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955 results for “Subtropical”
Figure 4 in Field studies in small streams of the Atlantic Forest of southern subtropical Brazil reveal two new interstitial microcambevine catfishes of the genus Listrura (Siluriformes: Trichomycteridae)
Figure 4. Map of the geographical distribution of Listrura in the southernmost portion of the Atlantic Forest.
Figure 7 in Field studies in small streams of the Atlantic Forest of southern subtropical Brazil reveal two new interstitial microcambevine catfishes of the genus Listrura (Siluriformes: Trichomycteridae)
Figure 7. Listrura urussanga sp. nov., UFRJ 6914, holotype, 35.5 mm SL: (a) dorsal view; (b) ventral view.
Figure 2 in Field studies in small streams of the Atlantic Forest of southern subtropical Brazil reveal two new interstitial microcambevine catfishes of the genus Listrura (Siluriformes: Trichomycteridae)
Figure 2. Head of Listrura gyrinura sp. nov., UFRJ 6927, holotype, 39.9 mm SL: (a) dorsal view; (b) ventral view.
Figure 6 in Field studies in small streams of the Atlantic Forest of southern subtropical Brazil reveal two new interstitial microcambevine catfishes of the genus Listrura (Siluriformes: Trichomycteridae)
Figure 6. Listrura urussanga sp. nov., UFRJ 6914, holotype, 35.5 mm SL: (a) left lateral view; (b) dorsal view; (c) ventral view.
Figure 5 in Field studies in small streams of the Atlantic Forest of southern subtropical Brazil reveal two new interstitial microcambevine catfishes of the genus Listrura (Siluriformes: Trichomycteridae)
Figure 5. Detailed view of the type locality of: (a) Listrura gyrinura sp. nov.; (b) Listrura urussanga sp. nov.
Figure 3 in Field studies in small streams of the Atlantic Forest of southern subtropical Brazil reveal two new interstitial microcambevine catfishes of the genus Listrura (Siluriformes: Trichomycteridae)
Figure 3. Osteological structures of: (a–c) Listrura gyrinura sp. nov.; (d–f) Listrura urussanga sp. nov.: (a, d) mesethmoidal region and adjacent structures, left and middle portions, dorsal view; (b, e) left suspensorium and opercular series, lateral view; (c, f) parurohyal, ventral view. Abbreviations of structures indicated by arrows are: aap, articular autopalatine process; ppp, parurohyal posterior process. Larger stippling represents cartilaginous areas.
Dataset for 'Phytoplankton community response to episodic wet and dry aerosol deposition in the subtropical North Atlantic' by Yuan et al. 2023. Limnology and Oceanography.
<p>Dataset for 'Phytoplankton community response to episodic wet and dry aerosol deposition in the subtropical North Atlantic' by Yuan et al. 2023. Limnology and Oceanography.</p>
Data from: Standing decomposition of dead leaves in winter and its legacy effects should not be ignored in subtropical forests
<p><span>Background and Aims</span></p> <p><span>Dead leaves may remain standing all winter before entering the soil as litter in subtropical forests. However, little is known about the standing decomposition of dead leaves and how this might influence subsequent litter decomposition in the soil. </span></p> <p><span>Methods</span></p> <p><span>We conducted an investigation of the standing decomposition of dead leaves in winter in a subtropical forest. In the following summer, we conducted a decomposition experiment of pre-standing litter (dead leaves picked immediately after leaf </span><span>death) and post-standing litter (dead leaves picked after winter) in the soil using the litterbag method, further exploring the influences of the standing process on subsequent litter decomposition in the soil. </span></p> <p><span>Results</span></p> <p><span>After 159 days of standing decomposition, up to 43% of leaf mass was lost, with lignin and cellulose degraded by 30% and 35%, respectively. After 163 days of decomposition in the soil, the mass losses of pre-standing and post-standing litter were 31% and 52%, respectively. The decomposition rate (k) of post-standing litter was 2 times that of pre-standing litter. Restrained by the low photodegradability of litter in the later stage of decomposition, standing decomposition still conformed to the exponential decomposition model.</span></p> <p><span>Conclusion</span></p> <p><span>The standing decomposition of dead leaves in winter is driven predominantly by the abiotic process of photodegradation with leaching, resulting in substantial carbon loss in the standing phase and a doubling of the subsequent litter decomposition rate in soil, thus profoundly influencing the carbon process of subtropical forest ecosystems.</span> </p>
Methane emissions in a subtropical mangrove forest (Ishikaki Island, Japan)
<p>The data set provides CH<sub>4</sub> flux from buttress roots and stems of individuals of <em>Bruguiera gymnorrhiza</em> of different sizes in Ishigaki Island, Japan. It also provides CH<sub>4</sub> flux from trees and sediments over a 24-hour cycle.</p>
Data from: Environmental filtering underpins the island species–area relationship in a subtropical anthropogenic archipelago
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Data from: Edge effects and beta diversity in ground and canopy beetle communities of fragmented subtropical forest
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Data from: Multi-trophic guilds respond differently to changing elevation in a subtropical forest
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Data from: Seasonal dynamics of waterbird assembly mechanisms revealed by phylogenetic and functional diversity in a subtropical wetland
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Data from: Heterogeneous distributional responses to climate warming: evidence from rodents along a subtropical elevational gradient
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Litter and root traits control soil microbial composition and enzyme activities in 28 common subtropical tree species
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Data from: Multi-decadal time series of remotely sensed vegetation improves prediction of soil carbon in a subtropical grassland
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Data from: Abundance of small mammals correlates with their elevational range sizes and elevational distributions in the subtropics
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Data from: Examining the interglacial high-elevation refugia scenario in East Asian subtropical mountain systems with the frog species Leptobrachium liui
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Data from: How do functional traits influence tree demographic properties in a subtropical monsoon forest?
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Data from: Standing decomposition of dead leaves in winter and its legacy effects should not be ignored in subtropical forests
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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.