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Mass Spectrometry Analysis to Identify Ubiquitylation of EYFP-tagged CENP-A EYFP-CENP-A
Published on: June 10, 2020
Evidence for a HURP/EB free mixed-nucleotide zone in kinetochore-microtubules
Cédric Castrogiovanni1,2, Alessio V Inchingolo3,4, Jonathan U Harrison3,5
1Department of Cell Physiology and Metabolism, Faculty of Medicine, University of Geneva, 1211, Geneva 4, Switzerland.
Abstract:
Current models infer that the microtubule-based mitotic spindle is built from GDP-tubulin with small GTP caps at microtubule plus-ends, including those that attach to kinetochores, forming the kinetochore-fibres. Here we reveal that kinetochore-fibres additionally contain a dynamic mixed-nucleotide zone that reaches several microns in length. This zone becomes visible in cells expressing fluorescently labelled end-binding proteins, a known marker for GTP-tubulin, and endogenously-labelled HURP - a protein which we show to preferentially bind the GDP microtubule lattice in vitro and in vivo. We find that in mitotic cells HURP accumulates on the kinetochore-proximal region of depolymerising kinetochore-fibres, whilst avoiding recruitment to nascent polymerising K-fibres, giving rise to a growing "HURP-gap". The absence of end-binding proteins in the HURP-gaps leads us to postulate that they reflect a mixed-nucleotide zone. We generate a minimal quantitative model based on the preferential binding of HURP to GDP-tubulin to show that such a mixed-nucleotide zone is sufficient to recapitulate the observed in vivo dynamics of HURP-gaps.
Insights
Kinetochore-fibers contain a dynamic mixed-nucleotide zone, not just GTP caps. This zone, marked by HURP protein, reveals new insights into microtubule dynamics during cell division.
Area of Science:
- Cell Biology
- Molecular Biology
- Biophysics
Background:
- Microtubule dynamics are crucial for cell division.
- Existing models propose kinetochore-fibers are built from GDP-tubulin with GTP caps at plus-ends.
Purpose of the Study:
- To investigate the nucleotide composition of kinetochore-fibers.
- To characterize the role of HURP protein in microtubule dynamics.
Main Methods:
- Utilized fluorescently labelled end-binding proteins as GTP-tubulin markers.
- Employed endogenously-labelled HURP protein.
- Performed in vitro and in vivo binding assays.
- Developed a quantitative model.
Main Results:
- Revealed a dynamic mixed-nucleotide zone extending microns along kinetochore-fibers.
- Demonstrated HURP preferentially binds GDP-tubulin lattice.
- Observed HURP accumulation on depolymerizing kinetochore-fibers, forming a 'HURP-gap'.
- Showed absence of end-binding proteins in HURP-gaps, supporting mixed-nucleotide zone hypothesis.
Conclusions:
- Kinetochore-fibers possess a significant mixed-nucleotide zone.
- HURP's preferential binding to GDP-tubulin explains the observed dynamics.
- The study refines models of microtubule-based spindle assembly.
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