Completed Genetics & Molecular Biology Cells, Biochemistry & Physiology

Global Cellular Controls in Fission Yeast

In plain English

AI plain-English summary

Every dividing cell must copy its DNA, grow to the right size, and split in two—and a single protein called CDK orchestrates the entire sequence. This project investigates how CDK manages that timing, using fission yeast as a model organism. The central puzzle is that CDK is present throughout the cell cycle, yet it triggers different events at different times. The researchers will test whether the order is set by how sensitive each cellular target is to CDK, and whether the protein’s location inside the cell changes what it does. They will also examine how cells monitor their own size and DNA content, how the TOR pathway—a nutrient-sensing system—adjusts the rates of RNA and protein synthesis, and how the nucleus maintains its size by controlling membrane flow between organelles. This is fundamental science. It does not aim to cure a disease or improve a device. But the cell cycle is so central to life that errors in its control underlie cancer and developmental disorders. Understanding the basic rules of CDK timing could, over time, reveal why those rules break—and point toward ways to restore order when they do.

View original technical description
The major focus of the proposal is how CDKs ensure orderly progression through the cell cycle. The levels of potential CDK regulators through the cell cycle and their association with chromatin and the SPB will be determined to investigate cell size and ploidy monitoring mechanisms. The principle that cell cycle temporal ordering is established by differential CDK substrate sensitivity will be tested through multiplexed in vitro CDK and in vivo CDK assays, and by investigating different CDKs and CDK accessory proteins. The influence of cellular localisation on CDK activity will be examined by altering CDK location and through activity localisation assays. Using an in vivo single cell assay, the dynamics of CDK activity and its consequences on orderly cell cycle progression will be assessed and potential positive feedback mechanisms investigated. The phosphorylation changes that occur after TOR pathway inhibition will be measured at fine temporal resolution and correlated with changes in rates of RNA and protein synthesis, to investigate how overall cellular rates of synthesis are regulated. The mechanisms underpinning nuclear size homeostasis will be explored by testing the hypothesis that a major role is played by barrier membrane proteins that regulate membrane flow between organelles.

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Researchers

Paul Nurse (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Cell Cycle Laboratory
Identification and activity of new regulators of cell division.
Investigating the Functions and Regulation of Non-Proline Directed CDK1 Phosphorylation
Phosphorylation of cyclin B and characterisation of the cyclin B, Cig1, in fission yeast
CDK-containing macromolecular assemblies

Original classification

Investigator Award in Science

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