Institute of Biological, Environmental and Rural Sciences (IBERS), Aberystwyth University, Plas Gogerddan, Aberystwyth, UK.
Department of Plant Biotechnology and Genetics, Ghent University, Ghent, Belgium.
J Exp Bot. 2019 Apr 12;70(7):2113-2123. doi: 10.1093/jxb/ery406.
Self-incompatibility (SI) is a genetically controlled mechanism that prevents self-fertilization and thus encourages outbreeding and genetic diversity. During pollination, most SI systems utilize cell-cell recognition to reject incompatible pollen. Mechanistically, one of the best-studied SI systems is that of Papaver rhoeas (poppy), which involves the interaction between the two S-determinants, a stigma-expressed secreted protein (PrsS) and a pollen-expressed plasma membrane-localized protein (PrpS). This interaction is the critical step in determining acceptance of compatible pollen or rejection of incompatible pollen. Cognate PrpS-PrsS interaction triggers a signalling network causing rapid growth arrest and eventually programmed cell death (PCD) in incompatible pollen. In this review, we provide an overview of recent advances in our understanding of the major components involved in the SI-induced PCD (SI-PCD). In particular, we focus on the importance of SI-induced intracellular acidification and consequences for protein function, and the regulation of soluble inorganic pyrophosphatase (Pr-p26.1) activity by post-translational modification. We also discuss attempts to identify protease(s) involved in the SI-PCD process. Finally, we outline future opportunities made possible by the functional transfer of the P. rhoeas SI system to Arabidopsis.
自交不亲和性(SI)是一种由基因控制的机制,可防止自体受精,从而促进异交和遗传多样性。在授粉过程中,大多数 SI 系统利用细胞间识别来拒绝不亲和花粉。在机制上,研究最充分的 SI 系统之一是罂粟(poppy),它涉及到两个 S 决定因子之间的相互作用,一个是柱头表达的分泌蛋白(PrsS),另一个是花粉表达的质膜定位蛋白(PrpS)。这种相互作用是决定接受亲和花粉或拒绝不亲和花粉的关键步骤。同源 PrpS-PrsS 相互作用触发信号网络,导致不亲和花粉快速生长停滞并最终发生程序性细胞死亡(PCD)。在这篇综述中,我们概述了近年来对参与 SI 诱导的 PCD(SI-PCD)的主要成分的理解的最新进展。特别是,我们重点介绍了 SI 诱导的细胞内酸化及其对蛋白质功能的重要性,以及翻译后修饰对可溶性无机焦磷酸酶(Pr-p26.1)活性的调节。我们还讨论了尝试鉴定参与 SI-PCD 过程的蛋白酶的情况。最后,我们概述了通过将罂粟 SI 系统的功能转移到拟南芥中所带来的未来机会。