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623 results for “Bangladesh”
Figure 5 in Bioactivity and chemical screening of endophytic fungi associated with the seaweed Ulva sp. of the Bay of Bengal, Bangladesh
Figure 5: Isolate UE-6 (Collariella sp.). (A) Surface of colony, on potato dextrose agar after 12 days culture at 28 °C. (B) Reverse of colony. (C) Terminal ascomatal hairs with ascospores after 45 days culture. (D) Phylogenetic tree inferred from internal transcribed spacer sequences using maximum likelihood method.
Figure 1 in Bioactivity and chemical screening of endophytic fungi associated with the seaweed Ulva sp. of the Bay of Bengal, Bangladesh
Figure 1: Isolate UE-1 (Chaetomium globosum). (A) Surface of colony, on potato dextrose agar after 6 days culture at 28 °C. (B) Reverse of colony. (C) Ascomata after 28 days culture. (D) Asci.(E) Ascus with ascospores. (F) Ascospores. (G) Phylogenetic tree inferred from internal transcribed spacer sequences using maximum likelihood method.
Figure 5 in Seasonal Abundance of Economically Important Fruit Flies (Diptera: Tephritidae: Dacinae) in Bangladesh, in Relation to Abiotic Factors and Host Plants
Figure 5. Distribution and mean monthly trap captures of Dacus longicornis, in relation with abiotic factors and host fruit availability.
Figure 4 in Seasonal Abundance of Economically Important Fruit Flies (Diptera: Tephritidae: Dacinae) in Bangladesh, in Relation to Abiotic Factors and Host Plants
Figure 4. Distribution and mean monthly trap captures of Zeugodacus cucurbitae (A) and Z. tau (B), in relation with abiotic factors and host fruit availability.
Figure 3 in Seasonal Abundance of Economically Important Fruit Flies (Diptera: Tephritidae: Dacinae) in Bangladesh, in Relation to Abiotic Factors and Host Plants
Figure 3. Distribution and mean monthly trap captures of Bactrocera rubigina (A) and B. correcta (B), in relation with abiotic factors.
Figure 2 in Seasonal Abundance of Economically Important Fruit Flies (Diptera: Tephritidae: Dacinae) in Bangladesh, in Relation to Abiotic Factors and Host Plants
Figure 2. Distribution and mean monthly trap captures of Bactrocera dorsalis (A) and B. zonata (B), in relation with abiotic factors and host fruit availability.
Figure 1. A in Seasonal Abundance of Economically Important Fruit Flies (Diptera: Tephritidae: Dacinae) in Bangladesh, in Relation to Abiotic Factors and Host Plants
Figure 1. A: Fruit fly trapping sites maintained at the Atomic Energy Research Establishment compound in Bangladesh in 2016–2017 (sites 1 to 10) and 2017–2018 (sites 1, 8, 9). B: Mean monthly rainfall and minimum and maximum temperature recorded in Dhaka, Bangladesh, during the study period.
Lost Labour Index over Bangladesh (Hourly; 1980-2023)
<p>The Lost Labour Index is an estimate of the amount of time per hour (in minutes) lost to outdoor workers due heat conditions. The index is adapted from work rest guidelines based on wet bulb globe temperatures. The work-rest guidelines are described by Brimicombe et al. (2023) and Jacklitsch et al. (2016), and summarised below. </p> <p>WBGT (°C) | Approximated work/rest cycles (minutes) </p> <p>>33 | 0/60 (Rest) </p> <p>30–33 | 15/45</p> <p>28–30 | 30/30</p> <p>25–28 | 30/15</p> <p>23–25 | 45/15</p> <p><23 | 60/0 (No recommendations)</p> <p>The Lost Labour Index is extrapolated from these work rest guidelines, assuming that if it is recommended that a worker must rest for n number of minutes every hour to remain safe in given temperature conditions, that labour/time is "lost" to the worker. The exact conversion is shown below: </p> <p>WBGT (°C) | Approximated work/rest cycles (minutes) | Lost Labour (minutes)</p> <p>>33 | 0/60 (Rest) | 60</p> <p>30–33 | 15/45 | 45</p> <p>28–30 | 30/30 | 30</p> <p>25–28 | 30/15 | 20</p> <p>23–25 | 45/15 | 15</p> <p><23 | 60/0 (No recommendations) | 0</p> <p>The datasets used to calculate the initial wet bulb globe temperatures (from which the Lost Labour Index was derived) were ERA5 Land (t2m, d2m, u10, v10, ssrd, ssr, strd, and strr variables) (Muñoz Sabater, 2019) and ERA5 (fdir variable - resampled to ERA5 Land spatial resolution) (Hersbach et al., 2020). The wet bulb globe temperature data was calculated using the Thermofeel library (Brimicombe et al. 2022). </p> <p>The Lost Labour Index in these files is calculated for a spatial area that covers the whole of Bangladesh (20-27 °N, 87-93 °E) and a temporal period of 1980-01-01T00:00 - 2023-12-31T23:00. The data has a spatial resolution of 0.1° and an hourly temporal resolution. Individual files are provided as zipped netCDFs for the decades of 1980-1989, 1990-1999, 2000-2009, and 2010-2019. Two separate files are provided for data from 2020-2022 and 2023 respectively. </p> <div> </div> <div><strong>References</strong></div> <div> <div> <div>Brimicombe, C. <em>et al.</em> (2022) ‘Thermofeel: A python thermal comfort indices library’, <em>SoftwareX</em>, 18, p. 101005. Available at: <a href="https://doi.org/10.1016/j.softx.2022.101005">https://doi.org/10.1016/j.softx.2022.101005</a>.</div> <div> </div> </div> </div> <div> <div>Brimicombe, C. <em>et al.</em> (2023) ‘Wet Bulb Globe Temperature: Indicating Extreme Heat Risk on a Global Grid’, <em>GeoHealth</em>, 7(2), p. e2022GH000701. Available at: <a href="https://doi.org/10.1029/2022GH000701">https://doi.org/10.1029/2022GH000701</a>.</div> <div> </div> <div> <div> <div>Hersbach, H., Bell, B., Berrisford, P., Hirahara, S., Horányi, A., Muñoz‐Sabater, J., Nicolas, J., Peubey, C., Radu, R., Schepers, D., Simmons, A., Soci, C., Abdalla, S., Abellan, X., Balsamo, G., Bechtold, P., Biavati, G., Bidlot, J., Bonavita, M., De Chiara, G., Dahlgren, P., Dee, D., Diamantakis, M., Dragani, R., Flemming, J., Forbes, R., Fuentes, M., Geer, A., Haimberger, L., Healy, S., Hogan, R.J., Hólm, E., Janisková, M., Keeley, S., Laloyaux, P., Lopez, P., Lupu, C., Radnoti, G., de Rosnay, P., Rozum, I., Vamborg, F., Villaume, S., Thépaut, J-N. (2017): Complete ERA5 from 1940: Fifth generation of ECMWF atmospheric reanalyses of the global climate. Copernicus Climate Change Service (C3S) Data Store (CDS). DOI: <a href="https://doi.org/10.24381/cds.143582cf">10.24381/cds.143582cf </a></div> </div> </div> <div> </div> <div>Jacklitsch, B., Williams, J., Musolin, K., Coca, A., Kim, J.-H., & Turner, N. (2016). Criteria for a recommended standard: Occupational exposure to heat and hot environments.</div> <div> <p>Muñoz Sabater, J. (2019): ERA5-Land hourly data from 1950 to present. Copernicus Climate Change Service (C3S) Climate Data Store (CDS). DOI: 10.24381/cds.e2161bac</p> </div> </div>
Figure 4 in Additions to the Fruit Fly Fauna (Diptera: Tephritidae: Dacinae) of Bangladesh, with a Key to the Species
Figure 4. Abdomen color patterns for Bactrocera bogorensis (A), B. caudata (B), B. cilifera (C), B. correcta (D), B. cucurbitae (E), B. digressa (F), B. diversa (G), B. hochii (H), B. latifrons (I), B. nigrifacia (J), B. rubigina (K), B. species 45 (L), B. sp. (possibly B. bhutaniae) (M), B. tau (N), B. tuberculata (O), B. zonata (P), Dacus longicornis (Q), and D. ciliatus (R).
Figure 5 in Additions to the Fruit Fly Fauna (Diptera: Tephritidae: Dacinae) of Bangladesh, with a Key to the Species
Figure 5. Wings of Bactrocera bogorensis (A), B. caudata (B), B. cilifera (C), B. correcta (D), B. cucurbitae (E), B. digressa (F), B. diversa (G), B. dorsalis (H), B. hochii (I), B. latifrons (J), B. nigrifacia (K), B. rubigina (L), B. species 45 (M), B. sp. (possibly B. bhutaniae) (N).
Figure 2 in A Preliminary Survey of the Fruit Flies (Diptera: Tephritidae: Dacinae) of Bangladesh
Figure 2. Color variation patterns on scutum and abdomen of Bactrocera dorsalis in Bangladesh. Insert graph shows the proportion of specimens of each abdomen color pattern (A to E), included in each scutum pattern series (A to H) on the X axis.
Figure 3 in Additions to the Fruit Fly Fauna (Diptera: Tephritidae: Dacinae) of Bangladesh, with a Key to the Species
Figure 3. Scutum color patterns for Bactrocera bogorensis (A), B. caudata (B), B. cilifera (C), B. correcta (D), B. cucurbitae (E), B. digressa (F), B. diversa (G), B. hochii (H), B. latifrons (I), B. nigrifacia (J), B. rubigina (K), B. species 45 (L,M,N), B. sp. (possibly B. bhutaniae) (O), B. tau (P), B. tuberculata (Q), B. zonata (R), Dacus longicornis (S), and D. ciliatus (T).
Figure 6 in Additions to the Fruit Fly Fauna (Diptera: Tephritidae: Dacinae) of Bangladesh, with a Key to the Species
Figure 6. Wings of Bactrocera tau (A), B. tuberculata (B), B. zonata (C), Dacus longicornis (D), and D. ciliatus (E).
Figure 2 in Additions to the Fruit Fly Fauna (Diptera: Tephritidae: Dacinae) of Bangladesh, with a Key to the Species
Figure 2. Face color patterns for Bactrocera bogorensis (A), B. caudata (B), B. cilifera (C), B. diversa female (D) and male (E), and B. tau (F).
Fig. 1 in Molecular characterization of Blastocystis sp. in captive wildlife in Bangladesh National Zoo: Non-human primates with high prevalence and zoonotic significance
Fig. 1. Phylogenetic tree of the Blastocystis sp. isolates and reference SSU rRNA gene sequences from GenBank based on maximum likelihood analysis. The tree was rooted on Karotomorpha sp. and Protoopalina intestinalis. Bootstrap values> 50% from 1,000 replicates are shown on the nodes. Reference sequences from GenBank have accession number and host designation. The isolates of seven subtypes, with their host designations, are indicated by triangle shape.
Figure 3 in Description of three new species of Aseptate Gregarine, Monocystis von Stein, 1848 of Oligochaetes collected from Dhaka, Bangladesh
Figure 3. Monocystis hamidae sp. nov. (photomicrographs of different stages of the life cycle) A. Trophozoite; B. Gametocyst; C. Oocyst. Scale-bars. A-B, 100 µm; C, 10 µm.
Figure 5 in Description of three new species of Aseptate Gregarine, Monocystis von Stein, 1848 of Oligochaetes collected from Dhaka, Bangladesh
Figure 5. Monocystis ribbonae sp. nov. (photomicrographs of different stages of the life cycle) A. Trophozoite; B. Gametocyst; C. Oocyst. Scale-bars. A-B, 100 µm; C, 10 µm.
Figure 4 in Description of three new species of Aseptate Gregarine, Monocystis von Stein, 1848 of Oligochaetes collected from Dhaka, Bangladesh
Figure 4. Monocystis hamidae sp. nov. (camera lucida drawings of different stages of the life cycle) A. Trophozoite; B. Gametocyst; C. Oocyst. Scale-bars. A-B, 100 µm; C, 10 µm.
Figure 1 in Description of three new species of Aseptate Gregarine, Monocystis von Stein, 1848 of Oligochaetes collected from Dhaka, Bangladesh
Figure 1. Monocystis bangladeshensis sp. nov. (photomicrographs of different stages of the life cycle) A. Trophozoite; B. Gametocyst; C. Oocyst. Scale-bars. A-B, 100 µm; C, 10 µm.
Figure 1 in Two new records of dragonet fish, Callionymus sagitta Pallas, 1770 and Callionymus erythraeus Ninni, 1934 from Bangladesh
Figure 1. (★) Sampling location of Callionymus sagitta (F1612sb-184) and (▼) sampling location of Callionymus erythraeus (F1710SM-03).
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.