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82 results for “Dandelion”
FIGURE 5 in A revision of Taraxacum sect. Atrata, a dandelion group centred in the Middle Asia, and the problem of Taraxacum brevirostre
FIGURE 5. Distribution ranges of Taraxacum chionomelas (square), T. corvinum (triangle), T. lilacinum (circle), T. pseudoatratum (pentagon), and T. sublilacinum (hexagon).
FIGURE 4. A, T in A revision of Taraxacum sect. Atrata, a dandelion group centred in the Middle Asia, and the problem of Taraxacum brevirostre
FIGURE 4. A, T. lilacinum (PRA, no. det. 28204), cultivated. For the general habit of plants from natural habitats, see Kirschner & Štěpánek (1993, Plate 19a). B, T. sublilacinum (PRA, no. det. 28194). Scale bar equals 3 cm.
FIGURE 16 in Taraxacum sect. Orientalia (Compositae-Crepidinae) and the West Himalayan dandelions: A new interpretation
FIGURE 16. Achenes of T. tricolor (A, no. det. 28111; B, LK3785, not fully ripened) and T. wendelboanum (C, no. det. 28144). Scale bar = 1 mm.
FIGURE 4 in Taraxacum sect. Orientalia (Compositae-Crepidinae) and the West Himalayan dandelions: A new interpretation
FIGURE 4. Achenes of the representatives of T. sect. Squamulosa. A, T. stenotegulatum (no. det. 28114); B, T. persquamulosum (no. det. 28118); C, D, T. tenuiculum (no. det. 28127, 28128, respectively). Scale bar = 1 mm.
FIGURE 3 in Taraxacum sect. Orientalia (Compositae-Crepidinae) and the West Himalayan dandelions: A new interpretation
FIGURE 3. Taraxacum coronatum Handel-Mazzetti. Left: KUH, no. det. 19462. Right: Handel-Mazzetti 107, plate I, fig. 11b. Scale bar = 1 mm.
FIGURE 2. A Neigbour Net constructed from uncorrected P in Taraxacum sect. Orientalia (Compositae-Crepidinae) and the West Himalayan dandelions: A new interpretation
FIGURE 2. A Neigbour Net constructed from uncorrected P-distances in SplitsTree based on nrDNA ITS sequences of sexual dandelions of 24 sections. The position of the new T. sect. Squamulosa is marked dark grey.
FIGURE 1. A in Taraxacum sect. Orientalia (Compositae-Crepidinae) and the West Himalayan dandelions: A new interpretation
FIGURE 1. A detail of the characteristic achene squamulosity in T. section Squamulosa. T. persquamulosum (G. Miehe & S. Miehe 2606, no. det. 28118). Structures that appear to be long spinules are in fact broad squamules in side view.
Data from: Adaptations and responses of the common dandelion to low atmospheric pressure in high altitude environments
<p>Atmospheric pressure is an important, yet understudied factor that may shape plant ecology and evolution.</p> <p>By growing plants under controlled conditions at different experimental stations in the Swiss alps, we evaluated the impact of ecologically realistic atmospheric pressures between 660 and 950 hPa on the growth and defence of different dandelion populations.</p> <p>Low atmospheric pressure was associated with reduced root growth and defensive sesquiterpene lactone production. Defence suppression only occurred in populations originating from lower altitudes. Populations from higher altitudes constitutively produced less sesquiterpene lactones and did not suffer from suppression under low atmospheric pressure.</p> <p><em>Synthesis</em>. We conclude that atmospheric pressure modulates root growth and defence traits, and that evolutionary history shapes plant phenotypic responses to atmospheric pressure. Our findings have important implications for our understanding of altitudinal gradients and the future use of plants as a source of food and bioactive metabolites in extraterrestrial habitats.</p>
Data from: Range expansion in asexual dandelions: selection for general-purpose genotypes?
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Data from: Who determines the timing of inflorescence closure of a sexual dandelion?: Pollen donors vs. recipients
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Data from: Adapted dandelions trade dispersal for germination upon root herbivore attack
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Data from: Intergenerational environmental effects: functional signals in offspring transcriptomes and metabolomes after parental jasmonic acid treatment in apomictic dandelion
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Data from: Detecting small-scale genotype-environment interactions in apomictic dandelion (Taraxacum officinale) populations
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Urbanization alters plastic responses in the common dandelion
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Data from: The epigenetic footprint of poleward range-expanding plants in apomictic dandelions
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Data from: Natural epigenetic variation contributes to heritable flowering divergence in a widespread asexual dandelion lineage
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Data from: Adaptations and responses of the common dandelion to low atmospheric pressure in high altitude environments
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Data from: Increased transgenerational epigenetic variation, but not predictable epigenetic variants, after environmental exposure in two apomictic dandelion lineages
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Data repository: Cytotype distributions of the common Dandelion (Taraxacum section Ruderalia) and the Cuckoo flower (Cardamine pratensis) in Europe and how these are affected by climate change
<p>This map contains all datasets and R-scripts used to write the paper with the same name. This map also contains the original research proposal on which the datasets are based. The datasets contain location data on the cytotypes of the common Dandelion and the Cuckoo flower in Europe. The data has been collected using a meta-analysis. The R-scripts present are for data preparation, SDM's for current and future scenarios and bioclimatic variable preparation.</p>
FIGURE 6 in Taraxacum mirabile, an enigmatic sexual halophilous endemic dandelion, represents a new section
FIGURE 6. Taraxacum mirabile. General habit (ISTE 116904).
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