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Identifying Genetic Players in Cell Sheet Morphogenesis Using a Drosophila Deficiency Screen for Genes on Chromosome 2R Involved in Dorsal Closure

机译:使用果蝇缺陷筛查涉及背闭合的2R号染色体上的基因的果蝇缺陷筛查细胞表形态发生中的遗传因素。

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摘要

Cell sheet morphogenesis characterizes key developmental transitions and homeostasis, in vertebrates and throughout phylogeny, including gastrulation, neural tube formation and wound healing. Dorsal closure, a process during Drosophila embryogenesis, has emerged as a model for cell sheet morphogenesis. ∼140 genes are currently known to affect dorsal closure and new genes are identified each year. Many of these genes were identified in screens that resulted in arrested development. Dorsal closure is remarkably robust and many questions regarding the molecular mechanisms involved in this complex biological process remain. Thus, it is important to identify all genes that contribute to the kinematics and dynamics of closure. Here, we used a set of large deletions (deficiencies), which collectively remove 98.5% of the genes on the right arm of Drosophila melanogaster’s 2nd chromosome to identify “dorsal closure deficiencies”. Through two crosses, we unambiguously identified embryos homozygous for each deficiency and time-lapse imaged them for the duration of closure. Images were analyzed for defects in cell shapes and tissue movements. Embryos homozygous for 47 deficiencies have notable, diverse defects in closure, demonstrating that a number of discrete processes comprise closure and are susceptible to mutational disruption. Further analysis of these deficiencies will lead to the identification of at least 30 novel “dorsal closure genes”. We expect that many of these novel genes will identify links to pathways and structures already known to coordinate various aspects of closure. We also expect to identify new processes and pathways that contribute to closure.
机译:细胞片形态发生是脊椎动物和整个系统发育过程中关键的发育过渡和体内平衡的特征,包括胃形成,神经管形成和伤口愈合。在果蝇胚胎发生过程中,背侧闭合已成为细胞表形态发生的模型。目前已知有约140个基因会影响背侧闭合,每年都会发现新的基因。这些基因中有许多是在筛选中鉴定出来的,导致发育停滞。背侧闭合非常坚固,有关此复杂生物过程涉及的分子机制的许多问题仍然存在。因此,重要的是要鉴定所有有助于闭合运动学和动力学的基因。在这里,我们使用了一组大缺失(缺陷),它们共同删除了果蝇第2条染色体上右臂上98.5%的基因,以识别“背闭合缺陷”。通过两次杂交,我们明确地鉴定出每种缺陷纯合的胚胎,并在关闭过程中对它们进行延时成像。分析图像中细胞形状和组织运动的缺陷。具有47个缺陷的纯合子胚胎在闭合过程中存在明显,多样的缺陷,这表明许多离散的过程都包含闭合过程,并且易受突变破坏的影响。对这些缺陷的进一步分析将导致鉴定出至少30个新颖的“背闭合基因”。我们期望这些新基因中的许多将识别与已知可协调封闭各个方面的途径和结构的联系。我们还希望确定有助于关闭的新流程和途径。

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