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Stage-specific response of preimplantation mouse embryos to W-7, a calmodulin antagonist
1Laboratory of Radiobiology and Environmental Health, University of California, San Francisco 94143.
Abstract:
Involvement of calmodulin-dependent processes in preimplantation development of mouse embryos was studied with the use of N-(6-aminohexyl)-5-chloro-1-naphthalenesulfonamide (W-7), a specific antagonist of calmodulin. At 25 microM, W-7 interfered with compaction of eight-cell embryos, caused decompaction of compacted eight-cell embryos, inhibited cavitation of late morulae, and caused collapse and degeneration of blastocysts. These effects of W-7 appear to be due to specific inhibition of calmodulin-dependent processes, because W-5, a less active analogue of W-7, was less effective in interfering with development; at 25 microM, W-5 had only a slight effect on compaction and had no effect on blastocyst formation, maintenance of blastocoels, or post-blastocyst development. In addition to the developmental effects just described, W-7 inhibited cell proliferation in four-cell embryos and reduced cell numbers of morulae after treatment at the two- to eight-cell stages. There was a marked increase in embryos' sensitivity to W-7 at the late morula stage, and the sensitivity increased further as embryos developed into blastocysts; the effects of W-7 were largely reversible after treatment at the two-cell through the compacted eight-cell stages, but not after treatment at the late morula or blastocyst stage. At the blastocyst stage, inner cell mass cells appeared to be slightly more resistant to W-7 than trophectoderm cells. This differential sensitivity became more pronounced at the late blastocyst stage: after 3.5-4-h exposure of late blastocysts to 25 microM W-7, all trophectoderm cells degenerated but most of the inner cell masses survived. From these results it appears that calmodulin-dependent processes are involved in development of mouse embryos at all of the preimplantation stages examined.
Insights
Calmodulin-dependent processes are crucial for mouse embryo development. Inhibiting these processes with W-7 disrupts preimplantation stages, affecting compaction, cavitation, and blastocyst formation, highlighting calmodulin
Area of Science:
- Developmental Biology
- Cell Biology
- Molecular Biology
Background:
- Calmodulin plays a vital role in cellular signaling pathways.
- Understanding calmodulin's function is essential for comprehending embryonic development.
- Preimplantation development involves complex cellular processes regulated by signaling molecules.
Purpose of the Study:
- To investigate the involvement of calmodulin-dependent processes in mouse preimplantation embryo development.
- To determine the effects of specific calmodulin antagonists on key developmental stages.
Main Methods:
- Utilized N-(6-aminohexyl)-5-chloro-1-naphthalenesulfonamide (W-7), a specific calmodulin antagonist.
- Administered W-7 and its less active analogue W-5 to mouse embryos at various preimplantation stages (2-cell to blastocyst).
- Assessed developmental parameters including compaction, cavitation, blastocyst formation, cell proliferation, and cell survival.
Main Results:
- W-7 significantly interfered with embryo compaction, cavitation, and blastocyst formation at 25 microM.
- W-7 inhibited cell proliferation and reduced cell numbers in morulae.
- Embryo sensitivity to W-7 increased from the late morula to the blastocyst stage, with differential effects on inner cell mass and trophectoderm cells.
Conclusions:
- Calmodulin-dependent processes are essential for all examined stages of mouse preimplantation development.
- Specific inhibition of calmodulin disrupts critical developmental events, leading to embryo degeneration.
- Trophectoderm cells exhibit greater sensitivity to W-7 than inner cell mass cells at the blastocyst stage.