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564 results for “ABS”
Figure 4 from: Laksmiani NPL, Widiantara IWA, Pawarrangan ABS (2022) Potency of moringa (Moringa oleifera L.) leaves extract containing quercetin as a depigmentation agent inhibiting the tyrosinase enzyme using in-silico and in-vitro assay. Pharmacia 69(1): 85-92. https://doi.org/10.3897/pharmacia.69.e73132
Figure 4 The interaction of hydrogen bonds between the target protein of the tyrosinase with quercetin. a: docking conformation between quercetin and tyrosinase, b: 3D interaction visualization of tyrosinase amino acid residues with quercetin, c: 2D interaction visualization of tyrosinase amino acid residues with quercetin.
Figure 6 from: Laksmiani NPL, Widiantara IWA, Pawarrangan ABS (2022) Potency of moringa (Moringa oleifera L.) leaves extract containing quercetin as a depigmentation agent inhibiting the tyrosinase enzyme using in-silico and in-vitro assay. Pharmacia 69(1): 85-92. https://doi.org/10.3897/pharmacia.69.e73132
Figure 6 The regression curve of the relationship between AUC and series concentration of quercetin standard.
Supplementary files for "Connection between water's dynamical and structural properties: insights from ab initio simulations"
<p>Examples of input scripts and data files for the simulations.</p>
Figure 3 from: Yang C-H, Kumar AB, Chan T-Y (2017) Further records of the deep-sea pandalid shrimp Heterocarpus chani Li, 2006 (Crustacea, Decapoda, Caridea) from southern India. ZooKeys 685: 151-159. https://doi.org/10.3897/zookeys.685.13398
Figure 3 - A, C Heterocarpus chani Li, 2006, Sakthikulangara fishing harbor, SW India, ovigerous ♀ cl 26.8 mm (NTOU M02050) B, D H. gibbosus Spence Bate, 1888, the Philippines, PANGLAO 2005, stn CP 2359, ♂ cl 25.9 mm (NTOU M00792) A–B posterior carapace, lateral C–D abdominal somites II and III, lateral. Scales = 5 mm.
Figure 1 from: Yang C-H, Kumar AB, Chan T-Y (2017) Further records of the deep-sea pandalid shrimp Heterocarpus chani Li, 2006 (Crustacea, Decapoda, Caridea) from southern India. ZooKeys 685: 151-159. https://doi.org/10.3897/zookeys.685.13398
Figure 1 - Heterocarpus chani Li, 2006, Sakthikulangara fishing harbor, SW India, ovigerous ♀ cl 29.9 mm (NTOU M02049).
Figure 2 from: Yang C-H, Kumar AB, Chan T-Y (2017) Further records of the deep-sea pandalid shrimp Heterocarpus chani Li, 2006 (Crustacea, Decapoda, Caridea) from southern India. ZooKeys 685: 151-159. https://doi.org/10.3897/zookeys.685.13398
Figure 2 - Heterocarpus chani Li, 2006, Sakthikulangara fishing harbor, SW India. A, C–F ovigerous ♀ cl 26.8 mm (NTOU M02050) B ovigerous ♀ cl 31.4 mm (NTOU M02050) A–B Carapace, lateral C right maxilliped III D right pereiopod III E right pereiopod IV F right pereiopod V. Scales = 5 mm.
Figure 5 from: Siddique AB, Khokon AM, Unterseher M (2017) What do we learn from cultures in the omics age? High-throughput sequencing and cultivation of leaf-inhabiting endophytes from beech (Fagus sylvatica L.) revealed complementary community composition but similar correlations with local habitat conditions. MycoKeys 20: 1-16. https://doi.org/10.3897/mycokeys.20.11265
Figure 5 - Relative abundance distribution of fungal leaf-inhabiting endophytes of beech among the five main trophic guilds as revealed by analysis with FUNGuild (Nguyen et al. 2016). A compares the two localities for each trophic guild on the basis of Illumina data B compares the two localities for each trophic guild on the basis of cultivation data.
Figure 4 from: Siddique AB, Khokon AM, Unterseher M (2017) What do we learn from cultures in the omics age? High-throughput sequencing and cultivation of leaf-inhabiting endophytes from beech (Fagus sylvatica L.) revealed complementary community composition but similar correlations with local habitat conditions. MycoKeys 20: 1-16. https://doi.org/10.3897/mycokeys.20.11265
Figure 4 - Relative abundance of fungal leaf-inhabiting endophytes of beech among the five main trophic guilds as revealed by analysis with FUNGuild (Nguyen et al. 2016). A compares the two methods for each trophic guild and unassigned data. B displays the trophic guilds and unassigned taxa for Illumina data, C for cultivation data. Abbreviations in [B and C]: U = Unassigned, P = Pathotrophs, PSa = Patho-Saprotrophs, PSy = Patho-Symbiotrophs, Sa = Saprotrophs, Sy = Symbiotrophs
Figure 2 from: Siddique AB, Khokon AM, Unterseher M (2017) What do we learn from cultures in the omics age? High-throughput sequencing and cultivation of leaf-inhabiting endophytes from beech (Fagus sylvatica L.) revealed complementary community composition but similar correlations with local habitat conditions. MycoKeys 20: 1-16. https://doi.org/10.3897/mycokeys.20.11265
Figure 2 - . Principal coordinate analysis (PCoA) of fungal leaf-inhabiting endophytes of beech display strongly differing assemblages obtained with Illumina sequencing and cultivation. Both methods revealed differing mycobiomes from valley and from mountain leaves, although these differences were less pronounced for cultivation data. Abbreviations: IM = Illumina data from mountain samples, IV = Illumina data from valley samples, CM = cultivation data from mountain samples, CV = cultivation data from valley samples
Figure 3 from: Siddique AB, Khokon AM, Unterseher M (2017) What do we learn from cultures in the omics age? High-throughput sequencing and cultivation of leaf-inhabiting endophytes from beech (Fagus sylvatica L.) revealed complementary community composition but similar correlations with local habitat conditions. MycoKeys 20: 1-16. https://doi.org/10.3897/mycokeys.20.11265
Figure 3 - Abundance distribution of the 20 most abundant orders of fungal leaf-inhabiting endophytes of beech on a logarithmic scale. Three of the five most abundant orders from high-throughput sequencing were also most abundant in cultivation data.
Figure 1 from: Siddique AB, Khokon AM, Unterseher M (2017) What do we learn from cultures in the omics age? High-throughput sequencing and cultivation of leaf-inhabiting endophytes from beech (Fagus sylvatica L.) revealed complementary community composition but similar correlations with local habitat conditions. MycoKeys 20: 1-16. https://doi.org/10.3897/mycokeys.20.11265
Figure 1 - Diversity indexes and accumulation curves for a Illumina and b cultivation data of fungal leaf-inhabiting endophytes of beech. Except of the accumulation curves of cultivation data, both methods revealed a clear and partly significant trend of higher fungal diversity at the valley site.
Figures 36-39 from: Talamas EJ, Thompson J, Cutler A, Fitzsimmons Schoenberger S, Cuminale A, Jung T, Johnson NF, Valerio AA, Smith AB, Haltermann V, Alvarez E, Schwantes C, Blewer C, Bodenreider C, Salzberg A, Luo P, Meislin D, Buffington ML (2017) An online photographic catalog of primary types of Platygastroidea (Hymenoptera) in the National Museum of Natural History, Smithsonian Institution. In: Talamas EJ, Buffington ML (Eds) Advances in the Systematics of Platygastroidea. Journal of Hymenoptera Research 56: 187–224 https://doi.org/10.3897/jhr.56.10774
Figures 36-39 - Gryon leptocorisae 36 remnants of lectotype specimen (USNMENT00989859) 37 neotype female (USNMENT00989860), head, anterior view 38 neotype female (USNMENT00989860), head, mesosoma, metasoma, lateral view 39 neotype female (USNMENT00989860), head, mesosoma, metasoma, dorsal view. Scale bars in millimeters.
Figures 16-21 from: Talamas EJ, Thompson J, Cutler A, Fitzsimmons Schoenberger S, Cuminale A, Jung T, Johnson NF, Valerio AA, Smith AB, Haltermann V, Alvarez E, Schwantes C, Blewer C, Bodenreider C, Salzberg A, Luo P, Meislin D, Buffington ML (2017) An online photographic catalog of primary types of Platygastroidea (Hymenoptera) in the National Museum of Natural History, Smithsonian Institution. In: Talamas EJ, Buffington ML (Eds) Advances in the Systematics of Platygastroidea. Journal of Hymenoptera Research 56: 187–224 https://doi.org/10.3897/jhr.56.10774
Figures 16-21 - Axea atriclava, female holotype (USNMENT01059257) 16 head and mesosoma, lateral view 17 head and mesosoma, dorsal view 18 head, mesosoma, metasoma, lateral view 19 metasoma, dorsal view 20 fore wing venation, dorsal view 21 head, anterior view. Scale bars in millimeters.
Figures 22-25 from: Talamas EJ, Thompson J, Cutler A, Fitzsimmons Schoenberger S, Cuminale A, Jung T, Johnson NF, Valerio AA, Smith AB, Haltermann V, Alvarez E, Schwantes C, Blewer C, Bodenreider C, Salzberg A, Luo P, Meislin D, Buffington ML (2017) An online photographic catalog of primary types of Platygastroidea (Hymenoptera) in the National Museum of Natural History, Smithsonian Institution. In: Talamas EJ, Buffington ML (Eds) Advances in the Systematics of Platygastroidea. Journal of Hymenoptera Research 56: 187–224 https://doi.org/10.3897/jhr.56.10774
Figures 22-25 - Chakra pachmarhicus (Sharma), female holotype (USNMENT01109836) 22 head and mesosoma, lateral view 23 head, mesosoma, metasoma, dorsal view 24 mesoscutellum, metascutellum, propodeum, T1, dorslateral view 25 head, anterolateral view. Scale bars in millimeters.
Figures 9-11 from: Talamas EJ, Thompson J, Cutler A, Fitzsimmons Schoenberger S, Cuminale A, Jung T, Johnson NF, Valerio AA, Smith AB, Haltermann V, Alvarez E, Schwantes C, Blewer C, Bodenreider C, Salzberg A, Luo P, Meislin D, Buffington ML (2017) An online photographic catalog of primary types of Platygastroidea (Hymenoptera) in the National Museum of Natural History, Smithsonian Institution. In: Talamas EJ, Buffington ML (Eds) Advances in the Systematics of Platygastroidea. Journal of Hymenoptera Research 56: 187–224 https://doi.org/10.3897/jhr.56.10774
Figures 9-11 - Sacespalus 9 female (OSUC 334129), head, mesosoma, metasoma, dorsal view 10 female (OSUC 334129), head, anterior view 11 female (OSUC 240805), head and mesosoma, lateral view. Scale bars in millimeters.
Figures 30-35 from: Talamas EJ, Thompson J, Cutler A, Fitzsimmons Schoenberger S, Cuminale A, Jung T, Johnson NF, Valerio AA, Smith AB, Haltermann V, Alvarez E, Schwantes C, Blewer C, Bodenreider C, Salzberg A, Luo P, Meislin D, Buffington ML (2017) An online photographic catalog of primary types of Platygastroidea (Hymenoptera) in the National Museum of Natural History, Smithsonian Institution. In: Talamas EJ, Buffington ML (Eds) Advances in the Systematics of Platygastroidea. Journal of Hymenoptera Research 56: 187–224 https://doi.org/10.3897/jhr.56.10774
Figures 30-35 - 30 Chakra sp., male (OSUC 170290), head and mesosoma, dorsal view 31 Chakra sp., female (OSUC 261908), head and mesosoma, dorsal view 32 Chakra sp., male (OSUC 170291), head and mesosoma, lateral view 33 Chakra sp., female (OSUC 261908), head and mesosoma, lateral view 34 Chakra sp., male (OSUC 170291), head and pronotum, anterolateral view 35 Chakra sp., female (OSUC 261908), head and mesosoma, anterolateral view. Scalebars in millimeters.
Figures 26-29 from: Talamas EJ, Thompson J, Cutler A, Fitzsimmons Schoenberger S, Cuminale A, Jung T, Johnson NF, Valerio AA, Smith AB, Haltermann V, Alvarez E, Schwantes C, Blewer C, Bodenreider C, Salzberg A, Luo P, Meislin D, Buffington ML (2017) An online photographic catalog of primary types of Platygastroidea (Hymenoptera) in the National Museum of Natural History, Smithsonian Institution. In: Talamas EJ, Buffington ML (Eds) Advances in the Systematics of Platygastroidea. Journal of Hymenoptera Research 56: 187–224 https://doi.org/10.3897/jhr.56.10774
Figures 26-29 - Chakra pachmarhicus. 26 male holotype of Paridris dubeyi Sharma (USNMENT01197116), head, mesosoma, metasoma, lateral view 27 male holotype of Paridris dubeyi Sharma (USNMENT01197116), head, mesosoma, metasoma, dorsal view 28 male (USNMENT01109626), mesosoma, lateral view 29 male holotype of Paridris dubeyi Sharma (USNMENT01197116), head, anterior view. Scale bars in millimeters.
Figures 12-15 from: Talamas EJ, Thompson J, Cutler A, Fitzsimmons Schoenberger S, Cuminale A, Jung T, Johnson NF, Valerio AA, Smith AB, Haltermann V, Alvarez E, Schwantes C, Blewer C, Bodenreider C, Salzberg A, Luo P, Meislin D, Buffington ML (2017) An online photographic catalog of primary types of Platygastroidea (Hymenoptera) in the National Museum of Natural History, Smithsonian Institution. In: Talamas EJ, Buffington ML (Eds) Advances in the Systematics of Platygastroidea. Journal of Hymenoptera Research 56: 187–224 https://doi.org/10.3897/jhr.56.10774
Figures 12-15 - Synopeas rugiceps, lectotype male (USNMENT00979264) 12 mesosoma and metasoma, lateral view 13 mesosoma and fore wings, dorsal view 14 antenna, lateral view 15 metapleuron, T1–T2, S1–S2, lateral view. Scale bars in millimeters.
Figures 80-82 from: Talamas EJ, Thompson J, Cutler A, Fitzsimmons Schoenberger S, Cuminale A, Jung T, Johnson NF, Valerio AA, Smith AB, Haltermann V, Alvarez E, Schwantes C, Blewer C, Bodenreider C, Salzberg A, Luo P, Meislin D, Buffington ML (2017) An online photographic catalog of primary types of Platygastroidea (Hymenoptera) in the National Museum of Natural History, Smithsonian Institution. In: Talamas EJ, Buffington ML (Eds) Advances in the Systematics of Platygastroidea. Journal of Hymenoptera Research 56: 187–224 https://doi.org/10.3897/jhr.56.10774
Figures 80-82 - Telenomus graptae, female neotype (USNMENT01109318) 80 head, mesosoma, metasoma, lateral view 81 head and mesosoma, dorsal view 82 head, anterior view. Scale bars in millimeters.
Figures 86-88 from: Talamas EJ, Thompson J, Cutler A, Fitzsimmons Schoenberger S, Cuminale A, Jung T, Johnson NF, Valerio AA, Smith AB, Haltermann V, Alvarez E, Schwantes C, Blewer C, Bodenreider C, Salzberg A, Luo P, Meislin D, Buffington ML (2017) An online photographic catalog of primary types of Platygastroidea (Hymenoptera) in the National Museum of Natural History, Smithsonian Institution. In: Talamas EJ, Buffington ML (Eds) Advances in the Systematics of Platygastroidea. Journal of Hymenoptera Research 56: 187–224 https://doi.org/10.3897/jhr.56.10774
Figures 86-88 - Telenomus riley, female neotype (OSUC 115283) 86 head, mesosoma, metasoma, lateral view 87 head, anterior view 88 head and mesosoma, dorsal view. Scale bars in millimeters.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.