Cell cycle arrest and activation of development in marine invertebrate deuterostomes

Vlad Costache1, Alex McDougall1, Rémi Dumollard1

  • 1UMR 7009, UPMC Sorbonne Universités, Centre National de la Recherche (CNRS), Observatoire Océanologique, 181 Chemin du Lazaret, 06230 Villefranche-sur-Mer, France.

Insights

Marine deuterostome eggs arrest cell division via the Mos/MEK/MAPK pathway, releasing upon fertilization with sperm-triggered calcium signals. Different cytostatic factors (CSF) mediate distinct arrest types, with varying inactivation mechanisms.

Area of Science:

  • Developmental Biology
  • Cell Cycle Regulation
  • Marine Invertebrate Reproduction

Background:

  • Most metazoan eggs, including echinoderms and tunicates, arrest cell division awaiting fertilization.
  • This arrest is regulated by the Mos/MEK/MAPK pathway and released by sperm-triggered calcium (Ca2+) signals.
  • Invertebrate deuterostome eggs exhibit three main types of cell cycle arrest mediated by cytostatic factors (CSF): metaphase I (MI-CSF), metaphase II, and G1 (G1-CSF).

Purpose of the Study:

  • To review conserved features of egg arrest, activation, and protein synthesis in non-vertebrate deuterostomes.
  • To highlight the roles of the Mos/MEK/MAPK cascade and Ca2+ signals in regulating these processes.
  • To identify knowledge gaps regarding the mechanisms of sperm-triggered Ca2+ signals in activating development and protein synthesis.

Main Methods:

  • Literature review focusing on marine invertebrate deuterostomes.
  • Analysis of conserved molecular pathways (Mos/MEK/MAPK, Ca2+ signaling, APC/C).
  • Comparison of different CSF types and their inactivation mechanisms.

Main Results:

  • Mos/MAPK pathway establishes CSF-induced cell cycle arrest in echinoderm and tunicate eggs.
  • Ca2+ signals inactivate CSFs, releasing the arrest, but via different mechanisms for MI-CSF (APC/C activation) and G1-CSF (S phase stimulation).
  • Protein synthesis is crucial for oocyte maturation and maintaining arrest, with fertilization triggering increased synthesis, though mechanisms remain largely unknown.

Conclusions:

  • Conserved mechanisms involving Mos/MAPK and Ca2+ signaling regulate egg arrest and activation in marine deuterostomes.
  • Distinct inactivation pathways for different CSFs highlight the complexity of cell cycle control.
  • Further research is needed to elucidate the precise roles of Ca2+ in activating development and protein synthesis across diverse marine deuterostomes.

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