Flower development.

The arabidopsis book Pub Date : 2010-01-01 Epub Date: 2010-03-23 DOI:10.1199/tab.0127
Elena R Alvarez-Buylla, Mariana Benítez, Adriana Corvera-Poiré, Alvaro Chaos Cador, Stefan de Folter, Alicia Gamboa de Buen, Adriana Garay-Arroyo, Berenice García-Ponce, Fabiola Jaimes-Miranda, Rigoberto V Pérez-Ruiz, Alma Piñeyro-Nelson, Yara E Sánchez-Corrales
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Abstract

Flowers are the most complex structures of plants. Studies of Arabidopsis thaliana, which has typical eudicot flowers, have been fundamental in advancing the structural and molecular understanding of flower development. The main processes and stages of Arabidopsis flower development are summarized to provide a framework in which to interpret the detailed molecular genetic studies of genes assigned functions during flower development and is extended to recent genomics studies uncovering the key regulatory modules involved. Computational models have been used to study the concerted action and dynamics of the gene regulatory module that underlies patterning of the Arabidopsis inflorescence meristem and specification of the primordial cell types during early stages of flower development. This includes the gene combinations that specify sepal, petal, stamen and carpel identity, and genes that interact with them. As a dynamic gene regulatory network this module has been shown to converge to stable multigenic profiles that depend upon the overall network topology and are thus robust, which can explain the canalization of flower organ determination and the overall conservation of the basic flower plan among eudicots. Comparative and evolutionary approaches derived from Arabidopsis studies pave the way to studying the molecular basis of diverse floral morphologies.

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花朵发育
花是植物中最复杂的结构。拟南芥具有典型的裸子植物花,对拟南芥花的研究是推进对花发育的结构和分子认识的基础。本文总结了拟南芥花发育的主要过程和阶段,为解释花发育过程中指定功能基因的详细分子遗传学研究提供了一个框架,并扩展到揭示相关关键调控模块的最新基因组学研究。计算模型已被用于研究拟南芥花序分生组织模式化和花发育早期原始细胞类型规格化所依赖的基因调控模块的协同作用和动态。这包括指定萼片、花瓣、雄蕊和心皮特征的基因组合,以及与它们相互作用的基因。作为一个动态的基因调控网络,该模块已被证明可趋同于稳定的多基因图谱,而这种图谱取决于整个网络的拓扑结构,因此是稳健的,这可以解释花器官决定的管道化以及真叶植物基本花卉计划的整体保护。从拟南芥研究中得出的比较和进化方法为研究不同花形态的分子基础铺平了道路。
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