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1,418 results for “grasses”
Figs 23–27 in Revision of the grass huntsman spider genus Pseudomicrommata Järvi, 1914 (Araneae: Sparassidae) in the Afrotropical Region
Figs 23–27. Pseudomicrommata mary sp. n., male holotype, Mt Nimba, Guinea (SMF): (23–25) left palp, (23) ventral view, (24) retrolateral view and (25) tip of embolus, embolic apophysis and conductor, ventral view; (26) eye arrangement; (27) left chelicera, ventral view.
Figs 15–19 in Revision of the grass huntsman spider genus Pseudomicrommata Järvi, 1914 (Araneae: Sparassidae) in the Afrotropical Region
Figs 15–19. Pseudomicrommata vittigera (Simon, 1897), male, Pafuri, South Africa (NCA): (15–17) left palp: (15) ventral view, (16) retrolateral view and (17) tip of embolus, embolic apophysis and conductor, ventral view; (18) eye arrangement; (19) left chelicera, ventral view.
Figs 20–22 in Revision of the grass huntsman spider genus Pseudomicrommata Järvi, 1914 (Araneae: Sparassidae) in the Afrotropical Region
Figs 20–22. Pseudomicrommata vittigera (Simon, 1897), female syntype, Transvaal, South Africa (MNHN): (20) epigyne, ventral view; (21) vulva, dorsal view; (22) left vulva, anterio-dorso-lateral view.
Figs 11–14 in Revision of the grass huntsman spider genus Pseudomicrommata Järvi, 1914 (Araneae: Sparassidae) in the Afrotropical Region
Figs 11–14. Pseudomicrommata longipes (Bösenberg & Lenz, 1895), (11–13) female, Barberspan, South Africa (NCA) and (14) male, Brandfort, South Africa (SMF): (11) epigyne, ventral view; (12) vulva, dorsal view; (13) schematic course of internal duct system; (14) tip of embolus, embolic apophysis and conductor, ventral view.Abbreviation:AB – anterior bands of epigynal field; for others see Figs 8–10.
Figs 8–10 in Revision of the grass huntsman spider genus Pseudomicrommata Järvi, 1914 (Araneae: Sparassidae) in the Afrotropical Region
Figs 8–10. Pseudomicrommata longipes (Bösenberg & Lenz, 1895), female, Tanzania (MRAC): (8) epigyne, ventral view; (9) vulva, dorsal view; (10) left vulva, anterio-dorso-lateral view. Abbreviations: AMP – anterior margin of epigynal pocket; CD – copulatory duct; CO – copulatory opening; EF – epigynal field; EP – epigynal pocket; FD – fertilization duct; fTL – first turning loop; GPO – glandular pores; LL – lateral lobes; MS – median septum; PMP – posterior margin of epigynal pocket; SS – slit sensillum; sTL – second turning loop.
Figs 3–7 in Revision of the grass huntsman spider genus Pseudomicrommata Järvi, 1914 (Araneae: Sparassidae) in the Afrotropical Region
Figs 3–7. Pseudomicrommata longipes (Bösenberg & Lenz, 1895), male, Tanzania (MRAC): (3–5) left palp: (3) ventral view, (4) retrolateral view and (5) tip of embolus, embolic apophysis and conductor, ventral view; (6) eye arrangement; (7) left chelicera, ventral view. Abbreviations: C – conductor; dRTA – dorsal retrolateral tibial apophysis; E – embolus; EA – embolic apophysis; EM – embolus membrane; ET – embolus tip; H – haematodocha; T – tegulum; vRTA – ventral retrolateral tibial apophysis.
Figs 33–37 in Revision of the grass huntsman spider genus Pseudomicrommata Järvi, 1914 (Araneae: Sparassidae) in the Afrotropical Region
Figs 33–37. Pseudomicrommata schoemanae sp. n., female holotype, Bossoum, Cameroon (ZMB): (33) epigyne, ventral view; (34) vulva, dorsal view; (35) left vulva, anterio-dorso-lateral view; (36) eye arrangement; (37) left chelicera, ventral view.
Figs 31–32 in Revision of the grass huntsman spider genus Pseudomicrommata Järvi, 1914 (Araneae: Sparassidae) in the Afrotropical Region
Figs 31–32. Pseudomicrommata mary sp. n., female paratype, Adiope Doumé, Ivory Coast (MRAC): (31) epigyne, ventral view; (32) vulva, dorsal view.
Figs 1–2 in Revision of the grass huntsman spider genus Pseudomicrommata Järvi, 1914 (Araneae: Sparassidae) in the Afrotropical Region
Figs 1–2. (1) Habitus of Pseudomicrommata longipes (Bösenberg & Lenz, 1895) from Ellisras, South Africa; (2) grasslands, the common habitat of Pseudomicrommata spp., in Ellisras, South Africa. Photos by Peter Webb.
When the neighborhood matters: contextual selection on seedling traits in native and non-native California grasses
<p>Plants interact extensively with their neighbors, but the evolutionary consequences of variation in neighbor identity are not well understood. Seedling traits are likely to experience selection that depends on the identity of neighbors because they influence competitive outcomes. To explore this, we evaluated selection on seed mass and emergence time in two California grasses, the native perennial <em>Stipa pulchra</em> and the non-native annual <em>Bromus diandrus</em>, in the field with six other native and non-native neighbor grasses in individual and mixed species treatments. We also <span>quantified characteristics of each neighbor treatment to further investigate factors influencing their effects on fitness and phenotypic selection. Selection favored larger seeds in both focal species and this</span> was largely independent of neighbor identity. Selection generally favored earlier emergence in both focal species, but neighbor identity influenced the strength and direction of selection on emergence time in <em>S. pulchra</em> but not <em>B. diandrus</em>. Greater light interception, higher soil moisture, and greater productivity of neighbors was associated with more intense selection for earlier emergence and larger seeds. Our findings suggest that changes in plant community composition can alter patterns of selection in seedling traits, and that these effects can be associated with measurable characteristics of the community.</p>
Fig. 3 in Calamagrostis lonana (Poaceae): a new grass species from the Pennine Alps (Switzerland)
Fig. 3. – Calamagrostis lonana Eggenb. & Leibundg. A. Habit of the aerial parts with moss cushion of Warnstorfia exannulata (Schimp.) Loeske. B. Upper root space in the moss layer.
Fig. 4 in Calamagrostis lonana (Poaceae): a new grass species from the Pennine Alps (Switzerland)
Fig. 4. – Alpine alluvial plain of Lona, with fens, alluvial and spring vegetation patches on both sides of the meandering Torrent de Lona.
Fig. 2 in Calamagrostis lonana (Poaceae): a new grass species from the Pennine Alps (Switzerland)
Fig. 2. – Calamagrostis lonana Eggenb. & Leibundg. A. Habit with stolons within the moss layer; B. Inflorescence (contracted panicle); C. Section of inflorescence with adjacent panicle branches; D. Spikelet peduncle with glumes; E. Glume and palea with callus hairs and awn (dorsally inserted).
Data from: Long-term changes in soil carbon and nitrogen fractions in switchgrass, native grasses, and no-till corn bioenergy production systems
<p>Cellulosic bioenergy is a primary land-based climate mitigation strategy, with soil carbon (C) storage and nitrogen (N) conservation as important mitigation elements. Here, we present 13 years of soil C and N change under three cellulosic cropping systems: monoculture switchgrass (<em>Panicum virgatum</em> L.), a five native grasses polyculture, and no-till corn (<em>Zea mays</em> L.). Soil C and N fractions were measured four times over 12 years. Bulk soil C in the 0–25 cm depth at the end of the study period ranged from 28.4 (± 1.4 se) Mg C ha<sup>−1</sup> in no-till corn, to 30.8 (± 1.4) Mg C ha<sup>−1</sup> in switchgrass, and to 34.8 (± 1.4) Mg C ha<sup>−1</sup> in native grasses. Mineral-associated organic matter (MAOM) ranged from 60% to 90% and particulate organic matter (POM) from 10% to 40% of total soil C. Over 12 years, total C as well as both C fractions persisted under no-till corn and switchgrass and increased under native grasses. In contrast, POM N stocks decreased 33% to 45% across systems, whereas MAOM N decreased by less than 13% and only in no-till corn. Declining POM N stocks likely reflect pre-establishment land use, which included alfalfa and manure in earlier rotations. Root production and large soil aggregate formation explained 69% (p < 0.001) and 36% (p = 0.024) of total soil C change, respectively, and 60% (p = 0.020) and 41% (p = 0.023) of soil N change, demonstrating the importance of belowground productivity and soil aggregates for producing and protecting soil C and conserving soil N. Differences between switchgrass and native grasses also indicate a dependence on plant diversity. Soil C and N benefits of bioenergy crops depend strongly on root productivity and pre-establishment land use.</p>
Testing the chilling: Before drought-tolerance hypothesis in Pooideae grasses
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Input data to model multiple effects of large-scale deployment of grass in crop-rotations at European scale
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Opposing life history strategies allow grass shrimp parasites to avoid a conflict of interest
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Data from: Long-term changes in soil carbon and nitrogen fractions in switchgrass, native grasses, and no-till corn bioenergy production systems
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Data from: Responses of C4 grasses to aridity reflect species-specific strategies in a semiarid savanna
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Global intraspecific trait-climate relationships for grasses are linked to a species’ typical form and function
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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)
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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.