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Updated: Nov 3, 2025

Preparation of Meiotic Chromosome Spreads from Mouse Oocytes for Assessment of Synapsis and Recombination
Published on: July 18, 2025
OSD1 promotes meiotic progression via APC/C inhibition and forms a regulatory network with TDM and CYCA1;2/TAM
Laurence Cromer1, Jefri Heyman, Sandra Touati
1INRA, UMR1318, Institut Jean-Pierre Bourgin, Versailles, France.
Abstract:
Cell cycle control is modified at meiosis compared to mitosis, because two divisions follow a single DNA replication event. Cyclin-dependent kinases (CDKs) promote progression through both meiosis and mitosis, and a central regulator of their activity is the APC/C (Anaphase Promoting Complex/Cyclosome) that is especially required for exit from mitosis. We have shown previously that OSD1 is involved in entry into both meiosis I and meiosis II in Arabidopsis thaliana; however, the molecular mechanism by which OSD1 controls these transitions has remained unclear. Here we show that OSD1 promotes meiotic progression through APC/C inhibition. Next, we explored the functional relationships between OSD1 and the genes known to control meiotic cell cycle transitions in Arabidopsis. Like osd1, cyca1;2/tam mutation leads to a premature exit from meiosis after the first division, while tdm mutants perform an aberrant third meiotic division after normal meiosis I and II. Remarkably, while tdm is epistatic to tam, osd1 is epistatic to tdm. We further show that the expression of a non-destructible CYCA1;2/TAM provokes, like tdm, the entry into a third meiotic division. Finally, we show that CYCA1;2/TAM forms an active complex with CDKA;1 that can phosphorylate OSD1 in vitro. We thus propose that a functional network composed of OSD1, CYCA1;2/TAM, and TDM controls three key steps of meiotic progression, in which OSD1 is a meiotic APC/C inhibitor.
Insights
OSD1 acts as a meiotic Anaphase Promoting Complex/Cyclosome (APC/C) inhibitor, promoting cell cycle progression through meiosis I and II in Arabidopsis. This study reveals OSD1
Area of Science:
- Plant molecular biology
- Cell cycle regulation
- Meiosis
Background:
- Cell cycle control differs between mitosis and meiosis due to a single DNA replication preceding two divisions.
- Cyclin-dependent kinases (CDKs) regulate progression in both meiosis and mitosis.
- The Anaphase Promoting Complex/Cyclosome (APC/C) is crucial for mitotic exit and meiotic progression.
Purpose of the Study:
- To elucidate the molecular mechanism by which OSD1 controls meiotic transitions in Arabidopsis thaliana.
- To investigate the functional relationships between OSD1 and known meiotic cell cycle regulators.
Main Methods:
- Investigated OSD1's role in meiotic progression via APC/C inhibition.
- Analyzed genetic interactions between OSD1, CYCA1;2/TAM, and TDM mutants.
- Examined the effect of non-destructible CYCA1;2/TAM expression.
- Performed in vitro phosphorylation assays of OSD1 by CDKA;1.
Main Results:
- OSD1 promotes meiotic progression by inhibiting the APC/C.
- Genetic analysis revealed OSD1 is epistatic to TDM, which is epistatic to CYCA1;2/TAM.
- Aberrant third meiotic divisions were observed in tdm mutants and with non-destructible CYCA1;2/TAM expression.
- CYCA1;2/TAM forms an active complex with CDKA;1, phosphorylating OSD1 in vitro.
Conclusions:
- A functional network involving OSD1, CYCA1;2/TAM, and TDM regulates key meiotic progression steps in Arabidopsis.
- OSD1 functions as a meiotic APC/C inhibitor within this network.
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