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210 results for “Tribal”
Phylogeny and tribal classification of Australian Prioninae (Coleoptera: Cerambycidae)
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Data from: Delimitation of the new tribe Parartocarpeae (Moraceae) is supported by a 333- gene phylogeny and resolves tribal level Moraceae taxonomy
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Phylogenomics resolve the systematics and biogeography of the ant tribe Myrmicini and tribal relationships within the hyperdiverse ant subfamily Myrmicinae
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Data for: Unraveling the evolution of mycetophagy and phytophagy in fungus weevils (Curculionoidea: Anthribidae): phylogenomic insights into Anthribinae paraphyly and tribal non-monophyly
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Data from: A target capture-based phylogeny of emerald moths (Lepidoptera: Geometridae: Geometrinae) provides new insights into tribal-level classification
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Figure 1 in On the tribal allocation of Cosmotomidius Melzerı 1931ı descriptions of new taxa of Acanthoderini and notes on some tribes of Lamiinae (Coleoptera: Cerambycidae)
Figure 1. (a–d) Noxnympha eris, holotype female: (a) dorsal habitus; (b) ventral habitus; (c) lateral habitus; (d) head, dorsal view. (e–h) Cosmotomidius setosus, male: (e) dorsal habitus; (f) ventral habitus; (g) lateral habitus; (h) head, dorsal view.
FIGURE 6 in Defining new dung beetle tribes to resolve discrepancies between phylogeny and tribal classification in the subfamily Scarabaeinae (Coleoptera: Scarabaeidae)
FIGURE 6. Map showing the distribution of the known species in the tribe, Endroedyolini Davis, Deschodt & Scholtz, new tribe.
FIGURES 19–26. 19–22 in On the enigmatic genus Oectropsis Blanchard (Coleoptera, Cerambycidae Lamiinae): tribal allocation, synonymy, and new species
FIGURES 19–26. 19–22) Pogonocherus hispidus: 19) Dorsal habitus; 20) Ventral habitus; 21) Lateral habitus; 22) Head, frontal view. 23–24) Pogonocherus fasciculatus (De Geer, 1775): 23) Head, frontal view; 24) Dorsal habitus, specimen 1; 25) Lateral habitus, specimen 1; 26) Ventral habitus, specimen 2.
FIGURE 27. Maps. a in On the enigmatic genus Oectropsis Blanchard (Coleoptera, Cerambycidae Lamiinae): tribal allocation, synonymy, and new species
FIGURE 27. Maps. a) South America with bioregionalizations by Morrone (2015); b) Distribution of species of Oectropsis Blanchard, 1851.
FIGURES 11–18. 11 in On the enigmatic genus Oectropsis Blanchard (Coleoptera, Cerambycidae Lamiinae): tribal allocation, synonymy, and new species
FIGURES 11–18. 11) Oectropsis chilensis sp. nov., dorsal habitus. 12–13) Oectropsis pusillus, from Barriga & Cepeda (2005) (= Oectropsis chilensis sp. nov.): 12) Dorsal habitus; 11) Lateral habitus. 14) Exocentrus pusillus, "holotype", dorsal habitus (taken from Tavakilian & Chevillote, 2020). 15–16) Oectropsis franciscae, paratype male, from Barriga & Cepeda (2005): 15) Dorsal habitus; 16) Lateral habitus. 17) E. pusillus, drawing by Blanchard (1851). 18) Oectropsis latifrons, "Lectotype", dorsal habitus.
FIGURES 1–4 in On the enigmatic genus Oectropsis Blanchard (Coleoptera, Cerambycidae Lamiinae): tribal allocation, synonymy, and new species
FIGURES 1–4. Oectropsis latifrons, male from Chile: 1) Dorsal habitus; 2) Ventral habitus; 3) Lateral habitus; 4) Head, frontal view.
FIGURES 5–10 in On the enigmatic genus Oectropsis Blanchard (Coleoptera, Cerambycidae Lamiinae): tribal allocation, synonymy, and new species
FIGURES 5–10. Oectropsis chilensis sp. nov., holotype female: 5) Dorsal habitus; 6) Ventral habitus; 7) Lateral habitus; 8) Head, frontal view; 9) Procoxa and procoxal cavity. 10) Pronotum.
Data from: Deciphering the fine-structure of tribal admixture in the Bedouin population using genomic data
The Bedouin Israeli population is highly inbred and structured with a very high prevalence of recessive diseases. Many studies in the past two decades focused on linkage analysis in large, multiple consanguineous pedigrees of this population. The advent of high-throughput technologies motivated researchers to search for rare variants shared between smaller pedigrees, integrating data from clinically similar yet seemingly non-related sporadic cases. However, such analyses are challenging because, without pedigree data, there is no prior knowledge regarding possible relatedness between the sporadic cases. Here, we describe models and techniques for the study of relationships between pedigrees and use them for the inference of tribal co-ancestry, delineating the complex social interactions between different tribes in the Negev Bedouins of southern Israel. Through our analysis, we differentiate between tribes that share many yet small genomic segments because of co-ancestry versus tribes that share larger segments because of recent admixture. The emergent pattern is well correlated with the prevalence of rare mutations in the different tribes. Tribes that do not intermarry, mostly because of social restrictions, hold private mutations, whereas tribes that do intermarry demonstrate a genetic flow of mutations between them. Thus, social structure within an inbred community can be delineated through genomic data, with implications to genetic counseling and genetic mapping.
Tribal spear (Game ready)
Prehistoric spear. Source: Objaverse 1.0 / Sketchfab
Mejan - Indonesian Tribal Statue person/elephant
Mejan - Indonesian Tribal Statue of an person riding an elephant, this is a crucial part of on of the indonesian tribal called Batak sclupted and retopo and finalization in Blender textured in Substance Painter Source: Objaverse 1.0 / Sketchfab
FIGURE 4 in Nesidiorchestes hawaiiensis Kirkaldy: new tribal assignment and lectotype designation (Hemiptera: Heteroptera: Miridae: Orthotylinae: Orthotylini)
FIGURE 4. Male genitalia: Subapical process variation in the dorsalmost vesical lobe, left lateral view; numbers are USI codes preceded by "AMNH_PBI".
FIGURE 1 in Nesidiorchestes hawaiiensis Kirkaldy: new tribal assignment and lectotype designation (Hemiptera: Heteroptera: Miridae: Orthotylinae: Orthotylini)
FIGURE 1. Dorsal habitus photograph of male Nesidiorchestes hawaiiensis. A. Lectotype (AMNH_PBI 00085496). B. Zimmerman specimen (AMNH_PBI 00113258).
FIGURE 2 in Nesidiorchestes hawaiiensis Kirkaldy: new tribal assignment and lectotype designation (Hemiptera: Heteroptera: Miridae: Orthotylinae: Orthotylini)
FIGURE 2. Scanning electron micrographs of male (AMNH_PBI 00113259). A. Head and thorax, lateral view. B. Body, dorsal view. C. Pretarsus, apical view. D. Mesepimeron spiracle and metepisternum scent-gland efferent system, lateral view. E. Hind femur, lateral view. F. Third tarsal segment, ventral view. G. Vestiture and surface of corium, dorsal view. H. Genital capsule and parameres, dorsal view. Scales as indicated.
FIGURES 33–35. Wachsiella horsti Schmidt, 1931 in Redescription of the genus Wachsiella (Hemiptera: Heteroptera: Largidae: Physopeltinae) with description of male and comments on its tribal placement
FIGURES 33–35. Wachsiella horsti Schmidt, 1931, pygophore: 33—intact pygophore in dorsal view (magnification 55×), 34—dissected pygophore in dorsal view (55×), 35—intact pygophore in postero-ventral view (55×). Scale bars: 1 mm. (SEM micrographs: P. Kment).
FIGURES 36–40. Wachsiella horsti Schmidt, 1931 in Redescription of the genus Wachsiella (Hemiptera: Heteroptera: Largidae: Physopeltinae) with description of male and comments on its tribal placement
FIGURES 36–40. Wachsiella horsti Schmidt, 1931. Paramere in five different orientations (anticlockwise rotation around its longitudinal axis) (magnifications 200×). Scale bars: 0.2 mm. (SEM micrographs: P. Kment).
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Allen Brain Atlas
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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
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