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zenodo40/100

Рис. 6. Ювенильные раковины Laternula elliptica: А1, А3 – левые створки, внешний вид, H×L=3.0×4.4 мм; А2 – вид со стороны дорсального краЯ на сдвоенные створки, обраЗуюЩие по Заднему краю ЗиЯние; А4 – Замок, соединЯюЩий фрагменты раЗрушенных створок (штриховка); Б1 – праваЯ створка, внешний вид, H×L=8.5×14.0 мм; Б2 – внутреннЯЯ поверхность правой створки. Фрагменты раковины вЗрослого моллюска (L=69.7 мм): В1 – вид со стороны дорсального краЯ; В2 – фрагмент правой створки, вид сбоку. ОбоЗначениЯ: ЗК – Задний край; дК – дорсальный край; сКп – складки периостракума; м – макушка; мщ – макушечнаЯ Щель; пр – продиссоконх; хр – хондрофор; ппЛ – поддерживаюЩаЯ пластинка; дпЛ – дополнительнаЯ пластинка; син – синус. Fig. 6. Juvenile shells of Laternula elliptica: A1, A3 – left valves, external view, H×L=3.0×4.4 mm; A2 – paired valves, dorsal view, showing gape through which the siphon project; A4 – hinge with chondrophore and buttress, internal view; Б1– right valve, external view, H×L=8.5×14.0 mm; Б2 – right valve, internal view. Adult shell (L=69.7 мм): B1 – fragment of right valve, dorsal view; B2 – fragment of right valve, lateral view on umbo. Notes: ЗК – posterior margin; дК – dorsal margin; сКп – periostracal wrinkles; м – umbo; мщ – umbonal crack; пр – prodissoconch; хр – chondrophore; ппЛ – buttress; дпЛ – additional supporting plate; син – sinus. in Species of warm-water origin Laternula elliptica (King, 1832) (Mollusca: Bivalvia: Laternulidae), a widespread mollusk in recent Antarctica

Рис. 6. Ювенильные раковины Laternula elliptica: А1, А3 – левые створки, внешний вид, H×L=3.0×4.4 мм; А2 – вид со стороны дорсального краЯ на сдвоенные створки, обраЗуюЩие по Заднему краю ЗиЯние; А4 – Замок, соединЯюЩий фрагменты раЗрушенных створок (штриховка); Б1 – праваЯ створка, внешний вид, H×L=8.5×14.0 мм; Б2 – внутреннЯЯ поверхность правой створки. Фрагменты раковины вЗрослого моллюска (L=69.7 мм): В1 – вид со стороны дорсального краЯ; В2 – фрагмент правой створки, вид сбоку. ОбоЗначениЯ: ЗК – Задний край; дК – дорсальный край; сКп – складки периостракума; м – макушка; мщ – макушечнаЯ Щель; пр – продиссоконх; хр – хондрофор; ппЛ – поддерживаюЩаЯ пластинка; дпЛ – дополнительнаЯ пластинка; син – синус. Fig. 6. Juvenile shells of Laternula elliptica: A1, A3 – left valves, external view, H×L=3.0×4.4 mm; A2 – paired valves, dorsal view, showing gape through which the siphon project; A4 – hinge with chondrophore and buttress, internal view; Б1– right valve, external view, H×L=8.5×14.0 mm; Б2 – right valve, internal view. Adult shell (L=69.7 мм): B1 – fragment of right valve, dorsal view; B2 – fragment of right valve, lateral view on umbo. Notes: ЗК – posterior margin; дК – dorsal margin; сКп – periostracal wrinkles; м – umbo; мщ – umbonal crack; пр – prodissoconch; хр – chondrophore; ппЛ – buttress; дпЛ – additional supporting plate; син – sinus.

opencc-by-4.0Dec 2019View details →
zenodo40/100

Рис. 1. Αиния маршрута; цифры — места, гΑе быΛи отмечены особи бурого меΑвеΑя во время учетов с вертоΛета 22.05.2018. РезуΛьтаты учетов бурого меΑвеΑя на о. ЗавьяΛова с вертоΛета «Еврокоптер 120». 11:55 выΛет с нефтепирса г. МагаΑана, 12:14 поΑΛет к острову, 12:20 (1) отмечен первый моΛоΑой меΑвеΑь на террасе, 12:52 (2) отмечен оΑин взросΛый меΑвеΑь, 13:06 (3, 4) отмечены Αва взросΛых меΑвеΑя, 13:08 (5, 6, 7) отмечены три взросΛых меΑвеΑя, 13:18 (8) отмечен оΑин взросΛый меΑвеΑь. 13:56 переΛет в гороΑ МагаΑан Fig. 1. Route line; the figures indicate areas where brown bears were seen during the helicopter surveys on 22 May 2018. The results of the brown bear surveys on Zavyalov island from the Eurocopter 120 helicopter. 11:55 departure from the oil pier of Magadan, 12:14 hovering near the island, 12:20 (1) the first young bear identified on the terrace, 12:52 (2) one adult bear identified, 13:06 (3, 4) two adult bears identified, 13:08 (5, 6, 7) three adult bears identified, 13:18 (8) one adult bear identified, 13:56 Flight to Magadan in Brown bear (Ursus arctos) of Zavyalov Island (Sea of Okhotsk): Abundance and possible migration routes

Рис. 1. Αиния маршрута; цифры — места, гΑе быΛи отмечены особи бурого меΑвеΑя во время учетов с вертоΛета 22.05.2018. РезуΛьтаты учетов бурого меΑвеΑя на о. ЗавьяΛова с вертоΛета «Еврокоптер 120». 11:55 выΛет с нефтепирса г. МагаΑана, 12:14 поΑΛет к острову, 12:20 (1) отмечен первый моΛоΑой меΑвеΑь на террасе, 12:52 (2) отмечен оΑин взросΛый меΑвеΑь, 13:06 (3, 4) отмечены Αва взросΛых меΑвеΑя, 13:08 (5, 6, 7) отмечены три взросΛых меΑвеΑя, 13:18 (8) отмечен оΑин взросΛый меΑвеΑь. 13:56 переΛет в гороΑ МагаΑан Fig. 1. Route line; the figures indicate areas where brown bears were seen during the helicopter surveys on 22 May 2018. The results of the brown bear surveys on Zavyalov island from the Eurocopter 120 helicopter. 11:55 departure from the oil pier of Magadan, 12:14 hovering near the island, 12:20 (1) the first young bear identified on the terrace, 12:52 (2) one adult bear identified, 13:06 (3, 4) two adult bears identified, 13:08 (5, 6, 7) three adult bears identified, 13:18 (8) one adult bear identified, 13:56 Flight to Magadan

opencc-by-4.0Jun 2022View details →
zenodo40/100

Рис. 1–6. Гипопигий Syntormon pallipes: 1, 4 — вентраΛьно; 3, 6 — ΛатераΛьно; 2, 5 — церки, вентраΛьно. 1–3 — Воронежская обΛасть; 4–6 — ТаΔжикистан, Àушанбе Fig. 1-6. Hypopygium of Syntormon pallipes: 1, 4 — ventral view; 3, 6 — lateral view; 2, 5 — cerci, ventral view. 1-3 — Voronezh region; 4-6 — Tajikistan, Dushanbe in New Data On Distribution And Variability Of Adult (Fabricius, 1794) (Dolichopodidae, Diptera)

Рис. 1–6. Гипопигий Syntormon pallipes: 1, 4 — вентраΛьно; 3, 6 — ΛатераΛьно; 2, 5 — церки, вентраΛьно. 1–3 — Воронежская обΛасть; 4–6 — ТаΔжикистан, Àушанбе Fig. 1-6. Hypopygium of Syntormon pallipes: 1, 4 — ventral view; 3, 6 — lateral view; 2, 5 — cerci, ventral view. 1-3 — Voronezh region; 4-6 — Tajikistan, Dushanbe

opencc-by-4.0Sep 2019View details →
zenodo40/100

De Jong Gierveld Loneliness Scale: validity, reliability and fairness in Peruvian adults

<p><span><strong><span>Abstract:</span></strong></span></p> <p><strong><span>Background: </span></strong><span>Loneliness, transient or long-lasting, constitutes one of the mental health problems of great public impact with peculiar characteristics. It can be defined as a subjective and unpleasant experience, in turn associated with other serious psychological symptoms. This variable in question has not been addressed in a timely manner, among other reasons due to the scarcity of instruments for specific populations. Although the De Jong Gierveld Loneliness Scale (</span><span>DJGLS), <span>based on Weiss' multidimensional model, has been adapted and validated in different contexts, it is still insufficient in Peru. Precisely, the objective was to determine the psychometric properties of the DJGLS,&nbsp;</span></span><span>its internal structure and factorial invariance.</span></p> <p><strong><span>Methods:</span></strong><span> An online survey of 1248 Peruvians between 18 and 70 years of age (M= 27.37, SD= 11.29) from all regions was used. The validation of the DJGLS was analyzed with Exploratory Factor Analysis </span><span>(EFA), <span>Confirmatory Factor </span>Analysis (CFA), <span>convergent validity, measurement invariance and internal consistency reliability.</span></span></p> <p><strong><span>Results: </span></strong><span>Psychometric properties were found with adequate values in its internal structure by means of the CFA, where it was found that the components of the scale are interrelated and the data matrix is factorizable. Here we present a model of two specific factors and one general factor, which is consistent with theory and has practical utility, revealing acceptable reliability values and invariance between sexes.</span></p> <p><strong><span>Conclusions:</span></strong><span> Adequate psychometric properties, which allow for a better data collection process in further related research, are revealed.</span></p> <p><span>&nbsp;</span></p> <p><strong><span>Keywords</span></strong><span>: loneliness; validity; reliability; fairness; adults.</span></p>

opencc-by-4.0May 2024View details →
zenodo40/100

Figures 9–10. Psephenops trini new species, adult male. 9 in A taxonomic review of the genus Psephenops Grouvelle of the Lesser Antilles with description of new species Psephenops trini, and reassignment of Peruvian species Psephenus robacki Spangler (Coleoptera: Psephenidae: Psepheninae)

Figures 9–10. Psephenops trini new species, adult male. 9) Habitus, 2.85 mm long. a) Dorsal. b) Ventral. 10) Aedeagus. a) Dorsal view with attached abdominal ventrites. b) Lateral view. c) Ventral view.

opencc-by-4.0Apr 2024View details →
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Figures 2–4. Psephenops smithi Grouvelle, adult males. 2 in A taxonomic review of the genus Psephenops Grouvelle of the Lesser Antilles with description of new species Psephenops trini, and reassignment of Peruvian species Psephenus robacki Spangler (Coleoptera: Psephenidae: Psepheninae)

Figures 2–4. Psephenops smithi Grouvelle, adult males. 2) Lectotype from St. Vincent. a) Dorsal habitus. b) Specimen labels. 3) Paralectotype from St. Vincent. a) Ventral habitus with dissected maxillary and labial palpi. b) Specimen labels. 4) Paralectotype from Grenada. a) Ventral habitus. b) Specimen labels. Photographs courtesy of Keita Matsumoto, NHMUK.

opencc-by-4.0Apr 2024View details →
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Figure 3 in Cornigamasus pseudocliferius n. sp., new species of mite from China based on adults and deutonymphs (Parasitiformes: Parasitidae)

Figure 3 Cornigamasus pseudocliferiusn. sp., male. A – Dorsum; B – Venter; C – Trochanter, femur and genu of palp; D – Chelicera; E – Gnathotectum; F – Subcapitulum; G – Femur, genu and tibia of leg II.

opencc-by-4.0May 2024View details →
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Figure 4 in Cornigamasus pseudocliferius n. sp., new species of mite from China based on adults and deutonymphs (Parasitiformes: Parasitidae)

Figure 4 Cornigamasus pseudocliferiusn. sp., deutonymph. A – Dorsum; B – Tritosternum; C – Venter; D – Trochanter, femur and genu of palp; E – Gnathotectum; F – Subcapitulum; G – Chelicera.

opencc-by-4.0May 2024View details →
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Figure 5 in Cornigamasus pseudocliferius n. sp., new species of mite from China based on adults and deutonymphs (Parasitiformes: Parasitidae)

Figure 5 Cornigamasus pseudocliferiusn. sp., deutonymph. A – Leg I; B – Leg II; C – Leg Ш; D – Leg IV.

opencc-by-4.0May 2024View details →
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Figure 1 in Cornigamasus pseudocliferius n. sp., new species of mite from China based on adults and deutonymphs (Parasitiformes: Parasitidae)

Figure 1 Cornigamasus pseudocliferiusn. sp., female. A – Dorsum; B – Venter; C – Endogynium; D – Gnathotectum; E – Trochanter, femur and genu of palp; F – Subcapitulum; G – Chelicera.

opencc-by-4.0May 2024View details →
zenodo40/100

Fig. 1 in The longhorned beetles (Coleoptera: Cerambycidae) of Tennessee: distribution of species, seasonal adult activity, and new state records

Fig. 1. Longhorned beetle species tallied within each of the 95 Tennessee counties from collection records compiled for 230 species. Collection distribution is presented across ecoregions occurring within the western, middle, and eastern Grand Divisions of Tennessee (bold black lines). Across the Grand Divisions, county names presented in pale gray text are those from which no longhorned beetle species were collected or reported. Species tallies presented do not include county records reported in Jamerson (1973) that could not be substantiated with a specimen. Roman numerals (west to east) designate the ecoregions of Tennessee, where I corresponds with the Mississippi Alluvial Plain (ecoregion 73), II are the Mississippi Valley Loess Plains (ecoregion 74), III are the Southeastern Plains (ecoregion 65), IV is the Interior Plateau (ecoregion 71), V are the Southwestern Appalachians (ecoregion 68), VI are the Central Appalachians (ecoregion 69), VII are Ridges and Valleys (ecoregion 67), and VIII are the Blue Ridge Mountains (ecoregion 66) (afer Griffith et al. 1997). Full descriptions of the Tennessee ecoregions are available at: https://www.epa.gov/eco-research/ecoregion-download-files-state-region-3.

opencc-by-4.0Jun 2017View details →
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Figs. 11–17. Calophya species, adults. 11, 14. Forewing. 12, 14. Forewing showing surface spinules. 15. Head. 16. Antenna. 17 in Taxonomy of Calophya (Hemiptera: Calophyidae) species associated with Schinus terebinthifolia (Anacardiaceae)

Figs. 11–17. Calophya species, adults. 11, 14. Forewing. 12, 14. Forewing showing surface spinules. 15. Head. 16. Antenna. 17. Female terminalia, in profile. 11, 12, 15–17. C. lutea sp. nov. 3, 4. C. latiforceps. 11–14. Scale = 0.2 mm. 15, 16. Scale = 0.1 mm. 17. Scale = 0.05 mm.

opencc-by-4.0Jun 2018View details →
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Figure 4 in Perinatal exposure to a high-fat diet alters proopiomelanocortin, neuropeptide Y and dopaminergic receptors gene expression and the food preference in offspring adult rats

Figure 4. Body weight on the 120th offspring from mothers submitted the control diet or the high-fat diet. Values are presented as mean ± SEM using two-way ANOVA followed by the Bonferroni multiple-comparison test. *p&lt;0,05; **p&lt;0,005.

opencc-by-4.0Dec 2022View details →
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Figure 3 in Perinatal exposure to a high-fat diet alters proopiomelanocortin, neuropeptide Y and dopaminergic receptors gene expression and the food preference in offspring adult rats

Figure 3. Body weight on the second day life's of offspring from mothers submitted the control diet (C) or the high-fat diet (H). Values are presented as mean + SEM using Student t-test. C: n = 23; H: n = 23.

opencc-by-4.0Dec 2022View details →
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Figure 2 in Perinatal exposure to a high-fat diet alters proopiomelanocortin, neuropeptide Y and dopaminergic receptors gene expression and the food preference in offspring adult rats

Figure 2. Pomc (A) and npy (B) gene expression in the hypothalamus of offspring exposed or not to a control diet or high-fat diet during perinatal and/or postnatal period. Values are presented as mean ± SEM using two-way ANOVA followed by the Bonferroni multiplecomparison test. Level of significance: *p&lt;0,05; "a": compared to CC, "b": compared to CH; "c": compared to HC; "d": compared to HH.

opencc-by-4.0Dec 2022View details →
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Figure 1. Drd1 in Perinatal exposure to a high-fat diet alters proopiomelanocortin, neuropeptide Y and dopaminergic receptors gene expression and the food preference in offspring adult rats

Figure 1. Drd1 (A) and drd2 (B) gene expression in the nucleus accumbens of offspring exposed or not to a control diet or high-fat diet during perinatal and/or postnatal period. Values are presented as mean ± SEM using two-way ANOVA followed by the Bonferroni multiplecomparison test. Level of significance: *p&lt;0,05; "a": compared to CC, "b": compared to CH; "c": compared to HC; "d": compared to HH.

opencc-by-4.0Dec 2022View details →
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Figure 4 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)

Figure 4: Effectivity of EPNs at concentration of 100 IJs/tick in vegetable oil emulsions at concentration of 33% on engorged adult ticks. Bars with unequal letters are statistically different (Tukey, P &lt;0.05).

opencc-by-4.0Mar 2019View details →
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Figure 2 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)

Figure 2: Survival of EPNs in oil emulsions of J. VirGiniana and C. CitratUS at a concentration of 13% under laboratory conditions.

opencc-by-4.0Mar 2019View details →
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Figure 3 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)

Figure 3: Effectivity of EPNs at concentration of 50 IJs/tick in vegetable oil emulsions at concentration of 33% on engorged adult ticks. Bars with unequal letters are statistically different (Tukey, P &lt;0.05).

opencc-by-4.0Mar 2019View details →
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Figure 5 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)

Figure 5: Control effectiveness of S. websteri at 119 IJs/tick in two vegetable oil emulsions at a concentration of 33% and a Control with S. websteri in only distilled water.

opencc-by-4.0Mar 2019View details →

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record