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.

ACS Chemical Biology
|January 30, 2008
PubMed

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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