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3,169 results for “Maturity”
Taxus sp. (Taxaceae) - cone - female - mature open
Image of Taxus sp. (Taxaceae) - cone - female - mature open
Taxus sp. (Taxaceae) - cone - female - mature open
Image of Taxus sp. (Taxaceae) - cone - female - mature open
Taxus sp. (Taxaceae) - cone - female - mature open
Image of Taxus sp. (Taxaceae) - cone - female - mature open
Pinus ponderosa (Pinaceae) - cone - female - mature open
Image of Pinus ponderosa (Pinaceae) - cone - female - mature open
Pinus virginiana (Pinaceae) - cone - female - mature open
Image of Pinus virginiana (Pinaceae) - cone - female - mature open
Tsuga canadensis (Pinaceae) - cone - female - mature open
Image of Tsuga canadensis (Pinaceae) - cone - female - mature open
Pinus strobus (Pinaceae) - cone - female - mature open
Image of Pinus strobus (Pinaceae) - cone - female - mature open
РИС. 2. Раковины 4-х ЭкЗемплЯров Beringiana beringiana со Зрелыми глохидиЯми. МасштабнаЯ линейка 3 см. FIG. 2. Shells of four Beringiana beringiana specimens found with mature glochidia. Scale bar 3 cm. in Первые данные о морфологии глохидиев двустворчатых моллюсков Beringiana beringiana (Bivalvia, Unionidae) оЗера Дальнее, Камчатка
РИС. 2. Раковины 4-х ЭкЗемплЯров Beringiana beringiana со Зрелыми глохидиЯми. МасштабнаЯ линейка 3 см. FIG. 2. Shells of four Beringiana beringiana specimens found with mature glochidia. Scale bar 3 cm.
РИС. 3. Раковины Зрелых глохидиев Beringiana beringiana в раЗных ракурсах: А–С – Закрытые раковины, вид со стороны створки (А), вентрального угла (В) и лигамента (С); D–F – полностью открытые раковины, вид иЗнутри (D), снаруЖи (E) и боковых краев створок (F); G, H – приоткрытые раковины, стрелка укаЗывает на остатки волокон мускулаЗамыкателЯ. МасштабнаЯ линейка 100 мкм. СканируюЩаЯ ЭлектроннаЯ микроскопиЯ. FIG. 3. Mature glochidial shells of Beringiana beringiana from different angles of view: A–C – closed shells, view from the valve side (A), ventral angle (B), and ligament (C); D–F – open shells, interior view (D), exterior view (E), and from lateral margins of valves (F); G, H – ajar shells, the arrows indicate the remains of the adductor muscle fibers. Scale bar 100 µm. Scanning electron microscopy. in Первые данные о морфологии глохидиев двустворчатых моллюсков Beringiana beringiana (Bivalvia, Unionidae) оЗера Дальнее, Камчатка
РИС. 3. Раковины Зрелых глохидиев Beringiana beringiana в раЗных ракурсах: А–С – Закрытые раковины, вид со стороны створки (А), вентрального угла (В) и лигамента (С); D–F – полностью открытые раковины, вид иЗнутри (D), снаруЖи (E) и боковых краев створок (F); G, H – приоткрытые раковины, стрелка укаЗывает на остатки волокон мускулаЗамыкателЯ. МасштабнаЯ линейка 100 мкм. СканируюЩаЯ ЭлектроннаЯ микроскопиЯ. FIG. 3. Mature glochidial shells of Beringiana beringiana from different angles of view: A–C – closed shells, view from the valve side (A), ventral angle (B), and ligament (C); D–F – open shells, interior view (D), exterior view (E), and from lateral margins of valves (F); G, H – ajar shells, the arrows indicate the remains of the adductor muscle fibers. Scale bar 100 µm. Scanning electron microscopy.
Assessing size at sexual maturity and fine-scale population structure in a direct developing whelk (Buccinum undatum) in Southern Newfoundland, Canada
<p>R script file used to filter genotype data, estimate L50, and analyze patterns of population structure of <em>Buccinum undatum </em>in Southern Newfoundland, Canada. Also included are the following files required to run the script:</p> <p>populationsNWA.snps.vcf - Northwest Atlantic group output at the conclusion of the Stacks de novo pipeline<br>pop_map_NWA.txt - Population map for the Northwest Atlantic group<br>genlightNWAFullFilt.rds - Filtered genotype data for the Northwest Atlantic group<br>populations3Ps.snps.vcf - 3Ps group output at the conclusion of the Stacks de novo pipeline <br>pop_map_3Ps.txt - Population map for the 3Ps group<br>genlight3PsFullFilt.rds - Filtered genotype data for the 3Ps group<br>maturity_data.csv - Data set containing, shell length, sex, and maturity status for samples.<br>sample_site_coordinates_3Ps.csv - Data set containing coordinates of 3Ps sample sites</p> <p> </p>
Рис. 8. СреЗы череЗ гонады моллюска: А – поперечный среЗ череЗ гонаду самки, Б–Д – фолликулы в гонадах самок (Б, В – Зрелые ооциты круглой формы, готовые к вымету; Г – ооциты в период активного гаметогенеЗа на стадии раннего трофоплаЗматического роста, Д – ооциты каплевидной формы в период преднерестовой стадии при ЗаверШении трофоплаЗматического роста), Е, Ж – поперечные среЗы череЗ гонаду самца, З, И – ацинусы в гонадах самцов (З – преднерестоваЯ стадиЯ, просветы в ацинусах практически отсутствуют, стенки ацинусов не раЗличимы, И – нерестоваЯ стадиЯ, имеютсЯ просветы в ацинусах). МасШтабные линейки 300 мкм (А), 200 мкм (Е), 100 мкм (Ж), 50 мкм (Б–Д, З, И). вя – вакуолиЗированное Ядро, сф – стенка фолликула, вм – вителлиноваЯ мембрана, РО – раЗвиваюЩиесЯ иЗ пелликулы ооциты, пг – ресничный проток гонады, с – сперматоциты, па – просветы в ацинусах. Fig. 8. Sections through the gonads of the mollusk: А – transverse section through the female gonad, Б–Д – ovarian acini, follicles (Б, В – mature round-shaped oocytes ready to be swept out; Г – oocytes in the period of active gametogenesis at the stage of early trophoplasmatic growth, Д – tear-shaped oocytes during the pre-spawning stage at the end of trophoplasmatic growth), Е, Ж – transverse sections through the male gonads, З, И – testicular acini (З – pre-spawning stage, with practically absent gaps in the acini and invisible the acini walls, И – spawning stage, with gaps in the acini). Scale bars 300 µm (A), 200 µm (E), 100 µm (Ж), 50 µm (Б–Д, З, И). вя – vacuolated nucleus, сф – follicle wall, вм – vitelline membrane, РО – developing oocytes arising from a pellicle, пг – ciliated gonadal duct, с – spermatocytes, па – gaps in acini. in Nodularia vladivostokensis (Bivalvia: Unionidae) from Razdolnaya River (Primorye, Russia)
Рис. 8. СреЗы череЗ гонады моллюска: А – поперечный среЗ череЗ гонаду самки, Б–Д – фолликулы в гонадах самок (Б, В – Зрелые ооциты круглой формы, готовые к вымету; Г – ооциты в период активного гаметогенеЗа на стадии раннего трофоплаЗматического роста, Д – ооциты каплевидной формы в период преднерестовой стадии при ЗаверШении трофоплаЗматического роста), Е, Ж – поперечные среЗы череЗ гонаду самца, З, И – ацинусы в гонадах самцов (З – преднерестоваЯ стадиЯ, просветы в ацинусах практически отсутствуют, стенки ацинусов не раЗличимы, И – нерестоваЯ стадиЯ, имеютсЯ просветы в ацинусах). МасШтабные линейки 300 мкм (А), 200 мкм (Е), 100 мкм (Ж), 50 мкм (Б–Д, З, И). вя – вакуолиЗированное Ядро, сф – стенка фолликула, вм – вителлиноваЯ мембрана, РО – раЗвиваюЩиесЯ иЗ пелликулы ооциты, пг – ресничный проток гонады, с – сперматоциты, па – просветы в ацинусах. Fig. 8. Sections through the gonads of the mollusk: А – transverse section through the female gonad, Б–Д – ovarian acini, follicles (Б, В – mature round-shaped oocytes ready to be swept out; Г – oocytes in the period of active gametogenesis at the stage of early trophoplasmatic growth, Д – tear-shaped oocytes during the pre-spawning stage at the end of trophoplasmatic growth), Е, Ж – transverse sections through the male gonads, З, И – testicular acini (З – pre-spawning stage, with practically absent gaps in the acini and invisible the acini walls, И – spawning stage, with gaps in the acini). Scale bars 300 µm (A), 200 µm (E), 100 µm (Ж), 50 µm (Б–Д, З, И). вя – vacuolated nucleus, сф – follicle wall, вм – vitelline membrane, РО – developing oocytes arising from a pellicle, пг – ciliated gonadal duct, с – spermatocytes, па – gaps in acini.
Strategic Roadmap Toward I4.0: A Model Based on Maturity and Readiness Analysis
<p><span>Modern distributed manufacturing is having an essential role in the world economy. Agility, flexibility, and responsiveness distinguishs an innovation-driven business ecosystem, mainly anchored in cloud-based environments. Therefore, manufacturing firms demand an structured roadmap to lead their way toward Industry 4.0, impacting their supply chains, operations, and business models. Naturally, dificulties will raise strong dpending how far they are from a modern ditributed model adherent to I4.0 and their readiness to start a digital transformation roadmap. Therefore, maturity and readiness analysis is essential to evaluate the impact of a sound design process toward I4.0 and to anticipate obstacles and possible return. This work proposes a design framework based on a web-based distributed cloud manufacturing approach to suport a roadmap to I4.0, relying on maturity and readiness analysis, focusing on specific building blocks as rationales.</span> </p>
Fig. 1 in Diet and food consumption of the pearl cichlid Geophagus brasiliensis (Teleostei: Cichlidae): relationships with gender and sexual maturity
Fig. 1. Coastal plain of Rio Grande do Sul in southern Brazil showing the Patos-Mirim lagoon complex (a) and the location of the four sampling sites where the specimens of the pearl cichlid Geophagus brasiliensis were collected (b).
Fig. 3. a in Diet and food consumption of the pearl cichlid Geophagus brasiliensis (Teleostei: Cichlidae): relationships with gender and sexual maturity
Fig. 3. a: Percentage of empty stomachs (PES) according to sexual maturity (immature and mature) and gender (female and male). b: Mean values (+ standard error) of the total food content expressed in volume (log10(x+1) transformed) in the digestive tract of the pearl cichlid Geophagus brasiliensis.
Fig. 2 in Diet and food consumption of the pearl cichlid Geophagus brasiliensis (Teleostei: Cichlidae): relationships with gender and sexual maturity
Fig. 2. Volume (%, black bars) and frequency of occurrence (%, gray bars) of the main food categories found in the digestive tracts of the pearl cichlid Geophagus brasiliensis.
Fig. 89. Monoicomyces spp. A–C. M. matthiatis T.Majewski. A. Mature thallus. B in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 89. Monoicomyces spp. A–C. M. matthiatis T.Majewski. A. Mature thallus. B. Lower receptacle (I, II, and III) and antheridium (tiers of cells labelled with t1–3) in detail. C. Central area of a thallus in detail showing cell III, the primary septum (a), and the darkened, oblique septum separating the basal inflated cell from the elongated apical cell of the primary appendage (arrow). – D–E. M. myllaenae Santam. D. Mature thallus from Spanish type slide kept in BCB. E. Broken and damaged thallus from Denmark. – F –G. M. nigrescens Thaxt. F. Primary appendage in detail showing cell III at the base. G. Immature thallus. Scale bars: A, D–E, G = 50 µm; B–C = 20 µm; F = 25 µm. Photographs from slides ZMUC C-F-123613 (A–C), BCB-SS2329c (D) (holotype), ZMUC C-F-124215 (E), ZMUC C-F-124217 (F–G).
Fig. 85. Monoicomyces spp. A–B. M. drusillae Santam. Mature thalli. – C–E. M. fragilis Scheloske. C, E. Mature thalli. D in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 85. Monoicomyces spp. A–B. M. drusillae Santam. Mature thalli. – C–E. M. fragilis Scheloske. C, E. Mature thalli. D. Primary appendage (a) and additional branch (arrow) arising from cell III. Scale bars: 50 µm. Photographs from slides ZMUC C-F-123434 (A–B), ZMUC C-F-122963 (C), ZMUC C-F-123928 (D), ZMUC C-F-123758 (E).
Fig. 82. Monoicomyces britannicus Thaxt. A–B. Mature thalli. C –D in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 82. Monoicomyces britannicus Thaxt. A–B. Mature thalli. C –D. Lower receptacle (I, II, and III) and base of primary appendage in detail. E–F. Antheridia showing four phialides in focus (arrows). Scale bars: A–B = 50 µm; C–F = 20 µm. Photographs from slides ZMUC C-F-123462 (A, C, E), ZMUC C-F-122513 (B), ZMUC C-F-123480 (D, F).
Fig. 74. Trenomyces histophthorus Chatton & F.Picard. A. Mature male and female thalli. B in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 74. Trenomyces histophthorus Chatton & F.Picard. A. Mature male and female thalli. B. One or more male thalli. Scale bars: 50 µm. Photographs from slides ZMUC C-F-124344 (A), ZMUC C-F-124345 (B).
Fig. 59. Stigmatomyces spp. A–F. S. geomyzae W.Rossi & Cesari. A–B. Mature thalli. C–D in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 59. Stigmatomyces spp. A–F. S. geomyzae W.Rossi & Cesari. A–B. Mature thalli. C–D. Perithecial tip in detail. E. Primary appendage in detail with labelled spinous process from the original spore apex (sx) and appendage basal cell (bc a). F. Perithecial outer wall cells in detail, arranged spirally and forming conspicuous ridges. – G–J. S. hydrelliae Thaxt. G–H. Mature thalli. I–J. Perithecium and appendage in detail at two different focus levels, showing spinous process from the original spore apex (sx) and pointed projection on the perithecial apex. Scale bars: A–D, F–J = 50 µm; E = 25 µm. Photographs from slides ZMUC C-F-123703 (A, C–F), ZMUC C-F-124024 (B), ZMUC C-F-123721 (G), ZMUC C-F-124032 (H–J).
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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.