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174 results for “Cape Region”
Fig. 2 in New scale insects (Homoptera: Coccinea) from the Cape Floristic Region
Fig. 2. Coccidohystrix daedalea Gavrilov-Zimin sp. nov., adult female, holotype.
Fig. 3 in New scale insects (Homoptera: Coccinea) from the Cape Floristic Region
Fig. 3. Mirococcopsis ptilura Gavrilov-Zimin sp. nov., adult female (holotype) and primolarva (L1).
Leaf margins in a deciduous lineage from the Greater Cape Floristic Region track climate in unexpected directions
<p>Premise of the study: The functional significance of leaf margins has long been debated. In this study we explore influences of climate, leaf lobing, woodiness, and shared evolutionary history on two leaf margin traits within the genus Pelargonium.</p> <p>Methods: Leaves from 454 populations of Pelargonium (161 species) were collected in the Greater Cape Floristic Region and scored for tooth presence/absence and degree of lobing. Tooth density (number of teeth per interior perimeter distance) was measured for a subset of these. We compared five hypotheses to explain tooth presence and density using mixed effect models.</p> <p>Key results: Tooth presence/absence was best predicted by the interaction of leaf lobing and mean annual temperature (MAT), but often in patterns opposite to the previous literature: species were more likely to be toothed with warmer temperatures. This was particularly the case for unlobed and highly lobed leaves. In contrast, tooth density was best predicted by the interaction of MAT and the season of most rain; density declines with temperature as consistent with expectations, but only in winter- rain dominated areas. Woody and non-woody species within Pelargonium both have similar associations between tooth presence/absence and MAT, contrary to the expectation that patterns within non-woody species would be insignificant.</p> <p>Conclusions: We conclude Pelargonium leaf margins show predictable responses to climate, but these responses are complex and can contradict those found for global patterns across plant communities.</p>
Figure 150 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 150. Known distribution of Acrotelsella septentrionalis sp. nov.
Figure 177 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 177. Acrotelsella obscura sp. nov., 10 km south of Coen, Queensland.
Figure 129 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 129. Acrotelsella hethicola sp. nov. holotype from Jardine River, Queensland.
Figure 151 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 151. Acrotelsella septentrionalis sp. nov. from Jardine River, Queensland.
Figure 103 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 103. Known distribution of Acrotelsella arboricola sp. nov.
Figure 104 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 104. Acrotelsella arboricola from Undara, Queensland.
Figure 101. Acrotelsella aff. marginata F2 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 101. Acrotelsella aff. marginata F2 from Punsand Bay campground, Queensland.
Figure 102. Acrotelsella aff. marginata F3 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 102. Acrotelsella aff. marginata F3 from Captain Billy Road, Queensland.
Figure 176 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 176. Known distribution of Acrotelsella obscura sp. nov.
Figure 80 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 80. Acrotelsella marginata sp. nov. from Pennefather, Queensland.
Figure 3 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 3. Acrotelsella petra sp. nov. from Balancing Rock, Chillagoe, Queensland.
Figure 2 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 2. Known distribution of Acrotelsella petra sp. nov.
Figure 30 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 30. Known distribution of Acrotelsella quattuor sp. nov.
Figure 56 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 56. Acrotelsella lauraensis sp. nov. from Laura, Queensland.
Figure 55 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 55. Known distribution of Acrotelsella lauraensis sp. nov.
Fig. 1 in Ground beetles (Coleoptera: Carabidae) from the region of Cape Emine (central Bulgarian Black sea coast). Part II. Ecological parameters and community structure
Fig. 1. Dominance structure of the entire carabid complex (number of species).
Fig. 8 in Ground beetles (Coleoptera: Carabidae) from the region of Cape Emine (Central Bulgarian Black sea coast). Part I. Taxonomic and zoogeographic structure, life forms, habitat and humidity preferences
Fig. 8. Ecological groups of carabids in terms of humidity (number of specimens).
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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.