<rdf:RDF xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:dct="http://purl.org/dc/terms/" xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#">
  <rdf:Description rdf:about="https://doi.org/10.5061/dryad.6q573n5wf">
    <dct:isReferencedBy>IMPACT4SOIL</dct:isReferencedBy>
    <dct:isReferencedBy>OpenAire</dct:isReferencedBy>
    <dct:isReferencedBy>Datacite</dct:isReferencedBy>
    <dct:isReferencedBy>Lunaris</dct:isReferencedBy>
    <dct:license>Open Access</dct:license>
    <dct:available>2020-06-12</dct:available>
    <dct:available>2024-12-11</dct:available>
    <dc:description>Open AccessFungi were isolated into pure culture from heat-treated soils  that had burned the previous year. These were inoculated on to litter of  paper birch and black spruce to assess decomposition (mass lost) under  controlled conditions. Fungi were also inoculated on to roots of seedlings  of paper birch, black spruce, and jack pine to assess impacts on biomass  (grams after dried). Sanger sequences of cultured fungi  were matched with that of sequences from high throughput amplicon  sequencing (MiSeq Illumina) at 47 plots. In situ  decomposition (mass lost) of black spruce and paper birch litter was  assessed after 12 and 24 months from 5 litterbags 30 plots in the field  2-4 years after fire. Seedlings were counted in 3, 1 by  1 m quadrats per plot one year after fire at 47 plots.  &#160; </dc:description>
    <dc:description>Open AccessFungi were isolated into pure culture from heat-treated soils  that had burned the previous year. These were inoculated on to litter of  paper birch and black spruce to assess decomposition (mass lost) under  controlled conditions. Fungi were also inoculated on to roots of seedlings  of paper birch, black spruce, and jack pine to assess impacts on biomass  (grams after dried). Sanger sequences of cultured fungi  were matched with that of sequences from high throughput amplicon  sequencing (MiSeq Illumina) at 47 plots. In situ  decomposition (mass lost) of black spruce and paper birch litter was  assessed after 12 and 24 months from 5 litterbags 30 plots in the field  2-4 years after fire. Seedlings were counted in 3, 1 by  1 m quadrats per plot one year after fire at 47 plots.  &#160; Fungi play key roles in carbon (C) dynamics of ecosystems: saprotrophs  decompose organic material and return C in the nutrient cycle, and  mycorrhizal species support plants that accumulate C through  photosynthesis. The identities and functions of extremophile fungi present  after fire can influence C dynamics, particularly because plant-fungal  relationships are often species-specific. However, little is known about  the function and distribution of fungi that survive fires. We aim to  assess the distribution of heat-resistant soil fungi across burned stands  of boreal forest in the Northwest Territories, Canada, and understand  their functions in relation to decomposition and tree seedling growth. We  cultured and identified fungi from heat-treated soils and linked sequences  from known taxa with high throughput sequencing fungal data (Illumina  MiSeq, ITS1) from soils collected in 47 plots. We assessed functions under  controlled conditions by inoculating litter and seedlings with  heat-resistant fungi to assess decomposition and effects on seedling  growth, respectively, for black spruce (Picea mariana), birch (Betula  papyrifera), and jack pine (Pinus banksiana). We also measured litter  decomposition rates and seedling densities in the field without  inoculation. We isolated seven taxa of heat-resistant fungi and found  their relative abundances were not associated with environmental or fire  characteristics. Under controlled conditions, Fayodia gracilipes and  Penicillium arenicola decomposed birch, but no taxa decomposed black  spruce litter significantly more than the control treatment. Seedlings  showed reduced biomass and/or mortality when inoculated with at least one  of the fungal taxa. Penicillium turbatum reduced growth and/or caused  mortality of all three species of seedlings. In the field, birch litter  decomposed faster in stands with greater pre-fire proportion of black  spruce, while black spruce litter decomposed faster in stands experiencing  longer fire-free intervals. Densities of seedlings that had germinated  since fire were positively associated with ectomycorrhizal richness while  there were fewer conifer seedlings with greater heat-resistant fungal  abundance. Overall, our study suggests that extremophile fungi present  after fires have multiple functions and may have unexpected negative  effects on forest functioning and regeneration. In particular,  heat-resistant fungi after fires may promote shifts away from conifer  dominance that are observed in these boreal forests. &#160; &#160; </dc:description>
    <dc:description>Open AccessFungi were isolated into pure culture from heat-treated soils  that had burned the previous year. These were inoculated on to litter of  paper birch and black spruce to assess decomposition (mass lost) under  controlled conditions. Fungi were also inoculated on to roots of seedlings  of paper birch, black spruce, and jack pine to assess impacts on biomass  (grams after dried). Sanger sequences of cultured fungi  were matched with that of sequences from high throughput amplicon  sequencing (MiSeq Illumina) at 47 plots. In situ  decomposition (mass lost) of black spruce and paper birch litter was  assessed after 12 and 24 months from 5 litterbags 30 plots in the field  2-4 years after fire. Seedlings were counted in 3, 1 by  1 m quadrats per plot one year after fire at 47 plots.  &#160; Fungi play key roles in carbon (C) dynamics of ecosystems: saprotrophs  decompose organic material and return C in the nutrient cycle, and  mycorrhizal species support plants that accumulate C through  photosynthesis. The identities and functions of extremophile fungi present  after fire can influence C dynamics, particularly because plant-fungal  relationships are often species-specific. However, little is known about  the function and distribution of fungi that survive fires. We aim to  assess the distribution of heat-resistant soil fungi across burned stands  of boreal forest in the Northwest Territories, Canada, and understand  their functions in relation to decomposition and tree seedling growth. We  cultured and identified fungi from heat-treated soils and linked sequences  from known taxa with high throughput sequencing fungal data (Illumina  MiSeq, ITS1) from soils collected in 47 plots. We assessed functions under  controlled conditions by inoculating litter and seedlings with  heat-resistant fungi to assess decomposition and effects on seedling  growth, respectively, for black spruce (Picea mariana), birch (Betula  papyrifera), and jack pine (Pinus banksiana). We also measured litter  decomposition rates and seedling densities in the field without  inoculation. We isolated seven taxa of heat-resistant fungi and found  their relative abundances were not associated with environmental or fire  characteristics. Under controlled conditions, Fayodia gracilipes and  Penicillium arenicola decomposed birch, but no taxa decomposed black  spruce litter significantly more than the control treatment. Seedlings  showed reduced biomass and/or mortality when inoculated with at least one  of the fungal taxa. Penicillium turbatum reduced growth and/or caused  mortality of all three species of seedlings. In the field, birch litter  decomposed faster in stands with greater pre-fire proportion of black  spruce, while black spruce litter decomposed faster in stands experiencing  longer fire-free intervals. Densities of seedlings that had germinated  since fire were positively associated with ectomycorrhizal richness while  there were fewer conifer seedlings with greater heat-resistant fungal  abundance. Overall, our study suggests that extremophile fungi present  after fires have multiple functions and may have unexpected negative  effects on forest functioning and regeneration. In particular,  heat-resistant fungi after fires may promote shifts away from conifer  dominance that are observed in these boreal forests. &#160; &#160; Each data file has a metadata sheet Fungal  cultures are in the Canadian Collection of Fungal Cultures (DAOMC 251855 &#8211;  251868) Sanger sequences for fungal cultures are in  Genbank (MN410597-MN410606) </dc:description>
    <dc:subject>Northwest Territories</dc:subject>
    <dc:subject>Seedlings</dc:subject>
    <dc:subject>Earth and Environmental Sciences</dc:subject>
    <dc:subject>Extremophile</dc:subject>
    <dc:subject>Taiga plains</dc:subject>
    <dc:subject>15. Life on land</dc:subject>
    <dc:subject>Mycorrhiza</dc:subject>
    <dc:subject>Boreal</dc:subject>
    <dc:subject>extremophile</dc:subject>
    <dc:creator>Day, Nicola, Cumming, Steve, Dunfield, Kari, Johnstone, Jill, Mack, Michelle, Reid, Kirsten, Turetsky, Merritt, Walker, Xanthe, Baltzer, Jennifer L., </dc:creator>
    <dc:date>2020-06-12</dc:date>
    <dct:abstract>Open AccessFungi were isolated into pure culture from heat-treated soils  that had burned the previous year. These were inoculated on to litter of  paper birch and black spruce to assess decomposition (mass lost) under  controlled conditions. Fungi were also inoculated on to roots of seedlings  of paper birch, black spruce, and jack pine to assess impacts on biomass  (grams after dried). Sanger sequences of cultured fungi  were matched with that of sequences from high throughput amplicon  sequencing (MiSeq Illumina) at 47 plots. In situ  decomposition (mass lost) of black spruce and paper birch litter was  assessed after 12 and 24 months from 5 litterbags 30 plots in the field  2-4 years after fire. Seedlings were counted in 3, 1 by  1 m quadrats per plot one year after fire at 47 plots.  &#160; </dct:abstract>
    <dct:abstract>Open AccessFungi were isolated into pure culture from heat-treated soils  that had burned the previous year. These were inoculated on to litter of  paper birch and black spruce to assess decomposition (mass lost) under  controlled conditions. Fungi were also inoculated on to roots of seedlings  of paper birch, black spruce, and jack pine to assess impacts on biomass  (grams after dried). Sanger sequences of cultured fungi  were matched with that of sequences from high throughput amplicon  sequencing (MiSeq Illumina) at 47 plots. In situ  decomposition (mass lost) of black spruce and paper birch litter was  assessed after 12 and 24 months from 5 litterbags 30 plots in the field  2-4 years after fire. Seedlings were counted in 3, 1 by  1 m quadrats per plot one year after fire at 47 plots.  &#160; Fungi play key roles in carbon (C) dynamics of ecosystems: saprotrophs  decompose organic material and return C in the nutrient cycle, and  mycorrhizal species support plants that accumulate C through  photosynthesis. The identities and functions of extremophile fungi present  after fire can influence C dynamics, particularly because plant-fungal  relationships are often species-specific. However, little is known about  the function and distribution of fungi that survive fires. We aim to  assess the distribution of heat-resistant soil fungi across burned stands  of boreal forest in the Northwest Territories, Canada, and understand  their functions in relation to decomposition and tree seedling growth. We  cultured and identified fungi from heat-treated soils and linked sequences  from known taxa with high throughput sequencing fungal data (Illumina  MiSeq, ITS1) from soils collected in 47 plots. We assessed functions under  controlled conditions by inoculating litter and seedlings with  heat-resistant fungi to assess decomposition and effects on seedling  growth, respectively, for black spruce (Picea mariana), birch (Betula  papyrifera), and jack pine (Pinus banksiana). We also measured litter  decomposition rates and seedling densities in the field without  inoculation. We isolated seven taxa of heat-resistant fungi and found  their relative abundances were not associated with environmental or fire  characteristics. Under controlled conditions, Fayodia gracilipes and  Penicillium arenicola decomposed birch, but no taxa decomposed black  spruce litter significantly more than the control treatment. Seedlings  showed reduced biomass and/or mortality when inoculated with at least one  of the fungal taxa. Penicillium turbatum reduced growth and/or caused  mortality of all three species of seedlings. In the field, birch litter  decomposed faster in stands with greater pre-fire proportion of black  spruce, while black spruce litter decomposed faster in stands experiencing  longer fire-free intervals. Densities of seedlings that had germinated  since fire were positively associated with ectomycorrhizal richness while  there were fewer conifer seedlings with greater heat-resistant fungal  abundance. Overall, our study suggests that extremophile fungi present  after fires have multiple functions and may have unexpected negative  effects on forest functioning and regeneration. In particular,  heat-resistant fungi after fires may promote shifts away from conifer  dominance that are observed in these boreal forests. &#160; &#160; </dct:abstract>
    <dct:abstract>Open AccessFungi were isolated into pure culture from heat-treated soils  that had burned the previous year. These were inoculated on to litter of  paper birch and black spruce to assess decomposition (mass lost) under  controlled conditions. Fungi were also inoculated on to roots of seedlings  of paper birch, black spruce, and jack pine to assess impacts on biomass  (grams after dried). Sanger sequences of cultured fungi  were matched with that of sequences from high throughput amplicon  sequencing (MiSeq Illumina) at 47 plots. In situ  decomposition (mass lost) of black spruce and paper birch litter was  assessed after 12 and 24 months from 5 litterbags 30 plots in the field  2-4 years after fire. Seedlings were counted in 3, 1 by  1 m quadrats per plot one year after fire at 47 plots.  &#160; Fungi play key roles in carbon (C) dynamics of ecosystems: saprotrophs  decompose organic material and return C in the nutrient cycle, and  mycorrhizal species support plants that accumulate C through  photosynthesis. The identities and functions of extremophile fungi present  after fire can influence C dynamics, particularly because plant-fungal  relationships are often species-specific. However, little is known about  the function and distribution of fungi that survive fires. We aim to  assess the distribution of heat-resistant soil fungi across burned stands  of boreal forest in the Northwest Territories, Canada, and understand  their functions in relation to decomposition and tree seedling growth. We  cultured and identified fungi from heat-treated soils and linked sequences  from known taxa with high throughput sequencing fungal data (Illumina  MiSeq, ITS1) from soils collected in 47 plots. We assessed functions under  controlled conditions by inoculating litter and seedlings with  heat-resistant fungi to assess decomposition and effects on seedling  growth, respectively, for black spruce (Picea mariana), birch (Betula  papyrifera), and jack pine (Pinus banksiana). We also measured litter  decomposition rates and seedling densities in the field without  inoculation. We isolated seven taxa of heat-resistant fungi and found  their relative abundances were not associated with environmental or fire  characteristics. Under controlled conditions, Fayodia gracilipes and  Penicillium arenicola decomposed birch, but no taxa decomposed black  spruce litter significantly more than the control treatment. Seedlings  showed reduced biomass and/or mortality when inoculated with at least one  of the fungal taxa. Penicillium turbatum reduced growth and/or caused  mortality of all three species of seedlings. In the field, birch litter  decomposed faster in stands with greater pre-fire proportion of black  spruce, while black spruce litter decomposed faster in stands experiencing  longer fire-free intervals. Densities of seedlings that had germinated  since fire were positively associated with ectomycorrhizal richness while  there were fewer conifer seedlings with greater heat-resistant fungal  abundance. Overall, our study suggests that extremophile fungi present  after fires have multiple functions and may have unexpected negative  effects on forest functioning and regeneration. In particular,  heat-resistant fungi after fires may promote shifts away from conifer  dominance that are observed in these boreal forests. &#160; &#160; Each data file has a metadata sheet Fungal  cultures are in the Canadian Collection of Fungal Cultures (DAOMC 251855 &#8211;  251868) Sanger sequences for fungal cultures are in  Genbank (MN410597-MN410606) </dct:abstract>
    <dc:title>Identifying functional impacts of heat-resistant fungi on boreal forest recovery after wildfire</dc:title>
    <dc:identifier>10.5061/dryad.6q573n5wf</dc:identifier>
    <dc:type>dataset</dc:type>
    <dct:references>https://doi.org/10.5061/dryad.6q573n5wf</dct:references>
  </rdf:Description>
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