Associated organisationsNewcastle University · Queen Mary University of LondonEurope PMC affiliations are not treated as award recipients or mapped locations.
Funding£3.6M
PeriodJan 2023 — Dec 2030
In plain English
AI plain-English summary
Every time a bacterial cell divides, it must first duplicate its entire genome—and this project will reveal, at near-atomic resolution, how the molecular machine that unwinds the DNA double helix gets loaded onto the chromosome. The process is controlled by two key proteins: DnaA, which kicks off replication at the start of the cell cycle, and PriA, which restarts replication after a broken DNA strand has been repaired. Despite decades of study, scientists do not know exactly how these proteins assemble the ring-shaped helicase onto DNA, nor what structural changes occur step by step. This project will combine genetics, biochemistry, cryo-electron microscopy, and single-molecule fluorescence microscopy to map those events. Because the bacterial replication machinery is completely different from its counterpart in human cells, it is an attractive target for new antibiotics. Understanding exactly how helicase loading works could eventually enable the design of drugs that block it—stopping bacterial replication without harming human cells. For now, this is fundamental science: filling a basic gap in our knowledge of how life copies itself.
View original technical description
Helicase recruitment, loading, and activation demarcates the first stage of assembling the replisome, the machinery that performs DNA replication. Within bacterial cells, helicase loading must be orchestrated at two distinct events: cell cycle mediated DNA replication initiation at the chromosome origin (oriC) and to restart replication at a repaired replication fork. Replication initiation is guided by the master initiator protein DnaA, while replication restart utilises the helicase PriA. Since DnaA, PriA, and the replicative helicase are conserved throughout the bacterial domain, it is likely that the principal events at oriC and a repaired replication fork are shared amongst diverse species. Moreover, because bacterial replication factors are distinct from their analogues in eukaryotes, the bacterial DNA replication machinery is an attractive drug target. Despite years of study, fundamental aspects of DNA replication initiation in bacteria remain poorly understood. Specifically, the architecture of nucleoprotein complexes required to load helicase(s), and the temporal set of activities that replication initiation proteins perform during the helicase loading reaction, are unclear. This project will combine genetics, biochemistry, cryo-electron microscopy, and single-molecule fluorescence microscopy to unravel the molecular mechanisms of bacterial helicase loading, to near-atomic resolution, at both a chromosome origin and a repaired replication fork.
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