Active Genetics & Molecular Biology Cells, Biochemistry & Physiology

Mechanisms for Sister Chromatid Cohesion Establishment at the Replication Fork

In plain English

AI plain-English summary

Every time a human cell divides, it must first duplicate its chromosomes and then glue the two identical copies together so they can be pulled apart correctly. That glue is a ring-shaped protein called cohesin, and this project investigates exactly how the cell’s copying machinery locks the rings around the fresh DNA. The problem is that scientists know cohesin rings must be in place before cell division begins, but the molecular choreography that puts them there during DNA replication remains a black box. Two separate pathways—loading new rings and converting existing ones—both depend on replication, yet no one has mapped the protein handshakes that make this happen. This is fundamental science. The researcher will use baker’s yeast to isolate the key protein interactions in a test tube and inside living cells, then map where cohesin actually sits on the genome using a new sequencing technique called sister-pore-C. If the work succeeds, it will reveal the basic mechanics of a process that goes wrong in cancer, infertility, and developmental disorders. There is no immediate clinical application, but understanding how cohesion fails is a prerequisite for ever fixing it.

View original technical description
Sister chromatid cohesion describes the state of attachment between the two arms that constitute replicated chromosomes. It is crucial for accurate chromosome segregation during cell division and involves the topological entrapment of sister chromatids by the ring-shaped protein complex, cohesin. Two parallel pathways of cohesion establishment have been identified: de novo loading and conversion, both requiring DNA replication. However, their molecular mechanisms remain poorly understood. This project will investigate how cohesin and the cohesin loading complex interact with the DNA replication machinery to generate cohesion, with a particular focus on the de novo loading pathway and comparisons between mitosis and meiosis. To this end, I will use a budding yeast model to identify these interactions via in vitro and in vivo methods, including co-IP with purified proteins and IP-MS. I will also characterise genome-wide cohesion patterns using sister-pore-C, a novel 3C sequencing method. By combining biochemical, structural, and functional investigations, this project will deliver insights into the mechanisms and roles of the cohesion establishment pathways. Anomalies in cohesion establishment can lead to abnormal chromosome segregation, which may manifest as cancer, infertility, developmental disorders, etc. Thus, my findings will contribute towards a fuller understanding of a fundamental step in cell division.

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Researchers

Maya Rowley (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Molecular biology of cohesin in mitotic, postmitotic, and meiotic mammalian cells.
Establishment of Sister Chromatid Cohesion
Discovering how Topoisomerase II and Cohesin collaborate to establish sister chromatid cohesion
The function of cohesin in mitotic cells
The mechanism by which cohesin holds chromosomal sister DNAs together

Original classification

PhD Studentship (Basic)

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