Related Experiment Video
Updated: Jul 10, 2026

Slide Preparation Method to Preserve Three-dimensional Chromatin Architecture of Testicular Germ Cells
Published on: January 10, 2014
Dynamic regulation of mitotic arrest in fetal male germ cells
Patrick S Western1, Denise C Miles, Jocelyn A van den Bergen
1Murdoch Children's Research Institute, ARC Centre of Excellence in Biotechnology and Development, Department of Paediatrics, Royal Children's Hospital, Melbourne, Victoria 3052, Australia. patrick.western@mcri.edu.au
Abstract:
During fetal mouse development, germ cells enter the developing gonad at embryonic day (E) 10-11. In response to signaling from the male or female gonad, the germ cells commit either to spermatogenesis at E12.5 and enter mitotic arrest or to oogenesis and enter meiotic arrest at E13.5. It is unclear whether male commitment of the germ line and mitotic arrest are directly associated or whether they are developmentally separate. In addition, the published data describing the timing of mitotic arrest are inconsistent, and the molecular processes underlying the control of the cell cycle during mitotic arrest also remain unknown. Using flow cytometric techniques, 5-bromo-2'-deoxyuridine labeling, and immunofluorescent analysis of cell proliferation, we have determined that germ cells in the embryonic mouse testis arrest in G0 during E12.5 and E14.5. This process is gradual and occurs in an unsynchronized manner. We have also purified germ cells and analyzed molecular changes in male germ cells as they exit the cell cycle. This has allowed us to identify a series of molecular events, including activation of p27(Kip1), p15(INK4b), and p16(INK4a); the dephosphorylation and degradation of retinoblastoma protein; and the suppression of CyclinE, which lead to mitotic arrest. For the first time, the data presented here accurately define the mitotic arrest of male germ cells by directly combining the analysis of cell cycle changes with the examination of functionally defined cell cycle regulators.
Insights
Male germ cells in developing mice arrest mitosis gradually between embryonic days 12.5 and 14.5. This process involves specific molecular regulators, clarifying the cell cycle control during male germ line development.
Area of Science:
- Developmental Biology
- Cell Cycle Regulation
- Reproductive Biology
Background:
- Germ cell development in fetal mice involves commitment to either spermatogenesis or oogenesis.
- The precise timing and molecular mechanisms of male germ cell mitotic arrest remain unclear.
Purpose of the Study:
- To accurately define the timing of male germ cell mitotic arrest during mouse embryonic development.
- To identify the molecular regulators controlling cell cycle exit in male germ cells.
Main Methods:
- Flow cytometry
- 5-bromo-2'-deoxyuridine labeling
- Immunofluorescent analysis of cell proliferation
- Germ cell purification and molecular analysis
Main Results:
- Male germ cells arrest in G0 phase between embryonic days 12.5 and 14.5, occurring gradually and unsynchronized.
- Identified molecular events include activation of p27(Kip1), p15(INK4b), and p16(INK4a).
- Observed dephosphorylation/degradation of retinoblastoma protein and suppression of CyclinE.
Conclusions:
- Established the precise timing of male germ cell mitotic arrest.
- Elucidated key molecular players in the cell cycle exit of male germ cells.
- Provided a comprehensive understanding of male germ line commitment and mitotic arrest.
Related Concept Videos
Negative Regulator Molecules
The Cell Cycle Control System
Cyclins and cyclin-dependent kinases (Cdks) are the primary cell cycle regulators and function at the cell...
Spermatogenesis
Molecular Factors Affecting Cell Division
Several proteins function as internal regulators to ensure each cell cycle stage is completed faithfully before proceeding to the next. Regulator molecules may act directly or influence the activity or production of other...
Dosage Compensation
In addition to sexual development, the X chromosome has genes involved in autosomal functions such as brain development and the immune system. Therefore, males and females with distinct numbers of X chromosomes will have...
Abnormal Proliferation

