Nanoscale structural organization and stoichiometry of the budding yeast kinetochore

Author:

Cieslinski Konstanty12ORCID,Wu Yu-Le13ORCID,Nechyporenko Lisa14ORCID,Hörner Sarah Janice156ORCID,Conti Duccio7ORCID,Skruzny Michal1ORCID,Ries Jonas1ORCID

Affiliation:

1. Cell Biology and Biophysics Unit, European Molecular Biology Laboratory 1 , Heidelberg, Germany

2. Translational Radiation Oncology Unit, Deutsches Krebsforschungszentrum 2 , Heidelberg, Germany

3. Faculty of Biosciences, Collaboration for Joint PhD Degree Between European Molecular Biology Laboratory and Heidelberg University 3 , Heidelberg, Germany

4. Institute of Pharmacy and Molecular Biotechnology, Heidelberg University 4 , Heidelberg, Germany

5. Institute of Molecular and Cell Biology, Mannheim University of Applied Sciences 5 , Mannheim, Germany

6. Interdisciplinary Center for Neuroscience, Heidelberg University 6 , Heidelberg, Germany

7. Department of Mechanistic Cell Biology, Max Planck Institute of Molecular Physiology 7 , Dortmund, Germany

Abstract

Proper chromosome segregation is crucial for cell division. In eukaryotes, this is achieved by the kinetochore, an evolutionarily conserved multiprotein complex that physically links the DNA to spindle microtubules and takes an active role in monitoring and correcting erroneous spindle–chromosome attachments. Our mechanistic understanding of these functions and how they ensure an error-free outcome of mitosis is still limited, partly because we lack a complete understanding of the kinetochore structure in the cell. In this study, we use single-molecule localization microscopy to visualize individual kinetochore complexes in situ in budding yeast. For major kinetochore proteins, we measured their abundance and position within the metaphase kinetochore. Based on this comprehensive dataset, we propose a quantitative model of the budding yeast kinetochore. While confirming many aspects of previous reports based on bulk imaging, our results present a unifying nanoscale model of the kinetochore in budding yeast.

Funder

European Research Council

Human Frontier Science Program

European Molecular Biology Laboratory

Publisher

Rockefeller University Press

Subject

Cell Biology

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