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Updated: May 2, 2026

A Method for Microinjection of Patiria minata Zygotes
Published on: September 1, 2014
p90Rsk is required for G1 phase arrest in unfertilized starfish eggs
Masashi Mori1, Masatoshi Hara, Kazunori Tachibana
1Laboratory of Cell and Developmental Biology, Graduate School of Bioscience, Tokyo Institute of Technology, Nagatsuta, Midoriku, Yokohama 226-8501, Japan.
Abstract:
The cell cycle in oocytes generally arrests at a particular meiotic stage to await fertilization. This arrest occurs at metaphase of meiosis II (meta-II) in frog and mouse, and at G1 phase after completion of meiosis II in starfish. Despite this difference in the arrest phase, both arrests depend on the same Mos-MAPK (mitogen-activated protein kinase) pathway, indicating that the difference relies on particular downstream effectors. Immediately downstream of MAPK, Rsk (p90 ribosomal S6 kinase, p90(Rsk)) is required for the frog meta-II arrest. However, the mouse meta-II arrest challenges this requirement, and no downstream effector has been identified in the starfish G1 arrest. To investigate the downstream effector of MAPK in the starfish G1 arrest, we used a neutralizing antibody against Rsk and a constitutively active form of Rsk. Rsk was activated downstream of the Mos-MAPK pathway during meiosis. In G1 eggs, inhibition of Rsk activity released the arrest and initiated DNA replication without fertilization. Conversely, maintenance of Rsk activity prevented DNA replication following fertilization. In early embryos, injection of Mos activated the MAPK-Rsk pathway, resulting in G1 arrest. Moreover, inhibition of Rsk activity during meiosis I led to parthenogenetic activation without meiosis II. We conclude that immediately downstream of MAPK, Rsk is necessary and sufficient for the starfish G1 arrest. Although CSF (cytostatic factor) was originally defined for meta-II arrest in frog eggs, we propose to distinguish ;G1-CSF' for starfish from ;meta-II-CSF' for frog and mouse. The present study thus reveals a novel role of Rsk for G1-CSF.
Insights
p90 ribosomal S6 kinase (Rsk) is essential for G1 arrest in starfish oocytes, acting downstream of the Mos-MAPK pathway. This finding distinguishes starfish G1 arrest from frog and mouse meta-II arrest, revealing a novel role for Rsk.
Area of Science:
- Cell Biology
- Developmental Biology
- Molecular Biology
Background:
- Oocyte cell cycle arrest is crucial for fertilization readiness.
- Different species exhibit distinct meiotic arrest phases (e.g., meta-II in frogs/mice, G1 in starfish).
- The Mos-MAPK pathway is conserved in oocyte arrest, but downstream effectors vary.
Purpose of the Study:
- To identify the downstream effector of MAPK in starfish G1 arrest.
- To elucidate the role of p90 ribosomal S6 kinase (Rsk) in starfish oocyte cell cycle regulation.
Main Methods:
- Utilized a neutralizing antibody against Rsk.
- Employed a constitutively active form of Rsk.
- Investigated Rsk activation and function during meiosis and in G1-arrested starfish eggs.
Main Results:
- Rsk is activated downstream of the Mos-MAPK pathway during starfish meiosis.
- Inhibition of Rsk activity in G1 eggs triggered DNA replication without fertilization.
- Maintaining Rsk activity prevented post-fertilization DNA replication.
- Mos injection activated the MAPK-Rsk pathway, inducing G1 arrest.
- Rsk inhibition during meiosis I caused parthenogenetic activation, bypassing meiosis II.
Conclusions:
- p90 ribosomal S6 kinase (Rsk) is necessary and sufficient for starfish G1 arrest, acting immediately downstream of MAPK.
- A novel 'G1-CSF' (cytostatic factor) role for Rsk in starfish is proposed, distinct from 'meta-II-CSF' in other species.
- This study reveals a new function for Rsk in regulating G1 phase arrest in oocytes.
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