Clearing of riparian forests for pastures has led to the rapid degradation of these highly biodiverse areas. Pastures may lack mycorrhizal fungi that aid re-establishment, nutrient acquisition, and growth of plant species common to riparian forests. This study investigated the influence of soil inoculum on growth, foliar nutrient levels, and the fungal root community of three myrtaceous species ( Eucalyptus viminalis , Kunzea leptospermoides, Melaleuca ericifolia ) commonly used in revegetation of riparian zones in south-eastern Australia. Plants were grown in three soil inoculum types (sterilised, pasture, remnant riparian forest) and harvested after 28, 84 and 140 days. Plant traits differed by inoculum type for all species, but trait differences varied among species and with harvest. Differences in foliar nutrients were limited to K. leptospermoides and E. viminalis and included less calcium and more sulfur in pasture inoculum. Fungal communities on roots inoculated with pasture soil had more pathogens on young plants grown in inoculum for 28 days, particularly M. ericifolia . The class Pezizomycetes was associated with mycorrhizal colonisation in young M. ericifolia plants, yet the opposite trend was found for E. viminalis and K. leptospermoides . Symbiotrophic fungi were influential in reducing foliar carbon in E. viminalis and K. leptospermoides . Overall, plants grown in pasture vs. remnant forest soils harboured distinct root-associated fungal communities. This study sheds light on the different capacities of myrtaceous species to associate with fungi and to cultivate distinct fungal communities. • Soil origin shapes fungal communities associated with roots of young Myrtaceae plants • M. ericifolia associated with fewer pathogens and more symbiotrophs as plants aged • Symbiotrophic fungi were influential in reducing foliar carbon • Abundance of pathogens influenced root volume and number of leaves for all species
Waymouth et al. (Mon,) studied this question.