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17 results for “Mniaceae”
Fig. 2 in Biogeography and integrative taxonomy of Epipterygium (Mniaceae, Bryophyta)
Fig. 2. Single best ML tree for 109 Epipterygium specimens inferred from the partitioned ITS + chloroplast DNA matrix plus coded indels. Regular bootstrap and ultrafast bootstrap values are shown on the branches, posterior probabilities above the bootstrap values. Black arrows indicate the E. tozeri specimen from Scotland that was nested within the Macaronesian clade and one specimen from Madeira that grouped in the Mediterranean-Continental clade.
Fig. 1. A in Biogeography and integrative taxonomy of Epipterygium (Mniaceae, Bryophyta)
Fig. 1. A, Results of the principal component analysis (PCA) for Epipterygium tozeri specimens. Colors represent the six different populations of E. tozeri s.l. Individual specimens are shown by small points, big points represent group means, and 95% confidence ellipses were drawn around group means; B, The correlation of each measured trait to the PCA is displayed by vectors. Coloration and arrow length represent contribution to total variance.
Fig. 8 in Biogeography and integrative taxonomy of Epipterygium (Mniaceae, Bryophyta)
Fig. 8. Epipterygium yunnanense sp. nov. A, Habitus; B, Perichaetial leaf; C, Perichaetial leaf apex; D, Marginal cells of dorsal leaf.
Fig. 3 in Biogeography and integrative taxonomy of Epipterygium (Mniaceae, Bryophyta)
Fig. 3. Ancestral area distributions of Epipterygium inferred with DIVALIKE in BioGeoBEARS. Species names color-coded according to geographic origin of the specimens. Numbers above branches indicate best divergence time estimate according to a relaxed clock dating, blue bar indicates 95% highest posterior density. Rectangles below the branches indicate most likely ancestral states at nodes. The corner positions represent geographical ranges immediately after a dispersal or speciation even. Asterisks mark nodes with a posterior probability>0.95. The vertical bars indicate the estimated entities from the bGMYC, mPTP and our taxonomic hypothesis H1.
FIG. 1 in Observations on the taxonomy and distribution of Epipterygium atlanticum Hanusch and E. tozeri (Grev.) Lindb. (Mniaceae Schwägr.) in mainland Portugal
FIG. 1. — Areolation in mid-leaf, lateral leaves:A-C, Epipterygium tozeri s.s.; A, Celorico de Bastos,LISU[LISU 239535]; B, Gouveia, Ribamondego,LISU[LISU 244744]; C, Ribeira de Seixe, Herb. Porley; D-F, Epipterygium atlanticum Hanusch; D, Monchique, Picota summit, Herb. Porley; E, Rabaçal, LISU[LISU 246865]; F, Odemira, LISU[LISU 204992]. Scale bars: 100 µm.
FIG. 2 in Observations on the taxonomy and distribution of Epipterygium atlanticum Hanusch and E. tozeri (Grev.) Lindb. (Mniaceae Schwägr.) in mainland Portugal
FIG. 2. — Quantitative characters and measurements (mean values in µm) of the 125 Portuguese studied samples of Epipterygium atlanticum Hanusch and E. tozeri s.s.
FIG. 3. — A in Observations on the taxonomy and distribution of Epipterygium atlanticum Hanusch and E. tozeri (Grev.) Lindb. (Mniaceae Schwägr.) in mainland Portugal
FIG. 3. — A, distribution of Epipterygium atlanticum Hanusch and E. tozeri s.s. in mainland Portugal based on revised LISU and samples from Algarve (Herb. Porley). Intensity of shading corresponds to altitudinal data (0 to 1993); B, box plots showing the variation (0 to 900 m) in locality elevation for the two taxa.
Fig. 6 in Biogeography and integrative taxonomy of Epipterygium (Mniaceae, Bryophyta)
Fig. 6. Epipterygium biauritum sp. nov. A, Habitus; B, Dorsal leaf; C, Perichaetial leaf apex.
Fig. 9. Epipterygium nagasakense. A in Biogeography and integrative taxonomy of Epipterygium (Mniaceae, Bryophyta)
Fig. 9. Epipterygium nagasakense. A, Habitus; B, Dorsal leaf; C, Perichaetial leaf apex.
Fig. 5 in Biogeography and integrative taxonomy of Epipterygium (Mniaceae, Bryophyta)
Fig. 5. Epipterygium atlanticum sp. nov. A, Habitus; B, Dorsal leaf; C, Perichaetial leaf apex.
Fig. 4 in Biogeography and integrative taxonomy of Epipterygium (Mniaceae, Bryophyta)
Fig. 4. Epipterygium tozeri (Grev.) Lindb. A, Habitus; B, Dorsal leaf; C, Perichaetial leaf apex.
Fig. 7 in Biogeography and integrative taxonomy of Epipterygium (Mniaceae, Bryophyta)
Fig. 7. Epipterygium oreophilum sp. nov. A, Habitus; B, Dorsal leaf; C, Perichaetial leaf apex.
FIGURE 1. A–T in Orthomnion javense (Mniaceae, Bryophyta), new to India and Nepal
FIGURE 1. A–T: Orthomnion javense: A–B) Fragile plants. C–F) Leaves. G) Cross section of stem. H) Cross section of leaf costa, I–L) Variations in apex of leaves. M–O) Bordered base of leaves. P–Q) Leaf showing 2–3 cells wide border. R) Cross section of leaf border. S) Middle laminal cells of leaf. T) Perichaetial leaves showing archegonia. (A,E–F,H–K,M–N,Q–R from ZBC 15638 & B–D,G,L,O,P,S–T from NICH 2130)
FIGURE 2. 1–24 in Orthomnion javense (Mniaceae, Bryophyta), new to India and Nepal
FIGURE 2. 1–24: Orthomnion javense: 1) Fragile plant. 2–6,8–10) Leaves. 7) Perichaetial leaf.11) Moderately bordered apex of leaf. 12) Unbordered apex of leaf. 13–15) Middle cells of leaf. 16–17) Basal cells of leaf. 18) Leaf border from base towards middle. 19–20) Leaf border in middle portion of leaf. 21) Leaf border from middle vanishes towards apex. 22–23) Cross section of leaf costa. 24) Cross section of leaf border.(1,3–5,9–11,13–14,17–19,22,24 from ZBC 15638 & 2,6–8,12,15–16,20–21,23 from NICH 2130).
FIGURE 1. A–D in Orthomnion javense (Mniaceae), a formerly Malesian species newly confirmed for China and new to Laos, with O. loheri as a new synonym
FIGURE 1. A–D. Orthomnion javense (M. Fleisch.) T.J. Kop. A–B, fragile leaves. C–D, cross sections of leaf costa, showing no stereid cells in the central strand. (Prepared from Wu 21994, MO).
FIGURE 3. A–F in Orthomnion javense (Mniaceae), a formerly Malesian species newly confirmed for China and new to Laos, with O. loheri as a new synonym
FIGURE 3. A–F. Orthomnion javense (M. Fleisch.) T.J. Kop. A–D, upper leaf margins and leaf apices, showing weak or no leaf borders. E–F, leaf bases, showing moderately leaf border differentiation. (Prepared from Clemens 51908a, MO, as Orthomnion loheri).
FIGURE 2. A–F in Orthomnion javense (Mniaceae), a formerly Malesian species newly confirmed for China and new to Laos, with O. loheri as a new synonym
FIGURE 2. A–F. Orthomnion javense (M. Fleisch.) T.J. Kop. A–D, upper leaf margins and leaf apices, showing no or weak leaf borders. E–F, leaf bases, showing weak leaf borders. (Prepared from Wu 21994, MO).
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.