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Cytostatic activity develops during meiosis I in oocytes of LT/Sv mice
1Institute of Zoology, University of Warsaw, Warsaw, Poland.
Abstract:
Oocytes of wild-type mice are ovulated as the secondary oocytes arrested at metaphase of the second meiotic division. Their fertilization or parthenogenetic activation triggers the completion of the second meiotic division followed by the first embryonic interphase. Oocytes of the LT/Sv strain of mice are ovulated either at the first meiotic metaphase (M I) as primary oocytes or in the second meiotic metaphase (M II) as secondary oocytes. We show here that during in vitro maturation a high proportion of LT/Sv oocytes progresses normally only until metaphase I. In these oocytes MAP kinase activates shortly after histone H1 kinase (MPF) activation and germinal vesicle breakdown. However, MAP kinase activation is slightly earlier than in oocytes from wild-type F1 (CBA/H x C57Bl/10) mice. The first meiotic spindle of these oocytes forms similarly to wild-type oocytes. During aging, however, it increases in size and finally degenerates. In those oocytes which do not remain in metaphase I the extrusion of first polar bodies is highly delayed and starts about 15 h after germinal vesicle breakdown. Most of the oocytes enter interphase directly after first polar body extrusion. Fusion between metaphase I LT/Sv oocytes and wild-type mitotic one-cell embryos results in prolonged M-phase arrest of hybrids in a proportion similar to control LT/Sv oocytes and control hybrids made by fusion of two M I LT/Sv oocytes. This indicates that LT/Sv oocytes develop cytostatic factor during metaphase I. Eventually, anaphase occurs spontaneously and the hybrids extrude the polar body and form pronuclei in a proportion similar as in controls. In hybrids between LT/Sv metaphase I oocytes and wild-type metaphase II oocytes (which contain cytostatic factor) anaphase I proceeds at the time observed in control LT/Sv oocytes and hybrids between two M I LT/Sv oocytes, and is followed by the parthenogenetic activation and formation of interphase nuclei. Also the great majority of hybrids between M I and M II wild-type oocytes undergoes the anaphase but further arrests in a subsequent M-phase. These observations suggest that an internally triggered anaphase I occurs despite the presence of the cytostatic activity both in LT/Sv and wild-type M I oocytes. Anaphase I triggering mechanism must therefore either inactivate or override the CSF activity. The comparison between spontaneous and induced activation of metaphase I LT/Sv oocytes shows that mechanisms involved in anaphase I triggering are altered in these oocytes. Thus, the prolongation of metaphase I in LT/Sv oocytes seems to be determined by delayed anaphase I triggering and not provoked directly by the cytostatic activity.
Insights
LT/Sv mouse oocytes exhibit delayed anaphase I triggering, leading to prolonged metaphase I arrest. This delay, not cytostatic factor, causes metaphase I arrest in these oocytes.
Area of Science:
- Developmental Biology
- Cell Cycle Regulation
- Mammalian Oogenesis
Background:
- Wild-type mouse oocytes ovulate as secondary oocytes arrested at meiosis II (M II).
- Fertilization or activation triggers M II completion and first embryonic interphase.
- LT/Sv mouse oocytes can ovulate as primary (M I) or secondary (M II) oocytes.
Purpose of the Study:
- Investigate the meiotic progression and cell cycle regulation of LT/Sv mouse oocytes.
- Determine the factors contributing to the prolonged metaphase I arrest observed in LT/Sv oocytes.
- Compare the anaphase I triggering mechanisms between LT/Sv and wild-type oocytes.
Main Methods:
- In vitro maturation of LT/Sv and wild-type mouse oocytes.
- Analysis of MAP kinase and histone H1 kinase (MPF) activation.
- Fusion experiments between LT/Sv oocytes, wild-type oocytes, and mitotic embryos.
- Microscopic observation of meiotic spindle formation, polar body extrusion, and pronuclei formation.
Main Results:
- A high proportion of LT/Sv oocytes arrest at metaphase I (M I) during in vitro maturation.
- MAP kinase activation occurs slightly earlier in LT/Sv oocytes compared to wild-type.
- LT/Sv oocytes develop cytostatic factor (CSF) during M I, indicated by prolonged M-phase arrest in hybrid embryos.
- An internally triggered anaphase I occurs in LT/Sv and wild-type M I oocytes, overriding CSF activity.
- Delayed anaphase I triggering, not CSF, is responsible for the prolonged M I arrest in LT/Sv oocytes.
Conclusions:
- The prolonged metaphase I arrest in LT/Sv oocytes is primarily due to a delay in the anaphase I triggering mechanism.
- The anaphase I triggering mechanism can inactivate or override cytostatic factor activity.
- Alterations in anaphase I triggering mechanisms are evident in LT/Sv oocytes.