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Published on: June 23, 2022
Bacterial secretion systems contribute to rapid tissue decay in button mushroom soft rot disease
Philipp Wein1, Katharina Dornblut1, Sebastian Herkersdorf2,3
1Department of Biomolecular Chemistry, Leibniz Institute for Natural Product Research and Infection Biology (HKI) , Jena, Germany.
Abstract:
The soft rot pathogen Janthinobacterium agaricidamnosum causes devastating damage to button mushrooms (Agaricus bisporus), one of the most cultivated and commercially relevant mushrooms. We previously discovered that this pathogen releases the membrane-disrupting lipopeptide jagaricin. This bacterial toxin, however, could not solely explain the rapid decay of mushroom fruiting bodies, indicating that J. agaricidamnosum implements a more sophisticated infection strategy. In this study, we show that secretion systems play a crucial role in soft rot disease. By mining the genome of J. agaricidamnosum, we identified gene clusters encoding a type I (T1SS), a type II (T2SS), a type III (T3SS), and two type VI secretion systems (T6SSs). We targeted the T2SS and T3SS for gene inactivation studies, and subsequent bioassays implicated both in soft rot disease. Furthermore, through a combination of comparative secretome analysis and activity-guided fractionation, we identified a number of secreted lytic enzymes responsible for mushroom damage. Our findings regarding the contribution of secretion systems to the disease process expand the current knowledge of bacterial soft rot pathogens and represent a significant stride toward identifying targets for their disarmament with secretion system inhibitors. IMPORTANCE The button mushroom (Agaricus bisporus) is the most popular edible mushroom in the Western world. However, mushroom crops can fall victim to serious bacterial diseases that are a major threat to the mushroom industry, among them being soft rot disease caused by Janthinobacterium agaricidamnosum. Here, we show that the rapid dissolution of mushroom fruiting bodies after bacterial invasion is due to degradative enzymes and putative effector proteins secreted via the type II secretion system (T2SS) and the type III secretion system (T3SS), respectively. The ability to degrade mushroom tissue is significantly attenuated in secretion-deficient mutants, which establishes that secretion systems are key factors in mushroom soft rot disease. This insight is of both ecological and agricultural relevance by shedding light on the disease processes behind a pathogenic bacterial-fungal interaction which, in turn, serves as a starting point for the development of secretion system inhibitors to control disease progression.
Insights
Janthinobacterium agaricidamnosum uses secretion systems, including the type II and type III secretion systems (T2SS and T3SS), to cause soft rot disease in button mushrooms. These systems deliver enzymes and proteins that degrade mushroom tissue, leading to significant crop damage.
Area of Science:
- Microbiology
- Plant Pathology
- Bacterial Pathogenesis
Background:
- Janthinobacterium agaricidamnosum causes significant economic losses in button mushroom (Agaricus bisporus) cultivation due to soft rot disease.
- Previous research identified the toxin jagaricin, but it alone could not explain the rapid mushroom decay, suggesting a more complex infection mechanism.
- Bacterial secretion systems are critical for delivering virulence factors in many plant and animal pathogens.
Purpose of the Study:
- To investigate the role of bacterial secretion systems in the soft rot disease of Agaricus bisporus caused by J. agaricidamnosum.
- To identify specific secreted factors contributing to mushroom tissue degradation.
- To establish secretion systems as potential targets for disease control strategies.
Main Methods:
- Bioinformatic analysis of the J. agaricidamnosum genome to identify genes encoding secretion systems (T1SS, T2SS, T3SS, T6SSs).
- Gene inactivation studies targeting the type II secretion system (T2SS) and type III secretion system (T3SS).
- Comparative secretome analysis and activity-guided fractionation to identify secreted lytic enzymes.
Main Results:
- The J. agaricidamnosum genome encodes multiple secretion systems, including T2SS and T3SS.
- Mutants deficient in T2SS and T3SS showed significantly reduced ability to degrade mushroom tissue, confirming their crucial role in soft rot.
- Several secreted lytic enzymes responsible for mushroom tissue damage were identified.
Conclusions:
- Secretion systems, particularly T2SS and T3SS, are essential for the virulence of J. agaricidamnosum in causing soft rot disease in button mushrooms.
- The identified secreted enzymes and effector proteins delivered via these systems are key contributors to rapid mushroom tissue dissolution.
- These findings highlight bacterial secretion systems as promising targets for developing novel inhibitors to manage mushroom soft rot disease.
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