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Updated: Jun 25, 2026

Nuclear Transfer into Mouse Oocytes
Published on: November 30, 2006
Antimitotic treatments for chemically assisted oocyte enucleation in nuclear transfer procedures
Nuno Costa-Borges1, Maria Teresa Paramio, Gloria Calderón
1Departament de Biologia Cellular, Fisiologia i Immunologia, Universitat Autònoma de Barcelona, Spain.
Abstract:
Chemically assisted enucleation has been successfully applied to porcine and bovine oocytes to prepare recipient cytoplasts for nuclear transfer procedures. In this study, the antimitotic drugs demecolcine, nocodazole, and vinblastine were first assessed for their ability to induce the formation of cortical membrane protrusions in mouse, goat, and human oocytes. While only 2% of the treated human oocytes were able to form a protrusion, high rates of protrusion formation were obtained both in mouse (84%) and goat oocytes (92%), once the treatment was optimized for each species. None of the antimitotics applied was superior to the others in terms of protrusion formation, but mouse oocytes treated with vinblastine were unable to restore normal spindle morphology after drug removal and their in vitro development after parthenogenetic activation was severely compromised, rendering this antimitotic useless for chemically assisted enucleation approaches. Aspiration of the protrusions in mouse oocytes treated with demecolcine or nocodazole yielded 90% of successfully enucleated oocytes and allowed the extraction of a smaller amount of cytoplasm than with mechanical enucleation, but both enucleation methods resulted in the depletion of spindle-associated gamma-tubulin from the prepared cytoplasts. Treatment of mouse oocytes with demecolcine or nocodazole had no effect on their in vitro development after parthenogenetic activation, or on their ability to repolymerize a new spindle after the removal of the drug or the reconstruction of the treated cytoplasts with a somatic nucleus. Therefore, demecolcine- and nocodazole-assisted enucleation appears as an efficient alternative to mechanical enucleation, which can simplify nuclear transfer procedures.
Insights
Chemically assisted enucleation using demecolcine or nocodazole offers an efficient alternative to mechanical methods for preparing oocytes in nuclear transfer. These antimitotic drugs effectively induce protrusions for enucleation without compromising subsequent embryo development.
Area of Science:
- Reproductive Biology
- Cell Biology
- Developmental Biology
Background:
- Chemically assisted enucleation is established for porcine and bovine oocytes.
- Recipient cytoplast preparation is crucial for nuclear transfer (NT) procedures.
Purpose of the Study:
- To assess antimitotic drugs (demecolcine, nocodazole, vinblastine) for inducing cortical membrane protrusions in mouse, goat, and human oocytes.
- To evaluate the efficacy and safety of chemically assisted enucleation for nuclear transfer applications.
Main Methods:
- Treatment of oocytes with demecolcine, nocodazole, and vinblastine.
- Optimization of drug treatment for mouse, goat, and human oocytes.
- Assessment of protrusion formation, enucleation success rates, and spindle/cytoplasmic integrity.
- Evaluation of in vitro development after parthenogenetic activation and somatic cell nuclear transfer.
Main Results:
- High rates of protrusion formation achieved in mouse (84%) and goat (92%) oocytes; low rate in human oocytes (2%).
- Vinblastine treatment compromised spindle morphology and in vitro development in mouse oocytes.
- Demecolcine and nocodazole enabled successful enucleation (90%) with reduced cytoplasm removal compared to mechanical methods.
- Enucleation depleted spindle-associated gamma-tubulin but did not affect subsequent development or spindle repolymerization.
Conclusions:
- Demecolcine- and nocodazole-assisted enucleation are effective alternatives to mechanical enucleation for oocytes.
- These methods can simplify nuclear transfer procedures without negatively impacting oocyte developmental potential.
- Further research may optimize chemically assisted enucleation for various species, including humans.
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