Completed Genetics & Molecular Biology Cells, Biochemistry & Physiology

The role of the pericentromere in mitosis and meiosis.

In plain English

AI plain-English summary

Every time a cell divides, it must sort its chromosomes into two identical sets—and a small region of DNA called the pericentromere is what makes that sorting possible. This project tackles a fundamental gap in biology: how the pericentromere coordinates the protein machinery that holds chromosomes together and then releases them at exactly the right moment. Without this coordination, cells end up with too many or too few chromosomes—a hallmark of many cancers and a cause of infertility. The researchers will use two species of yeast—one with simple pericentromeres and one with human-like complexity—to identify the molecular rules that govern this process. This is fundamental science. It will not produce a drug or a diagnostic test tomorrow. But the mechanisms uncovered here—how a protein complex called cohesin is loaded and released at specific chromosomal sites—are the same ones that go wrong in aneuploidy, the condition of having an abnormal number of chromosomes. A deeper understanding of these molecular events could eventually point to new targets for cancer therapies or reveal why chromosome segregation fails during human egg and sperm formation.

View original technical description
The region surrounding the centromere, the pericentromere, plays a central role in coordinating the linkages between chromosomes that are essential for accurate chromosome segregation. Here I propose to uncover the regulatory mechanisms that operate at the pericentromere to achieve these functions during both mitosis and meiosis. I will use both budding yeast, which has simple pericentromeres, together with fission yeast, the pericentromeres of which more closely resemble those of humans, to dis sect the defining features of the pericentromere. A conserved property of the pericentromere is its ability to attract high levels of cohesin, the protein complex that holds newly duplicated chromosomes together until their separation upon chromosome segregation. We will use directed approaches to reveal how factors in the kinetochore specify the pericentromere for cohesin enrichment. We will also determine the role of the pericentromere in regulating the release of this cohesin through an alte rnative pathway for controlling anaphase onset which we recently discovered. Finally, we will identify the changes that occur at the pericentromere during meiosis by elucidating the meiosis-specific roles of general regulatory factors and though genomic and proteomic screens. Together, these goals will lead us to a detailed molecular picture of the pericentromere during mitosis and meiosis.

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Researchers

Adele Marston (EPMC Awardee)

Related Research

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Importance of kinetochore-driven cohesion loading at a heterochromatic pericentromere for accurate chromosome segregation during meiosis
Mechanisms orienting chromosomes in mitosis and meiosis.
Discovering principles of chromosome organisation directing segregation in mitosis and meiosis
How are kinetochores remodelled for chromosome segregation during meiosis?
Assembly and function of Drosophila melanogaster centromeric chromatin during meiosis and development.

Original classification

Senior Research Fellowship Basic

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