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Abstract:

The capacity of dark septate endophytes (DSE; Phialocephala turiciensis, Acephala applanata, P. glacialis and Phaeomollisia piceae) to solubilize inorganic phosphate (P) and to mineralize the organic form was studied. We analysed the effect of DSE strains on P uptake by Trifolium repens in the presence or absence of arbuscular mycorrhizal fungi (AMF). Phosphatases were observed both in the absence of the host plant and the organic resource, showing that the P mineralization process is not induced by the enzyme substrate or the host. DSE were more efficient at mineralizing organic P. Independently of the presence of AMF, DSE increased the pool of P in the soil, with significant differences being found in P levels among the different DSE. In contrast, plant P uptake was increased by AMF. The P content of plants increased with the co-inoculation of AMF and P. turiciensis or P. piceae. We hypothesize a close relationship between DSE and AMF in relation to P availability and uptake in plants. Whereas DSE increase the pool of P in the rhizosphere, AMF are responsible for P transfer to the host, with co-colonization of plants by DSE and AMF showing a synergistic outcome. © 2015 Elsevier Ltd and The British Mycological Society.

Registro:

Documento: Artículo
Título:The co-existence between DSE and AMF symbionts affects plant P pools through P mineralization and solubilization processes
Autor:Della Monica, I.F.; Saparrat, M.C.N.; Godeas, A.M.; Scervino, J.M.
Filiación:IBBEA (CONICET-UBA) DBBE. FCEN. UBA, Universidad de Buenos Aires1428, Argentina
INFIVE, (CONICET-UNLP) CCT-La Plata, Inst. de Botánica Spegazzini, Facultad de Cs. Naturales y Museo, Diag. 113 y 61, 53 # 477, La Plata, 1900, Argentina
Instituto de Investigaciones en Biodiversidad y Medioambiente (INIBIOMA), CONICET-UNCo., Quintral 1250, SC de Bariloche, Río Negro, 8400, Argentina
Palabras clave:Arbuscular mycorrhizal fungi (AMF); Dark septate; Endophyte (DSE); Phosphatase enzyme; Phosphate solubilization
Año:2015
Volumen:17
Página de inicio:10
Página de fin:17
DOI: http://dx.doi.org/10.1016/j.funeco.2015.04.004
Título revista:Fungal Ecology
Título revista abreviado:Fungal Ecol.
ISSN:17545048
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_17545048_v17_n_p10_DellaMonica

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Citas:

---------- APA ----------
Della Monica, I.F., Saparrat, M.C.N., Godeas, A.M. & Scervino, J.M. (2015) . The co-existence between DSE and AMF symbionts affects plant P pools through P mineralization and solubilization processes. Fungal Ecology, 17, 10-17.
http://dx.doi.org/10.1016/j.funeco.2015.04.004
---------- CHICAGO ----------
Della Monica, I.F., Saparrat, M.C.N., Godeas, A.M., Scervino, J.M. "The co-existence between DSE and AMF symbionts affects plant P pools through P mineralization and solubilization processes" . Fungal Ecology 17 (2015) : 10-17.
http://dx.doi.org/10.1016/j.funeco.2015.04.004
---------- MLA ----------
Della Monica, I.F., Saparrat, M.C.N., Godeas, A.M., Scervino, J.M. "The co-existence between DSE and AMF symbionts affects plant P pools through P mineralization and solubilization processes" . Fungal Ecology, vol. 17, 2015, pp. 10-17.
http://dx.doi.org/10.1016/j.funeco.2015.04.004
---------- VANCOUVER ----------
Della Monica, I.F., Saparrat, M.C.N., Godeas, A.M., Scervino, J.M. The co-existence between DSE and AMF symbionts affects plant P pools through P mineralization and solubilization processes. Fungal Ecol. 2015;17:10-17.
http://dx.doi.org/10.1016/j.funeco.2015.04.004