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相邻体细胞的丝状伪足样突起塑造了卵母细胞的发育潜能。

Filopodia-like protrusions of adjacent somatic cells shape the developmental potential of oocytes.

机构信息

Center for Interdisciplinary Research in Biology, Collège de France, CNRS, INSERM, Université PSL, Paris, France.

Department of Developmental and Stem Cell Biology, Institut Pasteur, CNRS UMR 3738, Université Paris Cité, Paris, France.

出版信息

Life Sci Alliance. 2023 Mar 21;6(6). doi: 10.26508/lsa.202301963. Print 2023 Jun.

Abstract

The oocyte must grow and mature before fertilization, thanks to a close dialogue with the somatic cells that surround it. Part of this communication is through filopodia-like protrusions, called transzonal projections (TZPs), sent by the somatic cells to the oocyte membrane. To investigate the contribution of TZPs to oocyte quality, we impaired their structure by generating a full knockout mouse of the TZP structural component myosin-X (MYO10). Using spinning disk and super-resolution microscopy combined with a machine-learning approach to phenotype oocyte morphology, we show that the lack of decreases TZP density during oocyte growth. Reduction in TZPs does not prevent oocyte growth but impairs oocyte-matrix integrity. Importantly, we reveal by transcriptomic analysis that gene expression is altered in TZP-deprived oocytes and that oocyte maturation and subsequent early embryonic development are partially affected, effectively reducing mouse fertility. We propose that TZPs play a role in the structural integrity of the germline-somatic complex, which is essential for regulating gene expression in the oocyte and thus its developmental potential.

摘要

卵母细胞必须在受精前生长和成熟,这要归功于它与周围体细胞的密切对话。这种交流的一部分是通过体细胞发送到卵母细胞膜的类似丝状伪足的突起,称为跨区投射(TZPs)。为了研究 TZPs 对卵母细胞质量的贡献,我们通过生成 TZP 结构成分肌球蛋白-X(MYO10)的完全敲除小鼠来破坏它们的结构。我们使用旋转盘和超分辨率显微镜结合机器学习方法对卵母细胞形态进行表型分析,结果表明缺乏 MYO10 会减少卵母细胞生长过程中的 TZP 密度。减少 TZPs 不会阻止卵母细胞生长,但会损害卵母细胞-基质的完整性。重要的是,我们通过转录组分析揭示,缺乏 TZPs 的卵母细胞中的基因表达发生改变,卵母细胞成熟和随后的早期胚胎发育受到部分影响,这有效地降低了小鼠的生育能力。我们提出 TZPs 在生殖细胞-体细胞复合物的结构完整性中发挥作用,这对于调节卵母细胞中的基因表达及其发育潜能至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d47b/10029974/b710da553714/LSA-2023-01963_FigS1.jpg

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