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在 Golovinomyces orontii 吸器内化宿主细胞的过程中,专门的植物-真菌界面的生物发生。

Biogenesis of a specialized plant-fungal interface during host cell internalization of Golovinomyces orontii haustoria.

机构信息

Department of Plant-Microbe Interactions, Max-Planck-Institute for Plant Breeding Research, Carl-von-Linné-Weg 10, 29 Köln, Germany.

出版信息

Cell Microbiol. 2011 Feb;13(2):210-26. doi: 10.1111/j.1462-5822.2010.01530.x. Epub 2010 Oct 28.

DOI:10.1111/j.1462-5822.2010.01530.x
PMID:20880355
Abstract

Powdery mildew fungi are biotrophic pathogens that require living plant cells for their growth and reproduction. Elaboration of a specialized cell called a haustorium is essential for their pathogenesis, providing a portal into host cells for nutrient uptake and delivery of virulence effectors. Haustoria are enveloped by a modified plant plasma membrane, the extrahaustorial membrane (EHM), and an extrahaustorial matrix (EHMx), across which molecular exchange must occur, but the origin and composition of this interfacial zone remains obscure. Here we present a method for isolating Golovinomyces orontii haustoria from Arabidopsis leaves and an ultrastructural characterization of the haustorial interface. Haustoria were progressively encased by deposits of plant cell wall polymers, delivered by secretory vesicles and multivesicular bodies (MVBs) that ultimately become entrapped within the encasement. The EHM and EHMx were not labelled by antibodies recognizing eight plant cell wall and plasma membrane antigens. However, plant resistance protein RPW8.2 was specifically recruited to the EHMs of mature haustoria. Fungal cell wall-associated molecular patterns such as chitin and β-1,3-glucans were exposed at the surface of haustoria. Fungal MVBs were abundant in haustoria and putative exosome vesicles were detected in the paramural space and EHMx, suggesting the existence of an exosome-mediated secretion pathway.

摘要

白粉菌是生物营养型病原体,它们的生长和繁殖需要活的植物细胞。专门细胞——吸器的形成对于它们的发病机制至关重要,为养分吸收和毒性效应因子的输送提供了进入宿主细胞的门户。吸器被一种改良的植物质膜,即外壁膜(EHM)和外壁质(EHMx)所包裹,分子交换必须在此界面上发生,但这个界面区域的起源和组成仍然不清楚。在这里,我们提出了一种从拟南芥叶片中分离 Golovinomyces orontii 吸器的方法,并对吸器界面进行了超微结构表征。吸器逐渐被植物细胞壁聚合物的沉积物包裹,这些沉积物由分泌小泡和多泡体(MVBs)输送,最终被包裹在沉积物中。EHMs 和 EHMx 不被识别八种植物细胞壁和质膜抗原的抗体标记。然而,植物抗性蛋白 RPW8.2 特异性地被招募到成熟吸器的 EHMs 上。真菌细胞壁相关的分子模式,如几丁质和β-1,3-葡聚糖,在吸器表面暴露。在吸器中存在丰富的真菌 MVBs,并且在旁壁空间和 EHMx 中检测到了假定的外泌体囊泡,这表明存在外泌体介导的分泌途径。

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