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.
Abstract:
Like most metazoans, eggs of echinoderms and tunicates (marine deuterostomes, there is no data for the cephalochordates) arrest awaiting fertilization due to the activity of the Mos/MEK/MAPK cascade and are released from this cell cycle arrest by sperm-triggered Ca2+ signals. Invertebrate deuterostome eggs display mainly three distinct types of cell cycle arrest before fertilization mediated by potentially different cytostatic factors (CSF): one CSF causes arrest during meiotic metaphase I (MI-CSF in tunicates and some starfishes), another CSF likely causes arrest during meiotic metaphase II (amphioxus), and yet another form of CSF causes arrest to occur after meiotic exit during G1 of the first mitotic cycle (G1-CSF). In tunicates and echinoderms these different CSF activities have been shown to rely on the Mos//MAPK pathway for establishment and on Ca2+ signals for their inactivation. Despite these molecular similarities, release of MI-CSF arrest is caused by APC/C activation (to destroy cyclin B) whereas release from G1-CSF is caused by stimulating S phase and the synthesis of cyclins. Further research is needed to understand how both the Mos//MAPK cascade and Ca2+ achieve these tasks in different marine invertebrate deuterostomes. Another conserved feature of eggs is that protein synthesis of specific mRNAs is necessary to proceed through oocyte maturation and to maintain CSF-induced cell cycle arrest. Then activation of development at fertilization is accompanied by an increase in the rate of protein synthesis but the mechanisms involved are still largely unknown in most of the marine deuterostomes. How the sperm-triggered Ca2+ signals cause an increase in protein synthesis has been studied mainly in sea urchin eggs. Here we review these conserved features of eggs (arrest, activation and protein synthesis) focusing on the non-vertebrate deuterostomes.
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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