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Updated: Apr 24, 2026

Live-cell Imaging of Fungal Cells to Investigate Modes of Entry and Subcellular Localization of Antifungal Plant Defensins
Published on: December 24, 2017
Myosins XI modulate host cellular responses and penetration resistance to fungal pathogens
Long Yang1, Li Qin2, Guosheng Liu2
1Department of Biology, University of Saskatchewan, Saskatoon, SK, Canada S7N 5E2; State Key Laboratory of Agricultural Microbiology, Key Laboratory of Plant Pathology of Hubei Province, Huazhong Agricultural University, Wuhan 430070, China; and.
Abstract:
The rapid reorganization and polarization of actin filaments (AFs) toward the pathogen penetration site is one of the earliest cellular responses, yet the regulatory mechanism of AF dynamics is poorly understood. Using live-cell imaging in Arabidopsis, we show that polarization coupled with AF bundling involves precise spatiotemporal control at the site of attempted penetration by the nonadapted barley powdery mildew fungus, Blumeria graminis f. sp. hordei (Bgh). We further show that the Bgh-triggered AF mobility and organelle aggregation are predominately driven by the myosin motor proteins. Inactivation of myosins by pharmacological inhibitors prevents bulk aggregation of organelles and blocks recruitment of lignin-like compounds to the penetration site and deposition of callose and defensive protein, PENETRATION 1 (PEN1) into the apoplastic papillae, resulting in attenuation of penetration resistance. Using gene knockout analysis, we demonstrate that highly expressed myosins XI, especially myosin XI-K, are the primary contributors to cell wall-mediated penetration resistance. Moreover, the quadruple myosin knockout mutant xi-1 xi-2 xi-i xi-k displays impaired trafficking pathway responsible for the accumulation of PEN1 at the cell periphery. Strikingly, this mutant shows not only increased penetration rate but also enhanced overall disease susceptibility to both adapted and nonadapted fungal pathogens. Our findings establish myosins XI as key regulators of plant antifungal immunity.
Insights
Plant myosin XI motor proteins are crucial for actin filament organization and defense against fungal pathogens. Their inactivation impairs plant immunity, leading to increased susceptibility to infections.
Area of Science:
- Plant Biology
- Cellular Microbiology
- Molecular Plant Pathology
Background:
- Actin filament (AF) dynamics are vital for plant cellular responses, including defense against pathogens.
- The precise mechanisms regulating AF reorganization and polarization during plant-pathogen interactions remain largely unknown.
Purpose of the Study:
- To elucidate the role of myosin motor proteins in regulating AF dynamics during plant antifungal defense.
- To investigate the contribution of myosins XI to plant immunity against fungal pathogens.
Main Methods:
- Live-cell imaging in Arabidopsis to observe AFs and organelle movement.
- Pharmacological inhibition of myosins.
- Gene knockout analysis of myosins XI, including a quadruple mutant.
- Assessment of fungal penetration and disease susceptibility.
Main Results:
- Myosin motor proteins, particularly myosins XI, drive AF bundling and organelle aggregation at pathogen penetration sites.
- Inactivation of myosins disrupts the deposition of defense compounds like callose and PENETRATION 1 (PEN1).
- Myosin XI mutants exhibit increased fungal penetration rates and heightened susceptibility to various fungal pathogens.
Conclusions:
- Myosins XI are essential regulators of plant cell wall-mediated penetration resistance and antifungal immunity.
- Myosins XI play a critical role in the trafficking pathways required for accumulating defense proteins at the cell periphery.
- Targeting myosin XI function represents a potential strategy for enhancing plant disease resistance.
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