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Livne-Luzon, S.

Publications and source records attributed to Livne-Luzon, S..

2 recordsLinked to original sources

The trophic pyramid revisited: most animal classes have more predator than herbivore species

According to the trophic pyramid, a large array of herbivores (primary consumers) feed an increasingly narrower array of predators, from secondary consumers to top predators. However, the partitioning between herbivory and predation across the animal kingdom has not yet been tested at the global scale. Here, we use a survey of 33,762 animal species across ten major taxonomic groups (five vertebrates and five invertebrates) to partition food sources at the class and phylum levels. We use this partitioning, together with class-level biomass estimates, to create a global trophic pyramid of biomass. We show that: (1) the diet of eight of the ten groups of animals is dominated by prey rather than plants, accounting for 64-99% of the diet mass; (2) collectively across the terrestrial and marine environments, secondary consumers (invertivores; [~]1200 Mt C) have higher biomass than primary consumers (herbivores; [~]500 Mt C); (3) the two major exceptions, feeding mostly on plants, are mammals and insects; the latter form the major food source for terrestrial animals. For animal species in most classes, plants are not a food source, but rather invertebrates, mostly arthropods. Secondary consumers (invertivores) link primary consumers and top predators, and are hence pivotal to almost all food-webs.

ecology↗

Prosperity of the commons: Generalist mycorrhizal species dominate a mixed forest and may promote forest diversity by mediating resource sharing among trees

Mechanisms of host-microbe interactions and their direct impact on both parties have been extensively researched, however, much less is known on the effect of these interactions on the ecology of the host-community. Here we investigate tree-fungi mycorrhizal interactions, focusing on mycorrhizal-mediated resource sharing among trees, while examining the dynamics between specialist and generalist fungi and their implications on the forest ecology. Using genetic meta-barcoding, we identified the fungal community colonizing different trees in a mixed forest, and generated an extensive mapping connecting fungal sequences to their tree hosts. The mycorrhizal fungal community diverged between ectomycorrhizal and arbuscular host trees, but, unexpectedly, multiple ectomycorrhizal species colonized roots of non-ectomycorrhizal host trees. We complemented these findings by a novel computational framework, modeling competition between generalist and specialist mycorrhizal fungi, accounting for fungal-mediated resource sharing among neighboring trees. The analysis of the model revealed that generalist mycorrhizal networks may affect the entire tree community, and contribute to the maintenance of forest diversity in the long run. Furthermore, higher initial spatial mixing of trees can promote the evolution of generalist mycorrhizal species. These novel belowground interactions among trees and fungi may significantly impact forest biodiversity.

ecology↗