Section of Molecular Cell & Developmental Biology, Institute for Cellular and Molecular Biology, One University Station A4800, Austin, TX 78712, USA.
Dev Biol. 2012 Aug 15;368(2):165-80. doi: 10.1016/j.ydbio.2012.05.035. Epub 2012 Jun 7.
The developing limb is one of the best described vertebrate systems for understanding how coordinated gene expression during embryogenesis leads to the structures present in the mature organism. This knowledge, derived from decades of research, is largely based upon gain- and loss-of-function experiments. These studies have provided limited information about how the key signaling pathways interact with each other and the downstream effectors of these pathways. We summarize our current understanding of known genetic interactions in the context of three temporally defined gene regulatory networks. These networks crystallize our current knowledge, depicting a dynamic process involving multiple feedback loops between the ectoderm and mesoderm. At the same time, they highlight the fact that many essential processes are still largely undescribed. Much of the dynamic transcriptional activity occurring during development is regulated by distal cis-regulatory elements. Modern genomic tools have provided new approaches for studying the function of cis-regulatory elements and we discuss the results of these studies in regard to understanding limb development. Ultimately, these genomic techniques will allow scientists to understand how multiple signaling pathways are integrated in space and time to drive gene expression and regulate the formation of the limb.
发育中的肢体是研究脊椎动物系统的最佳模型之一,有助于理解胚胎发生过程中协调的基因表达如何导致成熟生物体中出现的结构。这些知识源于数十年的研究,主要基于获得和丧失功能的实验。这些研究提供了关于关键信号通路如何相互作用以及这些通路的下游效应物的有限信息。我们在三个时间定义明确的基因调控网络的背景下总结了我们目前对已知遗传相互作用的理解。这些网络使我们目前的知识具体化,描绘了一个涉及外胚层和中胚层之间多个反馈回路的动态过程。同时,它们突出了许多基本过程仍然在很大程度上未被描述的事实。发育过程中发生的大部分动态转录活性受远端顺式调控元件的调节。现代基因组工具为研究顺式调控元件的功能提供了新的方法,我们讨论了这些研究结果,以了解肢体发育。最终,这些基因组技术将使科学家能够理解多个信号通路如何在空间和时间上整合,以驱动基因表达并调节肢体的形成。