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Updated: Jul 13, 2026

Evaluation of the Spindle Assembly Checkpoint Integrity in Mouse Oocytes
Published on: September 13, 2022
Rapid effects of acute anoxia on spindle kinetochore interactions activate the mitotic spindle checkpoint
Rahul Pandey1, Sebastian Heeger, Christian F Lehner
1Department of Genetics, BZMB, University of Bayreuth, 95440 Bayreuth, Germany.
Abstract:
The dramatic chromosome instability in certain tumors might reflect a synergy of spindle checkpoint defects with hypoxic conditions. In Caenorhabditis elegans and Drosophila melanogaster, spindle checkpoint activation has been implicated in the response to acute anoxia. The activation mechanism is unknown. Our analyses in D. melanogaster demonstrate that oxygen deprivation affects microtubule organization within minutes. The rapid effects of anoxia are identical in wild-type and spindle checkpoint-deficient Mps1 mutant embryos. Therefore, the anoxia effects on the mitotic spindle are not a secondary consequence of spindle checkpoint activation. Some motor, centrosome and kinetochore proteins (dynein, Kin-8, Cnn, TACC, Cenp-C, Nuf2) are rapidly relocalized after oxygen deprivation. Kinetochores congress inefficiently into the metaphase plate and do not experience normal pulling forces. Spindle checkpoint proteins accumulate mainly within the spindle midzone and inhibit anaphase onset. In checkpoint-deficient embryos, mitosis is still completed after oxygen deprivation, although accompanied by massive chromosome missegregation. Inhibitors of oxidative phosphorylation mimic anoxia effects. We conclude that oxygen deprivation impairs the chromosome segregation machinery more rapidly than spindle checkpoint function. Although involving adenosine triphosphate (ATP)-consuming kinases, the spindle checkpoint can therefore be activated by spindle damage in response to acute anoxia and protect against aneuploidies.
Insights
Acute oxygen deprivation rapidly damages the chromosome segregation machinery, even before spindle checkpoint activation. This highlights how hypoxia contributes to chromosome instability and aneuploidies in tumors.
Area of Science:
- Cell Biology
- Genetics
- Cancer Research
Background:
- Chromosome instability is observed in tumors and may involve spindle checkpoint defects and hypoxia.
- Spindle checkpoint activation is linked to anoxia response in model organisms, but the mechanism is unclear.
Purpose of the Study:
- To investigate the rapid effects of oxygen deprivation on the mitotic spindle and spindle checkpoint activation.
- To determine if anoxia-induced spindle damage precedes or follows spindle checkpoint activation.
Main Methods:
- Analysis of microtubule organization and protein localization in Drosophila melanogaster embryos under oxygen deprivation.
- Comparison of wild-type and spindle checkpoint-deficient Mps1 mutant embryos.
- Use of oxidative phosphorylation inhibitors to mimic anoxia.
Main Results:
- Oxygen deprivation rapidly affects microtubule organization and protein localization (dynein, Kin-8, etc.) within minutes.
- Kinetochores exhibit inefficient congress and reduced pulling forces; spindle checkpoint proteins accumulate in the midzone.
- Anoxia effects on the mitotic spindle occur independently of spindle checkpoint activation.
Conclusions:
- Oxygen deprivation impairs chromosome segregation machinery faster than spindle checkpoint function.
- The spindle checkpoint can be activated by anoxia-induced spindle damage, protecting against aneuploidies.
- Hypoxia contributes to chromosome instability and aneuploidies, potentially through rapid disruption of the segregation machinery.
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