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果蝇卵子发生过程中细胞质运输和细胞骨架组织的体内分析:多步骤前位定位途径的特征

In vivo analyses of cytoplasmic transport and cytoskeletal organization during Drosophila oogenesis: characterization of a multi-step anterior localization pathway.

作者信息

Theurkauf W E, Hazelrigg T I

机构信息

Department of Biochemistry and Cell Biology and the Institute for Cell and Developmental Biology, State University of New York at Stony Brook, Stony Brook, NY 11794-5215, USA.

出版信息

Development. 1998 Sep;125(18):3655-66. doi: 10.1242/dev.125.18.3655.

Abstract

Anterior patterning of the Drosophila embryo depends on localization of bicoid (bcd) mRNA to the anterior pole of the developing oocyte, and bcd mRNA localization requires both the exuperantia (exu) gene and an intact microtubule cytoskeleton. To gain insight into the mechanism of anterior patterning, we have used time lapse laser scanning confocal microscopy to analyze transport of particles containing a Green Fluorescent Protein-Exu fusion (GFP-Exu), and to directly image microtubule organization in vivo. Our observations indicate that microtubules are required for three forms of particle movement within the nurse cells, while transport through the ring canals linking the nurse cells and oocyte appears to be independent of both microtubules and actin filaments. As particles enter the oocyte, a final microtubule-dependent step directs movement to the oocyte cortex. However, our observations and previous studies suggest that the polarity of the oocyte microtubule network is not in itself sufficient to generate anterior asymmetry, and that additional factors are required to restrict morphogens to the anterior pole. Based on these observations, we propose a multi-step anterior localization pathway.

摘要

果蝇胚胎的前部模式形成依赖于双胸蛋白(bcd)mRNA定位于发育中卵母细胞的前部极,并且bcd mRNA定位需要过剩基因(exu)和完整的微管细胞骨架。为了深入了解前部模式形成的机制,我们使用了延时激光扫描共聚焦显微镜来分析含有绿色荧光蛋白-Exu融合体(GFP-Exu)的颗粒的运输,并直接在体内成像微管组织。我们的观察结果表明,微管对于滋养细胞内三种形式的颗粒运动是必需的,而通过连接滋养细胞和卵母细胞的环管的运输似乎独立于微管和肌动蛋白丝。当颗粒进入卵母细胞时,最后一个依赖微管的步骤将运动导向卵母细胞皮质。然而,我们的观察结果和先前的研究表明,卵母细胞微管网络的极性本身不足以产生前部不对称,并且需要额外的因素将形态发生素限制在前部极。基于这些观察结果,我们提出了一个多步骤的前部定位途径。

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