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The bacterial DnaA-trio replication origin element specifies single-stranded DNA initiator binding.
- Source :
-
Nature [Nature] 2016 Jun 16; Vol. 534 (7607), pp. 412-6. Date of Electronic Publication: 2016 Jun 08. - Publication Year :
- 2016
-
Abstract
- DNA replication is tightly controlled to ensure accurate inheritance of genetic information. In all organisms, initiator proteins possessing AAA+ (ATPases associated with various cellular activities) domains bind replication origins to license new rounds of DNA synthesis. In bacteria the master initiator protein, DnaA, is highly conserved and has two crucial DNA binding activities. DnaA monomers recognize the replication origin (oriC) by binding double-stranded DNA sequences (DnaA-boxes); subsequently, DnaA filaments assemble and promote duplex unwinding by engaging and stretching a single DNA strand. While the specificity for duplex DnaA-boxes by DnaA has been appreciated for over 30 years, the sequence specificity for single-strand DNA binding has remained unknown. Here we identify a new indispensable bacterial replication origin element composed of a repeating trinucleotide motif that we term the DnaA-trio. We show that the function of the DnaA-trio is to stabilize DnaA filaments on a single DNA strand, thus providing essential precision to this binding mechanism. Bioinformatic analysis detects DnaA-trios in replication origins throughout the bacterial kingdom, indicating that this element is part of the core oriC structure. The discovery and characterization of the novel DnaA-trio extends our fundamental understanding of bacterial DNA replication initiation, and because of the conserved structure of AAA+ initiator proteins these findings raise the possibility of specific recognition motifs within replication origins of higher organisms.
- Subjects :
- Bacterial Proteins chemistry
Base Sequence
Conserved Sequence genetics
DNA Replication genetics
DNA-Binding Proteins chemistry
Models, Molecular
Nucleic Acid Denaturation genetics
Protein Binding
Protein Stability
Thermodynamics
Trinucleotide Repeats genetics
Bacillus subtilis genetics
Bacterial Proteins metabolism
DNA, Single-Stranded genetics
DNA-Binding Proteins metabolism
Nucleotide Motifs
Replication Origin genetics
Subjects
Details
- Language :
- English
- ISSN :
- 1476-4687
- Volume :
- 534
- Issue :
- 7607
- Database :
- MEDLINE
- Journal :
- Nature
- Publication Type :
- Academic Journal
- Accession number :
- 27281207
- Full Text :
- https://doi.org/10.1038/nature17962