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通过Ras、PI3K和TOR的协同激活对趋化性的调控。

Regulation of chemotaxis by the orchestrated activation of Ras, PI3K, and TOR.

作者信息

Sasaki Atsuo T, Firtel Richard A

机构信息

Section of Cell and Developmental Biology, Division of Biological Sciences, Center for Molecular Genetics, University of California, San Diego, Natural Sciences Building, Room 6316, 9500 Gilman Drive, La Jolla, CA 92093-0380, USA.

出版信息

Eur J Cell Biol. 2006 Sep;85(9-10):873-95. doi: 10.1016/j.ejcb.2006.04.007. Epub 2006 Jun 5.

Abstract

Directed cell migration and cell polarity are crucial in many facets of biological processes. Cellular motility requires a complex array of signaling pathways, in which orchestrated cross-talk, a feedback loop, and multi-component signaling recur. Almost every signaling molecule requires several regulatory processes to be functionally activated, and a lack of a signaling molecule often leads to chemotaxis defects, suggesting an integral role for each component in the pathway. We outline our current understanding of the signaling event that regulates chemotaxis with an emphasis on recent findings associated with the Ras, PI3K, and target of rapamycin (TOR) pathways and the interplay of these pathways. Ras, PI3K, and TOR are known as key regulators of cellular growth. Deregulation of those pathways is associated with many human diseases, such as cancer, developmental disorders, and immunological deficiency. Recent studies in yeast, mammalian cells, and Dictyostelium discoideum reveal another critical role of Ras, PI3K, and TOR in regulating the actin cytoskeleton, cell polarity, and cellular movement. These findings shed light on the mechanism by which eukaryotic cells maintain cell polarity and directed cell movement, and also demonstrate that multiple steps in the signal transduction pathway coordinately regulate cell motility.

摘要

定向细胞迁移和细胞极性在生物过程的许多方面都至关重要。细胞运动需要一系列复杂的信号通路,其中精心编排的相互作用、反馈回路和多组分信号反复出现。几乎每个信号分子都需要几个调节过程才能在功能上被激活,并且缺乏一个信号分子通常会导致趋化性缺陷,这表明该通路中的每个组分都起着不可或缺的作用。我们概述了目前对调节趋化性的信号事件的理解,重点是与Ras、PI3K和雷帕霉素靶蛋白(TOR)通路相关的最新发现以及这些通路之间的相互作用。Ras、PI3K和TOR被认为是细胞生长的关键调节因子。这些通路的失调与许多人类疾病有关,如癌症、发育障碍和免疫缺陷。最近在酵母、哺乳动物细胞和盘基网柄菌中的研究揭示了Ras、PI3K和TOR在调节肌动蛋白细胞骨架、细胞极性和细胞运动方面的另一个关键作用。这些发现揭示了真核细胞维持细胞极性和定向细胞运动的机制,也表明信号转导通路中的多个步骤协同调节细胞运动。

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