bioRxiv Science⌕ Search

Biology subjects

Montecinos-Franjola, F.

Publications and source records attributed to Montecinos-Franjola, F..

2 recordsLinked to original sources

Maternal regulation of the vertebrate egg-to-embryo transition

Egg activation and early embryonic development are complex and highly regulated processes that involve a series of coordinated cellular and molecular events after fertilization. While significant progress has been made in unraveling the mechanisms underlying these processes, there remains a need to comprehensively understand the precise molecular pathways and regulatory factors involved. We characterized four recessive maternal-effect mutants identified from a zebrafish forward genetic screen that function during the egg-to-embryo transition. We found that these genes encompass distinct aspects of egg activation, including cortical granule biology, cytoplasmic segregation, and the suppression of microtubule organizing center (MTOC) assembly and ectopic aster-like microtubule formation. These genes are essential to the development of the early embryo and the establishment of the basic body plan. Notably, we discovered a novel gene that we named krang, which is highly conserved across metazoans. Maternal Krang was found to be associated with the function of cortical granules during egg activation. This collection of mutants represents valuable tools to understand the genetic architecture underlying phenotypic traits shaping the egg-to-embryo transition. Furthermore, these results highlight the evolutionary conservation of maternal functions in diverse species. By deepening our understanding of these findings, we will improve our knowledge of reproductive traits and potentially develop new diagnostic tools to address human reproductive disorders. Author SummaryDuring egg activation, the egg undergoes a series of biochemical and cellular modifications that activate its dormant metabolism, preparing it to initiate embryonic development. Egg activation initiates the completion of meiosis, and the newly formed zygote undergoes a series of additional changes, including the cell cycle establishment. However, our knowledge of the molecular mechanisms controlling these processes remain limited. We identified four recessive maternal-effect mutants in zebrafish that exhibit a range of developmental alterations during egg activation and early embryogenesis. We found that these maternally acting mutant genes are associated with defects in cortical granule exocytosis, yolk-cytoplasm segregation, microtubule nucleation and dynamics that are critical for the egg-to-embryo transition. Our results suggest that the proper regulation of these processes is essential for successful egg development and embryogenesis. We characterized the Krang factor, which regulates aspects of egg activation likely by modulating the secretory pathway. Further studies on this gene may provide new insights into the molecular mechanisms underlying oocyte development and egg quality acquisition. Overall, our collection of maternal-effect mutants sheds light on the proper regulation of key molecular and cellular events for successful egg development, with important implications for reproductive medicine and assisted reproductive technologies.

developmental biology↗

Maternal regulation of the vertebrate oocyte-to-egg transition

Maternally-loaded factors in the egg accumulate during oogenesis and are essential for the oocyte and egg to acquire developmental competence and ensure the production of viable embryos. The oocyte-to-egg transition consists of the regulation of multiple molecular processes both cytoplasmic and nuclear acting in the late oocyte during a process called oocyte maturation. However, the molecular nature and functional importance of factors acting at this stage remain poorly understood. Here, we present a collection of 5 recessive maternal-effect mutants identified in a zebrafish forward genetic screen that reveal unique molecular insights into the mechanisms controlling the vertebrate oviparous oocyte-to-egg transition. We identified critical cytoplasmic regulators of yolk globule formation and maturation that are essential for egg development and embryogenesis. Specifically, the maternal-effect genes, over easy, poached, p33bjta, and black caviar control yolk globule sizing and/or protein cleavage during oogenesis, likely through endolysosomal organization independent of nuclear oocyte maturation. Furthermore, we cloned one of the mutant genes, identifying a subunit of the Adaptor Protein complex 5, which regulates intracellular trafficking, and yolk vesicle formation. Together, these mutant genes represent novel genetic entry points to decipher the molecular mechanisms functioning in the oocyte-to-egg transition, fertility, and human disease. Additionally, our genetic screen provides valuable functional tools for exploring the evolutionary fates of maternal factors and their contribution to developmental strategies for reproductive success in metazoans. Author SummaryThe oocyte-to-egg transition consists of the coordinated regulation of multiple molecular processes acting in the late oocyte. This transcriptionally silent period requires the precisely timed function of maternally-supplied gene products during oogenesis. However, knowledge of their molecular nature and in vivo function remains incomplete. The mutants reported here provide access to maternal factors regulating the processes that prepare an oocyte for reproductive competence and embryogenesis. We have identified essential regulators of yolk granule formation and protein processing. Specifically, we found that the highly conserved maternal Ap5m1 protein regulates yolk granule maturation, which generate essential nutrients and immunity for growth and development in oviparous animals. The mutants presented here represent attractive genetic models to investigate the molecular and cell biological mechanisms that control the oocyte-to-egg transition, as well as reveal a collection of genetic factors indispensable for reproduction and survival. Importantly, knowledge of their genetic underpinnings and biological importance in reproduction will also pave the way to investigate the evolution of maternal genes during vertebrate development.

developmental biology↗