H2020Individual fellowship2022–2024

SiliConomic · Silicon and the plant economics spectrum: a trait-based approach at the interface of physiological and ecosystem ecology.

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2022-03-01 → 2024-09-30
EU contribution
€243,604
Participants
2
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

Silicon and the plant economics spectrum: a trait-based approach at the interface of physiological and ecosystem ecology.

Over the past three decades, plant ecologists have become increasingly interested in quantifying key plant functional traits (physical and chemical attributes with functions) and correlations between them in order to better understand how terrestrial plants allocate their resources and global plant ecological strategies. A major step was the proposition of the worldwide leaf economics spectrum (LES), which describes a universal spectrum of key leaf properties such as leaf thickness, leaf lifespan or photosynthetic rate. The spectrum runs from fast-growing species having traits associated with rapid resource acquisition to slow-growing species having traits involved in conservation of resources. This influential work on plant functional traits has provided a solid understanding of how plants allocate their resources depending on biotic and abiotic factors worldwide, and have been pivotal in plant ecology. However, although the concentrations of major soil nutrients in plants such as nitrogen (N), phosphorus (P) and potassium (K) have been incorporated in these theories, surprisingly, silicon (Si) has received no attention with regard to the LES, leading to a major gap in the literature. Yet, several elements predict a significant role of Si in the LES. Taken up as monosilicic acid from the soil solution, Si is translocated to sites of rapid transpiration in plants, where it polymerises as amorphous hydrated silica (rock in plants!). Biosilicification has occurred in land plants for over 400 million years, and some plants can contain up to 15% of silica in their tissues. Silicon provides numerous plant benefits, especially defence against herbivores which is the best documented (no one would like to eat a sandy salad, isn't it?). In addition to leaf defence, biosilicification also provides structural support for leaves. Given the defence/support role of plant silicon, trade-offs with C-based compounds with similar functions (phenolic compounds, lignin and cellulose) have been suggested. Yet, these major roles and functions have not been considered in the context of other plant functional traits which constitutes a major gap in plant ecology, since (1) Si can accumulate in plant species in very high concentrations, (2) Si is a defence against herbivores and trade-offs exist between traits conferring fast plant growth versus those leading to plant defence, (3) plant Si strongly varies with environment, genotype, and phylogeny. Links between Si and plant ecological strategies such as the LES needs to be made to better understand the functional role of Si in terrestrial ecosystems. The project SiliConomic develops three promising research axes to build an eco-physiological understanding of the role of Si in terrestrial ecosystems, and determine its position in the LES. (1) Test the relationships between plant Si and other key characteristics of the leaf economics spectrum along a natural gradient of soil fertility and with database (2) Test how nutrients limitation impacts plant Si concentration and its relationship with key traits of the leaf economics spectrum (3) Test how long-term grazing versus nutrient addition impacts plant Si concentration and other key characteristics of the leaf economics spectrum

Data: CORDIS, © European Union

Project objective

Over the past three decades, plant ecologists have become increasingly interested in studying functional traits to better understand how terrestrial plants allocate their resources. This led to a prominent ecological theory: the ‘fast-slow’ plant economics spectrum, which describes a universal spectrum of plant economics comprising key plant properties. The spectrum runs from fast-growing species with traits associated to rapid resource acquisition to slow-growing species having traits involved in conservation of resources and investing more resources in anti-herbivore defenses. Although major nutrients have been included in the spectrum, the concentration of silicon (Si) in plant tissues has long been ignored, a significant omission given that vascular plants contain Si in widely variable concentrations, in some cases far exceeding those of macronutrients. Most previous ecological studies have considered Si as an anti-herbivore defense and structural component, which can substitute for carbon-based defense compounds, rather than integral to other aspects of plant eco-physiological strategies. The aim of SiliConomic is to leverage functional trait-based approaches to build an eco-physiological understanding of the role of Si in terrestrial ecosystems and determine its position in the plant economics spectrum. To do so, key characteristics of plant eco-physiological/defense strategies will be measured in Mediterranean shrubland/rangeland ecosystems along a unique long-term natural soil fertility gradient spanning two million years of ecosystem development, and a long-term fertilization/grazing experiment. A plant growth experiment under controlled conditions will be conducted to develop a mechanistic understanding of underlying processes. The project represents the first attempt to integrate Si in the plant economics spectrum, is based on exceptional environmental gradients and collaboration with world-leading researchers, and is of global interest in plant ecology.

Original text from CORDIS.

Participants

  • CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisCoordinatorFrance
  • THE UNIVERSITY OF WESTERN AUSTRALIA · CrawleyAustralia

Links

Data: CORDIS, © European Union