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Updated: Mar 21, 2026

A Hydroponic Co-cultivation System for Simultaneous and Systematic Analysis of Plant/Microbe Molecular Interactions and Signaling
Published on: July 22, 2017
Surface sensing and signaling networks in plant pathogenic fungi
1Temasek Life Sciences Laboratory, and Department of Biological Sciences, 1 Research Link, National University of Singapore, 117604, Singapore.
Abstract:
Pathogenic fungi have evolved highly varied and remarkable strategies to invade and infect their plant hosts. Typically, such fungal pathogens utilize highly specialized infection structures, morphologies or cell types produced from conidia or ascospores on the cognate host surfaces to gain entry therein. Such diverse infection strategies require intricate coordination in cell signaling and differentiation in phytopathogenic fungi. Here, we present an overview of our current understanding of cell signaling and infection-associated development that primes host penetration in the top ten plant pathogenic fungi, which utilize specific receptors to sense and respond to different surface cues, such as topographic features, hydrophobicity, hardness, plant lipids, phytohormones, and/or secreted enzymes. Subsequently, diverse signaling components such as G proteins, cyclic AMP/Protein Kinase A and MAP kinases are activated to enable the differentiation of infection structures. Recent studies have also provided fascinating insights into the spatio-temporal dynamics and specialized sequestration and trafficking of signaling moieties required for proper development of infection structures in phytopathogenic fungi. Molecular insight in such infection-related morphogenesis and cell signaling holds promise for identifying novel strategies for intervention of fungal diseases in plants.
Insights
Plant pathogenic fungi use specialized structures and cell signaling to infect hosts. Understanding these processes, including how fungi sense surfaces and activate signaling pathways, is key to developing disease control strategies.
Area of Science:
- Plant Pathology
- Mycology
- Molecular Biology
Background:
- Pathogenic fungi employ diverse strategies to infect plants, often involving specialized infection structures.
- Successful invasion requires intricate coordination of cell signaling and differentiation in fungi.
Purpose of the Study:
- To review current knowledge on cell signaling and infection development in major plant pathogenic fungi.
- To highlight how fungi sense and respond to host surface cues for successful penetration.
Main Methods:
- Review of existing literature on fungal cell signaling and infection-related morphogenesis.
- Analysis of signaling pathways (e.g., G proteins, cAMP/PKA, MAP kinases) involved in infection structure development.
Main Results:
- Fungi use specific receptors to detect surface cues like topography, hydrophobicity, and plant-derived molecules.
- Activation of signaling components enables differentiation of infection structures.
- Spatio-temporal dynamics and trafficking of signaling molecules are crucial for infection development.
Conclusions:
- Understanding fungal cell signaling and morphogenesis is vital for plant disease management.
- Insights into these processes can lead to novel strategies for controlling fungal plant diseases.
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