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407 results for “riparian”
FIGURE 1 in Forestiera veracruzana (Oleaceae), a new species from the riparian forests of central Veracruz, Mexico
FIGURE 1. Collection localities of Forestiera veracruzana sp. nov.
Figure 8 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 8 - Longidorus cholevae sp. n. Juveniles: A–D Head ends of first- to fourth-stages F–I Tail end of first- to fourth-stages Female: E Anterior end J Tail. Scale-bar: 30 μm.
Figure 11 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 11 - Phylogenetic relationships of Longidorus cholevae sp. n. and its closest species for the partial 18S-ITS1 rDNA regions. Bayesian Inference strict consensus tree acquired under K2+G model. Numbers at the nodes indicating posterior probabilities higher that 0.8 and bootstrap values more that 70% for ML and NJ are presented.
Figure 4 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 4 - Longidorus cholevae sp. n. Female: A Anterior region of holotype B Head end C Amphidial fovea of holotype D Sphincter between uterus and pars dilatata oviductus E Caudal pores F Pharyngeal bulb G, H Variations in vagina shape; I–K Variations in tail shape. Scale bars: A, F 40 μm; E 20 μm; B–D, G–K 30 μm.
Figure 7 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 7 - Longidorus cholevae sp. n. Variations in tail shape: A–D Tail of first-fourth juvenile stageE Female Scale-bar: 50 μm.
Figure 10 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 10 - Phylogenetic relationships of Longidorus cholevae sp. n. and its closest species for the D2-D3 rDNA. Bayesian Inference strict consensus tree acquired under GTR+G model. Numbers at the nodes indicating posterior probabilities higher that 0.8 and bootstrap values more that 70% for ML and NJ are presented.
Figure 6 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 6 - Longidorus cholevae sp. n. Anterior region of: A–D First-fourth juvenile stage F Female G Male. Scale-bar: 50 μm.
Figure 1 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 1 - Longidorus cholevae sp. n. Female: A Anterior end F Habitus I Pharyngeal bulb J Anterior genital branch Male: G Habitus H Pharyngeal bulb Juveniles: B–E Habitus of first-, second-, third- and fourth-stage juveniles. Scale-bars: A, H, I, J 50 μm; B–G 1 mm.
Figure 9 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 9 - Longidorus cholevae sp. n. Scatter plot of the functional (•, juveniles and adults, females in orange) and replacement (◦, juveniles) odontostyle in relation to body length of the juvenile developmental stages and adults.
Figure 5 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 5 - Longidorus cholevae sp. n. Male: A Lip region B, C Amphidial fovea, B upper view C, lower view D Part of testis with radial muscles E Genital system of a young male F Tail, G Spicule H Lateral field I Protracted spicule. Scale bars: A–D, F–I 30 µm; E 40 µm.
Figure 3 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 3 - Longidorus cholevae sp. n. Female: A–C Variations in tail shape; Male: D, E Tail ends with spicules F Lateral piece. Scale-bars: 50 μm.
Figure 2 from: Peneva V, Lazarova S, De Luca F, J. F Brown D (2013) Description of Longidorus cholevae sp. n. (Nematoda, Dorylaimida) from a riparian habitat in the Rila Mountains, Bulgaria. ZooKeys 330: 1-26. https://doi.org/10.3897/zookeys.330.5750
Figure 2 - Longidorus cholevae sp. n. Female: A Anterior end B Lip region/amphidial fovea F–H Variations in vagina shape; Male: C Anterior end D Lip region/amphidial fovea E Sperms. Scale-bars: A–H 50 μm.
Effects of ants on riparian poplars: an ex situ experiment of biotic interaction
<p>Poplars establish on alluvial bars within sand and gravel-bed rivers. Alluvial bars also provide particularly suitable habitats<br> for the proliferation of ants. We hypothesized that ants, by modifying substrate structure and resource availability in fluvial<br> habitats, positively influence poplar growth during its establishment stage. We conducted a preliminary nine-month ex situ<br> greenhouse experiment with one ant species (Lasius niger L.) and six different genotypes of poplar cuttings (Populus nigra<br> L.), both collected on the Garonne River, SW France. Three main treatments: ‘P. nigra alone’, ‘P. nigra without ants and with<br> ant food’ and ‘P. nigra with ants and ant food’ were applied. After one growing season, we tested differences in branching<br> length and biomass of stems, roots and leaves. Certain genotypes showed significant differences in growth, but there were<br> no significant differences in stem length, dry mass of stems and roots between the three treatments. The total biomass of<br> poplars after the first growing season was positively affected by the initial size of the cuttings and was modulated by the<br> genotype independently from the treatments. However, an increased poplar growth for the treatment without ants and with<br> ant food was observed according to significant differences in dry weight of leaves and total biomass (i.e. dry mass of stems,<br> roots and leaves) for the pooled genotypes across treatments. We discuss our results with the aim of serving as a reference<br> for future in situ and ex situ experiments and field measurements exploring interactions between ants and poplars, specifically<br> in riparian ecosystems.en</p>
Data set and analytic codes supporting "The impacts of within-stream physical structure and riparian buffer strips on semi-aquatic bugs in Southeast Asian oil palm"
<p>This deposit contains data set and analytic codes (accompanied with a meta data) supporting "The impacts of within-stream physical structure and riparian buffer strips on semi-aquatic bugs in Southeast Asian oil palm". We assessed the impacts of within-stream physical structure and riparian buffer strips on semi-aquatic bug (Gerromorpha, Hemiptera) communities in oil palm streams in Sabah, Malaysia. Collections of semi-aquatic bugs were conducted from oil palm with and without riparian buffer strips.</p> <p>Several environmental parameters were collected to represent within-stream physical structure. We investigated the impacts on the abundance, biomass, species richness, and community composition of semi-aquatic bugs. Additionally, we studied the effects on the proportion of juveniles as well as female <em>Ptilomera</em> sp. (a morphospecies with clear sexual dimorphism in this study).</p> <p>This research was funded by the Jardine Foundation, the Cambridge Trust, the Natural Environment Research Council (NERC) (studentship 1122589), Proforest, the Varley Gradwell Travelling Fellowship, the Tim Whitmore Fund, the Panton Trust, the Cambridge University Commonwealth Fund, the Hanne and Torkel Weis-Fogh Fund, and the S.T. Lee Fund.</p>
Productivity of riparian Populus forests: satellite assessment along a prairie river with an environmental flow regime
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Data from: Bird species diversity in Altai riparian landscapes: wood cover plays a key role for avian abundance
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Data from: Effects of riparian forest harvest on streams: a meta-analysis
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Data from: Emerging reservoir delta-backwaters: biophysical dynamics and riparian biodiversity
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Avian point count data from riparian corridors of protected areas in Marin County California
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Data from: Unravelling the role of allochthonous aquatic resources to food web structure in a tropical riparian forest
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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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.