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Three-dimensional structure of kinetochore-fibers in human mitotic spindles

View ORCID ProfileRobert Kiewisz, View ORCID ProfileGunar Fabig, William Conway, View ORCID ProfileDaniel Baum, View ORCID ProfileDaniel Needleman, View ORCID ProfileThomas Müller-Reichert
doi: https://doi.org/10.1101/2021.11.13.468347
Robert Kiewisz
1Experimental Center, Faculty of Medicine Carl Gustav Carus, Technische Universität Dresden, 01307 Dresden, Germany
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  • For correspondence: mueller-reichert@tu-dresden.de rkiewisz@nysbc.org
Gunar Fabig
1Experimental Center, Faculty of Medicine Carl Gustav Carus, Technische Universität Dresden, 01307 Dresden, Germany
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William Conway
2Department of Physics, Harvard University, Cambridge, MA 02138, USA
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Daniel Baum
3Department of Visual and Data-Centric Computing, Zuse Institute Berlin, 14195 Berlin, Germany
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Daniel Needleman
2Department of Physics, Harvard University, Cambridge, MA 02138, USA
4Department of Molecular and Cellular Biology, Harvard University, Cambridge, MA 02138, USA
5John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138, USA
6Center for Computational Biology, Flatiron Institute, New York, NY 10010, USA
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Thomas Müller-Reichert
1Experimental Center, Faculty of Medicine Carl Gustav Carus, Technische Universität Dresden, 01307 Dresden, Germany
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  • For correspondence: mueller-reichert@tu-dresden.de rkiewisz@nysbc.org
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Abstract

During cell division, kinetochore microtubules (KMTs) provide a physical linkage between the chromosomes and the rest of the spindle. KMTs in mammalian cells are organized into bundles, so-called kinetochore-fibers (k-fibers), but the ultrastructure of these fibers is currently not well characterized. Here we show by large-scale electron tomography that each k-fiber in HeLa cells in metaphase is composed of approximately nine KMTs, only half of which reach the spindle pole. Our comprehensive reconstructions allowed us to analyze the three-dimensional (3D) morphology of k-fibers and their surrounding MTs in detail. We found that k-fibers exhibit remarkable variation in circumference and KMT density along their length, with the pole-proximal side showing a broadening. Extending our structural analysis then to other MTs in the spindle, we further observed that the association of KMTs with non-KMTs predominantly occurs in the spindle pole regions. Our 3D reconstructions have implications for KMT growth and k-fiber self-organization models as covered in a parallel publication applying complementary live-cell imaging in combination with biophysical modeling (Conway et al., 2021). Finally, we also introduce a new visualization tool allowing an interactive display of our 3D spindle data that will serve as a resource for further structural studies on mitosis in human cells.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • https://cfci.shinyapps.io/ASGA_3DViewer/

  • http://doi.org/10.25532/OPARA-128

  • http://doi.org/10.25532/OPARA-177

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. All rights reserved. No reuse allowed without permission.
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Posted June 04, 2022.
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Three-dimensional structure of kinetochore-fibers in human mitotic spindles
Robert Kiewisz, Gunar Fabig, William Conway, Daniel Baum, Daniel Needleman, Thomas Müller-Reichert
bioRxiv 2021.11.13.468347; doi: https://doi.org/10.1101/2021.11.13.468347
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Three-dimensional structure of kinetochore-fibers in human mitotic spindles
Robert Kiewisz, Gunar Fabig, William Conway, Daniel Baum, Daniel Needleman, Thomas Müller-Reichert
bioRxiv 2021.11.13.468347; doi: https://doi.org/10.1101/2021.11.13.468347

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