Abstract
Although many of the core components of the embryonic cell-cycle network have been elucidated, the question of how embryos achieve robust, synchronous cellular divisions post-fertilization remains unexplored. What are the different schemes that could be implemented by the embryo to achieve synchronization? By extending a cell-cycle model previously developed for embryos of the frog Xenopus laevis to include the spatial dimensions of the embryo, we establish a novel role for the rapid, fertilization-initiated calcium wave that triggers cell-cycle oscillations. Specifically, in our simulations a fast calcium wave results in synchronized cell cycles, while a slow wave results in full-blown spatio-temporal chaos. We show that such chaos would ultimately lead to an unpredictable patchwork of cell divisions across the embryo. Given this potential for chaos, our results indicate a novel design principle whereby the fast calcium-wave trigger following embryo fertilization synchronizes cell divisions. © 2011 McIsaac et al.
Cite
CITATION STYLE
McIsaac, R. S., Huang, K. C., Sengupta, A., & Wingreen, N. S. (2011). Does the potential for chaos constrain the embryonic cell-cycle oscillator? PLoS Computational Biology, 7(7). https://doi.org/10.1371/journal.pcbi.1002109
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.