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110 results for “taxonomic circumscription”
Figs. 2 A-J. A, B. Myrcia albidotomentosa. A in Taxonomic studies of Myrcia (Myrciinae, Myrtaceae) in Brazil: morphological novelties, circumscriptions, and new records for the Amazon
Figs. 2 A-J. A, B. Myrcia albidotomentosa. A. Flowering branch; B. Flower, front view. C, D. Myrcia amapensis. C. Flowering branch; D. Flower, lateral view. E, F. Myrcia clusiifolia. E. Fruiting branch; F. Fruit. G, H. Myrcia revolutifolia. G. Fruiting branch; H. Fruit, lateral view. I, J. Myrcia saxatilis. I. Flowering branch; J. Flower, lateral view (A, B. A. Ducke s.n. (MG 12671); C, D. J.M. Pires et al. s.n. (MG 123182); E, F. N.A. Rosa 251; G, H. R. Lisboa et al. 6666; I, J. L.C.B. Lobato et al. 3794).
FIGURE 24 in Towards a Monophyletic Infrageneric Circumscription of Adesmia DC. (Dalbergieae, Leguminosae): a Taxonomic Revision in Adesmia series Adesmia
FIGURE 24. Geographical distribution of Adesmia pimpinellifolia (Poir.) Cobra.
FIGURE 31 in Towards a Monophyletic Infrageneric Circumscription of Adesmia DC. (Dalbergieae, Leguminosae): a Taxonomic Revision in Adesmia series Adesmia
FIGURE 31. Geographical distribution of Adesmia securigerifolia Herter and A. smithiae DC.
FIGURE 33 in Towards a Monophyletic Infrageneric Circumscription of Adesmia DC. (Dalbergieae, Leguminosae): a Taxonomic Revision in Adesmia series Adesmia
FIGURE 33. Geographical distribution of Adesmia subtropicalis Cobra, and A. uruguaya Arechav.
Linked collectors and determiners for: Towards a Monophyletic Infrageneric Circumscription of Adesmia DC. (Dalbergieae, Leguminosae): a Taxonomic Revision in Adesmia series Adesmia.
Natural history specimen data linked to collectors and determiners held within, "Towards a Monophyletic Infrageneric Circumscription of Adesmia DC. (Dalbergieae, Leguminosae): a Taxonomic Revision in Adesmia series Adesmia". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/0375c604-0b26-411e-ac05-0b610df3dd3f">https://bionomia.net/dataset/0375c604-0b26-411e-ac05-0b610df3dd3f</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/0375c604-0b26-411e-ac05-0b610df3dd3f">https://gbif.org/dataset/0375c604-0b26-411e-ac05-0b610df3dd3f</a>. Formatted as a Frictionless Data package.
FIGURE 4 in Atlas Florae Europaeae notes 23. The typification and revised taxonomic circumscription of Sorbus bakonyensis (Rosaceae), with a description of Sorbus udvardyana, a new apomictic species endemic to Hungary
FIGURE 4. Distribution area of Sorbus udvardyana.
FIGURE 2 in Atlas Florae Europaeae notes 23. The typification and revised taxonomic circumscription of Sorbus bakonyensis (Rosaceae), with a description of Sorbus udvardyana, a new apomictic species endemic to Hungary
FIGURE 2. Holotype of Sorbus udvardyana, showing the leaves on fertile shoots.
FIGURE 3 in Atlas Florae Europaeae notes 23. The typification and revised taxonomic circumscription of Sorbus bakonyensis (Rosaceae), with a description of Sorbus udvardyana, a new apomictic species endemic to Hungary
FIGURE 3. Isotype of Sorbus udvardyana, showing the leaves on sterile shoots.
Figure 3 from: de Queiroz L, Souza I, Funch L (2014) Morphological analyses suggest a new taxonomic circumscription for Hymenaea courbaril L. (Leguminosae, Caesalpinioideae). PhytoKeys 38: 101-118. https://doi.org/10.3897/phytokeys.38.7408
Figure 3 - Leaf morphology of the species recognized in the Hymenaea courbaril complex: A Hymenaea longifolia B Hymenaea courbaril C Hymenaea altissima. Scale bar = 1 cm.
Figure 2 from: de Queiroz L, Souza I, Funch L (2014) Morphological analyses suggest a new taxonomic circumscription for Hymenaea courbaril L. (Leguminosae, Caesalpinioideae). PhytoKeys 38: 101-118. https://doi.org/10.3897/phytokeys.38.7408
Figure 2 - A Distribution of the Hymenaea courbaril complex in the Neotropics. The major biomes where this complex occurs are shown in color: wet forests (green), seasonally dry forests and woodlands (yellow), and savannas (purple). The varieties of Hymenaea courbaril recognized by Lee and Langenheim (1975) are represented by different symbols: var. altissima (blue squares), var. coubaril (yellow triangles), var. longifolia (red squares), var. stilbocarpa (blue triangles), var. subsessilis (purple circles), and var. villosa (white circles) B UPGMA analysis of the Hymenaea courbaril complex based on 14 quantitative leaf measures (see Figure 1 and Table 1 for measurement details and Bray-Curtis distances). Varieties are represented by the same symbols used for the map C Scatter diagram showing the first two axes of the PCA using the same data matrix as the UPGMA analysis. Ellipses represent the varieties as recognized by Lee and Langenheim (1975), and they are represented by the same symbols used for the map.
Figure 1 from: de Queiroz L, Souza I, Funch L (2014) Morphological analyses suggest a new taxonomic circumscription for Hymenaea courbaril L. (Leguminosae, Caesalpinioideae). PhytoKeys 38: 101-118. https://doi.org/10.3897/phytokeys.38.7408
Figure 1 - Quantitative leaf characters of specimens of the Hymenaea courbaril complex. Letters refer to the measurements described in Table 1.
Figure 9 from: Fan X, Du Z, Bezerra JDP, Tian C (2018) Taxonomic circumscription of melanconis-like fungi causing canker disease in China. MycoKeys 42: 89-124. https://doi.org/10.3897/mycokeys.42.29634
Figure 9 Morphology of Sheathosporacornuta from Cornuscontroversa. A–B Habit of pycnidia on branches C–D transverse section through pycnidium E longitudinal section through pycnidium F conidiophores, conidiogenous cells G conidia. Scale bars: 5 mm (A), 1 mm (B), 500 μm (C–E), 20 μm (F–G).
Figure 7 from: Fan X, Du Z, Bezerra JDP, Tian C (2018) Taxonomic circumscription of melanconis-like fungi causing canker disease in China. MycoKeys 42: 89-124. https://doi.org/10.3897/mycokeys.42.29634
Figure 7 Morphology of Melanconiellabetulicola from Betulaalbosinensis. A–B habit of pseudostromata on branches C transverse section through perithecia D longitudinal section through perithecia E–F habit of acervuli on branches G transverse section through acervulus H longitudinal section through acervulus I asci and ascospores J–K ascus and ascospores L–O ascospores P conidiophores, conidiogenous cells and conidia Q conidia. Scale bars: 2 mm (A, E), 500 μm (B–D, F–H), 10 μm (J–K, P–Q), 5 μm (L–O).
Figure 6 from: Fan X, Du Z, Bezerra JDP, Tian C (2018) Taxonomic circumscription of melanconis-like fungi causing canker disease in China. MycoKeys 42: 89-124. https://doi.org/10.3897/mycokeys.42.29634
Figure 6 Phylogram of Melanconiellaceae obtained from an MP analysis from a combined matrix of ITS, LSU, RPB2 and TEF1-α. MP and ML bootstrap support values above 50% are shown at the first and second position, respectively. Thickened branches represent posterior probabilities above 0.95 from BI. Scale bar = 80 changes. Type species are in bold. Strains obtained in the current study are in blue.
Figure 5 from: Fan X, Du Z, Bezerra JDP, Tian C (2018) Taxonomic circumscription of melanconis-like fungi causing canker disease in China. MycoKeys 42: 89-124. https://doi.org/10.3897/mycokeys.42.29634
Figure 5 Phylogram of Melanconis (Melanconidaceae) obtained from an MP analysis of a combined matrix of ITS, LSU, RPB2 and TEF1-α. MP and ML bootstrap support values above 50% are shown at the first and second position, respectively. Thickened branches represent posterior probabilities above 0.95 from BI. Scale bar = 20 changes. Type species are in bold. Strains obtained in the current study are in blue.
Figure 4 from: Fan X, Du Z, Bezerra JDP, Tian C (2018) Taxonomic circumscription of melanconis-like fungi causing canker disease in China. MycoKeys 42: 89-124. https://doi.org/10.3897/mycokeys.42.29634
Figure 4 Morphology of Juglanconisoblonga from Juglansregia. A–B habit of acervuli on branches C transverse section through acervulus D longitudinal section through perithecia E longitudinal section through acervulus F conidiophores, conidiogenous cells G conidia H asci and ascospores I ascospores. Scale bars: 10 mm (A), 500 μm (B–E), 20 μm (F–I).
Figure 3 from: Fan X, Du Z, Bezerra JDP, Tian C (2018) Taxonomic circumscription of melanconis-like fungi causing canker disease in China. MycoKeys 42: 89-124. https://doi.org/10.3897/mycokeys.42.29634
Figure 3 Morphology of Juglanconisjuglandina from Juglansregia. A–B habit of acervuli on branches C transverse section through acervulus D longitudinal section through acervulus E–F conidiophores, conidiogenous cells and conidia. Scale bars: 1 mm (A–D), 20 μm (E–F).
Figure 2 from: Fan X, Du Z, Bezerra JDP, Tian C (2018) Taxonomic circumscription of melanconis-like fungi causing canker disease in China. MycoKeys 42: 89-124. https://doi.org/10.3897/mycokeys.42.29634
Figure 2 Phylogram of Juglanconis (Juglanconidaceae) obtained from an MP analysis of a combined matrix of ITS, LSU, CAL and RPB2. MP and ML bootstrap support values above 50% are shown at the first and second position, respectively. Thickened branches represent posterior probabilities above 0.95 from BI. Scale bar = 20 changes. Type species are in bold. Strains obtained in the current study are in blue.
Figure 1 from: Fan X, Du Z, Bezerra JDP, Tian C (2018) Taxonomic circumscription of melanconis-like fungi causing canker disease in China. MycoKeys 42: 89-124. https://doi.org/10.3897/mycokeys.42.29634
Figure 1 Phylogram of Diaporthales obtained from an MP analysis of a combined matrix of ITS, LSU, RPB2 and TEF1-α. MP and ML bootstrap support values above 50% are shown at the first and second position, respectively. Thickened branches represent posterior probabilities above 0.95 from BI. Scale bar = 200 changes. Type species are in bold. Strains obtained in the current study are in blue.
Figure 8 from: Fan X, Du Z, Bezerra JDP, Tian C (2018) Taxonomic circumscription of melanconis-like fungi causing canker disease in China. MycoKeys 42: 89-124. https://doi.org/10.3897/mycokeys.42.29634
Figure 8 Morphology of Melanconiellacorylina from Corylusmandshurica. A habit of acervuli on branches B–F process of development of acervulus G transverse section through acervulus H–I longitudinal section through acervulus J conidiophores K conidiogenous cells and conidia L–W conidia. Scale bars: 2 mm (A), 500 μm (B–I), 10 μm (J–K), 5 μm (L–W).
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Allen Brain Atlas
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