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Mony, C.

Publications and source records attributed to Mony, C..

2 recordsLinked to original sources

Ecological corridors homogenize plant root endospheric mycobiota

Ecological corridors have been shown to promote species coexistence in fragmented habitats where dispersal limits species fluxes. The corridor concept was developed and investigated mainly by focusing on macroorganisms while microorganisms, the invisible majority of biodiversity, have been disregarded. Combining an experimental corridor-mesocosm design with high-throughput amplicon sequencing, we analyzed the effect of corridors on the dynamics of endospheric fungal assemblages associated with plant roots at metric scale over two years (i.e. at five time points). We show that the plant symbiotic compartment was sensitive to corridor effects when the corridors were set up at a small spatial scale. The endospheric mycobiota of connected plants displayed higher species richness, lower beta-diversity, and a more deterministic assembly than the mycobiota of isolated plants. These effects became more pronounced with the development of host plants. Biotic corridors composed of host plants may thus play a key role in the spatial dynamics of microbial community and may influence microbial diversity and related ecological functions.

ecology↗

Neighbourhood effect of weeds on wheat root endospheric mycobiota

O_LIMicroorganisms associated with plants provide essential functions to their hosts, and therefore affect ecosystem productivity. Agricultural intensification has modified microbial diversity in the soil reservoir and may affect plant microbial recruitment. Weeds develop spontaneously in crop fields, and could influence microorganisms associated with crop plants through a neighbourhood effect. We explore the effect of weed species on crop plant microbiota as potentially auxiliary plants that affect agricultural productivity. C_LIO_LIWe combined field and controlled laboratory studies to analyse the neighbourhood effect of weeds on wheat root endospheric mycobiota and growth. First, we analysed the effect of weed species diversity and identity recorded in the neighbourhood of individual wheat plants on soil and wheat root mycobiota in the field. Second, we used a plant-matrix design in laboratory conditions to test the effect of weed identity (9 weed treatments) and their ability to transmit root mycobiota to wheat roots, and the resulting impact on wheat growth. C_LIO_LIIn contrast to soil mycobiota, we demonstrated that wheat root endospheric mycobiota was influenced by the diversity and identity of weeds developing in their 1 m2 neighbourhood. Wheat root endospheric microbiota strongly differs in terms of richness and composition depending on the neighbouring weed plant species. Weed species transmitted from 13% to 74% of their root microbiota to wheat roots depending on weed identity in controlled conditions. C_LIO_LISynthesis. Weed neighbours modified wheat plant performance, possibly as a result of competitive interactions and changes in microbiota. Our findings suggest that crop root mycobiota was variable and was modulated by their weed neighbourhood. Synergistic effects between mycobiota of crops and weeds could therefore contribute to soil biodiversity and sustainable agriculture. C_LI

ecology↗