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CYTOKINESIS AND CELL POLARITY IN C ELEGANS EMBRYOS

CYTOKINESIS AND CELL POLARITY IN C ELEGANS EMBRYOS
线虫胚胎中的细胞分裂和细胞极性
批准号:
2853631
负责人:
BRUCE A BOWERMAN
金额:
$24.41万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-05-01 至 2003-04-30

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中文摘要
翻译
我们建议利用早期秀丽隐杆线虫胚胎强大的遗传学和令人印象深刻的细胞学特性来研究发育中动物的细胞分裂及其与有丝分裂纺锤体取向的关系。秀丽隐杆线虫早期胚胎为这些研究提供了两个关键优势:(i)能够快速识别早期胚胎细胞中细胞分裂和有丝分裂纺锤体定向所需的基因,(ii)能够以高分辨率可视化大(约22 x 55微米)1细胞期受精卵中功能重要蛋白的亚细胞定位。我们有三个长期目标:(1)使用遗传和分子方法将细胞质分裂定义为在早期胚胎中执行细胞质分裂的一系列离散分子相互作用。(2)探讨早期胚胎细胞不对称分裂过程中细胞分裂终止与丝分裂纺锤体定向机制之间的机制关系。(3)鉴定对细胞分裂和不对称细胞分裂产生重要的运动蛋白。这些研究将为人类病理的分子基础提供重要的见解:细胞骨架/质膜相互作用已被证明与我们对癌症和其他重大疾病的理解相关,包括肌肉萎缩症、耳聋和不孕症。在初步研究中,我们已经确定了一种叫做cyk-1的基因,它是细胞质分裂后期所必需的。这是在秀丽隐杆线虫中发现的第一个早期胚胎细胞分裂所需要的基因。有趣的是,CYK-1蛋白定位于细胞质分裂后期卵裂沟的前缘,我们假设它在那里连接肌动蛋白和微管蛋白细胞骨架。虽然CYK-1为鉴定细胞质分裂过程中发生的功能性蛋白/蛋白相互作用提供了一个起点,但我们首先建议尽可能全面地鉴定细胞质分裂和有丝分裂纺锤体定向所需的基因。为此,我们已经开始对温度敏感的胚胎致死性突变体进行大规模筛选,我们正在使用功能基因组学方法,其中包括使用最近发现的一种称为RNA干扰的技术。我们将分子克隆细胞分裂和有丝分裂纺锤体定向最需要的基因。通过使用遗传和分子上位实验,并通过检查我们识别的不同蛋白质如何相互作用,我们将定义控制这些基本细胞和发育过程的分子相互作用和途径。
英文摘要
We propose to use the powerful genetics and the impressive cytological properties of the early C. elegans embryo to investigate cytokinesis and its relationship to mitotic spindle orientation in a developing animal. The early C. elegans embryo offers two key advantages for these studies: (i) the ability to rapidly identify genes required for cytokinesis and for mitotic spindle orientation in early embryonic cells, and (ii) the ability to visualize with high resolution the subcellular localization of functionally important proteins in the large (approximately 22 x 55 micron) 1-cell stage zygote. We have three long term goals: (1) To use genetic and molecular methods to define cytokinesis as a series of discrete molecular interactions that execute cytokinesis in the early embryo. (2) To determine the mechanistic relationship between the termination of cytokinesis and the mechanisms that orient mitotic spindles during asymmetric divisions in early embryonic cells. (3) To identify motor proteins important for cytokinesis and the generation of asymmetric cell divisions. These studies will provide significant insight into the molecular basis for human pathologies: cytoskeleton/plasma membrane interactions have proven relevant to our understanding of cancer and of other significant diseases, including muscular dystrophy, deafness, and sterility. In preliminary studies, we have identified a gene called cyk-1 that is required for a late step in cytokinesis. This is the first gene identified in C. elegans that is specifically required for cytokinesis in the early embryo. Intriguingly, the CYK-1 protein localizes to the leading edge of the cleavage furrow late in cytokinesis, where we hypothesize it bridges the actin and tubulin cytoskeleton. While CYK-1 provides a starting point for identifying functionally protein/protein interactions that occur during cytokinesis, we first propose to identify as comprehensively as possible the genes required for cytokinesis and mitotic spindle orientation. To this end, we have begun a large-scale screen for temperature-sensitive, embryonic-lethal mutants, and we are using a functional genomics approach that involves the use of a recently discovered technology called RNA interference. We will molecularly clone genes that are most specifically required for cytokinesis and mitotic spindle orientation. By using genetic and molecular epistasis experiments, and by examining how the different proteins we identify interact, we will define the molecular interactions and pathways that control these fundamental cellular and developmental processes.
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