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Figure 6 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 6 - A portion (Koeleriinae clade B) of the maximum likelihood phylogram inferred from ITS+ETS data. ML bootstrap support (left) and BI poster probabilities (right) are recorded along branches. A dash indicates bootstrap support <50% or posterior probability <.5. No support is shown for branches with bootstrap support <50% and posterior probability <.5. The shaded area of the smaller tree on the left indicates the location in the overall tree of the portion shown.
Figure 23 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 23 - A portion (part of Agrostidinae p.p.) of the maximum likelihood phylogram inferred from combined plastid data (atpF–atpH, psbK–psbI, psbA–rps19–trnH, matK, trnL–trnF). ML bootstrap support (left) and BI poster probabilities (right) are recorded along branches. A dash indicates bootstrap support <50%. No support is shown for branches with bootstrap support <50% and posterior probability <.5. The shaded area of the smaller tree on the left indicates the location in the overall tree of the portion shown. Placement of the sample with asterisks (***) is incongruent in nrDNA and plastid trees. An indel in psbK–psbI is mapped onto the phylogram.
Figure 12 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 12 - A portion (part of Agrostidinae p.p. and Calothecinae p.p.) of the maximum likelihood phylogram inferred from ITS data. ML bootstrap support is recorded along branches when >50%. The shaded area of the smaller tree on the left indicates the location in the overall tree of the portion shown.
Figure 11 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 11 - A portion (part of Agrostidinae p.p.) of the maximum likelihood phylogram inferred from ITS data. ML bootstrap support is recorded along branches when >50%. The shaded area of the smaller tree on the left indicates the location in the overall tree of the portion shown.
Figure 10 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 10 - A portion (part of Agrostidinae p.p., Brizinae p.p., Calothecinae p.p. and Torreyochloinae) of the maximum likelihood phylogram inferred from ITS data. ML bootstrap support is recorded along branches when >50%. The shaded area of the smaller tree on the left indicates the location in the overall tree of the portion shown. Backbone branches represented by ellipses are shown only in Figure 2.
Figure 1 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 1 - Overview of the maximum likelihood phylogram inferred from ITS+ETS data. Major clades in the complete tree are collapsed. The corresponding figures showing details of subsections of the tree are indicated. ML bootstrap support (left) and BI poster probabilities (right) are recorded along branches. A dash indicates bootstrap support <50%. No support is shown for branches with bootstrap support <50% and posterior probability <.5. The ML tree is presented in its entirety in Suppl. material 3.
Figure 13 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 13 - A portion (Anthoxanthinae) of the maximum likelihood phylogram inferred from ITS data. ML bootstrap support is recorded along branches when >50%. The shaded area of the smaller tree on the left indicates the location in the overall tree of the portion shown. The backbone branch represented by ellipses is shown only in Fig. 2.
Figure 5 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 5 - A portion (Sesleriinae, Aveninae s.str., Koeleriinae clade A) of the maximum likelihood phylogram inferred from ITS+ETS data. ML bootstrap support (left) and BI poster probabilities (right) are recorded along branches. A dash indicates bootstrap support <50%. No support is shown for branches with bootstrap support <50% and posterior probability <.5. The shaded area of the smaller tree on the left indicates the location in the overall tree of the portion shown. Placements of samples with asterisks (***) are incongruent in nrDNA and plastid trees. Two indels in ETS and one in ITS are mapped onto the phylogram.
Figure 4 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 4 - A portion (Holcinae p.p., Agrostidinae p.p., Loliinae, Dactylidinae and Poinae) of the maximum likelihood phylogram inferred from ITS+ETS data. ML bootstrap support (left) and BI poster probabilities (right) are recorded along branches. A dash indicates bootstrap support <50%. No support is shown for branches with bootstrap support <50% and posterior probability <.5. The shaded area of the smaller tree on the left indicates the location in the overall tree of the portion shown. The branch subtending Dactylidinae, with double slashes, is shortened for presentation. Backbone branches represented by ellipses are shown only in Figure 1.
Figure 20 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 20 - A portion (Calamagrostis pisinna, Lagurus, Aveninae s.str. and Koeleriinae clade A) of the maximum likelihood phylogram inferred from combined plastid data (atpF–atpH, psbK–psbI, psbA–rps19–trnH, matK, trnL–trnF). ML bootstrap support (left) and BI poster probabilities (right) are recorded along branches. No support is shown for branches with bootstrap support <50% and posterior probability <.5. A dash indicates bootstrap support <50%. The shaded area of the smaller tree on the left indicates the location in the overall tree of the portion shown. Placements of samples with asterisks (***) are incongruent in nrDNA and plastid trees. Slashes (//) identify a branch shortened for presentation. Two indels in psbK–psbI are mapped onto the phylogram.
Figure 15 from: Saarela JM, Bull RD, Paradis MJ, Ebata SN, Peterson PM, Soreng RJ, Paszko B (2017) Molecular phylogenetics of cool-season grasses in the subtribes Agrostidinae, Anthoxanthinae, Aveninae, Brizinae, Calothecinae, Koeleriinae and Phalaridinae (Poaceae, Pooideae, Poeae, Poeae chloroplast group 1). PhytoKeys 87: 1-139. https://doi.org/10.3897/phytokeys.87.12774
Figure 15 - A portion (Lagurus, Koeleriinae clade B) of the maximum likelihood phylogram inferred from ITS data. ML bootstrap support is recorded along branches when >50%. The shaded area of the smaller tree on the left indicates the location in the overall tree of the portion shown.
Рис. 1. Приморские склоны в б. МелководнаЯ, поросШие травой – место обнаружениЯ Deroceras caucasicum на о-ве Русский. Fig. 1. Maritime slopes in Melkovodnaya Bay covered by grass – the biotope locality of Deroceras caucasicum in Russky Island. in Invasion of the pest slug Deroceras caucasicum (Simroth, 1901) to the islands of Peter the Great Bay (Sea of Japan)
Рис. 1. Приморские склоны в б. МелководнаЯ, поросШие травой – место обнаружениЯ Deroceras caucasicum на о-ве Русский. Fig. 1. Maritime slopes in Melkovodnaya Bay covered by grass – the biotope locality of Deroceras caucasicum in Russky Island.
Figure1 in New records of alien and potentially invasive grass (Poaceae) species for southern Africa
Figure1. Agrostis capillaris; A, whole plant; B, junction of sheath and blade of a tiller [sheath should be expanded to see clearly that the ligule is shorter than broad]; C, inflorescence close-up; D, spikelets, lateral view; E, floret, ventral view, showing the well-developed palea. Image A of S.P. Sylvester et al. 3451 (US), B–E of S.P. Sylvester et al. 3451 (PRE).
Supplementary material 1 from: Villoslada M, Vinogradovs I, Ruskule A, Veidemane K, Nikodemus O, Kasparinskis R, Sepp K, Gulbinas J (2018) A multitiered approach for grassland ecosystem services mapping and assessment: The Viva Grass tool. One Ecosystem 3: e25380. https://doi.org/10.3897/oneeco.3.e25380
Expert-based scores matrix including 30 grassland classes plus 10 arable land classes
FIGURE 4 in On the identity and distribution of the Old World grass feeding leafhopper species Soractellus nigrominutus Evans (Hemiptera: Cicadellidae: Deltocephalinae: Paralimnini)
FIGURE 4. Distribution of Soractellus species.
Figure 1 in Nomenclatural changes in the grass-feeding Mexican leafhopper genus Cocrassana Blocker & Larsen (Hemiptera: Cicadellidae: Deltocephalinae: Athysanini)
Figure 1. Cocrassana sexvarus (DeLong) comb. nov., male holotype. (A) Lateral habitus. (B) Dorsal habitus. (C) Labels and microvial containing genitalia of specimen.
Figure 1 in Nest Architecture Development of Grass-Cutting Ants, Atta capiguara (Hymenoptera: Formicidae)
Figure 1 Development of Atta capiguara nests (nests with 2, 14-18, 30-36 and 42-54 months) (a); increase in the number of chambers (fungus: y = 2.83X2.87, R2 = 0.90, P <0.01; waste: y = 3.51X3.03, R2 = 0.74, P <0.01), depth (y = 0.35X0.53, R2 = 0.64, P <0.01) and total volume of nests (y = 1.95X3.40, R2 = 0.82, P <0.01) as a function of age (b); total volume of chambers (fungus: y = 7.73X3.48, R2 = 0.89, P <0.01; waste: y = 1.99X4.14, R2 = 0.68, P = 0.02) and increase in the volume of waste chambers with increment of the fungus chambers volume (y = -1.18 + 0.37X, R2 = 0.84, P <0.01) (c).
Fig. 1 in Nest architecture development of grass-cutting ants
Fig. 1. Details of the internal architecture of Atta bisphaerica nests,with approximate age of 14 months (A), 18 months (B) and 28 months (C). Botucatu, SP, 2014.
FIGURE 1 in Rediscovery of the red-listed grass Isachne dimyloides (Poaceae: Micrairoideae) 130 years after type collection
FIGURE 1. Distribution map of Isachne dimyloides in India. 1. Type locality; 2. Present report.
Table 5 in The grass root endophytic fungus Flavomyces fulophazii: An abundant source of tetramic acid and chlorinated azaphilone derivatives
<p><b>Table 5</b> NMR data of flavochlorine A (compound <b>7</b>) and flavochlorine G (compound <b>10</b>) in methanol- <i>d</i> 4.</p><table><tbody><tr><th>No. a</th><th>flavochlorine A</th><th></th><th>flavochlorine G</th><th></th></tr></tbody><tbody><tr><th></th><td><i>δ</i> H</td><td><i>δ</i> C</td><td><i>δ</i> H</td><td><i>δ</i> C</td></tr><tr><th>1</th><td>8.795, <i>s,</i> 1H</td><td>140.8</td><td>8.80, s, 1H</td><td>141.3</td></tr><tr><th>3</th><td>–</td><td>147.5</td><td>–</td><td>145.9</td></tr><tr><th>4</th><td>7.51, <i>s</i>, 1H</td><td>114.0</td><td>7.49, s, 1H</td><td>115.2</td></tr><tr><th>4a</th><td>–</td><td>146.9</td><td></td><td>146.9</td></tr><tr><th>5</th><td>–</td><td>106.8</td><td></td><td>106.7</td></tr><tr><th>6</th><td>–</td><td>174.8</td><td></td><td>174.6</td></tr><tr><th>7</th><td>6.44, <i>s,</i> 1H</td><td>106.6</td><td>6.45, s, 1H</td><td>106.0</td></tr><tr><th>8</th><td>–</td><td>157.9</td><td>–</td><td>158.4</td></tr><tr><th>8a</th><td>–</td><td>107.1</td><td>–</td><td>107.8</td></tr><tr><th>9</th><td>2.95, <i>t</i>, (7.9), 2H</td><td>35.3</td><td>2.90, t (7.6), 2H</td><td>33.62</td></tr><tr><th>10</th><td>1.80, <i>m</i>, 2H</td><td>22.8</td><td>1.80, m, 2H</td><td>21.95</td></tr><tr><th>11</th><td>1.11, <i>t</i>, (7.4), 3H</td><td>13.6</td><td>1.10, t, (6.9), 3H</td><td>12.90</td></tr><tr><th>1′</th><td>4.43, <i>t</i>, (5.0), 2H</td><td>57.5</td><td>4.32, t (7,3), 1H</td><td>54.49</td></tr><tr><th>2′</th><td>3.91, <i>t</i>, (5.0), 2H</td><td>61.6</td><td>2.24, m, 2H</td><td>34.22</td></tr><tr><th>3′</th><td>–</td><td>–</td><td>3.25, m, 2H</td><td>48.21</td></tr><tr><th>4′</th><td>–</td><td>–</td><td>1.31, d, (7.0), 3H</td><td>20.97</td></tr><tr><th>5′</th><td></td><td></td><td>–</td><td>176.3</td></tr><tr><th>O–Me</th><td>3.96, <i>s,</i> 3H</td><td>56.4</td><td>3.95, s, 3H</td><td>55.46</td></tr></tbody></table><p><sup>a</sup> Corresponding numbered molecular structures are found in Fig. 3.</p>
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Allen Brain Atlas
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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.