Center for Plant Molecular Biology, University of Tübingen, Tübingen, Germany.
Center for Plant Molecular Biology, University of Tübingen, Tübingen, Germany.
Curr Top Dev Biol. 2020;137:455-480. doi: 10.1016/bs.ctdb.2019.11.001. Epub 2019 Dec 27.
The coordination of cell fate decisions within complex multicellular structures rests on intercellular communication. To generate ordered patterns, cells need to know their relative positions within the growing structure. This is commonly achieved via the production and perception of mobile signaling molecules. In animal systems, such positional signals often act as morphogens and subdivide a field of cells into domains of discrete cell identities using a threshold-based readout of their mobility gradient. Reflecting the independent origin of multicellularity, plants evolved distinct signaling mechanisms to drive cell fate decisions. Many of the basic principles underlying developmental patterning are, however, shared between animals and plants, including the use of signaling gradients to provide positional information. In plant development, small RNAs can act as mobile instructive signals, and similar to classical morphogens in animals, employ a threshold-based readout of their mobility gradient to generate precisely defined cell fate boundaries. Given the distinctive nature of peptide morphogens and small RNAs, how might mechanisms underlying the function of traditionally morphogens be adapted to create morphogen-like behavior using small RNAs? In this review, we highlight the contributions of mobile small RNAs to pattern formation in plants and summarize recent studies that have advanced our understanding regarding the formation, stability, and interpretation of small RNA gradients.
细胞命运决定的协调在复杂的多细胞结构中取决于细胞间的通讯。为了产生有序的模式,细胞需要知道它们在生长结构中的相对位置。这通常是通过产生和感知移动信号分子来实现的。在动物系统中,这种位置信号通常作为形态发生素起作用,并使用其迁移梯度的基于阈值的读数将细胞场划分为离散细胞身份的域。反映出多细胞生物的独立起源,植物进化出了独特的信号机制来驱动细胞命运决定。然而,许多发育模式形成的基本原理在动物和植物之间是共享的,包括使用信号梯度来提供位置信息。在植物发育中,小 RNA 可以作为可移动的指导信号,并且类似于动物中的经典形态发生素,它们使用其迁移梯度的基于阈值的读数来产生精确定义的细胞命运边界。考虑到肽形态发生素和小 RNA 的独特性质,传统形态发生素的功能的潜在机制如何被改编为使用小 RNA 产生形态发生素样行为?在这篇综述中,我们强调了可移动小 RNA 对植物模式形成的贡献,并总结了最近的研究,这些研究提高了我们对小 RNA 梯度的形成、稳定性和解释的理解。