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References
Abbas Y (2014). Microorganisms in the rhizosphere of Tetraclinaria: a tool to optimize the assisted regeneration of Tetraclinis articulates Vahl. M.Sc., Ph.D. Thesis, Mohammed V University, Faculty of Science Rabat, 157p. |
|
Aboubacar K, Zakari MO, Harouna IA, Seydou I, Alzouma M, Zoubeirou (2013). Effect of co-inoculation of rhizobium and mycorrhizae on the agronomic performance of cowpeas (Vigna unguiculata (L.) Walp.) in Niger. Journal of Applied Biosciences 72:5846-5854. |
|
Anguiby BLA, Ouattara G, Bomisso EL, N'goran B, Ouattara B, Coulibaly SA, Aké S (2019). Evaluation du statut mycorhizien d'arbres de Ceiba pentandra (L), Gaertn et Tieghemella heckelii (A.Chev), Pierre, du jardin Botanique de Bingerville en Côte d'Ivoire Journal of Applied Biosciences 138:14092-14105. |
|
Anne P (1945). Sur le dosage rapide du carbone organique dans les sold Ann: Agroni Avril, Mai, Juin, 1945, 5he année 2:161-172. |
|
Bakonyi I, Csitári G (2018). Response of winter wheat to arbuscular mycorrhizal fungal inoculation under farm conditions. Journal of Agriculture and Environmental Sciences 5:1. |
|
Balliu A, Sallaku G, Rewald B (2015). AMF Inoculation enhances growth and improves the nutrient uptake rates of transplanted, salt-stressed tomato seedlings. Sustainability 7:15967-15981. |
|
Balogoun I, Saïdou A, Ahoton LE, Adjanohoun A, Amadji GL, Ezui G, Youl S, Mando A, Igué AM, Sinsin BA (2013). Détermination des formules d'engrais minéraux et des périodes de semis pour une meilleure production du maïs (Zea mays L.) au Sud et au Centre Bénin. Bulletin de la Recherche Agronomique du Bénin, ISSN sur papier : 1025-2355, Numéro spécial Fertilité du maïs, pp.: 1-25 |
|
Beltrano J, Ruscittil M, Arango MC, Ronco M (2013). Effects of Arbuscular Mycorrhiza Inoculation on Plant Growth, Biological and Physiological Parameters and Mineral Nutrition in Pepper Grown under Different Salinity and P Levels. Journal of Soil Science and Plant Nutrition 13(1):123-141. |
|
Benjelloun S, El Harchli EH, Amrani JK, El Ghachtouli N, Fikri Benbrahim K, El Yamani J (2014). Etude De L'importance De la Mycorhization dans la Synthèse des composés phénoliques chez le Maïs (Zea mays L.) en condition de stress hydrique. Research Inventy: International Journal of Engineering and Science 4(12):43-49. |
|
Bray RH, Kurtz LT(1945). Determination of total organic and available forms of phosphorus in soils. Soil Science 59:39-45. |
|
Ceballos I, Ruiz M, Fernández C, Peña R, Rodriguez A, Sanders IR (2013). The in vitro mass-produced model mycorrhizal fungus, Rhizophagus irregularis, significantly increases yields of the globally important food security crop cassava. PLOS ONE 8(8):e70633. |
|
Chen S, Zhao H, Zou C, Li Y, Chen Y, Wang Z, Jiang Y, Liu A, Zhao P, Wang M, Ahammed GJ (2017). Combined Inoculation with Multiple Arbuscular Mycorrhizal Fungi Improves Growth, Nutrient Uptake and Photosynthesis in Cucumber Seedlings. Frontiers in Microbiology 8:2516. |
|
Chen MM, Arato L, Borghi E, Nouri, Reinhardt D (2018). Beneficial Services of Arbuscular Mycorrhizal Fungi - From Ecology to Application. Frontiers in Plant Science 9:1270. |
|
Diallo B, Samba SAN, Sane D (2016). Effects of MA fungi on the growth and development of castor seedlings grown under saline stress under semiconductor conditions. Revue des Energies Renouvelables19(1):59-68. |
|
Duponnois R, Ramanankierana H, Hafidi M, Baohanta R, Baudoin E, Thioulouse J, Lebrun M (2013). Endemic plant resources to sustainably optimize forest cover rehabilitation operations in Mediterranean and tropical environments: example of plants that facilitate the spread of mycorrhizal fungi. Biology Reports 336 (5-6):265-272. |
|
Evelin H, Giri B, Kapoor R (2012). Contribution of Glomus intraradices inoculation to nutrient acquisition and mitigation of ionic imbalance in NaCl-stressed Trigonella foenum-graecum. Mycorrhiza 22:203-217. |
|
Fernández F, Gómez R, Vanegas LF, de la Noval BM, Martínez MA (2000). Mycorrhizogenic inoculant product. National Office of Industrial Property. Cuba, Patent No. 22641. |
|
Gholami A, Shahsavani S, Nezarat S (2009). The Effect of Plant Growth Promoting Rhizobacteria (PGPR) on Germination, Seedling Growth and Yield of Maize. World Academy of Science, Engineering and Technology 49:19-24. |
|
Giovannetti M, Mosse B (1980). An evaluation of techniques for measuring vesicular- arbuscular infection in roots. New Phytologist 84:489-500. |
|
Gnamkoulamba A, Tounou AK, Tchao M, Tchabi A, Adjevi AKM, Batawila K (2018). Field assessment of the growth potential and production of rice (Oryza sativa L.) variety IR841 inoculated in the nursery by four strains of arbuscular mycorrhizal fungi. European Scientific Journal 14:12. |
|
Gottshall CB, Cooper M, Emery SM (2017). Activity, diversity and function of arbuscular mycorrhizae vary with changes in agricultural management intensity. Agriculture, Ecosystems and Environment 241:142-149. |
|
Hoeksema JD (2010). A meta-analysis of context-dependency in plant response to inoculation with mycorrhizal fungi. Ecology Letters 13:394-407. |
|
Igue MA, Oga AC, Balogoun I, Saidou A, Ezui GYS, Kpagbin G, Mando A, Sogbedji JM (2016). Détermination des formules d'engrais minéraux et organiques sur deux types de sols pour une meilleure productivité de maïs (Zea mays l.) dans la commune de Banikoara (Nord-Est Du Bénin). European Scientific Journal 12:30. |
|
Jin H, Germida JJ, Walley FL (2013). Suppressive effects of seed-applied fungicides on arbuscular mycorrhizal fungi (AMF) differ with fungicide mode of action and AMF species. Applied Soil Ecology 72:22-30. |
|
Kapoor R, Evelin H, Mathur P, Giri B (2013). Arbuscular mycorrhiza: Approaches for abiotic stress tolerance incropplantsforsustainableagriculture. In Plan tAcclimation to Environmental Stress; Tuteja, N., Gill, S.S., Eds.; Springer: New York, NY, USA,; pp. 359-401. |
|
Kjeldahl J (1883). Neue Methode zur Bestimmung des Stickstoffs in organischen Körpern. Zeitschrift für Analytische Chemie 22:366-382. |
|
Kouadio AN, Nandjui J, Zézé A (2017). An Indigenous and an Exotic AMF Strains Improve Dioscorea Alata growth and induce tolerance to Meloidogyne spp., Agricultural Science Research Journal 7(2):63-69. |
|
Kumari S, Merina P, Srimeena N (2019). Arbuscular Mycorrhizal Fungi (AMF) Induced Defense Factors against the Damping-off Disease Pathogen, Pythium aphanidermatum in Chilli (Capsicum annum). International Journal of Current Microbiology and Applied Sciences 8(6):2243-2248. |
|
Lekberg Y, Koide RT (2005): Is plant performance limited by abundance of arbuscular mycorrhizal fungi? A meta-analysis of studies published between 1988 and 2003. New Phytologist 168:189-204. |
|
MAEP (Ministère de l'Agriculture de l'Elevage et de la Pêche) (2017). Recueil des technologies agricoles prometteuses développées par le Système National de Recherche Agricole (SNRA) de 1996 à 2015 Document Technique et d'Informations. ISBN : 978-99919-2-985-9 Dépôt légal n° 9433 du 12 juin 2017 Bibliothèque Nationale du Bénin, 2èmetrimestre. 288p |
|
Malonda AN, Nzola-meso TM, Manga AM, Yandju MC (2019). Effet des champignons mycorhiziens Arbusculaires sur le phosphore des sols tropicaux et implication dans la biosynthèse du caroténoïde du manioc. Journal of Applied Biosciences 135:137. |
|
Miller RM, Jastrow JD (2010). Mycorrhizal fungi influence soil structure. In: Kapulnik, Y., Douds, D. (Eds.) Arbuscular mycorrhizas: Physiology and function. Chapter 1. Kluwer Academic Publishers. |
|
Mitra D, Navendra U, Panneerselvam U, Ansuman S, Ganeshamurthy AN, Divya J (2019). Role of mycorrhiza and its associated bacteria on plant growth promotion and nutrient management in sustainable agriculture. International Journal of Life Sciences and Applied Science 1:1-10. |
|
Pagano MC (2014). Drought stress and mycorrhizal plant. In Use of Microbes for the Alleviation of Soil Stresses; Miransari, M., Ed.; Springer: New York, NY, USA 1:97-110. |
|
Pavithra D, Yapa N (2018). Arbuscular mycorrhizal fungi inoculation enhances drought stress tolerance of plants. Groundwater for Sustainable Development 7:490-494. |
|
Pellegrino E, Opik M, Bonari E, Ercoli L (2015). Responses of wheat to arbuscular mycorrhizal fungi: A meta-analysis of field studies from 1975 to 2013. Soil Biology and Biochemistry 84:210-217 |
|
Phillip JM, Hayman DS (1970). Improved procedures for cleaning roots and staining parasitic and vesicular arbuscularmycorrhizal fungi for rapid assessment of infection. Transactions of the British Mycological Society 5:158-161. |
|
Pinheiro J, Bates D, DebRoy S, Sarkar D, R Core Team (2019). nlme: Linear and Nonlinear Mixed Effects Models. R Package Version 31-141 https://CRAN.R-project.org/package=nlme. |
|
Plenchette C, Bois JF, Duponnois R, Cadet P (2000). Mycorrhization (Glomus aggregatum) of millet (Pennisetum glaucum). Soil Studies and Management 7(4):379-383. |
|
Rouphael Y, Franken P, Schneider C, Schwarz D, Giovannetti M, Agnolucci M (2015). Arbuscular mycorrhizal fungi act as biostimulants in horticultural crops. Scientia Horticulturae 196:91-108. |
|
Ruget F, Bonhomme R, Chartier M (1996). Estimation Simple de la Surface Foliaire de Plantes de Maïs en Croissance. Agronomien 16(9):553-562. |
|
Sarah S, Ibrar M (2016). Effects of arbuscular mycorrhizal fungi on spores density and root colonization of four hybrids of sunflower (Helianthus annuus L.) at different rock phosphate levels. Sarhad Journal of Agriculture 32(4):258-266. |
|
Sasvári Z (2017). Study of arbuscular mycorrhizal fungal diversity in long-term field experiments. PhD dissertation, Szent István University, GödöllÅ‘. |
|
Sharma S, Prasad R, Varma A, Sharma AK (2017). Glycoprotein associated with Funneliformis coronatum, Gigaspora margarita and Acaulospora scrobiculata suppress the plant pathogens in vitro. Asian Journal of Plant Pathology 11(4):192-202. |
|
Sun Z, Song J, Xin X, Xie X, Zhao B (2018). Arbuscular mycorrhizal fungal proteins 14-3-3- are involved in arbuscule formation and responses to a biotic stress during AM symbiosis. Frontiers in Microbiology 5:9-19. |
|
Tchinmegni FI, Tsobeng AC, Ngonkeu MEL, Tchoundjeu Z (2016). Evaluation du statut mycorhizien chez Allanblackia floribunda en vue de sa domestication en zones forestières humides du Cameroun, Revue Scientifque et Technique Forêt et Environnement du Bassin du Congo 6:81-83. |
|
Treseder KK (2013). The extent of mycorrhizal colonization of roots and its influence on plant growth and phosphorus content. Plant and Soil 371:1-13. |
|
Trouvelot A, Kough JL, Gianinazzi-Pearson V (1986). Measurement of the VA mycorrhization rate of a root system. Research and estimation methods of functional significance. In: Physiological and genetic aspects of mycorrhizae, Dijon, 1985. INRA (ed.), pp. 217-221. |
|
Van der Heijden MG, Boller T, Wiemken A, Sanders IR (1998). Different arbuscular mycorrhizal fungal species are potential determinants of plant community structure. Ecology 79(6):20822091. |
|
Walder F, van der Heijden MGA (2015). Regulation of resource exchange in the arbuscular mycorrhizal symbiosis. Nature Plants 1:15159 |
|
Zhang F, Jia-Dong HE, Qiu-Dan NI, Qiang-Sheng WU, Zou YN (2018). Enhancement of drought tolerance in trifoliate orange by mycorrhiza: changes in root sucrose and proline metabolisms. Notulae Botanicae Horti Agrobotanici Cluj-Napoca 46:270. |
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