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头部区域选择因子Otx2与Notch信号通路的汇聚:晶状体特化的一种机制。

Convergence of a head-field selector Otx2 and Notch signaling: a mechanism for lens specification.

作者信息

Ogino Hajime, Fisher Marilyn, Grainger Robert M

机构信息

Department of Biology, University of Virginia, Charlottesville, VA 22904, USA.

出版信息

Development. 2008 Jan;135(2):249-58. doi: 10.1242/dev.009548. Epub 2007 Dec 5.

Abstract

Xenopus is ideal for systematic decoding of cis-regulatory networks because its evolutionary position among vertebrates allows one to combine comparative genomics with efficient transgenic technology in one system. Here, we have identified and analyzed the major enhancer of FoxE3 (Lens1), a gene essential for lens formation that is activated in the presumptive lens ectoderm (PLE) when commitment to the lens fate occurs. Deletion and mutation analyses of the enhancer based on comparison of Xenopus and mammalian sequences and in vitro and in vivo binding assays identified two essential transcriptional regulators: Otx2, a homeodomain protein expressed broadly in head ectoderm including the PLE, and Su(H), a nuclear signal transducer of Notch signaling. A Notch ligand, Delta2, is expressed in the optic vesicle adjacent to the PLE, and inhibition of its activity led to loss, or severe reduction, of FoxE3 expression followed by failure of placode formation. Ectopic activation of Notch signaling induced FoxE3 expression within head ectoderm expressing Otx2, and additional misexpression of Otx2 in trunk ectoderm extended the Notch-induced FoxE3 expression posteriorly. These data provide the first direct evidence of the involvement of Notch signaling in lens induction. The obligate integration of inputs of a field-selector (Otx2) and localized signaling (Notch) within target cis-regulatory elements might be a general mechanism of organ-field specification in vertebrates (as it is in Drosophila). This concept is also consistent with classical embryological studies of many organ systems involving a ;multiple-step induction'.

摘要

非洲爪蟾是系统解码顺式调控网络的理想生物,因为它在脊椎动物中的进化地位使人们能够在一个系统中将比较基因组学与高效的转基因技术结合起来。在此,我们鉴定并分析了FoxE3(Lens1)的主要增强子,FoxE3是晶状体形成所必需的基因,在晶状体命运确定时,它在预定晶状体外胚层(PLE)中被激活。基于非洲爪蟾和哺乳动物序列的比较以及体外和体内结合试验,对该增强子进行缺失和突变分析,确定了两个关键的转录调节因子:Otx2,一种在包括PLE在内的头部外胚层广泛表达的同源域蛋白,以及Su(H),Notch信号的核信号转导子。一种Notch配体Delta2在与PLE相邻的视泡中表达,抑制其活性会导致FoxE3表达缺失或严重减少,随后基板形成失败。Notch信号的异位激活在表达Otx2的头部外胚层内诱导FoxE3表达,并且Otx2在躯干外胚层中的额外错误表达使Notch诱导的FoxE3表达向后扩展。这些数据首次直接证明了Notch信号参与晶状体诱导。在目标顺式调控元件中,场选择器(Otx2)的输入与局部信号(Notch)的必然整合可能是脊椎动物(如在果蝇中)器官场特化的一般机制。这一概念也与许多涉及“多步诱导”的器官系统的经典胚胎学研究一致。

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