Arbuscular mycorrhizal fungi alleviate oxidative stress in pomegranate plants growing under different irrigation conditions

Drought greatly affects the growth and development of plants. This stressful condition can trigger an increase in reactive oxygen species (ROS) production that, in turn, can induce cellular, anatomical, and morphological changes that improve drought tolerance. A strain of arbuscular mycorrhizal fung...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autor principal: Bompadre, M.J
Otros Autores: Silvani, V.A, Bidondo, L.F, Ríos de Molina, M.D.C, Colombo, R.P, Pardo, A.G, Godeas, A.M
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: National Research Council of Canada 2014
Acceso en línea:Registro en Scopus
DOI
Handle
Registro en la Biblioteca Digital
Aporte de:Registro referencial: Solicitar el recurso aquí
LEADER 15202caa a22011657a 4500
001 PAPER-23940
003 AR-BaUEN
005 20230518205543.0
008 190411s2014 xx ||||fo|||| 00| 0 eng|d
024 7 |2 scopus  |a 2-s2.0-84896881273 
040 |a Scopus  |b spa  |c AR-BaUEN  |d AR-BaUEN 
100 1 |a Bompadre, M.J. 
245 1 0 |a Arbuscular mycorrhizal fungi alleviate oxidative stress in pomegranate plants growing under different irrigation conditions 
260 |b National Research Council of Canada  |c 2014 
270 1 0 |m Bompadre, M. J.; Departamento de Biodiversidad y Biología Experimental, Universidad de Buenos Aires, Intendente Güiraldes 2160, Ciudad Universitaria, 4to piso, Pabellón 2, C1428EGA, Buenos Aires, Argentina; email: josefinuchi@gmail.com 
506 |2 openaire  |e Política editorial 
504 |a Aebi, H., Catalase in vitro (1984) Methods Enzymol, 105, pp. 121-126. , doi:10.1016/S0076-6879(84)05016-3. PMID:6727660 
504 |a Alguacil, M.M., Hernández, J.A., Caravaca, F., Portillo, B., Roldán, A., Antioxidant enzyme activities in shoots from three mycorrhizal shrub species afforested in a degraded semi-arid soil (2003) Physiol. Plant, 118, pp. 562-570. , doi:10.1034/j.1399-3054.2003.00149.x 
504 |a Beyer Jr., W.F., Fridovich, I., Assaying for superoxide dismutase activity: Some large consequences ofminor changes in conditions (1987) Anal. Biochem, 161, pp. 559-566. , doi:10.1016/0003-2697(87)90489-1. PMID:3034103 
504 |a Bradford, M.M., A rapid and sensitive method for the quantification of microgram quantities of protein utilising the principle of protein-dye binding (1976) Anal. Biochem, 72, pp. 248-254. , doi:10.1016/0003-2697(76)90527-3. PMID: 942051 
504 |a Bressano, M., Curetti, M., Giachero, L., Vargas Gil, S., Cabello, M., March, G., Ducasse, D.A., Luna, C.M., Mycorrhizal fungi symbiosis as a strategy against oxidative stress in soybean plants (2010) Plant Physiol, 167, pp. 1622-1626. , doi:10.1016/j.jplph.2010.06.024. PMID:20801548 
504 |a Carlberg, I., Mannervik, B., Glutathione reductase (1985) Methods Enzymol, 113, pp. 484-490. , doi:10.1016/S0076-6879(85)13062-4. PMID:3003504 
504 |a Causin, H.F., Roberts, I.N., Criado, M.V., Gallego, S.M., Pena, L.B., Ríos, M.D.C., Barneix, A.J., Changes in hydrogen peroxide homeostasis and cyto-kinin levels contribute to the regulation of shade-induced senescence in wheat leaves (2009) J. Plant Sci, 177, pp. 698-704. , doi:10.1016/j.plantsci.2009.08.014 
504 |a Chopade, S.O., Gorantiwar, S.D., Pampattiwar, P.S., Supe, V.S., Response of pomegranate to drip, bubbler and surface irrigation methods (2001) Advances In Horticulture and Forestry. Sci. Pub. India Jodhpur, 8, pp. 53-59 
504 |a Clewer, A.G., Scarisbrick, D.H., Factorial experiments (2001) Practical Statistics and Experimental Design For Plant and Crop Science, pp. 159-181. , Edited by John Wiley and Sons Ltd. The Atrium, Southern Gate, Chicheste, West Sussex, England 
504 |a Davies Jr., F.T., Olade-Portugal, V., Aguilera-Gomez, L., Alvarado, M.J., Ferrera-Cerrato, R.C., Boutton, T.W., Alleviationof drought stress of Chile ancho pepper (Capsicum annuum L. cv. San Luis) with arbuscular mycorrhiza indigenous to Mexico (2002) Sci. Hortic, 92, pp. 347-359. , doi:10.1016/ S0304-4238(01)00293-X 
504 |a Dumas-Gaudot, E., Gollote, A., Cordier, C., Gianinazzi, S., Gianinazzi-Pearson, V., Modulation of host defence systems (2000) Arbuscular Mycorrhizas: Physiology and Function, pp. 173-199. , Edited by Y. Kapulnik and D.D. Douds. Kluwer Academic Publishers, Dordrecht 
504 |a Franck, N., Producción y manejo de plantaciones de granado en Chile, Israel y Argentina (2009) Granados, Perspectivas Y Oportunidades De Un Negocio Emergente, pp. 28-35. , Edited by C. Castillo. Fundación Chile, Chile 
504 |a Franco, J.A., Bañón, S., Vicente, M.J., Miralles, J., Martínez-Sánchez, J.J., Root development in horticultural plants grown under abiotic stress conditions - a review (2011) J. Hortic. Sci. Biotechnol, 86 (6), pp. 543-556 
504 |a Giovanetti, M., Mosse, B., An evaluation of techniques for measuring vesicular arbuscular mycorrhizal infectioninroots (1980) New Phytol, 84, pp. 489-500. , doi:10.1111/j.1469-8137.1980.tb04556.x 
504 |a Gogorcena, Y., Iturbe-Ormaetxe, I., Escuredo, P.R., Becana, M., Antiox-idant defense against activated oxygen in pea nodules subjected to water stress (1995) Plant Physiol, 108, pp. 753-759. , PMID:12228507 
504 |a Hewitt, E.J., Sand and water culture methodsin the studyof plant nutrition (1952) Tech. Com. Agric. Bur, p. 22 
504 |a Hodges, D.M., Delong, J.M., Forney, C.F., Prange, R.K., Improving the thiobarbituric acid-reactive-substances assay for estimating lipid peroxida-tion in plant tissues containing anthocyanin and other interfering compounds (1999) Planta, 207 (4), pp. 604-611. , doi:10.1007/s004250050524 
504 |a Hossain, M.A., Asada, K., Inactivation of ascorbate peroxidase in spinach chloroplasts on dark addition of hydrogen peroxide: Its protection by ascorbate (1984) Plant Cell Physiol, 25 (7), pp. 1285-1295 
504 |a Huang, L.L., Yang, C., Zhao, Y., Xu, X., Xu, Q., Li, G.Z., Cao, J., Hao, L., Antioxidant defenses of mycorrhizal fungus infection against SO2-induced oxidative stress in Avena nuda seedlings (2008) Bull. Environ. Cont. Toxicol, 81, pp. 440-444. , doi:10.1007/s00128-008-9521-7 
504 |a Khattab, M.M., Shaban, A.E., El-Shrief, A.H., El-Deen Mohamed, A.S., Growth and productivity of pomegranate trees under different irrigation levels. I: Vegetative growth and fruiting (2011) J. Hortic. Sci. Ornam. Plants, 3 (2), pp. 194-198 
504 |a Menge, J.A., Johnson, E.L.V., Platt, R.G., Mycorrhizal dependency of several citrus cultivars under three nutrient regimes (1978) New Phytol, 81 (3), pp. 553-559. , doi:10.1111/j.1469-8137.1978.tb01628.x 
504 |a Miller, G., Suzuki, N., Ciftci-Yilmaz, S., Mittler, R., Reactive oxygen species homeostasis and signalling during drought and salinity stresses (2010) Plant Cell Environ, 33, pp. 453-467. , doi:10.1111/j.1365-3040.2009.02041.x. PMID: 19712065 
504 |a Moran, J.F., Becana, M., Iturbe-Ormaetxe, I., Frechilla, S., Klucas, R.V., Aparicio-Tejo, P., Drought induces oxidative stress in pea plants (1994) Planta, 194 (3), pp. 346-352. , doi:10.1007/BF00197534 
504 |a Nilsen, E.T., Orcutt, D.M., (1996) The Physiology of Plants Under Stress, 1. , John Wiley & Sons Inc., N.Y 
504 |a Oelmüller, R., Sherameti, I., Tripathi, S., Varma, A., Piriformospora indica, a cultivable root endophyte with multiple biotechnological applications (2009) Symbiosis, 49, pp. 1-17. , doi:10.1007/s13199-009-0009-y 
504 |a Parodi, L.R., (1978) Enciclopedia Argentina De Agricultura Y Jardinería, 2 (1). , Editorial ACME, Buenos Aires 
504 |a Phillips, J.M., Hayman, D.S., Improved procedures for clearing roots and staining parasitic and vesicular-arbuscular mycorrhizal fungi for rapid assessment of infection (1970) Trans. Brit. Mycol, 55, pp. 158-161. , doi:10.1016/S0007-1536(70)80110-3 
504 |a Porcel, R., Ruíz-Lozano, J.M., Arbuscular mycorrhizal influence on leaf water potential, solute accumulation, and oxidative stress in soybean plants subjected to drought stress (2004) J. Exp. Bot, 55 (403), pp. 1743-1750. , doi:10.1093/jxb/ erh188. PMID:15208335 
504 |a Porcel, R., Barea, J.M., Ruíz-Lozano, J.M., Antioxidant activities in my-corrhizal soybean plants under drought stress and their possible relationship to the process of nodule senescence (2003) New Phytol, 157, pp. 135-143. , doi:10.1046/j. 1469-8137.2003.00658.x 
504 |a Rahmaty, R., Khara, J., Effects of vesicular arbuscular mycorrhiza Glomus intraradices on photosynthetic pigments, antioxidant enzymes, lipid peroxidation, and chromium accumulation in maize plants treated with chromium (2011) Turk. J. Biol, 35, pp. 51-58 
504 |a Rizhsky, L., Liang, H., Mittler, R., The water-water cycle is essential for chloroplast protection in the absence of stress (2003) J. Biol. Chem, 278 (40), pp. 38921-38925. , doi:10.1074/jbc.M304987200. PMID:12885779 
504 |a Roldán, A., Díaz-Vivancos, P., Hernández, J.A., Carrasco, L., Caravaca, F., Superoxide dismutase and total peroxidase activities in relation to drought recovery performance of mycorrhizal shrub seedlings grown in an amended semiarid soil (2008) J. Plant Physiol, 165, pp. 715-722. , doi:10.1016/j.jplph.2007. 02.007. PMID:17913291 
504 |a Roqueiro, G., Maldonado, S., Ríos, M.D.C., Maroder, H., Fluctuation of oxidative stress indicators in Salix nigra seeds during priming (2012) J. Exp. Bot, 63 (10), pp. 3631-3642. , doi:10.1093/jxb/ers030 
504 |a Ruíz-Lozano, J.M., Porcel, R., Azcón, C., Aroca, R., Regulation by arbus-cular mycorrhizae of the integrated physiological response to salinity in plants: New challenges in physiological and molecular studies (2012) J. Exp. Bot, 63 (11), pp. 4033-4044. , doi:10.1093/jxb/ers126. PMID:22553287 
504 |a Saggin-Júnior, O.J., da Silva Ribeiro, E.M., Production of seedlings inoculated with arbuscular mycorrhizal fungi and their performance after outplanting (2005) Handbook of Microbial Biofertilizers, pp. 353-394. , Edited by M.K. Rai 
504 |a Silvani, V.A., (2011) Aislamiento Y Caracterización In Vitro De Hongos Micorrícicos Arbusculares De Diferentes Sitios En Argentina, , Ph.D. thesis, Universidad de Buenos Aires 
504 |a Stahl, P.D., Schuman, G.E., Frost, S.M., Williams, S.E., Arbuscular my-corrhizae and water stress tolerance of Wyoming big sagebrush seedling Soil Sci (1998) Soc. Am. J, 62, pp. 1309-1313. , doi:10.2136/sssaj1998.03615995006200050023x 
504 |a Trappe, J.M., Phylogenetic and ecologic aspects of mycotrophy in angio-sperms from anevolutionary standpoint (1986) EcophysiologyofVA Mycorrhizal Plants, pp. 5-25. , Edited by G.R. Safir. CRC Press, Boca Raton, Fla 
504 |a Waterer, D.R., Coltman, R.R., Response of mycorrhizal bell peppers to inoculation timing, phosphorus and water stress (1989) HortScience, 24, pp. 688-690 
504 |a Wu, Q.S., Zou, Y.N., Mycorrhiza has a direct effect on reactive oxygen metabolism of drought-stressed citrus (2009) Plant Soil Environ, 55 (10), pp. 436-442 
504 |a Wu, Q.S., Zou, Y.N., Xia, R.X., Effects of water stress and arbuscular mycorrhizal fungi on reactive oxygen metabolism and antioxidant production by citrus (Citrus tangerine) roots (2006) Eur. J. Soil Biol, 42, pp. 166-172. , doi:10.1016/ j.ejsobi.2005.12.006 
504 |a Wu, Q.S., Zou, Y.N., Xia, R.X., Wang, M.Y., Five Glomus species affect water relations of Citrus tangerine during drought stress (2007) Bot. Stud, 48, pp. 147-154 
504 |a Wu, Q.S., Xia, R.X., Zou, Y.N., Improved soil structure and citrus growth after inoculation with three arbuscular mycorrhizal fungi under drought stress (2008) Eur. J. Soil Biol, 44, pp. 122-128. , doi:10.1016/j.ejsobi.2007.10.001 
504 |a Wu, Q.S., Zou, Y.N., Liu, W., Ye, X.F., Zai, H.F., Zao, L.J., Alleviation of salt stress in citrus seedlings inoculated with mycorrhiza: Changes in leaf antioxidant defense systems (2010) Plant Soil Environ, 56, pp. 470-475 
504 |a Zhu, X., Song, F., Liu, S., Arbuscular mycorrhiza impacts on drought stress of maize plants by lipid peroxidation, proline content and activity of antioxidant system (2011) J. Food Agric. Environ, 9 (2), pp. 583-587 
520 3 |a Drought greatly affects the growth and development of plants. This stressful condition can trigger an increase in reactive oxygen species (ROS) production that, in turn, can induce cellular, anatomical, and morphological changes that improve drought tolerance. A strain of arbuscular mycorrhizal fungi (AMF) is considered efficient when it colonizes roots quickly and extensively, absorbs and transfers nutrients to the plant host, promotes soil aggregation, and protects the host against disease. We evaluated the effect of inoculation of two strains of the AMF Rhizophagus intraradices (N.C. Schenck & G.S. Smith) C. Walker & A. Schüßler (GA5 and GC2) on pomegranate plants (Punica granatum L.) under two irrigation conditions. The response to oxidative stress depended on many factors, including the organism tissue and the degree of stress. Our study showed that, in most cases, mycorrhizal plants increased antioxidant defenses, such as the ROS-scavenging enzymes superoxide dismutase (SOD), catalase (CAT), and ascorbate peroxidase (APX) in shoots under both irrigation levels, whereas the response for roots was ambiguous. AMF inoculation maintained the levels of malondialdehyde (MDA), probably by rapidly increasing antioxidant defenses and preventing lipid damage. We show that early AMF inoculation (particularly with the GC2 strain) in pomegranate propagation protects plants against abiotic stress.  |l eng 
593 |a Departamento de Biodiversidad y Biología Experimental, Universidad de Buenos Aires, Intendente Güiraldes 2160, Ciudad Universitaria, 4to piso, Pabellón 2, C1428EGA, Buenos Aires, Argentina 
593 |a Departamento de Química Biológica IQUIBICEN, Universidad de Buenos Aires, Intendente Güiraldes 2160, Ciudad Universitaria, 4to piso, Pabellón 2,, C1428EGA, Buenos Aires, Argentina 
593 |a Laboratorio de Micología Molecular, Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes, Roque Sáenz Peña 352, B1876BXD Bernal, Buenos Aires, Argentina 
690 1 0 |a ARBUSCULAR MYCORRHIZAL FUNGI 
690 1 0 |a ASCORBATE PEROXIDASE 
690 1 0 |a CATALASE 
690 1 0 |a GLUTATHIONE REDUCTASE 
690 1 0 |a POMEGRANATE 
690 1 0 |a SUPEROXIDE DISMUTASE 
690 1 0 |a ANTIOXIDANT 
690 1 0 |a ARBUSCULAR MYCORRHIZA 
690 1 0 |a DROUGHT STRESS 
690 1 0 |a ENVIRONMENTAL STRESS 
690 1 0 |a ENZYME ACTIVITY 
690 1 0 |a FRUIT 
690 1 0 |a FUNGUS 
690 1 0 |a GROWTH RATE 
690 1 0 |a IRRIGATION 
690 1 0 |a OXYGEN 
690 1 0 |a PHYTOCHEMISTRY 
690 1 0 |a ROOT COLONIZATION 
690 1 0 |a SOIL AGGREGATE 
690 1 0 |a TICK 
690 1 0 |a WOODY PLANT 
700 1 |a Silvani, V.A. 
700 1 |a Bidondo, L.F. 
700 1 |a Ríos de Molina, M.D.C. 
700 1 |a Colombo, R.P. 
700 1 |a Pardo, A.G. 
700 1 |a Godeas, A.M. 
773 0 |d National Research Council of Canada, 2014  |g v. 92  |h pp. 187-193  |k n. 3  |p Bot.  |x 19162804  |t Botany 
856 4 1 |u https://www.scopus.com/inward/record.uri?eid=2-s2.0-84896881273&doi=10.1139%2fcjb-2013-0169&partnerID=40&md5=7a32ed4ad0feb0140229d964ee8c2e78  |y Registro en Scopus 
856 4 0 |u https://doi.org/10.1139/cjb-2013-0169  |y DOI 
856 4 0 |u https://hdl.handle.net/20.500.12110/paper_19162804_v92_n3_p187_Bompadre  |y Handle 
856 4 0 |u https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_19162804_v92_n3_p187_Bompadre  |y Registro en la Biblioteca Digital 
961 |a paper_19162804_v92_n3_p187_Bompadre  |b paper  |c PE 
962 |a info:eu-repo/semantics/article  |a info:ar-repo/semantics/artículo  |b info:eu-repo/semantics/publishedVersion 
999 |c 84893