Active Genetics & Molecular Biology Cells, Biochemistry & Physiology

Mechanism of metazoan replisome assembly in health and disease

In plain English

AI plain-English summary

Every time a human cell divides, it must duplicate its entire genome exactly once—and a protein called DONSON is the key to making that happen. This matters because when DONSON fails, it causes Meier-Gorlin syndrome, a rare disorder where people are born with abnormally small stature and other developmental problems. The same failures also appear in early-stage cancers, where cells lose control of DNA replication. Most of what scientists know about this process comes from studying baker’s yeast, but yeast lost DONSON during evolution, so that knowledge has a blind spot. The researchers will use roundworms and human cells to fill that gap, working out exactly how DONSON and its partner proteins assemble the molecular machinery—called the CMG helicase—that unwinds DNA for copying. This is fundamental science. It asks how animal cells, including our own, manage one of the most basic tasks of life. There is no immediate clinical application. But understanding the mechanism could eventually reveal new ways to target cancer cells that rely on faulty replication machinery, or explain why some people inherit developmental disorders. Past work on DNA replication has already led to chemotherapy drugs; deeper knowledge of the assembly process may open similar doors.

View original technical description
Regulated assembly of the eukaryotic replisome ensures that chromosomes are duplicated just once per cell cycle. In humans, defects in replisome assembly cause Meier Gorlin Syndrome and are an important feature of early cancer development. We have found that metazoan replisome assembly requires a protein called DONSON, which is mutated in Meier Gorlin Syndrome. DONSON was lost during fungal evolution and so is absent in budding yeast that has dominated studies of eukaryotic replisome assembly. In Aim 1, we will use C. elegans to elucidate the mechanism and regulation by which DONSON and other factors assemble the CMG helicase upon entry into S-phase (CMG = CDC45-MCM-GINS: the three helicase subassemblies around which the replisome forms). In Aim 2, we will characterise the factors that activate the newly assembled CMG helicase in metazoa. In Aim 3, we will analyse how DONSON and other factors assemble CMG in mammalian cells, searching for new factors mutated in Meier Gorlin syndrome, and screening for synthetic lethality between CMG assembly defects and disease-linked mutations in human cells. These studies address an issue of fundamental importance in animal cell biology and will explore the potential of CMG assembly as a target for future anti-cancer therapies.

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Researchers

Karim Labib (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Novel Genome Integrity Pathways that regulate DNA Replication Termination in Metazoa
The role of DONSON during DNA replication initiation
Master Regulation of Centromere Function by the Highly Conserved Mis18 Complex
Investigating the role of arginine methylation as a critical regulator of DNA replication and genome stability
Replisome unloading: mechanism and importance for cell biology

Original classification

Discovery Award

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