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Chemical activation of mammalian oocytes and its application in camelid reproductive biotechnologies: A review. | LitMetric

AI Article Synopsis

  • Mammalian oocyte activation is crucial post-fusion and involves a rise in intracellular calcium, leading to key cellular events affecting specific kinases and the inactivation of MPF and MAPK activities.
  • Despite various attempts to induce artificial oocyte activation using different chemical agents, outcomes have generally been inadequate, highlighting the need for species-specific optimization of activation methods like PA, ICSI, and SCNT.
  • Research on chemical activation, especially in camelids, remains limited, as current methods have not consistently resulted in viable offspring, emphasizing a need for better understanding of these molecular mechanisms.

Article Abstract

Mammalian oocyte activation is a critical process occurring post-gamete fusion, marked by a sequence of cellular events initiated by an upsurge in intracellular Ca. This surge in calcium orchestrates the activation/deactivation of specific kinases, leading to the subsequent inactivation of MPF and MAPK activities, alongside PKC activation. Despite various attempts to induce artificial activation using distinct chemical compounds as Ca inducers and/or Ca-independent agents, the outcomes have proven suboptimal. Notably, incomplete suppression of MPF and MAPK activities persists, necessitating a combination of different agents for enhanced efficiency. Moreover, the inherent specificity of activation methods for each species precludes straightforward extrapolation between them. Consequently, optimization of protocols for each species and for each technique, such as PA, ICSI, and SCNT, is required. Despite recent strides in camelid biotechnologies, the field has seen little advancement in chemical activation methods. Only a limited number of chemical agents have been explored, and the effects of many remain unknown. In ICSI, despite obtaining blastocysts with different chemical compounds that induce Ca and calcium-independent increases, viable offspring have not been obtained. However, SCNT has exhibited varying outcomes, successfully yielding viable offspring with a reduced number of chemical activators. This article comprehensively reviews the current understanding of the physiological activation of oocytes and the molecular mechanisms underlying chemical activation in mammals. The aim is to transfer and apply this knowledge to camelid reproductive biotechnologies, with emphasis on chemical activation in PA, ICSI, and SCNT.

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Source
http://dx.doi.org/10.1016/j.anireprosci.2024.107499DOI Listing

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