13 research outputs found

    Bridging reproductive and microbial ecology: a case study in arbuscular mycorrhizal fungi

    Get PDF
    Offspring size is a key trait for understanding the reproductive ecology of species, yet studies addressing the ecological meaning of offspring size have so far been limited to macro-organisms. We consider this a missed opportunity in microbial ecology and provide what we believe is the first formal study of offspring-size variation in microbes using reproductive models developed for macro-organisms. We mapped the entire distribution of fungal spore size in the arbuscular mycorrhizal (AM) fungi (subphylum Glomeromycotina) and tested allometric expectations of this trait to offspring (spore) output and body size. Our results reveal a potential paradox in the reproductive ecology of AM fungi: while large spore-size variation is maintained through evolutionary time (independent of body size), increases in spore size trade off with spore output. That is, parental mycelia of large-spored species produce fewer spores and thus may have a fitness disadvantage compared to small-spored species. The persistence of the large-spore strategy, despite this apparent fitness disadvantage, suggests the existence of advantages to large-spored species that could manifest later in fungal life history. Thus, we consider that solving this paradox opens the door to fruitful future research establishing the relationship between offspring size and other AM life history traits

    Network traits predict ecological strategies in fungi

    No full text
    Colonization of terrestrial environments by filamentous fungi relies on their ability to form networks that can forage for and connect resource patches. Despite the importance of these networks, ecologists rarely consider network features as functional traits because their measurement and interpretation are conceptually and methodologically difficult. To address these challenges, we have developed a pipeline to translate images of fungal mycelia, from both micro- and macro-scales, to weighted network graphs that capture ecologically relevant fungal behaviour. We focus on four properties that we hypothesize determine how fungi forage for resources, specifically: connectivity; relative construction cost; transport efficiency; and robustness against attack by fungivores. Constrained ordination and Pareto front analysis of these traits revealed that foraging strategies can be distinguished predominantly along a gradient of connectivity for micro- and macro-scale mycelial networks that is reminiscent of the qualitative ‘phalanx’ and ‘guerilla’ descriptors previously proposed in the literature. At one extreme are species with many inter-connections that increase the paths for multidirectional transport and robustness to damage, but with a high construction cost; at the other extreme are species with an opposite phenotype. Thus, we propose this approach represents a significant advance in quantifying ecological strategies for fungi using network information

    Network traits predict ecological strategies in fungi

    No full text
    Colonization of terrestrial environments by filamentous fungi relies on their ability to form networks that can forage for and connect resource patches. Despite the importance of these networks, ecologists rarely consider network features as functional traits because their measurement and interpretation are conceptually and methodologically difficult. To address these challenges, we have developed a pipeline to translate images of fungal mycelia, from both micro- and macro-scales, to weighted network graphs that capture ecologically relevant fungal behaviour. We focus on four properties that we hypothesize determine how fungi forage for resources, specifically: connectivity; relative construction cost; transport efficiency; and robustness against attack by fungivores. Constrained ordination and Pareto front analysis of these traits revealed that foraging strategies can be distinguished predominantly along a gradient of connectivity for micro- and macro-scale mycelial networks that is reminiscent of the qualitative ‘phalanx’ and ‘guerilla’ descriptors previously proposed in the literature. At one extreme are species with many inter-connections that increase the paths for multidirectional transport and robustness to damage, but with a high construction cost; at the other extreme are species with an opposite phenotype. Thus, we propose this approach represents a significant advance in quantifying ecological strategies for fungi using network information

    Mycorrhiza in Mixed Plantations

    No full text
    International audienceMycorrhiza is a mutualistic symbiosis found in about 90% of the terrestrial plants. The arbuscular mycorrhiza (AM) and ectomycorrhiza (ECM), present in Eucalypt and Acacia, are the most studied in forests due to their importance in ecosystem productivity and sustainability in forestry. Here, our focus is to show recent results regarding their incidence, diversity, and functioning in planted forests, mainly those of Eucalyptus and Acacia spp. in consortia. Until recently, everybody assumed that arbuscular mycorrhizal fungi (AMF) were restricted to the uppermost 30 cm of soil. Yet, we evaluated their presence at the soil surface and in much deeper layers, since Eucalypt presents a root system that reaches down to about 20 m, still active in acquiring nutrients and water from deep reserves, which is of utmost importance during drought periods. In tropical soils of low pH and low fertility, with highly variable moisture levels, mycorrhiza provides better growth and higher tolerance to water deficiency and high temperatures, protection against pathogens, and greater efficiency in nutrient uptake. In short, mycorrhiza is a key factor of sustainability for Eucalypt stands in monoculture and in mixed plantations, mainly in tropical highly weathered soils
    corecore