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Biology subjects

Helsen, J.

Publications and source records attributed to Helsen, J..

2 recordsLinked to original sources

Centromeres evolve progressively through selection at the kinetochore interface

During mitosis, stable but dynamic interactions between the centromere DNA and kinetochore complex enable accurate and efficient chromosome segregation. Even though many proteins of the kinetochore are highly conserved, centromeres are among the fastest evolving regions within a genome, showing extensive variation even on short evolutionary timescales. Here, we sought to understand how new types of centromeres emerge and reach fixation by mapping centromere evolution across 138 budding yeast species and over 2,500 natural strain isolates. We show that new centromeres spread progressively via drift and subsequent selection, and that the kinetochore interface, which is evolving slowly in relative terms, determines which new centromere variants are tolerated. Together, our findings provide insight into the evolutionary constraints and trajectories shaping centromere evolution.

evolutionary biology↗

Spindle architecture constrains karyotype in budding yeast

The eukaryotic cell division machinery must rapidly and reproducibly duplicate and partition the cells chromosomes in a carefully coordinated process. However, chromosome number varies dramatically between genomes, even on short evolutionary timescales. We sought to understand how the mitotic machinery senses and responds to karyotypic changes by using a series of budding yeast strains in which the native chromosomes have been successively fused. Using a combination of cell biological profiling, genetic engineering, and experimental evolution, we show that chromosome fusions are well tolerated up until a critical point. Cells with fewer than five centromeres lack the necessary number of kinetochore-microtubule attachments needed to counter outward forces in the metaphase spindle, triggering the spindle assembly checkpoint and prolonging metaphase. Our findings demonstrate that spindle architecture is a constraining factor for karyotype evolution.

cell biology↗