斑马鱼卵母细胞向胚胎转变过程中细胞质结构域的形成、动态及其遗传调控

IF 2.6 Q2 Medicine
Ricardo Fuentes , Mary C. Mullins , Juan Fernández
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引用次数: 15

摘要

细胞质结构域的建立和运动对于细胞极性的产生、种系分离、胚胎轴的规范以及细胞器和大分子在不同胚胎细胞中的正确分选具有重要意义。斑马鱼卵母细胞、卵细胞和受精卵是研究发育过程中细胞质结构域形成和动力学的重要材料。在这篇综述中,我们研究了斑马鱼早期胚胎发生过程中细胞质结构域的形成和重新定位。不同的皮质细胞质结构域(也称为外质结构域)在卵发生早期首先通过mrna定位于卵母细胞的植物或动物极或径向地遍及皮质形成。卵母细胞后期的细胞质分离将非皮质细胞质(内质)转移到囊胚前盘细胞和卵黄细胞中。前囊胚盘是囊胚盘的前体,囊胚盘发育成囊胚和大部分胚胎。卵激活后,胚盘通过细胞质从卵黄细胞运输到动物极点而扩大,沿着确定的路径或流线,包括复杂的细胞骨架网和不同速度的细胞质运动。一个强大的肌动蛋白环,聚集在胚盘的边缘,似乎驱动大量的细胞质流动。导致细胞质结构域形成和重新定位的机制在母体效应突变体中受到影响的事实表明,这些过程受母体控制。在这里,我们还讨论了为什么这些突变体代表了研究细胞质分离的遗传基础的杰出遗传切入点。功能研究,结合对斑马鱼突变体的分析,通过正向和反向遗传策略产生,有望破译在早期脊椎动物发育过程中母体因子调节细胞质运动的分子机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Formation and dynamics of cytoplasmic domains and their genetic regulation during the zebrafish oocyte-to-embryo transition

Establishment and movement of cytoplasmic domains is of great importance for the emergence of cell polarity, germline segregation, embryonic axis specification and correct sorting of organelles and macromolecules into different embryonic cells. The zebrafish oocyte, egg and zygote are valuable material for the study of cytoplasmic domains formation and dynamics during development. In this review we examined how cytoplasmic domains form and are relocated during zebrafish early embryogenesis. Distinct cortical cytoplasmic domains (also referred to as ectoplasm domains) form first during early oogenesis by the localization of mRNAs to the vegetal or animal poles of the oocyte or radially throughout the cortex. Cytoplasmic segregation in the late oocyte relocates non-cortical cytoplasm (endoplasm) into the preblastodisc and yolk cell. The preblastodisc is a precursor to the blastodisc, which gives rise to the blastoderm and most the future embryo. After egg activation, the blastodisc enlarges by transport of cytoplasm from the yolk cell to the animal pole, along defined pathways or streamers that include a complex cytoskeletal meshwork and cytoplasmic movement at different speeds. A powerful actin ring, assembled at the margin of the blastodisc, appears to drive the massive streaming of cytoplasm. The fact that the mechanism(s) leading to the formation and relocation of cytoplasmic domains are affected in maternal-effect mutants indicates that these processes are under maternal control. Here, we also discuss why these mutants represent outstanding genetic entry points to investigate the genetic basis of cytoplasmic segregation. Functional studies, combined with the analysis of zebrafish mutants, generated by forward and reverse genetic strategies, are expected to decipher the molecular mechanism(s) by which the maternal factors regulate cytoplasmic movements during early vertebrate development.

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来源期刊
Mechanisms of Development
Mechanisms of Development 生物-发育生物学
CiteScore
3.60
自引率
0.00%
发文量
0
审稿时长
12.4 weeks
期刊介绍: Mechanisms of Development is an international journal covering the areas of cell biology and developmental biology. In addition to publishing work at the interphase of these two disciplines, we also publish work that is purely cell biology as well as classical developmental biology. Mechanisms of Development will consider papers in any area of cell biology or developmental biology, in any model system like animals and plants, using a variety of approaches, such as cellular, biomechanical, molecular, quantitative, computational and theoretical biology. Areas of particular interest include: Cell and tissue morphogenesis Cell adhesion and migration Cell shape and polarity Biomechanics Theoretical modelling of cell and developmental biology Quantitative biology Stem cell biology Cell differentiation Cell proliferation and cell death Evo-Devo Membrane traffic Metabolic regulation Organ and organoid development Regeneration Mechanisms of Development does not publish descriptive studies of gene expression patterns and molecular screens; for submission of such studies see Gene Expression Patterns.
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