Results 141 to 150 of about 1,300 (165)

Arbuscular mycorrhizal fungal families and exploration-based guilds exhibit distinct responses to N, P and K deficiencies and imbalances

open access: yes
Jenab K   +16 more
europepmc   +1 more source

Rhizoglomus, a new genus of the Glomeraceae

open access: yesMycotaxon, 2015
Mycotaxon, 129 (2)
Ewald Sieverding   +2 more
exaly   +4 more sources

Different levels of hyphal self-incompatibility modulate interconnectedness of mycorrhizal networks in three arbuscular mycorrhizal fungi within the Glomeraceae [PDF]

open access: yesMycorrhiza, 2015
Arbuscular mycorrhizal fungi (AMF) live in symbiosis with most plant species and produce underground extraradical hyphal networks functional in the uptake and translocation of mineral nutrients from the soil to host plants. This work investigated whether fungal genotype can affect patterns of interconnections and structural traits of extraradical ...
Manuela Giovannetti   +2 more
exaly   +7 more sources

Sequencing and comparison of the mitochondrial COI gene from isolates of Arbuscular Mycorrhizal Fungi belonging to Gigasporaceae and Glomeraceae families

open access: yesMolecular Phylogenetics and Evolution, 2014
Arbuscular Mycorrhizal Fungi (AMF) are well known for their ecological importance and their positive influence on plants. The genetics and phylogeny of this group of fungi have long been debated. Nuclear markers are the main tools used for phylogenetic analyses, but they have sometimes proved difficult to use because of their extreme variability ...
Erica Lumini   +2 more
exaly   +5 more sources

Nanoglomus plukenetiae, a new fungus from Peru, and a key to small-spored Glomeraceae species, including three new genera in the “Dominikia complex/clades”

open access: yesMycological Progress, 2019
A new arbuscular mycorrhizal fungus was found in an agricultural plantation of Plukenetia volubilis, the inka nut (also called “sacha inchi” or “inka peanut”) in the Amazonia region of San Martin State in Peru. In this site, the inka nut was grown in mixed cultures together with Zea mays and Phaseolus vulgaris.
Mike Anderson Corazon Güivin   +2 more
exaly   +4 more sources

Gigasporaceae versus Glomeraceae (phylum Glomeromycota): A biogeographic tale of dominance in maritime sand dunes [PDF]

open access: yesFungal Ecology, 2018
Abstract Community composition of arbuscular mycorrhizal fungi (AMF) is influenced by host, soil chemistry, and climatic conditions at the local and regional scale, but little is known about factors shaping community composition on a global scale. In this study, the pattern of dominance by families in Glomeromycota in maritime sand dunes worldwide ...
Sidney Luiz Stürmer
exaly   +3 more sources

New sporocarpic taxa in the phylum Glomeromycota: Sclerocarpum amazonicum gen. et sp. nov. in the family Glomeraceae (Glomerales) and Diversispora sporocarpia sp. nov. in the Diversisporaceae (Diversisporales) [PDF]

open access: yesMycological Progress, 2019
Of the nearly 300 species of the phylum Glomeromycota comprising arbuscular mycorrhizal fungi (AMF), only 24 were originally described to form glomoid spores in unorganized sporocarps with a peridium and a gleba, in which the spores are distributed randomly. However, the natural (molecular) phylogeny of most of these species remains unknown.
Gotō B T   +2 more
exaly   +6 more sources

Blaszkowskia, a new genus in Glomeraceae

Mycological Progress, 2023
Gladstone Silva   +2 more
exaly   +2 more sources

Symbiotic germination and development of fully mycoheterotrophic plants convergently targeting similar Glomeraceae taxa

Environmental Microbiology, 2021
Summary Plants producing dust seeds often meet their carbon demands by exploiting fungi at the seedling stage. This germination strategy (i.e. mycoheterotrophic germination) has been investigated among orchidaceous and ericaceous plants exploiting Ascomycota or Basidiomycota.
Hidehito Okada, Kenji Suetsugu
exaly   +3 more sources

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