脊椎动物肢体发育:从经典形态发生梯度到整合的 4 维模式系统。

Vertebrate limb development: moving from classical morphogen gradients to an integrated 4-dimensional patterning system.

机构信息

Developmental Genetics, Department of Biomedicine, University of Basel, Mattenstrasse 28, CH-4058 Basel, Switzerland.

出版信息

Cold Spring Harb Perspect Biol. 2009 Oct;1(4):a001339. doi: 10.1101/cshperspect.a001339.

Abstract

A wealth of classical embryological manipulation experiments taking mainly advantage of the chicken limb buds identified the apical ectodermal ridge (AER) and the zone of polarizing activity (ZPA) as the respective ectodermal and mesenchymal key signaling centers coordinating proximodistal (PD) and anteroposterior (AP) limb axis development. These experiments inspired Wolpert's French flag model, which is a classic among morphogen gradient models. Subsequent molecular and genetic analysis in the mouse identified retinoic acid as proximal signal, and fibroblast growth factors (FGFs) and sonic hedgehog (SHH) as the essential instructive signals produced by AER and ZPA, respectively. Recent studies provide good evidence that progenitors are specified early with respect to their PD and AP fates and that morpho-regulatory signaling is also required for subsequent proliferative expansion of the specified progenitor pools. The determination of particular fates seems to occur rather late and depends on additional signals such as bone morphogenetic proteins (BMPs), which indicates that cells integrate signaling inputs over time and space. The coordinate regulation of PD and AP axis patterning is controlled by an epithelial-mesenchymal feedback signaling system, in which transcriptional regulation of the BMP antagonist Gremlin1 integrates inputs from the BMP, SHH, and FGF pathways. Vertebrate limb-bud development is controlled by a 4-dimensional (4D) patterning system integrating positive and negative regulatory feedback loops, rather than thresholds set by morphogen gradients.

摘要

大量主要利用鸡肢芽的经典胚胎操作实验确定了顶外胚层脊(AER)和极性活动区(ZPA)分别是协调近-远轴(PD)和前-后轴(AP)肢轴发育的外胚层和中胚层关键信号中心。这些实验启发了沃尔珀特的法国国旗模型,这是形态发生梯度模型中的经典模型。随后在小鼠中的分子和遗传分析确定了视黄酸为近端信号,而成纤维细胞生长因子(FGFs)和 Sonic Hedgehog(SHH)分别是 AER 和 ZPA 产生的必要指导信号。最近的研究提供了很好的证据,表明祖细胞在其 PD 和 AP 命运方面很早就被确定,并且形态调节信号对于随后指定的祖细胞池的增殖扩张也是必需的。特定命运的确定似乎发生得很晚,并且取决于其他信号,如骨形态发生蛋白(BMPs),这表明细胞随时间和空间整合信号输入。PD 和 AP 轴模式形成的协调调节受上皮-间充质反馈信号系统控制,其中 BMP 拮抗剂 Gremlin1 的转录调节整合了来自 BMP、SHH 和 FGF 途径的输入。脊椎动物肢芽发育受 4 维(4D)模式形成系统控制,该系统整合了正反馈和负反馈回路,而不是由形态发生梯度设定的阈值。

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