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364 results for “173”
FIGURES 170–173 in A revision of the Australian species of the genus Melobasis Laporte & Gory 1837 (Coleoptera: Buprestidae), Part 3 (Revision of the azureipennis, cupricollis, iridicolor and melanura species groups)
FIGURES 170–173. aedeagus & apex of parameres: 170–171. M. tricolor sp. n. (holotype); 172–173. M. adamsi sp. n. (holotype). Scale bars of aedeagus = 1.0 mm; scale bars for apex of parameres = 0.5 mm.
FIGURE 173 in An illustrated guide to lady beetles (Coleoptera: Coccinellidae) of the Indian Subcontinent. Part 1. Tribe Coccinellini
FIGURE 173. Propylea dissecta: a–e. adult, variants; f. antenna; g. abdominal postcoxal line; h. spermatheca; i–n. male genitalia: i. tegmen, lateral view; j. tegmen, ventral view; k, m. penis, variants; l, n. penis apex.
FIGURE 173 in Taxonomic revision of the Neotropical genus Telemiades Hübner, [1819] (Lepidoptera: Hesperiidae: Eudaminae), with descriptions of fourteen new species
FIGURE 173. Male genitalia of Telemiades nicomedes (Möschler, 1879) (OM 33.966—OM).
Figs 164‒173 in Comparative genitalic morphology in ten genera of thread-legged bugs of the tribe Metapterini, and its phylogenetic importance (Hemiptera: Heteroptera: Reduviidae)
Figs 164‒173. Phallus in ventral view. 164–166 – Ghinallelia Wygodzinsky, 1966; 167–168 – Liaghinella Wygodzinsky, 1966; 169 – Onychomesa Wygodzinsky, 1966; 170–171 – Pseudometapterus Wygodzinsky, 1966; 172–173 – Schidium Bergroth, 1916. Scale bar: 0.5 mm.
Figure 173 from: Wood JR.I, Muñoz-Rodríguez P, Williams BR.M, Scotland RW (2020) A foundation monograph of Ipomoea (Convolvulaceae) in the New World. PhytoKeys 143: 1-823. https://doi.org/10.3897/phytokeys.143.32821
Figure 173 A–GIpomoea mucronatoproducta. A habit B outer sepal C inner sepal D corolla opened out to show stamens E ovary and style F. shoot with your fruiting inflorescence G calyx with young fruit. Drawn by Rosemary Wise from Wood & Villarroel 25474.
Figs 173–179 in Depressariidae (Lepidoptera) of the Russian Altai Mountains: new species, new records and updated checklist
Figs 173–179. Male genitalia of Depressaria paraleucocephala sp. nov. and related taxa. 173 – D. paraleucocephala, holotype. 174–175 – D. leucocephala Snellen, 1884: 174 – Russia, Orenburg Oblast, Donskoe, 6 km W Mt. Verbljushka, 17.viii.2006, K. Nupponen leg. (RCKN); 175 – Russia, Primorsky Krai, Ussuri, Kazakevich, without further data (MGAB). 176 – D. alienella Busck, 1904, USA, Colorado, viii.1891, genitalia slide JFCG4753, without further data (NHMUK). 177 – D. emeritella Stainton, 1849, Kazakhstan, Emba, 10.x.2013, K. Nupponen leg. (RCKN). 178–179 – detail of gnathos in free floating position: 178 – D. paraleucocephala sp. nov., holotype; 179 – D. leucocephala, data as fig. 174.
Figure 1 from: Balke M, Megna YS, Zenteno N, Figueroa L, Hendrich L (2020) Two new species of Liodessus Guignot, 1939 diving beetles from Northern Peru (Coleoptera, Dytiscidae, Hydroporinae). Alpine Entomology 4: 173-178. https://doi.org/10.3897/alpento.4.55139
Figure 1 Liodessus spp.: Dorsal habitus of Liodessus caxamarca sp. nov., female paratypes from locality PER_YSM_2018_046 (A), PER_YSM_2018_047 (B), PER_YSM_2018_046 (C), male paratype PER_YSM_2018_046 (D); Liodessus altoperuensis sp. nov., male paratype from locality PER_YSM_2018_050 (E).
Figure 4 from: Balke M, Megna YS, Zenteno N, Figueroa L, Hendrich L (2020) Two new species of Liodessus Guignot, 1939 diving beetles from Northern Peru (Coleoptera, Dytiscidae, Hydroporinae). Alpine Entomology 4: 173-178. https://doi.org/10.3897/alpento.4.55139
Figure 4 Distribution area (orange dot) of Liodessus caxamarca sp. nov. and Liodessus altoperuensis sp. nov. in the northern Andes of Peru.
Figure 5 from: Balke M, Megna YS, Zenteno N, Figueroa L, Hendrich L (2020) Two new species of Liodessus Guignot, 1939 diving beetles from Northern Peru (Coleoptera, Dytiscidae, Hydroporinae). Alpine Entomology 4: 173-178. https://doi.org/10.3897/alpento.4.55139
Figure 5 Localities of Liodessus caxamarca sp. nov. sampled for cox1 data, and haplotype tree inferred using TCS software. Each bar along the lines connecting the 5 haplotypes indicates one inferred nucleotide substitution. The base map was taken from GoogleEarth.
Figure 3 from: Balke M, Megna YS, Zenteno N, Figueroa L, Hendrich L (2020) Two new species of Liodessus Guignot, 1939 diving beetles from Northern Peru (Coleoptera, Dytiscidae, Hydroporinae). Alpine Entomology 4: 173-178. https://doi.org/10.3897/alpento.4.55139
Figure 3 Liodessus spp. males: Liodessus caxamarca sp. nov., holotype, median lobe of aedeagus in ventral view (A), same in lateral view (B), right paramere external surface view (C); Liodessus altoperuensis sp. nov. holotype, median lobe of aedeagus in ventral view (D), same in lateral view (E), right paramere external surface view (F).
Figure 6 from: Balke M, Megna YS, Zenteno N, Figueroa L, Hendrich L (2020) Two new species of Liodessus Guignot, 1939 diving beetles from Northern Peru (Coleoptera, Dytiscidae, Hydroporinae). Alpine Entomology 4: 173-178. https://doi.org/10.3897/alpento.4.55139
Figure 6 Habitats and landscapes at localities Cajamarca, Cajamarca, Encañada District, Conga, 4030 m [PER_YSM_2018_046] (A, B) and Cajamarca, San Pablo, Tumbaden District, Alto Peru, 3935 m [PER_YSM_2018_51] (C, D).
Figure 2 from: Balke M, Megna YS, Zenteno N, Figueroa L, Hendrich L (2020) Two new species of Liodessus Guignot, 1939 diving beetles from Northern Peru (Coleoptera, Dytiscidae, Hydroporinae). Alpine Entomology 4: 173-178. https://doi.org/10.3897/alpento.4.55139
Figure 2 Liodessus spp., female paratypes: Metathoracic wing of paratypes of Liodessus caxamarca sp. nov. (A); Liodessus altoperuensis sp. nov. (B).
Figs 172–177. Live specimens. 172–173. Chisosa caquetio Huber, 2019 in On Venezuelan pholcid spiders (Araneae, Pholcidae)
Figs 172–177. Live specimens. 172–173. Chisosa caquetio Huber, 2019; male and female with egg sac from Falcón, Cueva del Guano. 174–175. Galapa spiniphila Huber sp. nov.; male and female with egg sac from Falcón, near Cueva del Guano. 176–177. Ibotyporanga bariro Huber sp. nov.; male and female from Falcón, SE Bariro.
Figure 4 from: Fakhrudin N, Pertiwi KK, Takubessi MI, Susiani EF, Nurrochmad A, Widyarini S, Sudarmanto A, Nugroho AA, Wahyuono S (2020) A geranylated chalcone with antiplatelet activity from the leaves of breadfruit (Artocarpus altilis). Pharmacia 67(4): 173-180. https://doi.org/10.3897/pharmacia.67.e56788
Figure 4 Putative interactions of ligands and the binding pockets of P2Y12 receptor. The binding modes of GTDC (A), and ticagrelor (B) at P2Y12 receptor. (C) The overlay-complexes of GTDC (blue) and AZD 1283 (red); and (D) Ticagrelor (blue) and AZD 1283 (red) at the binding sites of P2Y12 receptor. The table shows the docking score of the compounds to P2Y12 receptor.
Figure 2 from: Fakhrudin N, Pertiwi KK, Takubessi MI, Susiani EF, Nurrochmad A, Widyarini S, Sudarmanto A, Nugroho AA, Wahyuono S (2020) A geranylated chalcone with antiplatelet activity from the leaves of breadfruit (Artocarpus altilis). Pharmacia 67(4): 173-180. https://doi.org/10.3897/pharmacia.67.e56788
Figure 2 Antiplatelet activities of AAE and GDTC in ADP-induced platelet aggregation. Sigmoidal dose–response curves showing the antiplatelet activity of AAE (A), GTDC, and ticagrelor (B). The percentage of platelet aggregation was calculated on the basis of the decrease in the aggregation peak. Data were mean ± SD (n = 3); *p < 0.05 relative to the solvent-treated group (set as 100% aggregation).
Figure 3 from: Fakhrudin N, Pertiwi KK, Takubessi MI, Susiani EF, Nurrochmad A, Widyarini S, Sudarmanto A, Nugroho AA, Wahyuono S (2020) A geranylated chalcone with antiplatelet activity from the leaves of breadfruit (Artocarpus altilis). Pharmacia 67(4): 173-180. https://doi.org/10.3897/pharmacia.67.e56788
Figure 3 Curve showing the antiplatelet activity profiles of GTDC in ADP-induced platelet aggregation. A Baseline or peak of platelet aggregation (solvent treatment); B Peak of platelet aggregation in GTDC or ticagrelor treatments; C Platelet disaggregation in GTDC or ticagrelor treatments. Blue line, solvent; black line, 0.1 µM GTDC; red line, 1 µM GTDC; and green line, 0.1 µM tigacrelor.
FIGURE 80. Owstonia tosaensis, ASIZP 60461, 173 in Hidden diversity in deep-water bandfishes: review of Owstonia with descriptions of twenty-one new species (Teleostei: Cepolidae: Owstoniinae)
FIGURE 80. Owstonia tosaensis, ASIZP 60461, 173 mm SL, Taiwan. Photograph by Sandra J. Raredon.
Figure 173 from: Bruneau A, Queiroz LP, Ringelberg JJ, Borges LM, Bortoluzzi RLC, Brown GK, Cardoso DBOS, Clark RP, Conceição AS, Cota MMT, Demeulenaere E, Duno de Stefano R, Ebinger JE, Ferm J, Fonseca-Cortés A, Gagnon E, Grether R, Guerra E, Haston E, Herendeen PS, Hernández HM, Hopkins HCF, Huamantupa-Chuquimaco I, Hughes CE, Ickert-Bond SM, Iganci J, Koenen EJM, Lewis GP, Lima HC, Lima AG, Luckow M, Marazzi B, Maslin BR, Morales M, Morim MP, Murphy DJ, O'Donnell SA, Oliveira FG, Oliveira ACS, Rando JG, Ribeiro PG, Ribeiro CL, Santos FS, Seigler DS, Silva GS, Simon MF, Soares MVB, Terra V (2024) Advances in Legume Systematics 14. Classification of Caesalpinioideae. Part 2: Higher-level classification. PhytoKeys 240: 1-552. https://doi.org/10.3897/phytokeys.240.101716
Figure 173 Habit and fruits in the Stryphnodendron clade AMarlimorimia psilostachya (DC.) L.P. Queiroz & Marc.F. Simon showing the tree habit BStryphnodendron platyspicum Rizzini & Heringer (Simon 2017) showing the geoxyle subshrub habit CGwilymia coriacea (Benth.) A.G. Lima, Paula-Souza & Scalon (Simon 3730) DMicrolobius foetidus (Jacq.) M. Sousa & G. Andrade EStryphnodendron rotundifolium Mart. fruit, manually opened revealing internal septa and seeds FMarlimorimia contorta (DC.) L.P. Queiroz & P.G. Ribeiro GNaiadendron duckeanum (Occhioni) A.G. Lima, Paula-Souza & Scalon (Pereira-Silva 15692) HParapiptadenia rigida (Benth.) Brenan showing a yellow inflorescence and dehiscing fruit IPityrocarpa leptostachya (Benth.) L.P. Queiroz & P.G. Ribeiro. Photo credits A R Aguilar B, C, E MF Simon D H Hulsberg F G Carvalho-Sobrinho G G Pereira-Silva H RT Queiroz https://rubens-plantasdobrasil.blogspot.com/I LM Borges.
Supplementary material 1 from: González-Sargas E, Shafroth PB, Baró F (2024) Integrating social-ecological outcomes into invasive species management: the Tamarix case. NeoBiota 92: 173-192. https://doi.org/10.3897/neobiota.92.118502
Supplementary data
Figure 2 from: Kasalo N, Deranja M, Adžić K, Sindaco R, Skejo J (2021) Discovering insect species based on photographs only: The case of a nameless species of the genus Scaria (Orthoptera: Tetrigidae). Journal of Orthoptera Research 30(2): 173-184. https://doi.org/10.3897/jor.30.65885
Figure 2 Example of AI enhancement of Scaria sp. body details compared to original photography in the background. A. Upper part of the head, showing an eye, a scapus, and a pedicel; B. Ovipositor; C. Hind tarsus; D. Ventral and tegminal sinuses; E. Bottom part of the head, showing the mouthparts. Photo credit: Roberto Sindaco.
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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.