Completed Genetics & Molecular Biology Cells, Biochemistry & Physiology

Chromosome dynamics during the G2/M transition in meiosis

In plain English

AI plain-English summary

Every time a human egg or sperm is made, chromosomes must pair up, swap segments, and then separate into exactly two equal sets—a process that goes wrong in conditions like Down syndrome. Researchers are using baker’s yeast to watch how cells dismantle the synaptonemal complex, a protein scaffold that holds paired chromosomes together, and how that breakdown is timed with the formation of chiasmata—the physical links that ensure chromosomes split correctly. This is fundamental science. The core question is how a dividing cell coordinates two interdependent events: cutting the scaffold that keeps chromosomes paired, while simultaneously locking in the crossovers that guarantee each daughter cell gets one copy of every chromosome. If the timing slips, eggs or sperm end up with too many or too few chromosomes, causing miscarriages or developmental disorders. Because baker’s yeast shares key molecular machinery with human cells, the principles uncovered here are likely to apply to human reproduction. There is no immediate clinical application. But understanding the basic choreography of chromosome separation has historically informed fertility treatments and prenatal diagnostics, and could eventually help explain why chromosome errors become more common with maternal age.

View original technical description
During the production of sperm and eggs, cells have to half the number of chromosomes, otherwise the resulting foetus will contain too many. This requires a specialized cell division where chromosomes first find their partner and then split from them- a marriage followed by divorce. How do cells ensure that each egg or sperm contains exactly one full set of chromosomes, 23 in the case of humans? Chromosomes pair on the basis of sequence identity and form specialized connections called chiasmata that look like the Greek letter chi under the microscope. Pairing and the formation of chiasmata is facilitated by a structure called the synaptonemal complex; when chiasmata form the synaptonemal complex is broken down and cells get ready to split up the chromosome pairs. We are investigating how the breakdown of the synaptonemal complex is facilitated and how is it coordinated with formation of chiasmata. To this end, we use baker‘s yeast as a model organism. Baker‘s yeast has provided valuable insight into how chiasmata and the synaptonemal complex are formed and we expect that some of the basic principles that govern its breakdown will also be relevant in humans.

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Researchers

Eva Hoffmann (Principal Investigator)

Related Research

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Structural basis of meiotic chromosome organization by the synaptonemal complex.

Original classification

Fellowship

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