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果蝇卵子发生中翻译控制机制的 mRNA 动态。

The mRNA dynamics underpinning translational control mechanisms of Drosophila melanogaster oogenesis.

机构信息

Department of Biological Sciences, Hunter College, City University of New York, New York, NY 10065, USA.

Program in Molecular, Cellular and Developmental Biology, The Graduate Center, City University of New York, New York, NY 10016, USA.

出版信息

Biochem Soc Trans. 2024 Oct 30;52(5):2087-2099. doi: 10.1042/BST20231293.

Abstract

Advances in the study of mRNAs have yielded major new insights into post-transcriptional control of gene expression. Focus on the spatial regulation of mRNAs in highly polarized cells has demonstrated that mRNAs translocate through cells as mRNA:protein granules (mRNPs). These complex self-assemblies containing nuclear and cytoplasmic proteins are fundamental to the coordinated translation throughout cellular development. Initial studies on translational control necessitated fixed tissue, but the last 30 years have sparked innovative live-cell studies in several cell types to deliver a far more nuanced picture of how mRNA-protein dynamics exert translational control. In this review, we weave together the events that underpin mRNA processes and showcase the pivotal studies that revealed how a multitude of protein factors engage with a transcript. We highlight a mRNA's ability to act as a 'super scaffold' to facilitate molecular condensate formation and further moderate translational control. We focus on the Drosophila melanogaster germline due to the extensive post-transcriptional regulation occurring during early oogenesis. The complexity of the spatio-temporal expression of maternal transcripts in egg chambers allows for the exploration of a wide range of mechanisms that are crucial to the life cycle of mRNAs.

摘要

mRNA 研究的进展为基因表达的转录后调控提供了重要的新见解。对高度极化细胞中 mRNAs 空间调控的关注表明,mRNAs 作为 mRNA-蛋白颗粒(mRNP)在细胞内穿梭。这些包含核蛋白和胞质蛋白的复杂自组装体是细胞发育过程中协调翻译的基础。最初的翻译控制研究需要固定组织,但在过去的 30 年里,几种细胞类型的创新活细胞研究提供了一个更细致入微的图景,说明了 mRNA-蛋白动力学如何发挥翻译控制作用。在这篇综述中,我们将 mRNA 过程的基本事件编织在一起,并展示了揭示多种蛋白因子与转录本相互作用的关键研究。我们强调了 mRNA 作为“超级支架”的作用,促进分子凝聚物的形成,并进一步调节翻译控制。我们专注于黑腹果蝇生殖系,因为在早期卵子发生过程中发生了广泛的转录后调控。卵室中母本转录本的时空表达的复杂性允许探索对 mRNA 生命周期至关重要的广泛机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a5b/11555706/a5b1123c1ae1/BST-52-2087-g0001.jpg

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