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合子控制的F-肌动蛋白建立皮质区室以在果蝇细胞化过程中稳定沟。

Zygotically controlled F-actin establishes cortical compartments to stabilize furrows during Drosophila cellularization.

作者信息

Sokac Anna Marie, Wieschaus Eric

机构信息

Department of Molecular Biology, Princeton University, Princeton, NJ 08544, USA.

出版信息

J Cell Sci. 2008 Jun 1;121(11):1815-24. doi: 10.1242/jcs.025171. Epub 2008 May 6.

Abstract

Cortical compartments partition proteins and membrane at the cell surface to define regions of specialized function. Here we ask how cortical compartments arise along the plasma membrane furrows that cellularize the early Drosophila embryo, and investigate the influence that this compartmentalization has on furrow ingression. We find that the zygotic gene product Nullo aids the establishment of discrete cortical compartments, called furrow canals, which form at the tip of incipient furrows. Upon nullo loss-of-function, proteins that are normally restricted to adjacent lateral regions of the furrow, such as Neurotactin and Discs large, spread into the furrow canals. At the same time, cortical components that should concentrate in furrow canals, such as Myosin 2 (Zipper) and Anillin (Scraps), are missing from some furrows. Depletion of these cortical components from the furrow canal compartments precipitates furrow regression. Contrary to previous models, we find that furrow compartmentalization does not require cell-cell junctions that border the furrow canals. Instead, compartmentalization is disrupted by treatments that reduce levels of cortical F-actin. Because the earliest uniform phenotype detected in nullo mutants is reduced levels of F-actin at furrow canals, we propose that Nullo compartmentalizes furrows via its regulation of F-actin, thus stabilizing furrows and insuring their ingression to complete cellularization.

摘要

皮质区室在细胞表面分隔蛋白质和膜,以定义特殊功能区域。在此,我们探究皮质区室如何沿着使早期果蝇胚胎细胞化的质膜沟形成,并研究这种区室化对沟内陷的影响。我们发现合子基因产物Nullo有助于建立离散的皮质区室,称为沟管,其在初始沟的顶端形成。在Nullo功能丧失时,通常局限于沟相邻侧向区域的蛋白质,如神经趋触蛋白和盘状大蛋白,扩散到沟管中。同时,一些沟中缺少应集中在沟管中的皮质成分,如肌球蛋白2(拉链)和膜收缩蛋白(碎片)。从沟管区室中耗尽这些皮质成分会导致沟退缩。与先前的模型相反,我们发现沟的区室化不需要与沟管相邻的细胞间连接。相反,降低皮质F-肌动蛋白水平的处理会破坏区室化。因为在Nullo突变体中检测到的最早的一致表型是沟管处F-肌动蛋白水平降低,我们提出Nullo通过调节F-肌动蛋白使沟区室化,从而稳定沟并确保其内陷以完成细胞化。

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