Immobilized Subpopulations of Leaf Epidermal Mitochondria Mediate PENETRATION2-Dependent Pathogen Entry Control in Arabidopsis

2016 | journal article. A publication with affiliation to the University of Göttingen.

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​Immobilized Subpopulations of Leaf Epidermal Mitochondria Mediate PENETRATION2-Dependent Pathogen Entry Control in Arabidopsis​
Fuchs, R.; Kopischke, M.; Klapprodt, C.; Hause, G.; Meyer, A. J.; Schwarzlaender, M. & Fricker, M. D. et al.​ (2016) 
The Plant Cell28(1) pp. 130​-145​.​ DOI: https://doi.org/10.1105/tpc.15.00887 

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Authors
Fuchs, Rene; Kopischke, Michaela; Klapprodt, Christine; Hause, Gerd; Meyer, Andreas J.; Schwarzlaender, Markus; Fricker, Mark D.; Lipka, Volker
Abstract
The atypical myrosinase PENETRATION2 (PEN2) is required for broad-spectrum invasion resistance to filamentous plant pathogens. Previous localization studies suggested PEN2-GFP association with peroxisomes. Here, we show that PEN2 is a tail-anchored protein with dual-membrane targeting to peroxisomes and mitochondria and that PEN2 has the capacity to form homo-oligomer complexes. We demonstrate pathogen-induced recruitment and immobilization of mitochondrial subpopulations at sites of attempted fungal invasion and show that mitochondrial arrest is accompanied by peripheral accumulation of GFP-tagged PEN2. PEN2 substrate production by the cytochrome P450 monooxygenase CYP81F2 is localized to the surface of the endoplasmic reticulum, which focally reorganizes close to the immobilized mitochondria. Exclusive targeting of PEN2 to the outer membrane of mitochondria complements the pen2 mutant phenotype, corroborating the functional importance of the mitochondrial PEN2 protein subpool for controlled local production of PEN2 hydrolysis products at subcellular plant-microbe interaction domains. Moreover, live-cell imaging shows that mitochondria arrested at these domains exhibit a pathogen-induced redox imbalance, which may lead to the production of intracellular signals.
Issue Date
2016
Status
published
Publisher
Amer Soc Plant Biologists
Journal
The Plant Cell 
ISSN
1532-298X; 1040-4651

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