California Institute of Technology, Division of Biology, MC114-96, 1200 East California Boulevard, Pasadena, California 91125, USA.
Cold Spring Harb Perspect Biol. 2009 Oct;1(4):a000836. doi: 10.1101/cshperspect.a000836.
A gradient of Dorsal activity patterns the dorsoventral (DV) axis of the early Drosophila melanogaster embryo by controlling the expression of genes that delineate presumptive mesoderm, neuroectoderm, and dorsal ectoderm. The availability of the Drosophila melanogaster genome sequence has accelerated the study of embryonic DV patterning, enabling the use of systems-level approaches. As a result, our understanding of Dorsal-dependent gene regulation has expanded to encompass a collection of more than 50 genes and 30 cis-regulatory sequences. This information, which has been integrated into a spatiotemporal atlas of gene regulatory interactions, comprises one of the best-understood networks controlling any developmental process to date. In this article, we focus on how Dorsal controls differential gene expression and how recent studies have expanded our understanding of Drosophila embryonic development from the cis-regulatory level to that controlling morphogenesis of the embryo.
Dorsal 活性梯度通过控制勾勒出预期中胚层、神经外胚层和背外胚层的基因的表达来塑造早期果蝇胚胎的背腹(DV)轴。由于 Drosophila melanogaster 基因组序列的可用性,加速了对胚胎 DV 模式形成的研究,从而能够采用系统级方法。因此,我们对 Dorsal 依赖性基因调控的理解已经扩展到包括 50 多个基因和 30 个顺式调控序列的集合。这些信息已经整合到一个时空基因调控相互作用图谱中,这是迄今为止控制任何发育过程的最佳网络之一。在本文中,我们重点介绍了 Dorsal 如何控制差异基因表达,以及最近的研究如何将我们对果蝇胚胎发育的理解从顺式调控水平扩展到控制胚胎形态发生的水平。