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Dickie, I. A.

Publications and source records attributed to Dickie, I. A..

3 recordsLinked to original sources

Partner fidelity with root symbionts impacts plant performance in the face of changing above- and belowground community context

Global environmental changes generate novel communities. Some species adapt to novel community contexts by demonstrating interaction fidelity, or consistently interacting with the same species, while others demonstrate interaction flexibility, or interacting with whichever partners are available (i.e., rewiring). However, the drivers and benefits of fidelity are unclear. Here, we use data from a large-scale mesocosm experiment to determine whether plant characteristics (e.g., provenance, functional group) and community contexts impact plant interaction fidelity to belowground mutualist and antagonist partners (i.e., root fungi and bacteria), and how this fidelity relates to plant performance. We found that the plant-antagonist relationships exhibited higher fidelity than plant-mutualist relationships with the strength of fidelity depending on a combination of plant characteristics and community context. Conversely, plant-mutualist fidelity impacted plant performance with competing effects depending on plant provenance and aboveground herbivore presence. Our study advances understanding of how species interactions influence plant performance in a changing world. Statement of authorshipAMM, JDT, JMT and DBS designed the concept. All authors contributed to refining the ideas. AM coded the analysis to produce the results with contributions from JDT, DBS, and BBM. HRL and DBS helped AMM with the statistical analysis. LPW, WJA, IAD, and JMT designed the experiment while LPW and WJA conducted the experiment. AMM wrote the first draft of the manuscript with assistance from all authors. IAD, JMT, and JDT obtained funding. All authors contributed to further editing of the manuscript.

ecology↗

Multi-gene phylogeny and morphology of Pleurotus in Aotearoa New Zealand reveal a new variety of Pleurotus pulmonarius

Increased demand of cultivated oyster mushrooms (Pleurotus species) in Aotearoa New Zealand has led to the importation of exotic species, which pose potential invasion risks. Gaps in taxonomic knowledge of this genus have complicated biosecurity decisions and cultivation efforts. To address this, we collected 84 wild and cultivated New Zealand Pleurotus specimens for multi-locus phylogenetic analysis (ITS, LSU, RPB1, RPB2, and Tef) and morphological examination. We describe P. pulmonarius var. aotearoa as a new variety indigenous to New Zealand, distinct from imported P. pulmonarius sens. str. We establish that P. purpureo-olivaceus has no anamorphic stage and falls outside the subgenus Coremiopleurotus, unlike P. australis, a species sometimes found on living trees. The close monophyletic relationship between P. parsonsiae and P. djamor underscores the need to reconsider the presence of the exotic P. djamor in the country. The refined species boundaries between the indigenous P. australis, P. parsonsiae, P. pulmonarius var. aotearoa and P. purpureo-olivaceus have important implications for conservation and biosecurity, and support the potential of using indigenous strains for cultivation in New Zealand.

ecology↗

Geothermal ecosystems on Mt. Erebus, Antarctica, support diverse and taxonomically novel biota

Mt. Erebus, Antarctica, is the southernmost active volcano in the world and harbors a diverse and geochemically unique array of geothermal ecosystems including Subglacial and Exposed features, surrounded by a vast desert of ice and snow. Previous studies, although limited in scope, have highlighted the unique and potentially endemic biota present on Mt. Erebus. In this study, we provide a systematic biodiversity study across all domains of life and all types of geothermal features present on Mt. Erebus. We present physicochemical and biological data from 39 Exposed samples and 9 Subglacial samples from Mt. Erebus. The taxonomic novelty of prokaryotes and fungi found supports past hypotheses of high endemism among the biota of Mt. Erebus; in particular, the large number of taxonomically divergent fungal sequences was surprising. We found that different site types had unique physicochemistry and biota; in particular, Exposed sites were significantly warmer than Subglacial sites (median: 40 vs 10 for Exposed and Subglacial, respectively) and tended to have greater abundances of photosynthetic organisms (Cyanobacteria and Chlorophyta). Subglacial sites were characterized by a greater abundance of prokaryotes from the phylum Actinobacteriota, correlated with the greater concentrations of Ca, Mg, and Sr present. Additionally, we found that Tramway Ridge differed from other Exposed sites as well as all Subglacial sites in physicochemistry (significantly greater conductivity, water content, total carbon, and total nitrogen levels) and biota (greater relative abundances of order Nitrososphaeria and phylum Bacteroidota). In this study, we provide a blueprint for future work aimed at better understanding the novel biota of Mt. Erebus.

microbiology↗