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PIE LTER, year 2017, 15 minute measurements of stage in a small headwater stream draining a highly suburban catchment (72% residential), Saw Mill Brook, Burlington, MA.
Year 2017, continuous measurements, every 15 minutes, were made of depth and stream temperature in a small headwater stream, Saw Mill Brook, Burlington, MA, draining a highly suburban catchment (72% residential). Discharge is determined from stage using discharge vs stage regressions.
PIE LTER, year 2018, 15 minute measurements of stage in a small headwater stream draining a highly suburban catchment (72% residential), Saw Mill Brook, Burlington, MA.
Year 2018, continuous measurements, every 15 minutes, were made of depth and stream temperature in a small headwater stream, Saw Mill Brook, Burlington, MA, draining a highly suburban catchment (72% residential). Discharge is determined from stage using discharge vs stage regressions.
Years 2019-2021, 15 minute measurements of stage in a small headwater stream draining a highly suburban catchment (72% residential), Saw Mill Brook, Burlington, MA.
Year 2019, 2020, and 2021 continuous measurements, every 15 minutes, were made of depth and stream temperature in a small headwater stream, Saw Mill Brook, Burlington, MA, draining a highly suburban catchment (72% residential) in the Ipswich River watershed. Discharge is determined from stage using discharge vs stage regressions.
FIG. 2. — Trogolaphysa judithnajtae n in Annotated checklist of Afrotropical Trogolaphysa Mills, 1938 (Hexapoda: Collembola: Paronellidae) and description of a new species from Madagascar
FIG. 2. — Trogolaphysa judithnajtae n. sp.: A, dorsal chaetotaxy of head, arrow points at macrochaeta that may be present or absent; B, eye patch detail; C, labial triangle; D, dorsal chaetotaxy of mesothorax, insets show variation in p3 complex; E, dorsal chaetotaxy of abdomen 4; F, latero-dorsal chaetotaxy of abdomen 4 in a different individual. Scale bars: A, D-F, 0.1 mm; B, 0.05 mm; C, 0.03 mm.
FIG. 3. — Trogolaphysa judithnajtae n in Annotated checklist of Afrotropical Trogolaphysa Mills, 1938 (Hexapoda: Collembola: Paronellidae) and description of a new species from Madagascar
FIG. 3. — Trogolaphysa judithnajtae n. sp.: A, adult hind claw complex with three inner teeth, pretarsal setae normal, present on both sides, but not illustrated; B, adult hind claw complex with four inner teeth; C, normal adult mucro; D, variant adult mucro. Scale bars: 0.05 mm.
Figure 2 in Description of a new coccid (Hemiptera, Coccidae) on avocado (Persea americana Mill.) from Colombia, South America
Figure 2. Bombacoccus aguacatae Kondo, sp. n., adult female. anplt = anal plate; ant = antenna; ar = anal ring; dmic = dorsal microduct; dset = dorsal setae; edd = enlargement of dorsal derm; mset = marginal setae; pvp = perivulvar pore; pop = preopercular pore; sp = simple pore; spp = spiracular pore; stgsp = stigmatic spine; vmic = ventral microduct; vset = ventral setae.
Figs. 6A-R. A-F. Senna neglecta var. grandiflora. A in Taxonomia e diversidade do gênero Senna Mill. (Leguminosae, Caesalpinioideae, Cassieae) no estado de Goiás, Brasil
Figs. 6A-R. A-F. Senna neglecta var. grandiflora. A. Ramo florido; B. Nectário foliar; C. Pétala posterior; D. Pétalas postero-laterais; E. Pétalas antero-laterais; F. Androceu e gineceu. G-L. S. obtusifolia. G. Ramo florido; H. Nectário foliar; I. Pétala posterior; J. Pétalas postero-laterais; K. Pétalas antero-laterais; L. Androceu e gineceu. M-R. S. occidentalis. M. Ramo fértil; N. Nectário foliar; O. Pétala posterior; P. Pétalas posterolaterais; Q. Pétalas antero-laterais; R. Androceu e gineceu. (81-86: E. P. Heringer, A. E. Heringer Salles & F. C. Silva 16996 – NY; 87-92: J. P. Santos & M. M. Dantas 376 - UFG; 93-98: J. P. Santos & M. M. Dantas 371 - UFG).
Figs. 2A-Q. A-F. Senna cana var. hypoleuca. A in Taxonomia e diversidade do gênero Senna Mill. (Leguminosae, Caesalpinioideae, Cassieae) no estado de Goiás, Brasil
Figs. 2A-Q. A-F. Senna cana var. hypoleuca. A. Ramo florido; B. Estípula; C. Pétala posterior; D. Pétalas postero-laterais; E. Pétalas antero-laterais; F. Androceu e gineceu. G-K. S. cernua. G. Ramo com flores e frutos; H. Pétala posterior; I. Pétalas postero-laterais; J. Pétalas antero-laterais; K. Androceu e gineceu. L-Q. S. corifolia var. corifolia. L. Ramo florido; M. Nectário foliar; N. Pétala posterior; O. Pétalas postero-laterais; P. Pétalas antero-laterais; Q. Androceu e gineceu. (A-F: J. P. Santos, M. J. Silva & M. M. Dantas 385 - UFG; G-2K: J. P. Santos 424 - UFG; L-Q: J. P. Santos et al. 282 - UFG).
Figs. 11A-V. A-F. Senna splendida var. splendida. A in Taxonomia e diversidade do gênero Senna Mill. (Leguminosae, Caesalpinioideae, Cassieae) no estado de Goiás, Brasil
Figs. 11A-V. A-F. Senna splendida var. splendida. A. Ramo florido; B. Botão floral; C. Pétala posterior; D. Pétalas postero-laterais; E. Pétalas postero-laterais; F. Androceu e gineceu. G-K. S. splendida var. gloriosa: G. Botão floral; H. Pétala posterior; I. Pétalas postero-laterais; J. Pétalas antero-laterais; K. Androceu e gineceu. L-Q. S. uniflora: L. Ramo fértil; M. Pétala posterior; N. Pétalas postero-laterais; O. Pétalas antero-laterais; P. Androceu e gineceu; Q. Fruto. R-V. S. velutina: R. Ramo florido; S. Pétala posterior; T. Pétalas postero-laterais; U. Pétalas antero-laterais; V. Androceu e gineceu. (184-189: J. A. Rizzo & A. Barbosa 802 – UFG; 190-194: F. R. C. Martins et al. 311 – UB; 195-200: G. Hatschbach 39108 – NY; 201-205: J. P. Santos & L. L. C. Antunes 868 – UFG).
Figs. 10A-D2. A-F. Senna silvestris var. silvestris. A in Taxonomia e diversidade do gênero Senna Mill. (Leguminosae, Caesalpinioideae, Cassieae) no estado de Goiás, Brasil
Figs. 10A-D2. A-F. Senna silvestris var. silvestris. A. Ramo florido; B. Folíolo; C. Pétala posterior; D. Pétalas postero-laterais; E. Pétalas anterolaterais; F. Androceu e gineceu. G-M. S. silvestris var. guaranitica. G. Folíolo; H. Face adaxial do folíolo; I. Face abaxial do folíolo; J. Pétala posterior; K. Pétalas postero-laterais; L. Pétalas antero-laterais; M. Androceu e gineceu. N-S. S. silvestris var. bifaria. N. Folíolo; O. Face abaxial do folíolo; P. Pétala posterior; Q. Pétalas postero-laterais; R. Pétalas antero-laterais; S. Androceu e gineceu. T-Y. S. silvestris var. velutina. T. Folíolo; U. Face adaxial do folíolo; V. Pétala posterior; W. Pétalas postero-laterais; X. Pétalas antero-laterais; Y. Androceu e gineceu. Z-D2. S. spectabilis var. excelsa. Z. Ramo florido; A2. Pétala posterior; B2. Pétalas postero-laterais; C2. Pétalas antero-laterais; D2. Androceu e gineceu. (154-159: M. A. Batalha 2439 – ESA; 160-166: J. P. Santos et al. 335 – UFG; 167-172: J. P. Santos & M.M. Dantas 381 – UFG; 173-178: H.S. Irwin, H. Maxwell & D. C. Wasshausen 21326 – UB; 179-183: J. P. Santos 259 – UFG).
Figs. 7A-Q. A-F. Senna pendula var. glabrata. A in Taxonomia e diversidade do gênero Senna Mill. (Leguminosae, Caesalpinioideae, Cassieae) no estado de Goiás, Brasil
Figs. 7A-Q. A-F. Senna pendula var. glabrata. A. Ramo florido; B. Pétala posterior; C. Pétalas postero-laterais; D. Pétalas antero-laterais; E. Androceu e gineceu; F. Fruto. G-J. S. pendula var. tenuifolia; G. Pétala posterior; H. Pétalas postero-laterais; I. Pétalas antero-laterais; J. Androceu e gineceu. K-Q. S. pentagonia var. valens. K. Ramo florido; L. Pétala posterior; M. Pétalas postero-laterais; N. Pétalas antero-laterais; O. Androceu e gineceu; P. Fruto; Q. Corte transversal do fruto. (99-104: J. P. Santos 354 – UFG; 105-108: G. Pereira-Silva et. al 10738 – UFG; 109-115: G. Hatschbach, A. Schinini & E. Barbosa 70998 – MBM).
Figs. 5A-P. A-H. Senna mucronifera. A in Taxonomia e diversidade do gênero Senna Mill. (Leguminosae, Caesalpinioideae, Cassieae) no estado de Goiás, Brasil
Figs. 5A-P. A-H. Senna mucronifera. A. Ramo fértil; B. Estípula; C. Ápice do folíolo; D. Pétala posterior; E. Pétalas postero-laterais; F. Pétalas antero-laterais; G. Androceu e gineceu; H. Fruto. I-N. S. multijuga var. multijuga. I. Ramo florido; J. Estípula; K. Pétala posterior; L. Pétalas postero-laterais; M. Pétalas antero-laterais; N. Androceu e Gineceu. O e P. S. multijuga var. lindleyana. O. Ramos florido; P. Estípula (65-72: J. P. Santos et. al 450 – UFG; 73-78: J. P. Santos 426 – UFG; 79 e 80: J. A. Rizzo et al. 8981 – UFG).
Figs. 3A-Q. A-E. Senna corifolia var. caesia. A in Taxonomia e diversidade do gênero Senna Mill. (Leguminosae, Caesalpinioideae, Cassieae) no estado de Goiás, Brasil
Figs. 3A-Q. A-E. Senna corifolia var. caesia. A. Ramo florido; B. Pétala posterior; C. Pétalas postero-laterais; D. Pétalas antero-laterais; E. Androceu e gineceu. F-K. S. georgica var. georgica. F. Ramo florido; G. Nectário foliar falóide; H. Pétala posterior; I. Pétalas postero-laterais; J. Pétalas antero-laterais; K. Androceu e gineceu; L. Fruto. M-Q. S. hirsuta var. hirsuta. L. Ramo frutificado; M. Pétala posterior; N. Pétalas postero-laterais; O. Pétalas antero-laterais; Q. Androceu e gineceu. (34-38: J. P. Santos, M. J. Silva & M. M. Dantas 386 – UFG; 39-45: J. P. Santos 420-b – UFG; 46: J. P. Santos et al. 509 – UFG; 47-50: E. P. Heringer 16975 – IBGE).
Ecoregion and community structure influences on the foliar elemental niche of balsam fir (Abies balsamea (L.) Mill.) and white birch (Betula papyrifera Marshall)
<p><strong><span>Context</span></strong><span>: Changes in foliar elemental niche properties, defined by axes of carbon (C), nitrogen (N), and phosphorus (P) concentrations, reflect how species allocate resources under different environmental conditions. For instance, elemental niches may differ in response to large-scale latitudinal temperature and precipitation regimes that occur between ecoregions and small-scale differences in nutrient dynamics based on species co-occurrences at a community level.</span></p> <p><strong><span>Methods</span></strong><span>: at a species level, we compared foliar elemental niche hypervolumes for balsam fir (<em>Abies balsamea</em> (L.) Mill.) and white birch (<em>Betula papyrifera</em> Marshall) between a northern and southern ecoregion. At a community level, we grouped our focal species using plot data into conspecific (i.e., only one focal species is present) and heterospecific groups (i.e., both focal species are present) and compared their foliar elemental concentrations under these community conditions across, within, and between these ecoregions. Between ecoregions at the species and community level, we expected niche hypervolumes to be different and driven by regional biophysical effects on foliar N and P concentrations. At the community level, we expected niche hypervolume displacement and expansion patterns for fir and birch, respectively – patterns that reflect their resource strategy.</span></p> <p><strong><span>Results</span></strong><span>: at the species level, foliar elemental niche hypervolumes between ecoregions differed significantly for fir (F = 14.591, p-value = 0.001) and birch (F = 75.998, p-value = 0.001) with higher foliar N and P in the northern ecoregion. At the community level, across ecoregions, the foliar elemental niche hypervolume of birch differed significantly between heterospecific and conspecific groups (F = 4.075, p-value = 0.021) but not for fir. However, both species displayed niche expansion patterns, indicated by niche hypervolume increases of 35.49% for fir and 68.92% for birch. Within the northern ecoregion, heterospecific conditions elicited niche expansion responses, indicated by niche hypervolume increases for fir of 29.04% and birch of 66.48%. In the southern ecoregion we observed a contraction response for birch (niche hypervolume decreased by 3.66%), and no changes for fir niche hypervolume. Conspecific niche hypervolume comparisons between ecoregions yielded significant differences for fir and birch (F = 7.581, p-value = 0.005 and F = 8.038, p-value = 0.001) as did heterospecific comparisons (F = 6.943, p-value = 0.004, and F = 68.702, p-value = 0.001, respectively). </span></p> <p><strong><span>Conclusions</span></strong><span>: our results suggest species may exhibit biogeographical specific elemental niches – driven by biophysical differences such as those used to describe ecoregion characteristics. We also demonstrate how a species resource strategy may inform niche shift patterns in response to different community settings. Our study highlights how biogeographical differences may influence foliar elemental traits and how this may link to concepts of ecosystem and landscape functionality.</span></p>
Text-fig. A1. a: Ulmus longifolia UNGER, 1847 (Unger 1847: pl. 26, fig. 5). b: Ulmus braunii HEER, 1856 (Heer 1856: pl. 79, fig. 17). c: Ulmus affinis A.MASSAL., 1853 (Massallongo 1854: pl. 4, fig. 8). d, e: Ulmus carpinifolia GLED., 1773 syn. of Ulmus minor MILL., 1768, (herbarium K566057), UK. Scale bars 30 mm (a–e). in The Late Early Pleistocene Flora Of Oriolo, Faenza (Italy): Assembly Of The Modern Forest Biome
Text-fig. A1. a: Ulmus longifolia UNGER, 1847 (Unger 1847: pl. 26, fig. 5). b: Ulmus braunii HEER, 1856 (Heer 1856: pl. 79, fig. 17). c: Ulmus affinis A.MASSAL., 1853 (Massallongo 1854: pl. 4, fig. 8). d, e: Ulmus carpinifolia GLED., 1773 syn. of Ulmus minor MILL., 1768, (herbarium K566057), UK. Scale bars 30 mm (a–e).
Text-fig. A2. a: Ulmus carpinifolia GLED., 1773 syn. of Ulmus minor MILL., 1768, (herbarium E00824885). b: Ulmus carpinifolia GLED., 1773 syn. of Ulmus minor MILL., 1768, (herbarium E00824885). c: Ulmus carpinifolia GLED., 1773 syn. of Ulmus minor MILL., 1768, (herbarium E00824885 detail of (a)). d, e: Ulmus elliptica K.KOCH, 1849 (herbarium E00034393). f, g: Ulmus lancifolia ROXB., 1814, nom. inval. (herbarium NMNH03413489). h: Ulmus lancifolia ROXB., 1814, nom. inval. (herbarium NMNH03413488). Asterisks indicate different types of asymmetric leaf base. Scale bars 50 mm (a, d, e, f), 10 mm (b, c, g, h). in The Late Early Pleistocene Flora Of Oriolo, Faenza (Italy): Assembly Of The Modern Forest Biome
Text-fig. A2. a: Ulmus carpinifolia GLED., 1773 syn. of Ulmus minor MILL., 1768, (herbarium E00824885). b: Ulmus carpinifolia GLED., 1773 syn. of Ulmus minor MILL., 1768, (herbarium E00824885). c: Ulmus carpinifolia GLED., 1773 syn. of Ulmus minor MILL., 1768, (herbarium E00824885 detail of (a)). d, e: Ulmus elliptica K.KOCH, 1849 (herbarium E00034393). f, g: Ulmus lancifolia ROXB., 1814, nom. inval. (herbarium NMNH03413489). h: Ulmus lancifolia ROXB., 1814, nom. inval. (herbarium NMNH03413488). Asterisks indicate different types of asymmetric leaf base. Scale bars 50 mm (a, d, e, f), 10 mm (b, c, g, h).
Castanea sativa Mill. (BR0000024487986)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Castanea sativa Mill. (BR0000012013708)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Castanea sativa Mill. (BR0000024487900)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Castanea sativa Mill. (BR0000024487993)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
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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.