Protozoa and plant growth: the microbial loop in soil revisited
- PMID: 33873756
- DOI: 10.1111/j.1469-8137.2004.01066.x
Protozoa and plant growth: the microbial loop in soil revisited
Abstract
All nutrients that plants absorb have to pass a region of intense interactions between roots, microorganisms and animals, termed the rhizosphere. Plants allocate a great portion of their photosynthetically fixed carbon to root-infecting symbionts, such asmycorrhizal fungi; another part is released as exudates fuelling mainly free-living rhizobacteria. Rhizobacteria are strongly top-down regulated by microfaunal grazers, particularly protozoa. Consequently, beneficial effects of protozoa on plant growth have been assigned to nutrients released from consumed bacterial biomass, that is, the 'microbial loop'. In recent years however, the recognition of bacterial communication networks, the common exchange of microbial signals with roots and the fact that these signals are used to enhance the efflux of carbon from roots have revolutionized our view of rhizosphere processes. Most importantly, effects of rhizobacteria on root architecture seem to be driven in large by protozoan grazers. Protozoan effects on plant root systems stand in sharp contrast to effects of mycorrhizal fungi. Because the regulation of root architecture is a key determinant of nutrient- and water-use efficiency in plants, protozoa provide a model system that may considerably advance our understanding of the mechanisms underlying plant growth and community composition.
Keywords: auxin; carbon translocation; root architecture; signals; soil protozoa; symbiotic microorganisms; rhizosphere interactions.
References
-
- Alfano JR, Collmer A. 1996. Bacterial pathogens in plants: life up against the wall. Plant Cell 8: 1683-1698. - PubMed
-
- Ali MA, Tribulsi JY, Abd-Elsamea ME. 1981. Antagonistic interactions between Meloidogyne incognita and Rhizobium leguminosarum on cowpea. Plant Disease 65: 432-435.
-
- Alphei J, Bonkowski M, Scheu S. 1996. Protozoa, Nematoda and Lumbricidae in the rhizosphere of Hordelymus europaeus (Poaceae): Faunal interactions, response of microorganisms and effects on plant growth. Oecologia 106: 111-126.
-
- Anderson RV, Coleman DC. 1981. Population development and interactions between two species of bacteriophagic nematodes. Nematologica 22: 451-461.
-
- Anderson RV, Elliott ET, McClellan JF, Coleman DC, Cole CV. 1978. Trophic interactions in soils as they affect energy and nutrient dynamics. III: Biotic interactions of bacteria, amoebae and nematodes. Microbial Ecology 4: 361-371.
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