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46 results for “Sophora”

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zenodo40/100

FIGURE 9 in A vanished ecosystem: Sophora microphylla (Kōwhai) dominated forest recorded in mid-late Holocene rock shelters in Central Otago, New Zealand

FIGURE 9. Sophora cuticle morphology (Transmitted light microscopy). A. View of S. microphylla stomatal (abaxial) surface showing deeply stained trichome bases, papillae, and stomatal complexes (LX2799, Shelter-96, scale bar equals 100 μm). B. View of S. microphylla stomatal (abaxial) surface of less-stained specimen, but still showing relatively well-stained trichome bases, papillae, and stomatal complexes (LX2590, Shelter-50, scale bar equals 100 μm). C. Detail to show stomatal complexes, partly obscured by irregular papillae (LX3052, from Coprolite-26, scale bar equals 40 μm). D. View of S. microphylla non-stomatal (adaxial) surface, with deeply staining trichome attachment at right (LX3052, Coprolite-26, scale bar equals 40 μm). E. View of S. microphylla non-stomatal (adaxial) surface, with four deeply staining trichome attachments. Note the characteristic radiating surrounding epidermal cells (LX3006, Shelter-76, scale bar equals 100 μm). F. View of basal portion of S. microphylla leaf mid-rib (abaxial surface), showing dense trichome attachment sites (LX3106, Shelter-39, scale bar equals 100 μm). G. View of another style of S. microphylla cuticle morphology from basal portion of the leaf mid-rib (abaxial surface), showing dense trichome attachment sites, and thinner cuticle on either side (LX3052, Coprolite-26, scale bar equals 100 μm). H. Abaxial cuticle of Sophora prostrata. Note clearly different from S. microphylla in absence of trichome attachment sites, and distinct ring of subsidiary cells around the stoma (OPH5491, scale bar equals 100 μm).

opencc-by-4.0Jan 2022View details →
zenodo40/100

FIGURE 10 in A vanished ecosystem: Sophora microphylla (Kōwhai) dominated forest recorded in mid-late Holocene rock shelters in Central Otago, New Zealand

FIGURE 10. Rubus sp. cuticle morphology (Transmitted light microscopy). A. Abaxial surface, showing a typical massive, flanged and hollow trichome attachment, at left, and more poorly staining cuticle with stomatal complexes in the upper right (LX2775, Coprolite-8, scale bar equals 100 μm). B. A patch of stomatal complexes, showing their typically poorly defined outlines and the sinuous walls of the epidermal and subsidiary cells (LX2818, Shelter-96, scale bar equals 100 μm).

opencc-by-4.0Jan 2022View details →
zenodo40/100

FIGURE 19 in A vanished ecosystem: Sophora microphylla (Kōwhai) dominated forest recorded in mid-late Holocene rock shelters in Central Otago, New Zealand

FIGURE 19. Hebe pimeleoides cuticle morphology (Transmitted light microscopy). A. Abaxial surface showing relatively small papillae and stomatal complexes (LX2468, Shelter-92, scale bar equals 100 μm). B. Abaxial surface showing relatively large papillae and stomatal complexes (LX2960, Shelter-33, scale bar equals 100 μm). C. Abaxial surface detail showing slightly flanged papillae and stomatal complexes (LX2938, Shelter-39, scale bar equals 40 μm). D. Abaxial surface detail showing slightly smoother papillae and stomatal complexes (LX2947, Shelter-33, scale bar equals 40 μm). E. Adaxial surface showing lack of papillae and trichome bases (one is arrowed, LX2959, Shelter-33, scale bar equals 100 μm). F. Abaxial surface detail showing two stomatal complexes (LX2997, Shelter-51, scale bar equals 40 μm).

opencc-by-4.0Jan 2022View details →
zenodo40/100

Fig. 2. A in Molecular Characterization of Two Myxosporean Species, Henneguya namae Haldar et al. 1983 and Myxobolus sophorae Jayasri, 1982 (Myxosporea: Myxobolidae)

Fig. 2. A schematic drawing of Henneguya namae and Myxobolus sophorae myxospores found infect Chanda nama and Puntius sophore. In frontal view: A – H. namae, C – M. sophorae. In sutural view: B – H. namae, D – M. sophorae. Scale bars (A–D) 10 µm.

opencc-by-4.0Mar 2020View details →
zenodo40/100

Fig. 1 in Molecular Characterization of Two Myxosporean Species, Henneguya namae Haldar et al. 1983 and Myxobolus sophorae Jayasri, 1982 (Myxosporea: Myxobolidae)

Fig. 1. Photographs of myxobolids: A – Cysts of H. namae of different sizes between gill filaments of the host fish show by arrows, B – Spores released from ruptured cysts of H. namae, C – H. namae frontal view, D – H. namae sutural view, E – M. sophorae frontal view, F – M. sophorae sutural view. Scale bars (A) 300 µm, (B) 50 µm, (C–F) 10 µm.

opencc-by-4.0Mar 2020View details →
zenodo40/100

Fig. 3 in Molecular Characterization of Two Myxosporean Species, Henneguya namae Haldar et al. 1983 and Myxobolus sophorae Jayasri, 1982 (Myxosporea: Myxobolidae)

Fig. 3. Phylogenetic relationship of H. namae and M. sophorae based on the 18S gene sequences. Numbers at nodes indicates ML bootstrap values (1000 replications) and posterior probabilities (BI) respectively. Unsupported nodes by BI are marked with a hyphen. The scale bar indicates the number of substitution per site. Newly generated sequences in this study shown as bold. GenBank accession numbers are listed before the species names.

opencc-by-4.0Mar 2020View details →
zenodo40/100

Figures 7–12 in The first record of Bruchophagus sophorae (Hymenoptera: Eurytomidae) developing in seeds of Styphnolobium and Sophora (Fabaceae) in Turkey, France, and Kazakhstan

Figures 7–12: Bruchophagus sophorae Crosby et Crosby, 1929. 7–12 – female ovipositing in pod of Styphnolobium japonicum; 8 – stage 1, beginning of oviposition and detection of oviposition point; 9 – stage 2, beginning of drilling; 10 – stage 3, middle of oviposition with ovipositor inserted; 11 – stage 4, female with ovipositor deeply inserted; 12 – stage 4, abdomen of female with deeply inserted ovipositor.

opencc-by-4.0Dec 2016View details →
zenodo40/100

Figures 1–6 in The first record of Bruchophagus sophorae (Hymenoptera: Eurytomidae) developing in seeds of Styphnolobium and Sophora (Fabaceae) in Turkey, France, and Kazakhstan

Figures 1–6: Bruchophagus sophorae Crosby et Crosby, 1929. 1 – female, lateral view; 2 – male, lateral view; 3 – antenna of female; 4, 6 – antenna of male; 5 – veins of forewings of female.

opencc-by-4.0Dec 2016View details →
zenodo40/100

Sophora japonica L. (BR0000020291969)

Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.

opencc-by-sa-4.0May 2019View details →
zenodo40/100

Sophora japonica L. (BR0000012374823)

Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.

opencc-by-sa-4.0May 2019View details →
zenodo40/100

Sophora japonica L. (BR0000014439933)

Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.

opencc-by-sa-4.0May 2019View details →
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FIGURE 2 in A vanished ecosystem: Sophora microphylla (Kōwhai) dominated forest recorded in mid-late Holocene rock shelters in Central Otago, New Zealand

FIGURE 2. The Kawarau Region, showing shelter locations (red dots) along the Kawarau River.

opencc-by-4.0Jan 2022View details →
zenodo36/100

Sophora japonica (Fabaceae) - whole tree (or vine) - general

Image of Sophora japonica (Fabaceae) - whole tree (or vine) - general

opencc-by-4.0Dec 2013View details →
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Sophora japonica (Fabaceae) - whole tree (or vine) - view up trunk

Image of Sophora japonica (Fabaceae) - whole tree (or vine) - view up trunk

opencc-by-4.0Dec 2013View details →
zenodo32/100

Radix Sophorae flavescentis for chronic hepatitis B - Characteristics of potential randomised clinical trials

<p>This table listed the references considered to be potential randomised clinical trials on Radix Sophorae flavescentis for chronic hepatitis B, as we could not attain any response from the authors about their randomisation method. We also listed the results of contacting authors.&nbsp;</p> <p>&nbsp;</p>

opencc-by-4.0Oct 2018View details →
zenodo32/100

Fig. 7 in Unusual matrine-adenine hybrids isolated from Sophora davidii and their inhibitory effects on human cytomegalovirus

Fig. 7. Molecular docking model of 1 (A), 2 (B), 3 (C), and 4 (D) bound to the HCMV protease (PDB: 2WPO). Hydrogen bond interactions are depicted with red dashes, while π–π and π–cation stacking interactions are displayed with green and yellow dashes, respectively. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedOct 2021View details →
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Data from: Phylogeography of Sophora moorcroftiana supports Wu’s hypothesis on the origin of Tibetan alpine flora

Open the record for dataset details and reuse information.

publicMar 2017View details →
zenodo28/100

FIGURE 18 in A vanished ecosystem: Sophora microphylla (Kōwhai) dominated forest recorded in mid-late Holocene rock shelters in Central Otago, New Zealand

FIGURE 18. Hebe cupressoides cuticle morphology (Transmitted light microscopy). A. Section of an intact stem with paired leaves (LX5392, Shelter-7, scale bar equals 1 mm). B. Detail of leaf pair on a stem (LX2569, Shelter-46, scale bar equals 1 mm). C. Two paired leaves illustrating the 'marginal frill' at the leaf apices (LX2569, Shelter-46, scale bar equals 1 mm). D. Cuticle showing generally aligned stomatal complexes on adaxial surface and an ornamentation of dense ridges (SL6473, Shelter-78, scale bar equals 100 μm). E. Detail of cuticle showing generally aligned stomatal complexes and an ornamentation of dense ridges (LX2558, Shelter-50, scale bar equals 40 μm).

opencc-by-4.0Jan 2022View details →
zenodo28/100

Fig. 5 in Unusual matrine-adenine hybrids isolated from Sophora davidii and their inhibitory effects on human cytomegalovirus

Fig. 5. Experimental and calculated ECD spectra of 2.

opennotspecifiedOct 2021View details →
zenodo28/100

Fig. 4. X in Unusual matrine-adenine hybrids isolated from Sophora davidii and their inhibitory effects on human cytomegalovirus

Fig. 4. X-ray crystal structure of 1.

opennotspecifiedOct 2021View details →

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