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85 results for “Caesalpinia”

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zenodo40/100

Fig. 4. Insects visiting Caesalpinia decapetala. A. Metasyrphus corollae. B. Xylocopa appendiculata circumvolans. C. Celastrina argiolus. D. Bombus ardens ardens. E. Megachile japonica. F in Pollination biology of Caesalpinia decapetala (Leguminosae) in Korea

Fig. 4. Insects visiting Caesalpinia decapetala. A. Metasyrphus corollae. B. Xylocopa appendiculata circumvolans. C. Celastrina argiolus. D. Bombus ardens ardens. E. Megachile japonica. F. Anastrangalia sequensi.

opencc-by-4.0Aug 2015View details →
zenodo40/100

Fig. 3 in Pollination biology of Caesalpinia decapetala (Leguminosae) in Korea

Fig. 3. The anther height and stigma height of C. decapetala during pre-anthesis (A1), anthesis (A2), and post-anthesis (A3).

opencc-by-4.0Aug 2015View details →
zenodo40/100

Fig. 5 in Pollination biology of Caesalpinia decapetala (Leguminosae) in Korea

Fig. 5. Pollen grain attachment ventral view of Apidae. A. Megachile japonica. B. Bombus ardens ardens. C. Xylocopa appendiculata circumvolans.

opencc-by-4.0Aug 2015View details →
zenodo40/100

Fig. 1. A in Pollination biology of Caesalpinia decapetala (Leguminosae) in Korea

Fig. 1. A. inflorescences of C. decapetala wrapped with nylon bags on May. B. leaves are folded down at night.

opencc-by-4.0Aug 2015View details →
zenodo40/100

Herbarium specimen image of Caesalpinia bonduc (L.) Roxb., 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.

opencc-zeroNov 2018View details →
zenodo32/100

Supplementary material 1 from: Gagnon E, Bruneau A, Hughes CE, De Queiroz LP, Lewis GP (2016) A new generic system for the pantropical Caesalpinia group (Leguminosae). PhytoKeys 71: 1-160. https://doi.org/10.3897/phytokeys.71.9203

Table 3. Summary of the branch support results from phylogenetic analyses of the Caesalpinia group. : Explanation note: Bootstrap support from the ML analyses of the six individual loci and the combined datasets, as well as Bootstrap support and Posterior probabilities from the parsimony and Bayesian analyses of the combined datasets, for various proposed genera from Gagnon et al. (2013).

opencc-by-4.0Oct 2016View details →
zenodo32/100

FIGURE 2 in Corniculariella brasiliensis, a new species of coelomycetes in the rhizosphere of Caesalpinia echinata (Fabaceae, Caesalpinioideae) in Brazil

FIGURE 2. Phylogram constructed from sequences for the ITS region of rDNA showing the phylogenetic position of Corniculariella brasiliensis. Erysiphe pisi was used as the outgroup. Sequences are labeled with their database accession numbers Thick branches in grey represent clades

opennotspecifiedSep 2014View details →
zenodo32/100

FIGURE 3. Corniculariella brasiliensis. Micromorphological characters. a Conidia 1-septate. b Conidiogenous cells phialidic. c in Corniculariella brasiliensis, a new species of coelomycetes in the rhizosphere of Caesalpinia echinata (Fabaceae, Caesalpinioideae) in Brazil

FIGURE 3. Corniculariella brasiliensis. Micromorphological characters. a Conidia 1-septate. b Conidiogenous cells phialidic. c Conidiomata eustromatic immersed in the culture medium.

opennotspecifiedSep 2014View details →
zenodo32/100

FIGURE 1 in Corniculariella brasiliensis, a new species of coelomycetes in the rhizosphere of Caesalpinia echinata (Fabaceae, Caesalpinioideae) in Brazil

FIGURE 1. Phylogram constructed from partial sequences for LSU rDNA showing the phylogenetic position of Corniculariella brasiliensis. Ceratocystiopsis ranaculosa and Ambrosiella ferruginea were used as the outgroup. Sequences are labeled with their database accession numbers. Support values are for Bayesian inference and maximum likelihood analyses (values above and below the branches, respectively). Thick branches in grey represent clades with 90% bootstrap support in all analyses. Sequences obtained in this study are in

opennotspecifiedSep 2014View details →
zenodo32/100

Fig. 9 in Bridged cassane derivatives from the seeds of Caesalpinia sappan L. and their cytotoxic activities

Fig. 9. Cell cycle distribution and apoptosis induced by 8 in HepG2 cells. (A) Cell cycle analysis of PI-stained cells treated with different concentrations of 8 for 48 h by flow cytometry. (B) Apoptosis analysis of Annexin V-FITC/PI-stained cells treated with different concentrations of 8 for 48 h by flow cytometry. (C) Apoptosis analysis of Annexin V-FITC/PI-stained cells treated with 8 μM 8 for 6, 12, 24 and 48 h by flow cytometry. (D) Quantification of each stage of the cell cycle after treatment with 8. (E) Quantitative analysis of apoptotic cells treated with 3, 6 and 12 μM 8. (F) Quantitative analysis of apoptotic cells treated with 8 μM 8 for 6, 12, 24 and 48 h **P &lt;0.01, ***P &lt;0.001 versus control group.

opennotspecifiedMay 2022View details →
zenodo32/100

Fig. 2. rCeEI-4 in Bioengineering of an elastase inhibitor from Caesalpinia echinata (Brazil wood) seeds

Fig. 2. rCeEI-4 and rCeEI-5 amino acid sequences and molecular models. (A) Multiple alignment of rCeEI-4 and rCeEI-5 amino acid sequences with other Kunitz type inhibitors. Protein Data Base (PDB) codes are shown in the figure. 1avw_B: trypsin inhibitor from Glycine max; 1tie_A: trypsin inhibitor from Erythrina caffra seeds; 1eyl_A: winged bean chymotrypsin inhibitor; 4an6_B: trypsin inhibitor from Tamarindus indica; 4j2k_B: trypsin inhibitor from Enterolobium contortisiliquum; rCeEI-4 and rCeEI-5: putative elastase inhibitors from C. echinata. The cysteine residues are in black boxes. Residues at P1 and P1′ positions of the putative reactive site are in blue boxes. The Weblogo shows the consensus among the sequences. Theoretical models of (B) rCeEI-4 and (C) rCeEI-5. In both models the beta sheet is shown in red, turns in green, coils in cyan, cysteines involved in the disulfide bonds are in yellow and the putative reactive site in grey. The figures were obtained by the YASARA program. (D) Structural alignment of rCeEI-4 (blue) and rCeEI-5 (green) theoretical models. The disulfide bonds are shown in yellow and putative reactive sites in cyan. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedFeb 2021View details →
zenodo32/100

Fig. 1 in Bioengineering of an elastase inhibitor from Caesalpinia echinata (Brazil wood) seeds

Fig. 1. Nucleotide and amino acid sequences of (A) rCeEI-4 and (B) rCeEI-5. The amino acid residues of inhibitors are shown in bold black. Amino acid numbers are presented in blue and the stop codon is in green. The N-terminal sequence of CeEI is highlighted in yellow. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedFeb 2021View details →
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Fig. 3 in Bioengineering of an elastase inhibitor from Caesalpinia echinata (Brazil wood) seeds

Fig. 3. Determination of rCeEI-based peptides inhibitory constants (Ki) for HNE. The enzyme was pre-incubated with rCeEI-36 (A) or rCeEI-46 (B) in different concentrations. The residual activity of the enzymes was determined using the synthetic substrate MeO-Suc-Ala-Ala-Pro-Val-pNan. The release of the ρ-nitroaniline was followed at 405 nm. Ki values were determined by adjusting the experimental data to the equation for slow tight binding using a non-linear regression.

opennotspecifiedFeb 2021View details →
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Fig. 4. Sequences and theoretical 3D in Bioengineering of an elastase inhibitor from Caesalpinia echinata (Brazil wood) seeds

Fig. 4. Sequences and theoretical 3D model of rCeEIbased peptides. (A) Alignment of amino acid sequences of rCeEI-36, rCeEI-46 and rCeEI-55. The cysteine residues are in black box, and residues at P1 and P1′ positions of the putative reactive site are highlighted in green. The peptides (B) rCeEI-36 and (C) rCeEI-46 are in green and red, respectively. The putative reactive site is in cyan and the disulfide bond in rCeEI-36 is shown in yellow. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedFeb 2021View details →
dryad32/100

Data from: A new generic system for the pantropical Caesalpinia group (Leguminosae)

Open the record for dataset details and reuse information.

publicOct 2016View details →
zenodo28/100

Supplementary material 1 from: Clark RP, Jiang K-W, Gagnon E (2022) Reinstatement of Ticanto (Leguminosae-Caesalpinioideae) – the final piece in the Caesalpinia group puzzle. In: Hughes CE, de Queiroz LP, Lewis GP (Eds) Advances in Legume Systematics 14. Classification of Caesalpinioideae Part 1: New generic delimitations. PhytoKeys 205: 59-98. https://doi.org/10.3897/phytokeys.205.82300

Appendix 1

opencc-zeroSep 2022View details →
zenodo28/100

Supplementary material 4 from: Clark RP, Jiang K-W, Gagnon E (2022) Reinstatement of Ticanto (Leguminosae-Caesalpinioideae) – the final piece in the Caesalpinia group puzzle. In: Hughes CE, de Queiroz LP, Lewis GP (Eds) Advances in Legume Systematics 14. Classification of Caesalpinioideae Part 1: New generic delimitations. PhytoKeys 205: 59-98. https://doi.org/10.3897/phytokeys.205.82300

Caesalpinia group ML phylogeny

opencc-zeroSep 2022View details →
zenodo28/100

Supplementary material 3 from: Clark RP, Jiang K-W, Gagnon E (2022) Reinstatement of Ticanto (Leguminosae-Caesalpinioideae) – the final piece in the Caesalpinia group puzzle. In: Hughes CE, de Queiroz LP, Lewis GP (Eds) Advances in Legume Systematics 14. Classification of Caesalpinioideae Part 1: New generic delimitations. PhytoKeys 205: 59-98. https://doi.org/10.3897/phytokeys.205.82300

Caesalpinia group Bayesian phylogeny

opencc-zeroSep 2022View details →
zenodo28/100

Supplementary material 2 from: Clark RP, Jiang K-W, Gagnon E (2022) Reinstatement of Ticanto (Leguminosae-Caesalpinioideae) – the final piece in the Caesalpinia group puzzle. In: Hughes CE, de Queiroz LP, Lewis GP (Eds) Advances in Legume Systematics 14. Classification of Caesalpinioideae Part 1: New generic delimitations. PhytoKeys 205: 59-98. https://doi.org/10.3897/phytokeys.205.82300

Appendix 2

opencc-zeroSep 2022View details →
zenodo28/100

Figure 12 from: Gagnon E, Bruneau A, Hughes CE, De Queiroz LP, Lewis GP (2016) A new generic system for the pantropical Caesalpinia group (Leguminosae). PhytoKeys 71: 1-160. https://doi.org/10.3897/phytokeys.71.9203

Figure 12 - Denisophytum stuckertii (Hassl.) E. Gagnon &amp; G. P. Lewis. A foliage and inflorescences B median leaflet undersurface C stipule D leaf rachis spines E bract F calyx opened out G median petal H lateral petal I stamen J gynoecium K stigma L developing ovary M infructescence, N single fruit valve after dehiscence. A, B, D–K from Renvoize et al. 3538 C, M from Venturi 7697 L from Ruiz et al. 10488c N from Aguilar 241. Drawn by Eleanor Catherine.

opencc-by-4.0Oct 2016View details →

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