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Kinetochore-fiber lengths are maintained locally but coordinated globally by poles in the mammalian spindle

View ORCID ProfileManuela Richter, View ORCID ProfileLila Neahring, Jinghui Tao, Renaldo Sutanto, Nathan H. Cho, Sophie Dumont
doi: https://doi.org/10.1101/2022.11.26.517738
Manuela Richter
1Tetrad Graduate Program, UCSF, San Francisco, CA 94158, USA
2Department of Bioengineering & Therapeutic Sciences, UCSF, San Francisco, CA 94158, USA
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  • For correspondence: sophie.dumont@ucsf.edu
Lila Neahring
2Department of Bioengineering & Therapeutic Sciences, UCSF, San Francisco, CA 94158, USA
3Developmental & Stem Cell Biology Graduate Program, UCSF, San Francisco, CA 94143, USA
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Jinghui Tao
2Department of Bioengineering & Therapeutic Sciences, UCSF, San Francisco, CA 94158, USA
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Renaldo Sutanto
2Department of Bioengineering & Therapeutic Sciences, UCSF, San Francisco, CA 94158, USA
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Nathan H. Cho
1Tetrad Graduate Program, UCSF, San Francisco, CA 94158, USA
2Department of Bioengineering & Therapeutic Sciences, UCSF, San Francisco, CA 94158, USA
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Sophie Dumont
1Tetrad Graduate Program, UCSF, San Francisco, CA 94158, USA
2Department of Bioengineering & Therapeutic Sciences, UCSF, San Francisco, CA 94158, USA
3Developmental & Stem Cell Biology Graduate Program, UCSF, San Francisco, CA 94143, USA
4Biochemistry & Biophysics Dept, University of California, San Francisco, San Francisco, CA 94158, USA
5Chan Zuckerberg Biohub, San Francisco, CA 94158, USA
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  • For correspondence: sophie.dumont@ucsf.edu
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Abstract

At each cell division, nanometer-scale components self-organize to build a micron-scale spindle. In mammalian spindles, microtubule bundles called kinetochore-fibers attach to chromosomes and focus into spindle poles. Despite evidence suggesting that poles can set spindle length, their role remains poorly understood. In fact, many species do not have spindle poles. Here, we probe the pole’s contribution to mammalian spindle length, dynamics, and function by inhibiting dynein to generate spindles whose kinetochore-fibers do not focus into poles, yet maintain a metaphase steady-state length. We find that unfocused kinetochore-fibers have a mean length indistinguishable from control, but a broader length distribution, and reduced length coordination between sisters and neighbors. Further, we show that unfocused kinetochore-fibers, like control, can grow back to their steady-state length if acutely shortened by drug treatment or laser ablation: they recover their length by tuning their end dynamics, albeit slower due to their reduced baseline dynamics. Thus, kinetochore-fiber dynamics are regulated by their length, not just pole-focusing forces. Finally, we show that spindles with unfocused kinetochore-fibers can segregate chromosomes but fail to correctly do so. We propose that mammalian spindle length emerges locally from individual k-fibers while spindle poles globally coordinate k-fibers across space and time.

Competing Interest Statement

The authors have declared no competing interest.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted November 26, 2022.
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Kinetochore-fiber lengths are maintained locally but coordinated globally by poles in the mammalian spindle
Manuela Richter, Lila Neahring, Jinghui Tao, Renaldo Sutanto, Nathan H. Cho, Sophie Dumont
bioRxiv 2022.11.26.517738; doi: https://doi.org/10.1101/2022.11.26.517738
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Kinetochore-fiber lengths are maintained locally but coordinated globally by poles in the mammalian spindle
Manuela Richter, Lila Neahring, Jinghui Tao, Renaldo Sutanto, Nathan H. Cho, Sophie Dumont
bioRxiv 2022.11.26.517738; doi: https://doi.org/10.1101/2022.11.26.517738

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