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水力压裂和活跃的粗化使小鼠囊胚腔定位。

Hydraulic fracturing and active coarsening position the lumen of the mouse blastocyst.

机构信息

Institut Curie, PSL Research University, Sorbonne Université, CNRS UMR3215, INSERM U934, Paris, France.

Center for Interdisciplinary Research in Biology, Collège de France, PSL Research University, CNRS UMR7241, INSERM U1050, 75005 Paris, France.

出版信息

Science. 2019 Aug 2;365(6452):465-468. doi: 10.1126/science.aaw7709.

Abstract

During mouse pre-implantation development, the formation of the blastocoel, a fluid-filled lumen, breaks the radial symmetry of the blastocyst. The factors that control the formation and positioning of this basolateral lumen remain obscure. We found that accumulation of pressurized fluid fractures cell-cell contacts into hundreds of micrometer-size lumens. These microlumens eventually discharge their volumes into a single dominant lumen, which we model as a process akin to Ostwald ripening, underlying the coarsening of foams. Using chimeric mutant embryos, we tuned the hydraulic fracturing of cell-cell contacts and steered the coarsening of microlumens, allowing us to successfully manipulate the final position of the lumen. We conclude that hydraulic fracturing of cell-cell contacts followed by contractility-directed coarsening of microlumens sets the first axis of symmetry of the mouse embryo.

摘要

在小鼠胚胎植入前发育过程中,囊胚腔的形成(充满液体的腔室)打破了囊胚的放射状对称。控制基底外侧腔形成和定位的因素仍不清楚。我们发现,加压流体的积累会使细胞-细胞接触破裂成数百微米大小的腔。这些微腔最终将其体积排入一个单一的主导腔中,我们将其建模为类似于奥斯特瓦尔德成熟过程,这是泡沫变粗的基础。使用嵌合突变胚胎,我们调整了细胞-细胞接触的水力压裂,并引导微腔的变粗,使我们能够成功地操纵腔的最终位置。我们得出结论,细胞-细胞接触的水力压裂随后是由收缩性指导的微腔变粗,确定了小鼠胚胎的第一个对称轴。

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