Assaying Effector Cell-to-Cell Mobility in Plant Tissues Identifies Hypermobility and Indirect Manipulation of Plasmodesmata.

IF 3.2 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Molecular Plant-microbe Interactions Pub Date : 2024-02-01 Epub Date: 2024-02-26 DOI:10.1094/MPMI-05-23-0052-TA
Mina Ohtsu, Joanna Jennings, Matthew Johnston, Andrew Breakspear, Xiaokun Liu, Kara Stark, Richard J Morris, Jeroen de Keijzer, Christine Faulkner
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Abstract

In plants, plasmodesmata establish cytoplasmic continuity between cells to allow for communication and resource exchange across the cell wall. While plant pathogens use plasmodesmata as a pathway for both molecular and physical invasion, the benefits of molecular invasion (cell-to-cell movement of pathogen effectors) are poorly understood. To establish a methodology for identification and characterization of the cell-to-cell mobility of effectors, we performed a quantitative live imaging-based screen of candidate effectors of the fungal pathogen Colletotrichum higginsianum. We predicted C. higginsianum effectors by their expression profiles, the presence of a secretion signal, and their predicted and in planta localization when fused to green fluorescent protein. We assayed for cell-to-cell mobility of nucleocytosolic effectors and identified 14 that are cell-to-cell mobile. We identified that three of these effectors are "hypermobile," showing cell-to-cell mobility greater than expected for a protein of that size. To explore the mechanism of hypermobility, we chose two hypermobile effectors and measured their impact on plasmodesmata function and found that even though they show no direct association with plasmodesmata, each increases the transport capacity of plasmodesmata. Thus, our methods for quantitative analysis of cell-to-cell mobility of candidate microbe-derived effectors, or any suite of host proteins, can identify cell-to-cell hypermobility and offer greater understanding of how proteins affect plasmodesmal function and intercellular connectivity. [Formula: see text] Copyright © 2024 The Author(s). This is an open access article distributed under the CC BY 4.0 International license.

对植物组织中效应细胞间迁移率的测定确定了胞间连丝的高迁移率和间接操纵。
在植物中,胞间连丝在细胞之间建立细胞质的连续性,以允许细胞壁上的交流和资源交换。虽然植物病原体使用胞间连丝作为分子和物理入侵的途径,但对分子入侵(病原体效应物的细胞间运动)的好处知之甚少。为了建立一种鉴定和表征效应物细胞间迁移率的方法,我们对真菌病原体higginsianum Colletotrichum的候选效应物进行了定量实时成像筛选。我们通过其表达谱、分泌信号的存在以及与GFP融合时的预测和植物内定位来预测C.higginsianum效应物。我们测定了核胞质效应物的细胞间迁移率,并鉴定了14种细胞间迁移的效应物。我们发现,其中3个效应子是“超移动的”,显示出细胞对细胞的流动性大于其大小的蛋白质的预期。为了探索超移动性的机制,我们选择了两种超移动性效应物,并测量了它们对胞间连丝功能的影响,发现即使它们与胞间连丝无直接关联,但每种效应物都增加了胞间连纤维的运输能力。因此,我们对候选微生物衍生效应物或任何一套宿主蛋白质的细胞间迁移率进行定量分析的方法,可以识别细胞间的高迁移率,并更好地了解蛋白质如何影响胞间连丝功能和细胞间连接。
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来源期刊
Molecular Plant-microbe Interactions
Molecular Plant-microbe Interactions 生物-生化与分子生物学
CiteScore
7.00
自引率
2.90%
发文量
250
审稿时长
3 months
期刊介绍: Molecular Plant-Microbe Interactions® (MPMI) publishes fundamental and advanced applied research on the genetics, genomics, molecular biology, biochemistry, and biophysics of pathological, symbiotic, and associative interactions of microbes, insects, nematodes, or parasitic plants with plants.
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