Ben-Tabou de-Leon Smadar
The Department of Marine Biology, The University of Haifa Haifa, Israel.
Front Genet. 2016 Feb 15;7:16. doi: 10.3389/fgene.2016.00016. eCollection 2016.
Developmental gene regulatory networks robustly control the timely activation of regulatory and differentiation genes. The structure of these networks underlies their capacity to buffer intrinsic and extrinsic noise and maintain embryonic morphology. Here I illustrate how the use of specific architectures by the sea urchin developmental regulatory networks enables the robust control of cell fate decisions. The Wnt-βcatenin signaling pathway patterns the primary embryonic axis while the BMP signaling pathway patterns the secondary embryonic axis in the sea urchin embryo and across bilateria. Interestingly, in the sea urchin in both cases, the signaling pathway that defines the axis controls directly the expression of a set of downstream regulatory genes. I propose that this direct activation of a set of regulatory genes enables a uniform regulatory response and a clear cut cell fate decision in the endoderm and in the dorsal ectoderm. The specification of the mesodermal pigment cell lineage is activated by Delta signaling that initiates a triple positive feedback loop that locks down the pigment specification state. I propose that the use of compound positive feedback circuitry provides the endodermal cells enough time to turn off mesodermal genes and ensures correct mesoderm vs. endoderm fate decision. Thus, I argue that understanding the control properties of repeatedly used regulatory architectures illuminates their role in embryogenesis and provides possible explanations to their resistance to evolutionary change.
发育基因调控网络有力地控制着调控基因和分化基因的适时激活。这些网络的结构是其缓冲内在和外在噪声并维持胚胎形态能力的基础。在此,我阐述了海胆发育调控网络如何通过使用特定架构来实现对细胞命运决定的稳健控制。在海胆胚胎及两侧对称动物中,Wnt-β连环蛋白信号通路决定初级胚胎轴的模式,而BMP信号通路决定次级胚胎轴的模式。有趣的是,在海胆中,这两种情况下定义轴的信号通路都直接控制一组下游调控基因的表达。我认为,对一组调控基因的这种直接激活在内胚层和背侧外胚层中实现了统一的调控反应和明确的细胞命运决定。中胚层色素细胞谱系的特化由Delta信号激活,该信号启动一个三重正反馈回路,锁定色素特化状态。我认为,复合正反馈电路的使用为内胚层细胞提供了足够的时间来关闭中胚层基因,并确保中胚层与内胚层命运决定的正确性。因此,我认为理解反复使用的调控架构的控制特性有助于阐明它们在胚胎发生中的作用,并为它们对进化变化的抗性提供可能的解释。