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花粉表面孔形成位点的形成作为发育不同细胞域的模型。

Formation of aperture sites on the pollen surface as a model for development of distinct cellular domains.

机构信息

Department of Molecular Genetics and Center for Applied Plant Sciences, Ohio State University, Columbus, OH, 43210, United States.

Department of Molecular Genetics and Center for Applied Plant Sciences, Ohio State University, Columbus, OH, 43210, United States.

出版信息

Plant Sci. 2019 Nov;288:110222. doi: 10.1016/j.plantsci.2019.110222. Epub 2019 Aug 20.

Abstract

Pollen grains are covered by the complex extracellular structure, called exine, which in most species is deposited on the pollen surface non-uniformly. Certain surface areas receive fewer exine deposits and develop into regions whose structure and morphology differ significantly from the rest of pollen wall. These regions are known as pollen apertures. Across species, pollen apertures can vary in their numbers, positions, and morphology, generating highly diverse patterns. The process of aperture formation involves establishment of cell polarity, formation of distinct plasma membrane domains, and deposition of extracellular materials at precise positions. Thus, pollen apertures present an excellent model for studying the development of cellular domains and formation of patterns at the single-cell level. Until very recently, the molecular mechanisms underlying the specification and formation of aperture sites were completely unknown. Here, we review recent advances in understanding of the molecular processes involved in pollen aperture formation, focusing on the molecular players identified through genetic approaches in the model plant Arabidopsis. We discuss a potential working model that describes the process of aperture formation, including specification of domains, creation of their defining features, and protection of these regions from exine deposition.

摘要

花粉粒被复杂的细胞外结构——外壁所覆盖,在大多数物种中,外壁在花粉表面的沉积不均匀。某些表面区域接收较少的外壁沉积,形成结构和形态与花粉壁其余部分明显不同的区域。这些区域被称为花粉孔。在不同物种中,花粉孔的数量、位置和形态可能存在差异,从而产生高度多样化的模式。孔形成的过程涉及细胞极性的建立、独特质膜区域的形成以及细胞外物质在精确位置的沉积。因此,花粉孔为研究细胞区域的发育和单细胞水平图案的形成提供了极好的模型。直到最近,孔位点的指定和形成的分子机制还完全未知。在这里,我们综述了近年来在理解花粉孔形成所涉及的分子过程方面的进展,重点介绍了通过模式植物拟南芥中的遗传方法鉴定出的分子参与者。我们讨论了一个潜在的工作模型,描述了孔形成的过程,包括域的指定、其定义特征的创建以及这些区域免受外壁沉积的保护。

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