Alternaria Brassicae Induces Systemic Jasmonate Responses in Arabidopsis Which Travel to Neighboring Plants via a Piriformsopora Indica Hyphal Network and Activate Abscisic Acid Responses
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Summary
It is proposed that the local threat information induced by A. brassicae infection is spread over the entire plant and transferred to neighboring plants via a P. indica hyphal network.
- Type
- article
- Published
- 2018-05-08
- Cited by
- 27
- References
- 141
- Access
- Open access
- OpenAlex
- https://openalex.org/W2799386920
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:22615590
Keywords
Abscisic acid, Jasmonate, Jasmonic acid, Arabidopsis, Biology
References
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- SOS - too many signals for systemic acquired resistance?
Cited by
- Beneficial and Pathogenic Arabidopsis Root-Interacting Fungi Differently Affect Auxin Levels and Responsive Genes During Early Infection
- Role of Phytohormones in Piriformospora indica-Induced Growth Promotion and Stress Tolerance in Plants: More Questions Than Answers
- Piriformospora indica colonization reprograms plants to improved P-uptake, enhanced crop performance, and biotic/abiotic stress tolerance
- More Transporters, More Substrates: The Arabidopsis Major Facilitator Superfamily Revisited.
- Interplant communication via hyphal networks
- Social networking in crop plants: Wired and wireless cross‐plant communications
- Can common mycorrhizal fungal networks be managed to enhance ecosystem functionality?
- Piriformospora indica employs host’s putrescine for growth promotion in plants
- Filamentous fungi as biocontrol agents in olive (Olea europaea L.) diseases: Mycorrhizal and endophytic fungi
- Our sisters the plants? notes from phylogenetics and botany on plant kinship blindness
- Piriformospora indica promotes the growth and enhances the root rot disease resistance of gerbera
- Ethylene Response Factor109 Attunes Immunity, Photosynthesis, and Iron Homeostasis in Arabidopsis Leaves
- A new in vitro monitoring system reveals a specific influence of Arabidopsis nitrogen nutrition on its susceptibility to Alternaria brassicicola at the seedling stage
- Trichoderma hamatum can act as an inter-plant communicator of foliar pathogen infections by colonizing the roots of nearby plants: a new inter-plant "wired communication".
- Ecological realism and rigor in the study of plant-plant allelopathic interactions
- Revisiting Alternaria-host interactions: New insights on its pathogenesis, defense mechanisms and control strategies
- Common mycorrhizal network: the predominant socialist and capitalist responses of possible plant–plant and plant–microbe interactions for sustainable agriculture
- Exposing belowground plant communication
- Plant Immunity Modulation in Arbuscular Mycorrhizal Symbiosis and Its Impact on Pathogens and Pests.
- The Impact of Piriformospora indica on plant heat and drought tolerance
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