNA from maize have been identified, based on the fact that they contain the three conserved regions of amino acid homology. Comparison of DNA polymerases from prokaryotic and eukaryotic origin showed extensive amino acid homology in addition to highly conserved domains. These findings reflect evolutionary relationships between hypothetically unrelated DNA polymerases.

Amino Acid Sequence↗

Effect of NH4+ ions on phi 29 DNA-protein p3 replication: formation of a complex between the terminal protein and the DNA polymerase.

Ammonium ions stimulated the formation of the phi diameter 29 protein p3-dAMP initiation complex by decreasing the Km value for dATP in a purified system containing the viral terminal protein p3, the viral DNA polymerase p2, and the phi 29 DNA-protein p3 complex as a template. In addition, NH4+ ions stimulated the amount of p3-dAMP complex elongation and increased by about twofold the rate of elongation. The stimulatory effect of NH4+ ions on in vitro phi 29 DNA replication is probably related to the formation of a stable complex between the terminal protein and the DNA polymerase, which was detected only in the presence of NH4+ ions.

Ammonium Sulfate↗

Replication of phage phi 29 DNA in vitro: role of the viral protein p6 in initiation and elongation.

The phi 29 protein p6 stimulates the formation of the protein p3-dAMP initiation complex when added to a minimal system containing the terminal protein p3, the phi 29 DNA polymerase p2 and phi 29 DNA-protein p3 complex, by decreasing about 5 fold the Km value for dATP. In addition, protein p6 stimulates elongation of the p3-dAMP initiation complex. Whereas the effect of protein p6 on initiation is similar with protein p3-containing fragments from the right or left phi 29 DNA ends, the stimulation of elongation is higher with the right than with the left phi 29 DNA terminal fragment, suggesting DNA sequence specificity. The stimulation by protein p6 of the initiation and elongation steps of phi 29 DNA replication does not require the presence of the parental protein p3 at the phi 29 DNA ends. No effect of protein p6 was obtained on the elongation of the template-primer poly(dT)-(dA) 12-18 by the phi 29 DNA polymerase.

Bacillus subtilis↗

An optimized amphiphilic cationic peptide as an efficient non-viral gene delivery vector.

BACKGROUND: Due to their chemical definition and reduced size, the use of peptides as gene delivery systems is gaining interest as compared to the more common polymeric non-viral vectors. To achieve gene transfer efficiencies that would make peptides a realistic alternative to existing methods, we have evaluated and attempted to concert those properties with a direct impact on the activity of the system. These considerations have led to the design, synthesis and characterization of a 23-residue cationic peptide which we term RAWA. METHODS: We have characterized RAWA biophysically and functionally. Biophysical studies include evaluation of DNA condensation and membrane perturbing activities. DNA transfer activity has been evaluated in cell culture at controlled DNA-to-peptide stoichiometries, using a luciferase gene as reporter. Requirements for additional effectors such as chloroquine and peptide cofactors have also been considered. RESULTS: RAWA displays in vitro DNA condensing activity similar to that of protamines, reaching maximum effect at a peptide-to-DNA molar charge ratio (CR) of 4 (+/-). The reduced membrane perturbing activity diminishes its cytotoxic potential. In COS-7 cells, transfection efficiency with RAWA peptiplexes, compares favorably with well-recognized systems, including Lipofectamine Plus, Superfect, GenePorter and FuGene. The peptide-associated activity between free and DNA-bound species has been mapped by analyzing dependency on chloroquine treatment. The lack of significant serum inhibition and low toxicity make this system advantageous for potential in vivo application. A ternary complex including the acid-triggered fusogenic JTS-1 peptide is presented as a potential strategy for further in vivo studies. CONCLUSIONS: We have developed a gene delivery system based on an amphipathic cationic peptide with improved DNA condensation ability and reduced cytotoxicity, which maintains membrane binding and perturbing activities. Observed efficiency with this molecule is very high and compares favorably with currently available transfection systems.

3T3 Cells↗