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类原质体是多种侵染相关蛋白分泌的场所。

The Haustorium Is a Site for Secretion of Diverse Classes of Infection-Associated Proteins.

机构信息

Division of Plant Sciences, University of Dundee (at The James Hutton Institute), Invergowrie, Dundee, United Kingdom.

Cell and Molecular Sciences, The James Hutton Institute, Invergowrie, Dundee, United Kingdom.

出版信息

mBio. 2018 Aug 28;9(4):e01216-18. doi: 10.1128/mBio.01216-18.

Abstract

The oomycete potato blight pathogen secretes a diverse set of proteins to manipulate host plant immunity. However, there is limited knowledge about how and where they are secreted during infection. Here we used the endoplasmic reticulum (ER)-to-Golgi secretion pathway inhibitor brefeldin A (BFA) in combination with liquid chromatography-electrospray tandem mass spectrometry (LC-MS/MS) to identify extracellular proteins from that were conventionally secreted from -cultured hyphae. We identified 19 proteins with predicted signal peptides that potentially influence plant interactions for which secretion was attenuated by BFA. In addition to inhibition by the apoplastic effector EPIC1, a cysteine protease inhibitor, we show that secretion of the cell wall-degrading pectinesterase enzyme PE1 and the icrobe-ssociated olecular attern (MAMP)-like elicitin INF4 was inhibited by BFA and , demonstrating that these proteins are secreted by the conventional, Golgi-mediated pathway. For comparison, secretion of a cytoplasmic RXLR (Arg-[any amino acid]-Leu-Arg) effector, Pi22926, was not inhibited by BFA. During infection, whereas INF4 accumulated outside the plant cell, RXLR effector Pi22926 entered the plant cell and accumulated in the nucleus. The effectors, the PE1 enzyme, and INF4 were all secreted from haustoria, pathogen structures that penetrate the plant cell wall to form an intimate interaction with the host plasma membrane. Our findings show the haustorium to be a major site of both conventional and nonconventional secretion of proteins with diverse functions during infection. There are many different classes of proteins secreted from that may influence or facilitate infection. Elucidating where and how they are secreted during infection is an important step toward developing methods to control their delivery processes. We used an inhibitor of conventional secretion to identify the following different classes of infection-associated extracellular proteins: cell wall-degrading and cell wall-modifying enzymes, microbe-associated molecular pattern-like proteins that may elicit immune responses, and apoplastic effectors that are predicted to suppress immunity. In contrast, secretion of a cytoplasmic effector that is translocated into host cells is nonconventional, as it is insensitive to inhibitor treatment. This evidence further supports the finding that proteins that are active in the apoplast and effector proteins that are active in the host cytoplasm are differentially secreted by Critically, it demonstrates that a disease-specific developmental structure, the haustorium, is a major secretion site for diverse protein classes during infection.

摘要

卵菌马铃薯晚疫病菌分泌一组多样化的蛋白来操纵宿主植物的免疫。然而,对于它们在感染过程中是如何以及在何处分泌的,我们知之甚少。在这里,我们使用内质网(ER)-高尔基体分泌途径抑制剂布雷菲德菌素 A(BFA)结合液相色谱-电喷雾串联质谱(LC-MS/MS)来鉴定从传统培养的菌丝中常规分泌的卵菌蛋白。我们鉴定了 19 种具有预测信号肽的蛋白,这些蛋白可能影响植物相互作用,而 BFA 则削弱了它们的分泌。除了质外效应物 EPIC1 和半胱氨酸蛋白酶抑制剂的抑制作用外,我们还表明细胞壁降解果胶酯酶酶 PE1 和微生物相关分子模式(MAMP)样激发素 INF4 的分泌也被 BFA 和 抑制,这表明这些蛋白是通过传统的、高尔基体介导的途径分泌的。相比之下,细胞质 RXLR(精氨酸-[任何氨基酸]-亮氨酸-精氨酸)效应物 Pi22926 的分泌不受 BFA 抑制。在感染过程中,虽然 INF4 在植物细胞外积累,但 RXLR 效应物 Pi22926 进入植物细胞并在核内积累。效应物、PE1 酶和 INF4 均从吸器中分泌出来,吸器是穿透植物细胞壁形成与宿主质膜紧密相互作用的病原体结构。我们的研究结果表明,吸器是感染过程中具有多种功能的蛋白常规和非常规分泌的主要部位。有许多不同类别的蛋白从 中分泌出来,可能影响或促进感染。阐明它们在感染过程中是如何以及在何处分泌的,是开发控制其输送过程方法的重要步骤。我们使用常规分泌抑制剂来鉴定以下不同类别的与感染相关的细胞外蛋白:细胞壁降解和细胞壁修饰酶、可能引发免疫反应的微生物相关分子模式样蛋白以及预测抑制免疫的质外效应物。相比之下,细胞质效应物的分泌是非常规的,因为它对抑制剂处理不敏感。这一证据进一步支持了这样的发现,即质外体中具有活性的蛋白和宿主细胞质中具有活性的效应蛋白是通过 不同的方式分泌的。至关重要的是,它表明一种特定于疾病的发育结构,即吸器,是感染过程中多种蛋白类别的主要分泌部位。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e9bc/6113627/65789c56bfed/mbo0041840400001.jpg

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