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Impact of conservation tillage and organic farming on the diversity of arbuscular mycorrhizal fungi. Soil Biology and Biochemistry 84: 38.
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Native arbuscular mycorrhizal fungi isolated from a saline habitat improved maize antioxidant systems and plant tolerance to salinity. Plant Science 201-202: 42.
High phosphorus availability promotes the diversity of arbuscular mycorrhizal spores’ community in different tropical crop systems. Biologia 76: 3211.
Effects of soil and climatic factors on arbuscular mycorrhizal fungi in rhizosphere soil under Robinia pseudoacacia in the Loess Plateau, China. European Journal of Soil Science 67: 847.
Arbuscular mycorrhizal fungal diversity associated with an endangered species, Chamaecyparis formosensis, in the nature habitat. Tropical Ecology 65: 271.
Spatial and environmental factors influence AMF assemblages across the Brazilian Atlantic Forest - a biodiversity hotspot. European Journal of Forest Research 144: 121.
Uniting species- and community-oriented approaches to understand arbuscular mycorrhizal fungal diversity. Fungal Ecology 24: 106.
Arbuscular mycorrhizal fungi native from a Mediterranean saline area enhance maize tolerance to salinity through improved ion homeostasis. Plant, Cell & Environment 36: 1771.
Mycorrhizal benefits on native plants of the Caatinga, a Brazilian dry tropical forest. Symbiosis 74: 79.
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Edaphic factors trigger diverse AM fungal communities associated to exotic camellias in closely located Lake Maggiore (Italy) sites. Mycorrhiza 25: 253.
Diversity of arbuscular mycorrhizal fungi in metal polluted and EDTA washed garden soils before and after soil revitalization with commercial and indigenous fungal inoculum. Ecological Engineering 95: 330.
Nitrogen Addition Does Not Change AMF Colonization but Alters AMF Composition in a Chinese Fir (Cunninghamia lanceolata) Plantation. Forests 13: 979.
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Unexpectedly high diversity of arbuscular mycorrhizal fungi in fertile Chernozem croplands in Central Europe. CATENA 182: 104135.
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Ancient lineages of arbuscular mycorrhizal fungi provide little plant benefit. Mycorrhiza 31: 559.
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Lineage-Specific Genes and Cryptic Sex: Parallels and Differences between Arbuscular Mycorrhizal Fungi and Fungal Pathogens. Trends in Plant Science 26: 111.
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The composition of arbuscular mycorrhizal fungal communities differs among the roots, spores and extraradical mycelia associated with five Mediterranean plant species. Environmental Microbiology 17: 2882.
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Sequencing and comparison of the mitochondrial COI gene from isolates of Arbuscular Mycorrhizal Fungi belonging to Gigasporaceae and Glomeraceae families. Molecular Phylogenetics and Evolution 75: 1.
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Phylogenetic systematics of the Gigasporales. Mycotaxon 122: 207.
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Diversity indices using arbuscular mycorrhizal fungi to evaluate the soil state in banana crops in Colombia. Applied Soil Ecology 109: 32.
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Diversity of arbuscular mycorrhizal fungi along an environmental gradient in the Brazilian semiarid. Applied Soil Ecology 84: 166.
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Biodiversity of arbuscular mycorrhizas in three vegetational types from the semiarid of Ceará State, Brazil. Applied Soil Ecology 67: 37.
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Autochthonous arbuscular mycorrhizal fungi and Bacillus thuringiensis from a degraded Mediterranean area can be used to improve physiological traits and performance of a plant of agronomic interest under drought conditions. Plant Physiology and Biochemistry 90: 64.
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A native Glomus intraradices strain from a Mediterranean saline area exhibits salt tolerance and enhanced symbiotic efficiency with maize plants under salt stress conditions. Plant and Soil 366: 333.
Survey of the Influences of Microbial Biostimulants on Horticultural Crops: Case Studies and Successful Paradigms. Horticulturae 9: 193.
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Optimizing chickpea growth: Unveiling the interplay of arbuscular mycorrhizal fungi and rhizobium for sustainable agriculture. Soil Use and Management 40: .
Northern and Southern Forests of Socorro Island Harbor Different Communities of Arbuscular Mycorrhizal Fungi. Pacific Science 74: .
Arbuscular mycorrhizal fungi in a semi-arid, limestone mining-impacted area of Brazil. Acta Botanica Brasilica 27: 688.
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Diversity and biogeography of arbuscular mycorrhizal fungi in agricultural soils. Biology and Fertility of Soils 53: 777.
Climate Change Effects and Sustainability Needs. Chapter 9: 123.
Pilze in Innenräumen und am Arbeitsplatz. Chapter 1: 1.
Advances in Plant Microbiome and Sustainable Agriculture. Chapter 5: 105.
Phytoremediation. Chapter 11: 225.
Advances in Crop Environment Interaction. Chapter 10: 245.
Plant Microbiome and Biological Control. Chapter 13: 289.
Aluminum Stress Adaptation in Plants. Chapter 11: 203.
21st Century Guidebook to Fungi. Chapter 3: 38.
Plant, Soil and Microbes. Chapter 6: 95.
Mycorrhizal Fungi in South America. Chapter 10: 203.
Fossil Fungi. : 297.
Symbiotic Soil Microorganisms. Chapter 25: 469.
Agriculturally Important Microbes for Sustainable Agriculture. Chapter 5: 129.
In vitro Plant Breeding towards Novel Agronomic Traits. Chapter 12: 217.
Plant-Microbe Interaction: An Approach to Sustainable Agriculture. Chapter 19: 417.
Innovations in Biotechnology for a Sustainable Future. Chapter 10: 185.
Handbook of Arbuscular Mycorrhizal Fungi. Chapter 2: 13.
Annual Plant Reviews online. : 785.
Mycorrhizal Fungi in South America. Chapter 4: 79.
The Fungal Community. : 1.
Pesticides in Soils. Chapter 797: 81.
Mycorrhizal Fungi: Use in Sustainable Agriculture and Land Restoration. Chapter 1: 1.
New and Future Developments in Microbial Biotechnology and Bioengineering. : 435.
Root Biology. Chapter 15: 367.
Phytoremediation. : 127.
Microbes for Legume Improvement. Chapter 9: 199.
Mycorrhizal Fungi in South America. Chapter 1: 1.
Industrial Applications of Soil Microbes: Volume 3. : 1.
Molecular Markers in Mycology. Chapter 8: 177.
Plant Microbe Symbiosis: Fundamentals and Advances. Chapter 16: 411.
Essential Plant Nutrients. Chapter 20: 491.
Arbuscular Mycorrhizal Fungi and Higher Plants. Chapter 6: 123.
Mycorrhizal Fungi in South America. Chapter 6: 111.
Handbook of Arbuscular Mycorrhizal Fungi. Chapter 2: 9.
Recent Advances on Mycorrhizal Fungi. Chapter 2: 15.
Recent Trends in Mycological Research. Chapter 2: 45.
Mycorrhizal Fungi in South America. Chapter 3: 49.
Arbuscular Mycorrhizal Fungi in Agriculture - New Insights. Chapter 7: .
Plant Microbe Symbiosis: Fundamentals and Advances. Chapter 10: 267.
Microbial Resource Conservation. Chapter 7: 199.
Mycorrhizosphere and Pedogenesis. Chapter 19: 339.
Soil Biological Communities and Ecosystem Resilience. Chapter 10: 157.
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