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一种来自苹果的γ-硫素蛋白 MdD1,在自交/非自交识别之前,对 S-RNase 诱导的花粉管抑制的防御是必需的。

A gamma-thionin protein from apple, MdD1, is required for defence against S-RNase-induced inhibition of pollen tube prior to self/non-self recognition.

机构信息

Laboratory of Fruit Cell and Molecular Breeding, China Agricultural University, Beijing, China.

Department of Biology and Biochemistry, University of Bath, Bath, UK.

出版信息

Plant Biotechnol J. 2019 Nov;17(11):2184-2198. doi: 10.1111/pbi.13131. Epub 2019 May 17.

Abstract

Apple exhibits S-RNase-mediated self-incompatibility. Although the cytotoxic effect of S-RNase inside the self-pollen tube has been studied extensively, the underlying defence mechanism in pollen tube in Rosaceae remains unclear. On exposure to stylar S-RNase, plant defence responses are activated in the pollen tube; however, how these are regulated is currently poorly understood. Here, we show that entry of both self and non-self S-RNase into pollen tubes of apple (Malus domestica) stimulates jasmonic acid (JA) production, in turn inducing the accumulation of MdMYC2 transcripts, a transcription factor in the JA signalling pathway widely considered to be involved in plant defence processes. MdMYC2 acts as a positive regulator in the pollen tube activating expression of MdD1, a gene encoding a defence protein. Importantly, MdD1 was shown to bind to the RNase activity sites of S-RNase leading to inhibition of enzymatic activity. This work provides intriguing insights into an ancient defence mechanism present in apple pollen tubes where MdD1 likely acts as a primary line of defence to inhibit S-RNase cytotoxicity prior to self/non-self recognition.

摘要

苹果表现出 S-RNase 介导的自交不亲和性。尽管 S-RNase 在自花粉管内的细胞毒性作用已经得到了广泛的研究,但蔷薇科花粉管中的潜在防御机制仍不清楚。在暴露于柱头 S-RNase 时,花粉管中会激活植物防御反应;然而,目前对于这些反应是如何被调节的知之甚少。在这里,我们表明,进入苹果(Malus domestica)花粉管的自身和非自身 S-RNase 均会刺激茉莉酸(JA)的产生,进而诱导 JA 信号通路中的转录因子 MdMYC2 转录本的积累,该转录因子广泛认为参与植物防御过程。MdMYC2 在花粉管中作为正调节剂激活编码防御蛋白的 MdD1 基因的表达。重要的是,MdD1 被证明与 S-RNase 的 RNase 活性位点结合,从而抑制酶活性。这项工作为苹果花粉管中存在的古老防御机制提供了有趣的见解,其中 MdD1 可能在自我/非自我识别之前作为第一道防线,抑制 S-RNase 的细胞毒性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e8f6/11386756/4a18ef695e4a/PBI-17-2184-g002.jpg

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