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Spatiotemporal Subcellular Manipulation of the Microtubule Cytoskeleton in the Living Preimplantation Mouse Embryo using Photostatins
Published on: November 30, 2021
Bisphenol A directly targets tubulin to disrupt spindle organization in embryonic and somatic cells
Olivia George1, Bj K Bryant, Ramesh Chinnasamy
1Department of Biology, New Mexico State University, Las Cruces, New Mexico 88003, USA.
Abstract:
There is increasing concern that animal and human reproduction may be adversely affected by exposure to xenoestrogens that activate estrogen receptors. There is evidence that one such compound, Bisphenol A (BPA), also induces meiotic and mitotic aneuploidy, suggesting that these kinds of molecules may also have effects on cell division. In an effort to understand how Bisphenol A might disrupt cell division, a phenotypic analysis was carried out using sea urchin eggs, whose early embryonic divisions are independent of zygotic transcription. Fertilized Lytechinus pictus eggs exposed to BPA formed multipolar spindles resulting in failed cytokinesis in a dose-dependent, transcriptionally independent manner. By use of novel biotinylated BPA affinity probes to fractionate cell-free extracts, tubulin was identified as a candidate binding protein by mass spectrometry, and BPA promoted microtubule polymerization and centrosome-based microtubule nucleation in vitro but did not appear to display microtubule-stabilizing activity. Treatment of mammalian cells demonstrated that BPA as well as a series of Bisphenol A derivatives induced ectopic spindle pole formation in the absence of centrosome overduplication. Together, these results suggest a novel mechanism by which Bisphenol A affects the nucleation of microtubules, disrupting the tight spatial control associated with normal chromosome segregation, resulting in aneuploidy.
Insights
Bisphenol A (BPA) exposure disrupts cell division by affecting microtubule nucleation, leading to abnormal chromosome segregation and aneuploidy in developing embryos. This mechanism impacts cell division independently of transcription.
Area of Science:
- Reproductive toxicology
- Cell biology
- Developmental biology
Background:
- Xenoestrogens, such as Bisphenol A (BPA), raise concerns regarding adverse effects on reproduction.
- BPA is implicated in inducing aneuploidy, suggesting impacts on cell division processes.
Purpose of the Study:
- To investigate the mechanism by which Bisphenol A disrupts cell division.
- To analyze the effects of BPA on early embryonic cell divisions, independent of zygotic transcription.
Main Methods:
- Phenotypic analysis of sea urchin (Lytechinus pictus) eggs exposed to BPA.
- Affinity probe mass spectrometry to identify BPA-binding proteins.
- In vitro assays for microtubule polymerization and nucleation.
- Treatment of mammalian cells to assess BPA effects on spindle formation.
Main Results:
- BPA exposure caused dose-dependent multipolar spindle formation and failed cytokinesis in sea urchin eggs.
- Tubulin was identified as a BPA-binding protein; BPA promoted microtubule polymerization and nucleation in vitro.
- BPA induced ectopic spindle pole formation in mammalian cells without centrosome duplication.
Conclusions:
- Bisphenol A disrupts cell division through a novel mechanism involving microtubule nucleation.
- This disruption affects chromosome segregation and leads to aneuploidy.
- The findings highlight potential reproductive risks associated with BPA exposure.
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In most cells, centrosomes are the primary microtubule nucleation centers. In the centrosome-mediated pathway, the G2-prophase transition triggers centrosome maturation and increased microtubule nucleation. Progressive nucleation results in a microtubule array...

