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160 results for “Medicinal plants”
FIGURES 22–28. Typhlodromips cinchonai. 22 in Description of five new species of Amblyseiinae (Acari: Phytoseiidae) associated with medicinal plants from the Northern Himalayan Zone of West Bengal, India
FIGURES 22–28. Typhlodromips cinchonai. 22. Dorsal view of idiosoma (female) 23. Ventral view of idiosoma (female); 24. Chelicera (female); 25. Spermatheca (female); 26. Genu, tibia and basitarsus of leg IV (female). 27. Ventral view of idiosoma (male), 28. Spermatodactyl (male).
FIGURES 2–6 in Description of five new species of Amblyseiinae (Acari: Phytoseiidae) associated with medicinal plants from the Northern Himalayan Zone of West Bengal, India
FIGURES 2–6. Amblyseiulella tibouchina (female). 2. Dorsal view of idiosoma; 3. Ventral view of idiosoma; 4. Chelicera; 5. Spermatheca; 6. Genu, tibia and basitarsus of leg IV.
FIGURES 17–21 in Description of five new species of Amblyseiinae (Acari: Phytoseiidae) associated with medicinal plants from the Northern Himalayan Zone of West Bengal, India
FIGURES 17–21. Okiseius roseus (female). 17. Dorsal view of idiosoma; 18. Ventral view of idiosoma; 19. Chelicera; 20. Spermatheca; 21. Genu, tibia and basitarsus of leg IV.
Data for: Single-cell multi-omics in the medicinal plant Catharanthus roseus
<p>Advances in omics technologies now permit the generation of highly contiguous genome assemblies, detection of transcripts and metabolites at the level of single cells and high-resolution determination of gene regulatory features. Here, using a complementary, multi-omics approach, we interrogated the monoterpene indole alkaloid (MIA) biosynthetic pathway in <em>Catharanthus roseus</em>, a source of leading anticancer drugs. We identified clusters of genes involved in MIA biosynthesis on the eight <em>C. roseus</em> chromosomes and extensive gene duplication of MIA pathway genes. Clustering was not limited to the linear genome, and through chromatin interaction data, MIA pathway genes were present within the same topologically associated domain, permitting the identification of a secologanin transporter. Single-cell RNA-sequencing revealed sequential cell-type-specific partitioning of the leaf MIA biosynthetic pathway that, when coupled with a single-cell metabolomics approach, permitted the identification of a reductase that yields the bis-indole alkaloid anhydrovinblastine. We also revealed cell-type-specific expression in the root MIA pathway.</p>
Fig. 6 in Transcriptomic investigation of the biochemical function of 7-dehydro- cholesterol reductase 1 from the traditional Chinese medicinal plant Anemarrhena asphodeloides Bunge
Fig. 6. Characterization of Aa7DR1 as a 7-dehydrocholesterol reductase 1 from A. asphodeloides Bunge.
Fig. 4 in Transcriptomic investigation of the biochemical function of 7-dehydro- cholesterol reductase 1 from the traditional Chinese medicinal plant Anemarrhena asphodeloides Bunge
Fig. 4. Transcriptional levels of candidate 7-DR genes involved in timosaponin biosynthesis by RT-qPCR. The characters on the X-axis indicate the roots (R), shortening stem (S) and leaves (L). The Y-axis represents the fold change in gene expression. The ubiquitin gene was used as an internal reference.
Fig. 5. 7 in Transcriptomic investigation of the biochemical function of 7-dehydro- cholesterol reductase 1 from the traditional Chinese medicinal plant Anemarrhena asphodeloides Bunge
Fig. 5. 7-dehydrocholesterol reductase (7-DR) are involved in cholesterol and phytosterol biosynthesis. CAS: cycloartenol synthase; LAS: lansterol synthase; SMT: sterol C-24 methyltransferase; SSR: sterol side chain reductase; Erg1:squalene epoxidase; Erg5: sterol C-22 desaturase; Erg4: C-24 sterol reductase.
Fig. 3 in Transcriptomic investigation of the biochemical function of 7-dehydro- cholesterol reductase 1 from the traditional Chinese medicinal plant Anemarrhena asphodeloides Bunge
Fig. 3. Content analyses of steroidal saponins (A) and phytosterols in different organs of A. asphodeloides Bunge. Corresponding histograms indicate the difference in concentration among the different organs. Three biological replicates were performed for each sample.
Fig. 7 in Transcriptomic investigation of the biochemical function of 7-dehydro- cholesterol reductase 1 from the traditional Chinese medicinal plant Anemarrhena asphodeloides Bunge
Fig. 7. Phylogenetic tree of 7-dehydrocholesterol reductase. Sequences from the following species were represented: A. asphodeloides Bunge (Aa), Arabidopsis thaliana L. (Brassicaceae) (At), Brachypodium distachyon L. (Poaceae) (Bd), Capsicum annuum L. (Solanaceae) (Ca), Chlamydomonas reinhardtii (Cr), Homo sapiens (Hs), Medicago truncatula Gaetn (Leguminosae) (Mt), Nicotiana. Benthamiana Domin (Solanaceae) (Nb), Ostreococcus lucimarinus (Ol), Oryza sativa L. (Poaceae) (Os), Ostreococcus tauri (Ot), Physcomitrella patens (Pp), Sorghum bicolor L. (Poaceae) (Sb), Saccharomyces cerevisiae (Sc), Solanum lycopersicum L. (Solanaceae) (Sl), Solanum melongena L. (Solanaceae) (Sm), Solanum tuberosum L. (Solanaceae) (St), Volvax carteri (Vc), Vitis vinifera L. (Vitaceae) (Vv) and Zea mays L. (Poaceae) (Zm).
Fig. 4 in Association analysis and molecular tagging of phytochemicals in the endangered medicinal plant licorice (Glycyrrhiza glabra L.)
Fig. 4. Principal component analysis (PCA) for the variable traits in the 59 Glycyrrhiza glabra localizations used in the study. Dimension1, Dim1; Dimension2, Dim2; Contribution, Contrib.
Fig. 2. Sampling sites for the 59 in Association analysis and molecular tagging of phytochemicals in the endangered medicinal plant licorice (Glycyrrhiza glabra L.)
Fig. 2. Sampling sites for the 59 localizations of Glycyrrhiza glabra, collected in the 21 provinces of Iran and used in the study. Each localization (L1, L2, etc.) included 2–3 different individuals, separated 50–100 m among them. Detailed descriptions for each localization are included in Supplementary Table 4. The black line separates provinces from North-Western and Eastern/Southern Iran.
Fig. 3 in Association analysis and molecular tagging of phytochemicals in the endangered medicinal plant licorice (Glycyrrhiza glabra L.)
Fig. 3. AFLP dendrogram (UPGMA) for the 170 individual Glycyrrhiza glabra plants sampled in 59 localizations and used in the study. Individuals where subpopulations A and B were predominant are depicted in green and red, respectively. Individuals (identified by numbers) are grouped in localizations (identified by L1, L2, etc., and also by the corresponding codes). (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1. Structure analysis, determined using 15 in Association analysis and molecular tagging of phytochemicals in the endangered medicinal plant licorice (Glycyrrhiza glabra L.)
Fig. 1. Structure analysis, determined using 15 AFLP primer combinations and the STRUCTURE software, of the 170 individual Glycyrrhiza glabra plants sampled in 59 localizations. Sub-populations A and B are represented in green and red color, respectively. Individuals (identified by numbers) are grouped in localizations (identified by L1, L2, etc., and also by the corresponding codes). See Supplementary Table 4 for information on the different localizations. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
dataset for paper entitled "Forty Six Years of Research about Extract of Plants as Herbal Medicine on Embryo of Zebrafish and Their Properties to Human "
<p>This is the dataset of list of papers related to use of plants on embryo of Zebrafish from 1977-2023 on Scopus website </p>
Supplementary Files for Journal -- Using multiscale molecular modeling to analyze possible NS2b-NS3 protease inhibitors from medicinal plants endemic to the Philippines
<p>Table S1. ADMET and toxicity results of the test ligands.</p> <p>Table S2. Docking results of test ligands and references on NS2b-NS3 protease (2FOM) using Autodock 4.2.</p> <p>Table S3. Decomposition of binding free energy (kJ/mol) on a per residue basis of the complex with strongest MM/PBSA energies</p>
Safety and Efficacy of Medicinal Plant Extract in Overweight and Obese Participants.
ClinicalTrials.gov study NCT05824039. IPD Sharing: NO. Countries: 1. Publications: 7.
Medicinal Plant Use for Treating Inflammation Among Dominicans in New York City and the Dominican Republic
ClinicalTrials.gov study NCT00109980. IPD Sharing: Not stated. Countries: 1. Publications: 3.
Treatment of Plantar Keratosis With Medicinal Plant in Diabetic Patients
ClinicalTrials.gov study NCT03447925. IPD Sharing: NO. Countries: 1. Publications: 2.
Traditional use of medicinal plants among the indigenous communities in district Baramulla, Jammu and Kashmir, India
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Adjacency matrices and nodal attributes for prestige and homophily predict network structure for social learning of medicinal plant knowledge
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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)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
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.