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Updated: May 29, 2026

Xenopus laevis as a Model to Identify Translation Impairment
Published on: September 27, 2015
Growth-arrest-specific protein 2 inhibits cell division in Xenopus embryos
Tong Zhang1, Bama Dayanandan, Isabelle Rouiller
1Department of Biology, McGill University, Montreal, Quebec, Canada. tong.zhang1@mail.mcgill.ca
Background:
Growth-arrest-specific 2 gene was originally identified in murine fibroblasts under growth arrest conditions. Furthermore, serum stimulation of quiescent, non-dividing cells leads to the down-regulation of gas2 and results in re-entry into the cell cycle. Cytoskeleton rearrangements are critical for cell cycle progression and cell division and the Gas2 protein has been shown to co-localize with actin and microtubules in interphase mammalian cells. Despite these findings, direct evidence supporting a role for Gas2 in the mechanism of cell division has not been reported.
Methodology And Principal Findings:
To determine whether the Gas2 protein plays a role in cell division, we over-expressed the full-length Gas2 protein and Gas2 truncations containing either the actin-binding CH domain or the tubulin-binding Gas2 domain in Xenopus laevis embryos. We found that both the full-length Gas2 protein and the Gas2 domain, but not the CH domain, inhibited cell division and resulted in multinucleated cells. The observation that Gas2 domain alone can arrest cell division suggests that Gas2 function is mediated by microtubule binding. Gas2 co-localized with microtubules at the cell cortex of Gas2-injected Xenopus embryos using cryo-confocal microscopy and co-sedimented with microtubules in cytoskeleton co-sedimentation assays. To investigate the mechanism of Gas2-induced cell division arrest, we showed, using a wound-induced contractile array assay, that Gas2 stabilized microtubules. Finally, electron microscopy studies demonstrated that Gas2 bundled microtubules into higher-order structures.
Conclusion And Significance:
Our experiments show that Gas2 inhibits cell division in Xenopus embryos. We propose that Gas2 function is mediated by binding and bundling microtubules, leading to cell division arrest.
Insights
The Gas2 protein inhibits cell division by binding and bundling microtubules, causing cell cycle arrest in Xenopus embryos. This finding clarifies the role of Gas2 in cell division mechanisms.
Area of Science:
- Cell Biology
- Molecular Biology
- Developmental Biology
Background:
- Growth-arrest-specific 2 (Gas2) gene identified in growth-arrested fibroblasts.
- Gas2 down-regulation linked to cell cycle re-entry.
- Gas2 protein interacts with actin and microtubules in interphase cells.
Purpose of the Study:
- Investigate the role of Gas2 protein in cell division mechanisms.
- Determine if Gas2 directly impacts cell cycle progression.
Main Methods:
- Over-expression of full-length Gas2 and its domains in Xenopus laevis embryos.
- Cryo-confocal microscopy to assess co-localization with microtubules.
- Cytoskeleton co-sedimentation and wound-induced contractile array assays.
- Electron microscopy to analyze microtubule structures.
Main Results:
- Full-length Gas2 and its tubulin-binding domain inhibited cell division, causing multinucleation.
- Gas2 co-localized with and stabilized microtubules.
- Gas2 bundled microtubules into higher-order structures.
- The actin-binding CH domain did not inhibit cell division.
Conclusions:
- Gas2 protein inhibits cell division in Xenopus embryos.
- Gas2 function is mediated through binding and bundling of microtubules.
- This mechanism leads to cell division arrest.
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