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13 results for “Casuarina equisetifolia”
Dataset of the manuscript "Assessing the influence of Eisenia andrei on the decomposition of Casuarina equisetifolia litter in vermicompost."
<p>Data generated during an experiment of decomposition of <em>Casuarina equisetifolia</em> litter by the application of vermicompost (VC) or the combination vermicompost + the earthworm <em>Eisenia andrei</em> (E).</p> <p>Six files are included:</p> <p>"<strong>readme.csv</strong>" is a file where we explain the meaning of each column (and in which units is expressed) in each of the other five files.</p> <p>"<strong>earthworm_N_biomass.csv</strong>" is a table with the number of <em>Eisenia andrei</em> individuals and the total earthworm fresh weight in each of the experimental units we sampled</p> <p><strong>"FTIR_spectra.csv" </strong>is a file with the raw spectral data we obtained from the litter by Fourier Transform Infrared spectroscopy combined with Attenuated Total Reflectance (FTIR-ATR). First column indicate the wavenumber (cm-1) and the other columns indicate the absorbance values of each litter sample for each wavenumber.</p> <p><strong>"litter_chemical_composition.csv"</strong> is a file with the raw data of the concentrations of different chemical elements measured in <em>C. equisetifolia</em> litter collected at different decomposition times.</p> <p><strong>"litter_mass_loss.csv"</strong> contains the dry weight data of the litter at time 0 and after each collection time, as well as the percentage of litter mass loss with time. .</p> <p>"<strong>mesofaunal_com.</strong><strong>csv</strong>" are the numbers of individuals of several groups of mesofaunal organisms (collembolans, mites, and others) we recovered in each of our experimental units.</p>
Figure 1. A in Structural and diversity changes in coastal dunes from the Mexican Caribbean: the case of the invasive Australian pine (Casuarina equisetifolia)
Figure 1. A) Location of Cozumel Island within the Yucatán Peninsula. B) Study area on the north side of Cozumel Island. C) The distribution of Casuarina equisetifolia, shown as dark gray polygons and the sampling plots (numbered circles). Plots 1, 6–9 are the invaded, while plots 2–5, 10 are non-invaded.
Figure 3 in Structural and diversity changes in coastal dunes from the Mexican Caribbean: the case of the invasive Australian pine (Casuarina equisetifolia)
Figure 3. Grouping of invaded (triangles) and non-invaded (squares) sampling plots according to their species composition similarity (PERMANOVA). The numbers close to the symbols are the assigned sampling plot number. The dotted lines represent the scores' standard deviation of each group. The solid black lines represent the distance (similarity) between sampling plots.
Herbarium specimen image of Casuarina equisetifolia subsp. equisetifolia, part of the collection of Naturalis Biodiversity Center
Part of a training dataset of scanned herbarium specimens. The data paper and a summary landing page will be published on Zenodo as it gets published.<br><br>Content of this deposition:<br><br>- A JSON-LD datafile listing the label data associated with this herbarium specimen. The Darwin and Dublin Core data standards are used for most values.<br>- A JPEG image file of the scanned herbarium sheet.
Figure 2 in Structural and diversity changes in coastal dunes from the Mexican Caribbean: the case of the invasive Australian pine (Casuarina equisetifolia)
Figure 2. Height patterns of the coastal dune vegetation in the sampling plots.
Fig. 2. 1H in Metabolite pattern in root nodules of the actinorhizal plant Casuarina equisetifolia
Fig. 2. 1H-NMR spectra of root nodule extracts of C. equisetifolia. (A) A 1H-NMR spectrum of extracts of hydrophobic compounds. (B) A 1H-NMR spectrum of extracts of hydrophilic compounds. (C) Magnified part of the 1H-NMR spectrum shown in (B). Peaks 1–6 were ascribed to tyramine, tyrosine, malate, citrate, succinate and β-glucose, respectively.
Fig. 4 in Metabolite pattern in root nodules of the actinorhizal plant Casuarina equisetifolia
Fig. 4. Growth of Frankia casuarinae strain CcI3 in BAP media with various carbon and nitrogen sources. BAP, containing 5 mM Na propionate (15 mM carbon units) as carbon source and 5 mM ammonium chloride (5 mM nitrogen units) as nitrogen source; BAP N–, BAP medium without nitrogen source; BAP C– N–, BAP medium without neither carbon nor nitrogen source; BAP C– N– + tyramine, BAP C– N– medium containing 1.875 mM tyramine (15 mM carbon units); BAP C– N– + malate, BAP C– N– medium containing 3.75 mM malate (15 mM carbon units); BAP N– + tyramine, BAP N– medium containing 5 mM tyramine (5 mM nitrogen units).
Figure 1 from: Xing J-H, Sun Y-F, Han Y-L, Cui B-K, Dai Y-C (2018) Morphological and molecular identification of two new Ganoderma species on Casuarina equisetifolia from China. MycoKeys 34: 93-108. https://doi.org/10.3897/mycokeys.34.22593
Figure 1 Phylogeny of the new Ganoderma species and related taxa based on ITS+EF1-α+RPB2 sequence data. Branches are labelled with bootstrap values (ML) higher than 75%, and posterior probabilities (BI) higher than 0.95. Bold names = new species.
Figure 3 from: Xing J-H, Sun Y-F, Han Y-L, Cui B-K, Dai Y-C (2018) Morphological and molecular identification of two new Ganoderma species on Casuarina equisetifolia from China. MycoKeys 34: 93-108. https://doi.org/10.3897/mycokeys.34.22593
Figure 3 Microscopic structures of Ganoderma angustisporum (drawn from the holotype). a Basidiospores b Apical cells from the pellis c Basidia and basidioles d Hyphae from context e Hyphae from trama. Scale bars: 10 µm.
Figure 2 from: Xing J-H, Sun Y-F, Han Y-L, Cui B-K, Dai Y-C (2018) Morphological and molecular identification of two new Ganoderma species on Casuarina equisetifolia from China. MycoKeys 34: 93-108. https://doi.org/10.3897/mycokeys.34.22593
Figure 2 Basidiomata of Ganoderma species. a, b G. angustisporum (Cui 13817) c, d G. casuarinicola (Dai 16336). Scale bars: 2 cm.
Figure 4 from: Xing J-H, Sun Y-F, Han Y-L, Cui B-K, Dai Y-C (2018) Morphological and molecular identification of two new Ganoderma species on Casuarina equisetifolia from China. MycoKeys 34: 93-108. https://doi.org/10.3897/mycokeys.34.22593
Figure 4 Microscopic structures of Ganoderma casuarinicola (drawn from the holotype). a Basidiospores b Apical cells from the cuticle c Basidia and basidioles d Hyphae from context e Hyphae from trama. Scale bars: 10 µm.
Fig. 1 in Metabolite pattern in root nodules of the actinorhizal plant Casuarina equisetifolia
Fig. 1. The chemical structure (left) and key HMBC correlations (from H to C, right) of compound 1.
Fig. 3 in Metabolite pattern in root nodules of the actinorhizal plant Casuarina equisetifolia
Fig. 3. The contents of tyramine in various organs of C. equisetifolia. Values are in mean ± SD, where n = 3.
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