Javascript must be enabled to continue!
Symbiosis-Related Plant Genes Modulate Molecular Responses in an Arbuscular Mycorrhizal Fungus During Early Root Interactions
View through CrossRef
To gain further insight into the role of the plant genome in arbuscular mycorrhiza (AM) establishment, we investigated whether symbiosis-related plant genes affect fungal gene expression in germinating spores and at the appressoria stage of root interactions. Glomus intraradices genes were identified in expressed sequence tag libraries of mycorrhizal Medicago truncatula roots by in silico expression analyses. Transcripts of a subset of genes, with predicted functions in transcription, protein synthesis, primary or secondary metabolism, or of unknown function, were monitored in spores and germinating spores and during interactions with roots of wild-type or mycorrhiza-defective (Myc–) mutants of M. truncatula. Not all the fungal genes were active in quiescent spores but all were expressed when G. intraradices spores germinated in wild-type M. truncatula root exudates or when appressoria or arbuscules were formed in association with wild-type M. truncatula roots. Most of the fungal genes were upregulated or induced at the stage of appressorium development. Inactivation of the M. truncatula genes DMI1, DMI2/MtSYM2, or DMI3/MtSYM13 was associated with altered fungal gene expression (nonactivation or inhibition), modified appressorium structure, and plant cell wall responses, providing first evidence that cell processes modified by symbiosis-related plant genes impact on root interactions by directly modulating AM fungal activity.
Title: Symbiosis-Related Plant Genes Modulate Molecular Responses in an Arbuscular Mycorrhizal Fungus During Early Root Interactions
Description:
To gain further insight into the role of the plant genome in arbuscular mycorrhiza (AM) establishment, we investigated whether symbiosis-related plant genes affect fungal gene expression in germinating spores and at the appressoria stage of root interactions.
Glomus intraradices genes were identified in expressed sequence tag libraries of mycorrhizal Medicago truncatula roots by in silico expression analyses.
Transcripts of a subset of genes, with predicted functions in transcription, protein synthesis, primary or secondary metabolism, or of unknown function, were monitored in spores and germinating spores and during interactions with roots of wild-type or mycorrhiza-defective (Myc–) mutants of M.
truncatula.
Not all the fungal genes were active in quiescent spores but all were expressed when G.
intraradices spores germinated in wild-type M.
truncatula root exudates or when appressoria or arbuscules were formed in association with wild-type M.
truncatula roots.
Most of the fungal genes were upregulated or induced at the stage of appressorium development.
Inactivation of the M.
truncatula genes DMI1, DMI2/MtSYM2, or DMI3/MtSYM13 was associated with altered fungal gene expression (nonactivation or inhibition), modified appressorium structure, and plant cell wall responses, providing first evidence that cell processes modified by symbiosis-related plant genes impact on root interactions by directly modulating AM fungal activity.
Related Results
Microrna Regulation of Nodule Zone-Specific Gene Expression In Soybean
Microrna Regulation of Nodule Zone-Specific Gene Expression In Soybean
Nitrogen is a paramount important essential element for all living organisms. It has been found to bea crucial structural component of proteins, nucleic acids, enzymes and other ce...
Forty years of study on interactions between walnut tree and arbuscular mycorrhizal fungi. A review
Forty years of study on interactions between walnut tree and arbuscular mycorrhizal fungi. A review
AbstractWalnut trees are among the most important hardwood species in the northern hemisphere, ecologically and economically. They are mainly cultivated for timber and nut producti...
The impact of arbuscular mycorrhizal colonization on flooding response of Medicago truncatula
The impact of arbuscular mycorrhizal colonization on flooding response of Medicago truncatula
Climate change is expected to lead to an increase in precipitation and flooding. Consequently, plants that are adapted to dry conditions have to adjust to frequent flooding periods...
Influence of AM fungi inoculation on Capsicum annuum L. plant grown in microwave-sterilized media
Influence of AM fungi inoculation on Capsicum annuum L. plant grown in microwave-sterilized media
The presence of arbuscular mycorrhizal in soil may affect growth and yield of chili (Capsicum annuum L.). This experiment was done to know the effect of arbuscular mycorrhizal inoc...
Plant–soil feedbacks between arbuscular- and ecto-mycorrhizal communities
Plant–soil feedbacks between arbuscular- and ecto-mycorrhizal communities
Abstract
Soil microbiomes of adult trees exert species-specific effects on the survival and growth of seedlings
1-6
...
Effects of Salinity and Arbuscular Mycorrhizal Fungi Interations on Morphology of 10 Varieties of Tomato (Solanum lycopersicum L.)
Effects of Salinity and Arbuscular Mycorrhizal Fungi Interations on Morphology of 10 Varieties of Tomato (Solanum lycopersicum L.)
Solanum lycopersicum L. (Tomato) is one of the plants commonly grown for its edible fruits all over the world. It is an important component of the average Nigerian meal. The presen...
Global patterns of mycorrhizal plant species richness across symbiotic types
Global patterns of mycorrhizal plant species richness across symbiotic types
ABSTRACT Mycorrhizal symbioses dominate terrestrial vegetation and play fundamental roles in maintaining ecosystem functions. The richness of plant species of a given mycorrhizal t...
Diverse root trait syndromes underlie species' nutrient acquisition strategies in a phosphorus‐limited forest
Diverse root trait syndromes underlie species' nutrient acquisition strategies in a phosphorus‐limited forest
Abstract
Plants allocate finite carbon‐based photosynthates into root construction, mycorrhizal symbiosis, and exudate production for nutrient acquisition. Global...

