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295 results for “tropical dry forest”
FIGURE 1 in Ciliate species from tank-less bromeliads in a dry tropical forest and their geographical distribution in the Neotropics
FIGURE 1. Location of the Biosphere Reserve Chamela-Cuixmala, Jalisco, Mexico.
FIGURE 1 in Biogeographical identity of the Mesoamerican dominion with emphasis on seasonally dry tropical forests
FIGURE 1. Geographical extension of the Mesoamerican dominion.
TABLE 1 in Hysterium madraspatanum (Hysteriaceae), a new species from Tropical Dry Evergreen Forest of Tamil Nadu, India
<p><b>TABLE 1.</b> Taxa names, Culture accession, and corresponding GenBank accession numbers of the taxa used in the phylogenetic analyses. Newly generated sequences in this study are indicated in bold.</p><table><tbody><tr><th><b>Taxon</b></th><th><b>Culture accession</b></th><th><b>GenBank accession Number</b></th></tr></tbody><tbody><tr><th><i>Gloniopsis leucaenae</i></th><td>MFLUCC17-2425</td><td>NR163334</td></tr><tr><th><i>Gloniopsis calami</i></th><td>MFLUCC14-0049</td><td>MN860550</td></tr><tr><th><i>Hysterobrevium constrictum</i></th><td>JCM2753</td><td>LC228641</td></tr><tr><th><i>Hysterobrevium mori</i></th><td>-</td><td>KY496739.1</td></tr><tr><th><i>Rhytidhysteron thailandicum</i></th><td>MFLU:19-2373</td><td>MN989428</td></tr><tr><th><i>Rhytidhysteron mangrovei</i></th><td>MFLU 18-1894</td><td>NR165548.1</td></tr><tr><th><i>Rhytidhysteron chromolaenae</i></th><td>MFLUCC17-1516</td><td>NR171860</td></tr><tr><th><i>Rhytidhysteron subrufulum</i></th><td>SDBR-CMU475</td><td>OQ943972</td></tr><tr><th><i>Rhytidhysteron magnoliae</i></th><td>KUMCC21-0478</td><td>OP494093</td></tr><tr><th><i>Rhytidhysteron neorufulum</i></th><td>MFLUCC13-0221</td><td>KU377562</td></tr><tr><th><i>Hysterium rhizophorae</i></th><td>PUFD43</td><td>MG844284.1</td></tr><tr><th><i>Hysterium pulicare</i></th><td>CBS240.34</td><td>MH855497</td></tr><tr><th><i>Hysterium angustatum</i></th><td>MFLUCC:11-0004</td><td>MN608547</td></tr><tr><th><i>Hysterium angustatum</i></th><td>GZCC 19-0119</td><td>OR225030.1</td></tr><tr><th><i>Hysterium madraspatanum</i></th><td><b>MRL-MCC001</b></td><td><b>OR420067</b></td></tr><tr><th><i>Anteaglonium rubescens</i></th><td>CBS 143911</td><td>NR164489.1</td></tr><tr><th><i>Anteaglonium parvulum</i></th><td>17626ITS</td><td>MN582759</td></tr><tr><th><i>Anteaglonium gordoniae</i></th><td>C332</td><td>MK347761</td></tr><tr><th><i>Anteaglonium hydei</i></th><td>GZCC 20-0196</td><td>OR224994.1</td></tr><tr><th><i>Anteaglonium lusitanicum</i></th><td>AMI-SPL647</td><td>OP441407</td></tr></tbody></table>
Data from: Estimation of aboveground net primary productivity in secondary tropical dry forests using the Carnegie–Ames–Stanford approach (CASA) model
Although tropical dry forests (TDFs) cover roughly 42% of all tropical ecosystems, extensive deforestation and habitat fragmentation pose important limitations for their conservation and restoration worldwide. In order to develop conservation policies for this endangered ecosystem, it is necessary to quantify their provision of ecosystems services such as carbon sequestration and primary production. In this paper we explore the potential of the Carnegie–Ames–Stanford approach (CASA) for estimating aboveground net primary productivity (ANPP) in a secondary TDF located at the Santa Rosa National Park (SRNP), Costa Rica. We calculated ANPP using the CASA model (ANPPCASA) in three successional stages (early, intermediate, and late). Each stage has a stand age of 21 years, 32 years, and 50+ years, respectively, estimated as the age since land abandonment. Our results showed that the ANPPCASA for early, intermediate, and late successional stages were 3.22 Mg C ha−1 yr−1, 8.90 Mg C ha−1 yr−1, and 7.59 Mg C ha−1 yr−1, respectively, which are comparable with rates of carbon uptake in other TDFs. Our results indicate that key variables that influence ANPP in our dry forest site were stand age and precipitation seasonality. Incident photosynthetically active radiation and temperature were not dominant in the ANPPCASA. The results of this study highlight the potential of the use of remote sensing techniques and the importance of incorporating successional stage in accurate regional TDF ANPP estimation.
Supplementary material 3 from: Ariza GM, Jácome J, Esquivel HE, Kotze DJ (2021) Early successional dynamics of ground beetles (Coleoptera, Carabidae) in the tropical dry forest ecosystem in Colombia. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 877-906. https://doi.org/10.3897/zookeys.1044.59475
Table S3
Figure 1 from: Ariza GM, Jácome J, Esquivel HE, Kotze DJ (2021) Early successional dynamics of ground beetles (Coleoptera, Carabidae) in the tropical dry forest ecosystem in Colombia. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 877-906. https://doi.org/10.3897/zookeys.1044.59475
Figure 1 Geographic location of the study sites A the location of Armero and Cambao in Colombia B Armero C Cambao. Abbreviations: F = forest, ES = early succession, P = pasture. Maps courtesy of DIVA-GIS 7.5 and Google Earth Image 2020. For more details, see the online map at https://www.google.com/maps/d/u/3/edit?mid=1le-kQOQFh8RumUibWP3D8ghtxVvGM-eF&usp=sharing
Figure 3 from: Ariza GM, Jácome J, Esquivel HE, Kotze DJ (2021) Early successional dynamics of ground beetles (Coleoptera, Carabidae) in the tropical dry forest ecosystem in Colombia. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 877-906. https://doi.org/10.3897/zookeys.1044.59475
Figure 3 Non-metric multidimensional scaling ordination of carabid beetle assemblages at Armero (Colombia). Wet and dry season catches were analyzed and plotted separately. The catch in five of the ten forest samples returned zero individuals, and were removed from the analysis. The ellipses indicate 1 SD of the weighted average of site scores of forest (dotted line), early succession (long dashed line), and pasture (solid line). Abbreviations of the significant environmental vectors: soiltemp = soil temperature, airtemp = air temperature, litterdepth = leaf litter depth (cm), canopy = percentage canopy cover. Stress value 0.06.
Supplementary material 2 from: Ariza GM, Jácome J, Esquivel HE, Kotze DJ (2021) Early successional dynamics of ground beetles (Coleoptera, Carabidae) in the tropical dry forest ecosystem in Colombia. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 877-906. https://doi.org/10.3897/zookeys.1044.59475
Table S2
Figure 5 from: Ariza GM, Jácome J, Esquivel HE, Kotze DJ (2021) Early successional dynamics of ground beetles (Coleoptera, Carabidae) in the tropical dry forest ecosystem in Colombia. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 877-906. https://doi.org/10.3897/zookeys.1044.59475
Figure 5 Generalized Linear Mixed Model predicted (mean ± SE) number of individuals of Calosoma alternans, genus Megacephala and the remaining carabid beetle species collected from Armero and Cambao combined across the three habitat types (forest, early succession, and pasture). Note different y-axis scales.
Supplementary material 1 from: Ariza GM, Jácome J, Esquivel HE, Kotze DJ (2021) Early successional dynamics of ground beetles (Coleoptera, Carabidae) in the tropical dry forest ecosystem in Colombia. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 877-906. https://doi.org/10.3897/zookeys.1044.59475
Table S1
Figure 4 from: Ariza GM, Jácome J, Esquivel HE, Kotze DJ (2021) Early successional dynamics of ground beetles (Coleoptera, Carabidae) in the tropical dry forest ecosystem in Colombia. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 877-906. https://doi.org/10.3897/zookeys.1044.59475
Figure 4 Generalized Linear Model predicted (mean ± SE) number of individuals of Calosoma alternans and the remaining carabid beetle species collected from Armero across the three habitat types (forest, early succession, and pasture). Note different y-axis scales.
Figure 2 from: Ariza GM, Jácome J, Esquivel HE, Kotze DJ (2021) Early successional dynamics of ground beetles (Coleoptera, Carabidae) in the tropical dry forest ecosystem in Colombia. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 877-906. https://doi.org/10.3897/zookeys.1044.59475
Figure 2 Rarefaction and extrapolation richness curves for carabid beetles from Armero (A–C), and Armero and Cambao combined (D–F) A, D comparison of richness between habitats using sample-size-based curves B, E sample completeness curves C, F comparison of richness using coverage-based curves. Abbreviations: F = forest, ES = early succession, P = pasture. Numbers in parentheses denote sample sizes and the observed Hill number (q = 0) (A, D), sample size and the estimated sample coverage (B, E), and the estimated sample coverage and the observed Hill number (q = 0) (C, F), respectively.
Figure 2 in Diversity of orb-weaving spiders (Arachnida: Araneae) from tropical dry forest in Northern Colombia, with eleven new records for the country
Figure 2. Distribution of richness and relative abundance (%) by family for each forest.
Data from: Estimation of aboveground net primary productivity in secondary tropical dry forests using the Carnegie–Ames–Stanford approach (CASA) model
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Data from: Conservative species drive biomass productivity in tropical dry forests
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Seed dispersal by carnivores in temperate and tropical dry forests
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Data from: Shifting species and functional diversity due to abrupt changes in water availability in tropical dry forests
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Seed consumption by small fish follows peak seed availability in a tropical dry forest river
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Figure 1 from: Osorio-Beristain M, Rodríguez A, Martínez-Garza C, Alcalá RE (2018) Relating flight initiation distance in birds to tropical dry forest restoration. Zoologia 35: 1-7. https://doi.org/10.3897/zoologia.35.e12642
Figure 1 Mean (± SE) flight initiation distance scored in the three avian species evaluated.
Figure 9 in Three new Mexican species of the endemic Athysanini leafhopper genus Devolana DeLong (Hemiptera: Cicadellidae) from the tropical dry forest
Figure 9. Devolana xajxayakamej Pinedo-Escatel, sp. nov., holotype male genitalia: (a) pygofer, dorsal; (b) pygofer, lateral; (c) valve, ventral; (d) subgenital plate, ventral; (e) aedeagus, lateral; (f) apex of aedeagus, caudal; (g) aedeagus, ventral; (h) left style, dorsal; (i) connective, dorsal.
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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.