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2,775 results for “G×E”
Figures 1-6 in The first description of the female of Myrmarachne uniseriata Narayan, 1915 and the first report of Myrmarachne spissa (G. W. Peckham & E. G. Peckham, 1892) from India
Figures 1-6. Myrmarachne spissa from Kerala, India (CATE9935). 1-3, Dorsal, lateral and frontal views of adult male. 4-6, Dorsal, lateral and frontal views of adult female.
FIGURE 1. Sinacroneuria fujianensis male holotype terminalia and aedeagus. a. Male terminalia, dorsal. b. Male terminalia, ventral. c. Male paraproct, dorsal. d. Aedeagal sclerite stem apex, lateral. e. Aedeagus. f. Aedeagal sclerite stem, oblique lateral. g in Systematic notes on Sinacroneuria Yang & Yang, 1995 (Plecoptera: Perlidae), with descriptions of two new species from China
FIGURE 1. Sinacroneuria fujianensis male holotype terminalia and aedeagus. a. Male terminalia, dorsal. b. Male terminalia, ventral. c. Male paraproct, dorsal. d. Aedeagal sclerite stem apex, lateral. e. Aedeagus. f. Aedeagal sclerite stem, oblique lateral. g. Aedeagus detail.
F I G U R E 1 in Composition and divergence of coronavirus spike proteins and host ACE2 receptors predict potential intermediate hosts of SARS- CoV-2
F I G U R E 1 Structural diagrams of spike glycoproteins of SARS‐CoV, MERS‐CoV, and SARS‐CoV‐2. All spike proteins of coronaviruses contain S1 subunit and S2 subunit, which were divided by the S cleavage sites. FP, fusion peptide; HR, heptad repeat 1 and heptad repeat 2; RBD, receptor‐binding domain, contains core binding motif in the external subdomain; SP, signal peptide
F I G U R E 2 in Composition and divergence of coronavirus spike proteins and host ACE2 receptors predict potential intermediate hosts of SARS- CoV-2
F I G U R E 2 Phylogenetic analysis of sequences of coronavirus spike glycoproteins. The sequences of spike glycoproteins of SARS‐CoV‐2, bat SARS‐like CoV, pangolin SARS‐like CoV, and SARS‐CoV were analyzed. The red stars indicate pangolin SARS‐like CoV and bat SARS‐like CoV. Host flags are marked after the clusters. SARS‐CoV‐2, severe respiratory syndrome coronavirus‐2
Subspecies and Distribution. R. p. perniger Hodgson, 1843 - N, C & SW India (Uttarakhand, Sikkim, West Bengal, Assam, Meghalaya, Nagaland, Madhya Pradesh, Karnataka, and Kerala), C & E Nepal, Bhutan, Bangladesh, Myanmar, S China (Yunnan), N Thailand, Laos, Vietnam, and Cambodia. . p. lanosus K. Andersen, 1905 — C & SE China (Sichuan, Guizhou, Guangxi, Anhui Zhejiang,Jiangxi, Fujian, and Guangdong). R.p. spurcus G. M. Allen, 1928 - Hainan I, China. Possibly also peninsular Thailand, according to recorded calls. in Rhinolophidae
Subspecies and Distribution. R. p. perniger Hodgson, 1843 - N, C & SW India (Uttarakhand, Sikkim, West Bengal, Assam, Meghalaya, Nagaland, Madhya Pradesh, Karnataka, and Kerala), C & E Nepal, Bhutan, Bangladesh, Myanmar, S China (Yunnan), N Thailand, Laos, Vietnam, and Cambodia. . p. lanosus K. Andersen, 1905 — C & SE China (Sichuan, Guizhou, Guangxi, Anhui Zhejiang,Jiangxi, Fujian, and Guangdong). R.p. spurcus G. M. Allen, 1928 - Hainan I, China. Possibly also peninsular Thailand, according to recorded calls.
Subspecies and Distribution. R.p. pusillus Temminck, 1834 - N Sumatra, N, E & S Borneo (including Banggi I), W Java, and Bali I. R. p. blythi K. Andersen, 1918 - N India (Uttarakhand, Sikkim, West Bengal, Assam, Meghalaya, and Arunachal Pradesh), Nepal, Bhutan, and SE Bangladesh. R.p. calidusG. M. Allen, 1923-SE China (Guizhou, Guangxi, Guangdong, and Fujian, along with a recent record from Beijing area that may represent this subspecies). R. p. gracilis K. Andersen, 1905 - S India (Andhra Pradesh, Karnataka, Kerala, and Tamil Nadu). R.p. lakkhanae Yoshiyuki, 1990 - S China (Yunnan), Thailand, Laos, Vietnam (including Cat Ba I), Cambodia, and Peninsular Malaysia (including Tioman I). R.p. minutillusG. S. Miller, 1906 —Anambas Is (Siantan). R.p. pagi Tate & Archbold, 1939 — Mentawai Is (North Pagai). R.p. parcus G. M. Allen, 1928 - Hainan I, China. R. p. szechwanus K Andersen, 1918 - Myanmar and C China (Sichuan, Guizhou, Hubei, and probably Yunnan). in Rhinolophidae
Subspecies and Distribution. R.p. pusillus Temminck, 1834 - N Sumatra, N, E & S Borneo (including Banggi I), W Java, and Bali I. R. p. blythi K. Andersen, 1918 - N India (Uttarakhand, Sikkim, West Bengal, Assam, Meghalaya, and Arunachal Pradesh), Nepal, Bhutan, and SE Bangladesh. R.p. calidusG. M. Allen, 1923-SE China (Guizhou, Guangxi, Guangdong, and Fujian, along with a recent record from Beijing area that may represent this subspecies). R. p. gracilis K. Andersen, 1905 - S India (Andhra Pradesh, Karnataka, Kerala, and Tamil Nadu). R.p. lakkhanae Yoshiyuki, 1990 - S China (Yunnan), Thailand, Laos, Vietnam (including Cat Ba I), Cambodia, and Peninsular Malaysia (including Tioman I). R.p. minutillusG. S. Miller, 1906 —Anambas Is (Siantan). R.p. pagi Tate & Archbold, 1939 — Mentawai Is (North Pagai). R.p. parcus G. M. Allen, 1928 - Hainan I, China. R. p. szechwanus K Andersen, 1918 - Myanmar and C China (Sichuan, Guizhou, Hubei, and probably Yunnan).
F I G U R E 6 in GIFT – A Global Inventory of Floras and Traits for macroecology and biogeography
F I G U R E 6 (a) Total number of trait records per native angiosperm species per region and (b–e) trait coverage per region (number of native angiosperm species with trait information/number of all native angiosperm species) for exemplary traits with characteristic geographic patterns in coverage. Polygons are plotted sequentially in order of decreasing area to show smaller regions on top of larger regions, in the case where they overlap. Regions <25,000 km2 are plotted as points [Colour figure can be viewed at wileyonlinelibrary.com]
F I G U R E 5 in GIFT – A Global Inventory of Floras and Traits for macroecology and biogeography
F I G U R E 5 Taxonomic coverage of distribution data in the Global Inventory of Floras and Traits 1.0 at the family level. Tip color and inner ring color indicate the proportion of species with distribution information relative to all species of a given family, the grey outer ring delimits major clades of vascular plants. The height of bars in the outer ring is proportional to log10 total family species richness. Phylogenetic signal in taxonomic coverage was assessed as Abouheif's Cmean, a measure of phylogenetic autocorrelation based on the sum of the successive squared differences between values of neighbouring tips in the phylogeny (Abouheif, 1999) [Colour figure can be viewed at wileyonlinelibrary.com]
F I G U R E 2 in GIFT – A Global Inventory of Floras and Traits for macroecology and biogeography
F I G U R E 2 Simplified structure of the Global Inventory of Floras and Traits database. Metadata on literature references, species lists and geographic regions builds the backbone of the database (top row). A reference can include several species lists (e.g. for different sub-regions) and a geographic region can be covered by several lists and references. Species lists vary in taxonomic and floristic scope (e.g. all native and naturalized angiosperms) and in the information content (floristic status, functional traits). Primary occurrence information, species names and functional trait data from the literature resources build the main block of original data (yellow). Automated workflows link those to taxonomically standardized working names, to a higher taxonomy and phylogeny of vascular plants and produce derived resources for analyses (blue). Grey bars indicate links among tables in a simplified way (most tables shown here represent several tables in the database) [Colour figure can be viewed at wileyonlinelibrary.com]
F I G U R E 3 in GIFT – A Global Inventory of Floras and Traits for macroecology and biogeography
F I G U R E 3 Trait processing in the Global Inventory of Floras and Traits (GIFT). Original trait records entering GIFT are subjected to three processing steps: (i) Trait values are standardized with respect to language, terminology and measurement unit. (ii) Additional trait values are derived hierarchically for traits that are logically nested (colored rows under "derived traits", see also Figure S1), and taxonomically for species that belong to taxonomic groups that are uniform with respect to a particular trait. (iii) Derived trait values are aggregated at the species level based on the consensus among resources (categorical traits) or summary statistics are computed based on the original values (numerical traits) [Colour figure can be viewed at wileyonlinelibrary.com]
F I G U R E 4 in GIFT – A Global Inventory of Floras and Traits for macroecology and biogeography
F I G U R E 4 Spatial coverage of checklist data stored in the Global Inventory of Floras and Traits 1.0. (a) Regions with checklist data for native vascular plants. Darker green shade indicates overlapping regions. (b–d) Checklist coverage and species richness of major taxonomic groups for regions with theoretically complete inventories. Polygons are plotted sequentially in order of decreasing area to show smaller regions on top of larger regions, in the case where they overlap. Regions <25,000 km2 are plotted as points [Colour figure can be viewed at wileyonlinelibrary.com]
F I G U R E 1 in GIFT – A Global Inventory of Floras and Traits for macroecology and biogeography
F I G U R E 1 Conceptual framework of the Global Inventory of Floras and Traits database (GIFT). The core information in GIFT are species occurrences in geographic regions (islands, political units, protected areas, biogeographical regions) based on Floras and checklist. At the level of the geographical regions, this information is linked to geographic, bioclimatic and socioeconomic properties. At the level of the species, functional traits, taxonomic placement and phylogenetic relationships are linked. This integration of species distribution data in the form of full regional inventories and regional and species characteristics allows for a wide variety of macroecological and biogeographical analyses of taxonomic, phylogenetic and functional diversity as well as for the refinement and validation of other plant distribution and trait datasets [Colour figure can be viewed at wileyonlinelibrary.com]
← Fig. 16. Liscocephala gen.n. and Triunfus gen.n. ♀: L. fumosa: A, C: female terminalia. T. carvalhoi: B, D: female terminalia; E, F: female receptaculum seminis and ausenwand. T. incarnatus: G: female receptaculum seminis and ausenwand. Scale bars = 0.5 mm. in Systematics of the Mecocephala group (Hemiptera: Heteroptera: Pentatomidae) based on a phylogenetic perspective: Inclusion of Hypanthracos, description of three new genera, and redescription of Ogmocoris
← Fig. 16. Liscocephala gen.n. and Triunfus gen.n. ♀: L. fumosa: A, C: female terminalia. T. carvalhoi: B, D: female terminalia; E, F: female receptaculum seminis and ausenwand. T. incarnatus: G: female receptaculum seminis and ausenwand. Scale bars = 0.5 mm.
→ Fig. 5. Hypanthracos meridionalis Grazia & Campos, 1996: A–F: male terminalia: A – D: dorsal; B – E: posterior: C – F: ventral; G – I: male genitalia: G: dorsal; H: lateral; I: ventral; J: female terminalia; K: female receptaculum seminis and ausenwand. Scale bars: A – F = 1.0 mm; G – I: 0.01 mm; J – K = 0.5 mm. in Systematics of the Mecocephala group (Hemiptera: Heteroptera: Pentatomidae) based on a phylogenetic perspective: Inclusion of Hypanthracos, description of three new genera, and redescription of Ogmocoris
→ Fig. 5. Hypanthracos meridionalis Grazia & Campos, 1996: A–F: male terminalia: A – D: dorsal; B – E: posterior: C – F: ventral; G – I: male genitalia: G: dorsal; H: lateral; I: ventral; J: female terminalia; K: female receptaculum seminis and ausenwand. Scale bars: A – F = 1.0 mm; G – I: 0.01 mm; J – K = 0.5 mm.
F I G U R E 7 in Ecology and morphology of mouse lemurs (Microcebus spp.) in a hotspot of microendemism in northeastern Madagascar, with the description of a new species
F I G U R E 7 Outer morphology of Microcebus jonahi. (a) Drawing of an adult individual; (b) Habitus of adult female (paratype individual BD1); (c–e) Close‐ups of adult male (holotype B34). Illustration copyright by Stephen D. Nash/IUCN SSC Primate Specialist Group; used with permission. Photos by D. Schüssler
F I G U R E 6 in Ecology and morphology of mouse lemurs (Microcebus spp.) in a hotspot of microendemism in northeastern Madagascar, with the description of a new species
F I G U R E 6 Reproductive records for adult males (a) and females (b) of Microcebus spp. in northeastern Madagascar and presence of juvenile individuals (c) in the population
F I G U R E 5 in Ecology and morphology of mouse lemurs (Microcebus spp.) in a hotspot of microendemism in northeastern Madagascar, with the description of a new species
F I G U R E 5 Linear discriminant analysis including all morphometric parameters (except third toe length). All five linages can be distinguished statistically (Wilk's lambda = 0.005; F = 10.338; p <.001) with a misclassification rate of 12.8%. dia, Mantadia NP; vala, Ambavala
F I G U R E 4 in Ecology and morphology of mouse lemurs (Microcebus spp.) in a hotspot of microendemism in northeastern Madagascar, with the description of a new species
F I G U R E 4 Principal component analysis including all morphometric parameters (except third toe length) showing PC1/PC2 (left) and PC3/PC4 (right). Small (M. mittermeieri and M. lehilahytsara) and large (M. sp. #3 and M. macarthurii) lineages differ along PC1, with some differentiation of M. mittermeieri and M. lehilahytsara along both PC1 and PC2, whereas M. sp. #3 and M. macarthurii split along PC3. Clusters corresponding to the five lineages were significantly different from each other (PERMANOVA: F = 36.88; df = 77; p <.001). dia, Mantadia NP; PERMANOVA, permutational multivariate analysis of variances; vala, Ambavala
F I G U R E 2 in Ecology and morphology of mouse lemurs (Microcebus spp.) in a hotspot of microendemism in northeastern Madagascar, with the description of a new species
F I G U R E 2 Maximum likelihood tree illustrating the phylogenetic relationships between Microcebus spp. in northeastern Madagascar as inferred by RAxML (based on nuclear sequence data). Sampling locations are indicated at the tips of the branches. Illustration adapted from Poelstra et al. (2020). NP, National Park; SNR, Special Nature Reserve; SR, Special Reserve
F I G U R E 1 in Ecology and morphology of mouse lemurs (Microcebus spp.) in a hotspot of microendemism in northeastern Madagascar, with the description of a new species
F I G U R E 1 Map depicting the study region with confirmed species occurrences (Hotaling et al., 2016; Kappeler et al., 2005; Louis et al., 2006; Radespiel et al., 2008, 2012; Weisrock et al., 2010). New sampling locations for this study are indicated with "*" and forest cover in 2017/2018 was derived from Vieilledent et al. (2018) and Schüssler et al. (2020). NP, National Park; SNR, Special Nature Reserve; SR, Special Reserve
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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.
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DANDI Archive for NWB datasets
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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.