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Updated: Dec 2, 2025

Evaluation of the Spindle Assembly Checkpoint Integrity in Mouse Oocytes
Published on: September 13, 2022
Meiotic Instability Generates a Pathological Condition in Mammalian Ovum
Karuppanan V Premkumar1, Shilpa Prasad2, Meenakshi Tiwari1
1Cell Physiology Laboratory, Department of Zoology, Institute of Science, Banaras Hindu University, Varanasi, 221005, India.
Abstract:
Maintenance of metaphase-II (M-II) arrest in ovum is required to present itself as a right gamete for successful fertilization in mammals. Surprisingly, instability of meiotic cell cycle results in spontaneous exit from M-II arrest, chromosomal scattering and incomplete extrusion of second polar body (PB-II) without forming pronuclei so called abortive spontaneous ovum activation (SOA). It remains unclear what causes meiotic instability in freshly ovulated ovum that results in abortive SOA. We propose the involvement of various signal molecules such as reactive oxygen species (ROS), cyclic 3',5' adenosine monophosphate (cAMP) and calcium (Ca2+) in the induction of meiotic instability and thereby abortive SOA. These signal molecules through their downstream pathways modulate phosphorylation status and activity of cyclin dependent kinase (cdk1) as well as cyclin B1 level. Changes in phosphorylation status of cdk1 and its activity, dissociation and degradation of cyclin B1 destabilize maturation promoting factor (MPF). The premature MPF destabilization and defects in other cell cycle regulators possibly cause meiotic instability in ovum soon after ovulation. The meiotic instability results in a pathological condition of abortive SOA and deteriorates ovum quality. These ova are unfit for fertilization and limit reproductive outcome in several mammalian species including human. Therefore, global attention is required to identify the underlying causes in greater details in order to address the problem of meiotic instability in ova of several mammalian species icluding human. Moreover, these activated ova may be used to create parthenogenetic embryonic stem cell lines in vitro for the use in regenerative medicine.Graphical abstract.
Insights
Meiotic instability in mammalian ova causes spontaneous activation, leading to poor fertilization outcomes. Understanding signal molecules like ROS, cAMP, and Ca2+ is crucial for improving reproductive success and regenerative medicine applications.
Area of Science:
- Reproductive Biology
- Cell Cycle Regulation
- Developmental Biology
Background:
- Metaphase-II (M-II) arrest is essential for mammalian oocyte fertilization.
- Spontaneous exit from M-II arrest, termed abortive spontaneous ovum activation (SOA), leads to chromosomal scattering and failed fertilization.
Purpose of the Study:
- To investigate the causes of meiotic instability in freshly ovulated mammalian oocytes.
- To explore the role of signal molecules (ROS, cAMP, Ca2+) in inducing meiotic instability and abortive SOA.
- To understand the impact of these instabilities on oocyte quality and reproductive outcomes.
Main Methods:
- The study proposes investigating the involvement of reactive oxygen species (ROS), cyclic adenosine monophosphate (cAMP), and calcium (Ca2+).
- Analysis of downstream signaling pathways modulating cyclin-dependent kinase 1 (cdk1) phosphorylation and activity.
- Assessment of cyclin B1 levels and maturation-promoting factor (MPF) stability.
Main Results:
- Signal molecules (ROS, cAMP, Ca2+) are proposed to induce meiotic instability via downstream pathways.
- Modulation of cdk1 phosphorylation/activity and cyclin B1 levels destabilizes MPF.
- Premature MPF destabilization and cell cycle defects contribute to meiotic instability and abortive SOA.
Conclusions:
- Meiotic instability in mammalian oocytes results in pathological abortive SOA, compromising oocyte quality and fertilization potential.
- Identifying the causes of meiotic instability is critical for addressing reproductive issues in various mammalian species, including humans.
- Parthenogenetic activation of oocytes offers potential for generating embryonic stem cell lines for regenerative medicine.
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