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85 results for “Caesalpinia”

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zenodo28/100

Figure 3 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 3 - A–D Phylogeny of the Caesalpinia group. Bayesian phylogram based on 312 accessions, including only accessions with two or more loci. Branch support values are indicated as follows: branches in bold indicate that maximum support has been attained in the MP, ML and Bayesian phylogenetic analyses; otherwise, posterior probabilities are indicated above in bold, with bootstrap support from ML analyses (italicised) and parsimony analyses separated by a slash below the branches; for each terminal, the species name is followed by the collector number of the corresponding voucher (see Appendix 1 for full voucher details); the suffix ** indicates that several sequences from different accessions of the same species were concatenated for analysis (see Appendix 1 for details); for major clades and genera, the names used by Gagnon et al. (2013) are indicated, as well as the corresponding new genera.

opencc-by-4.0Oct 2016View details →
zenodo28/100

Fig. 2 in Pollination biology of Caesalpinia decapetala (Leguminosae) in Korea

Fig. 2. Functional morphology of C. decapetala. A. pre anthesis: A1. B. anthesis: A2. C. cross section of flower. D. post anthesis: A3. E. the ovary swelled after pollination. F. legume is growing.

opencc-by-4.0Aug 2015View details →
zenodo28/100

Fig. 6 in Cassane diterpenoids from the seeds of Caesalpinia bonduc and their nitric oxide production and α-glucosidase inhibitory activities

Fig. 6. Calculated and experimental ECD spectra of 8.

opennotspecifiedJan 2022View details →
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Fig. 4. X in Cassane diterpenoids from the seeds of Caesalpinia bonduc and their nitric oxide production and α-glucosidase inhibitory activities

Fig. 4. X-ray crystal structures of compounds 1, 4, 6, 7, 9, 11, and 12.

opennotspecifiedJan 2022View details →
zenodo28/100

Fig. 2. Key 1H–1H in Cassane diterpenoids from the seeds of Caesalpinia bonduc and their nitric oxide production and α-glucosidase inhibitory activities

Fig. 2. Key 1H–1H COSY (), HMBC () correlations of compounds 1–4, 8, and 9.

opennotspecifiedJan 2022View details →
zenodo28/100

Fig. 1 in Cassane diterpenoids from the seeds of Caesalpinia bonduc and their nitric oxide production and α-glucosidase inhibitory activities

Fig. 1. Structures of compounds 1–21.

opennotspecifiedJan 2022View details →
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Fig. 3 in Cassane diterpenoids from the seeds of Caesalpinia bonduc and their nitric oxide production and α-glucosidase inhibitory activities

Fig. 3. ROESY () correlations of compounds 1–4, 8, and 9.

opennotspecifiedJan 2022View details →
zenodo28/100

Fig. 2. Key 1H–1H in Bridged cassane derivatives from the seeds of Caesalpinia sappan L. and their cytotoxic activities

Fig. 2. Key 1H–1H COSY and HMBC correlations of compounds 1–7.

opennotspecifiedMay 2022View details →
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Fig. 8 in Bridged cassane derivatives from the seeds of Caesalpinia sappan L. and their cytotoxic activities

Fig. 8. Plausible biogenetic pathways of 4–7.

opennotspecifiedMay 2022View details →
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Fig. 5 in Bridged cassane derivatives from the seeds of Caesalpinia sappan L. and their cytotoxic activities

Fig. 5. Comparison of the calculated and experimental ECD spectra for compounds 1–2 and 4–7.

opennotspecifiedMay 2022View details →
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Fig. 7 in Bridged cassane derivatives from the seeds of Caesalpinia sappan L. and their cytotoxic activities

Fig. 7. Comparison of the plausible biogenetic pathways for 3 and 9.

opennotspecifiedMay 2022View details →
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Fig. 5 in Cassane diterpenoids from the aerial parts of Caesalpinia pulcherrima and their antibacterial and anti-glioblastoma activity

Fig. 5. Plausible biosynthetic pathway of compounds 1–16.

opennotspecifiedApr 2022View details →
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Fig. 3 in Cassane diterpenoids from the aerial parts of Caesalpinia pulcherrima and their antibacterial and anti-glioblastoma activity

Fig. 3. Key NOESY correlations of compounds 1, 2, 4, 5, 7, and 8.

opennotspecifiedApr 2022View details →
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Fig. 4. X in Cassane diterpenoids from the aerial parts of Caesalpinia pulcherrima and their antibacterial and anti-glioblastoma activity

Fig. 4. X-ray crystallographic structure of Pulcherritam A (1).

opennotspecifiedApr 2022View details →
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Fig. 4. ORTEP drawings for compounds 1, 3, 5 and 9 in Bridged cassane derivatives from the seeds of Caesalpinia sappan L. and their cytotoxic activities

Fig. 4. ORTEP drawings for compounds 1, 3, 5 and 9.

opennotspecifiedMay 2022View details →
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Fig. 6 in Bridged cassane derivatives from the seeds of Caesalpinia sappan L. and their cytotoxic activities

Fig. 6. Plausible biogenetic pathways of 1 and 2.

opennotspecifiedMay 2022View details →
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Fig. 1 in Cassane diterpenoids from the aerial parts of Caesalpinia pulcherrima and their antibacterial and anti-glioblastoma activity

Fig. 1. Structures of compounds 1–16 from C. pulcherrima.

opennotspecifiedApr 2022View details →
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Fig. 3 in Bridged cassane derivatives from the seeds of Caesalpinia sappan L. and their cytotoxic activities

Fig. 3. Key NOESY correlations of compounds 1–7.

opennotspecifiedMay 2022View details →
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An Investigation of the Anticancer Mechanism of Caesalpinia sappan L. Extract Against Colorectal Cancer by Integrating a Network Pharmacological Analysis and Experimental Validation

GEO Series GSE313097. Mus musculus. 6 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenDec 2025View details →
geo24/100

Transcriptome Analysis of Porcine Immune Cells Stimulated by Porcine Reproductive and Respiratory Syndrome Virus (PRRSV) and Caesalpinia sappan Extract

GEO Series GSE277761. Sus scrofa. 6 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenNov 2024View details →

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