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Updated: Aug 20, 2026

Reconstitution of Basic Mitotic Spindles in Spherical Emulsion Droplets
Published on: August 13, 2016
Anaphase spindle mechanics prevent mis-segregation of merotelically oriented chromosomes
Daniela Cimini1, Lisa A Cameron, E D Salmon
1Department of Biology, CB#3280, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, USA. cimini@email.unc.edu
Abstract:
Merotelic kinetochore orientation is a kinetochore misattachment in which a single kinetochore is attached to microtubules from both spindle poles instead of just one. It can be favored in specific circumstances, is not detected by the mitotic checkpoint, and induces lagging chromosomes in anaphase. In mammalian cells, it occurs at high frequency in early mitosis, but few anaphase cells show lagging chromosomes. We developed live-cell imaging methods to determine whether and how the mitotic spindle prevents merotelic kinetochores from producing lagging chromosomes. We found that merotelic kinetochores entering anaphase never lost attachment to the spindle poles; they remained attached to both microtubule bundles, but this did not prevent them from segregating correctly. The two microtubule bundles usually showed different fluorescence intensities, the brighter bundle connecting the merotelic kinetochore to the correct pole. During anaphase, the dimmer bundle lengthened much more than the brighter bundle as spindle elongation occurred. This resulted in correct segregation of the merotelically oriented chromosome. We propose a model based on the ratios of microtubules to the correct versus incorrect pole for how anaphase spindle dynamics and microtubule polymerization at kinetochores prevent potential segregation errors deriving from merotelic kinetochore orientation.
Insights
Merotelic kinetochore orientation, a cell division error, is prevented from causing chromosome mis-segregation by anaphase spindle dynamics. Live-cell imaging revealed how microtubule polymerization corrects these attachments during cell division.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Merotelic kinetochore orientation is a common kinetochore misattachment during cell division.
- This error involves a single kinetochore attaching to microtubules from both spindle poles.
- Merotelic attachments evade the mitotic checkpoint and can lead to lagging chromosomes.
Purpose of the Study:
- To investigate the mechanisms by which the mitotic spindle prevents merotelic kinetochores from causing chromosome mis-segregation in mammalian cells.
- To understand how these errors are resolved during anaphase.
Main Methods:
- Development of live-cell imaging techniques for observing mitosis in real-time.
- Analysis of merotelic kinetochore behavior during anaphase using fluorescence microscopy.
Main Results:
- Merotelic kinetochores remained attached to both spindle poles throughout anaphase without causing lagging chromosomes.
- Differences in microtubule bundle fluorescence intensity indicated the correct pole.
- Differential elongation of microtubule bundles during spindle separation facilitated correct chromosome segregation.
Conclusions:
- Anaphase spindle dynamics, specifically differential microtubule polymerization, effectively corrects merotelic kinetochore attachments.
- This mechanism prevents chromosome mis-segregation despite the high frequency of merotelic orientations in early mitosis.
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