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zenodo40/100

Annotation table - Whole body transcriptomes of the tick Ixodes ricinus at different stage and feeding conditions

<p>Annotation table for a <em>de novo</em> assembled transcriptome of<em> Ixodes ricinus</em> in different stages and conditions.</p> <p>Description of the fields of each column (Trinotate results, and additionnal statistics):</p> <p>1. Contig_name:&nbsp; name of the contig (Trinity assembly)</p> <p>2. sprot_Top_BLASTX_hit: first hit of the blastx search against SwissProt (https://data.broadinstitute.org/Trinity/Trinotate v2.0 RESOURCES/)</p> <p>3. TrEMBL_Top_BLASTX_hit: first hit of the blastx search against Uniref90 (https://data.broadinstitute.org/Trinity/Trinotate v2.0 RESOURCES/)</p> <p>4. RNAMMER: identification of non-coding RNAs</p> <p>5. prot_id: identifier of the predicted protein (TransDecoder)</p> <p>6. prot_coords: coordinates (start, end and strand) of the predicted protein on the contig</p> <p>7. sprot_Top_BLASTP_hit: first hit of the blastp search between the predicted protein and SwissProt (https://data.broadinstitute.org/Trinity/Trinotate v2.0 RESOURCES/)</p> <p>8. TrEMBL_Top_BLASTP_hit: first hit of the blastp search between the predicted protein and Uniref90 (https://data.broadinstitute.org/Trinity/Trinotate v2.0 RESOURCES/)</p> <p>9. Pfam: result of the search against PfamA database</p> <p>10. SignalP: prediction of a signal peptide with SignalP</p> <p>11. TmHMM: prediction of a transmembrane domain with THMM</p> <p>12. eggnog: eggNOG database of orthologous genes (v3.0) assignation</p> <p>13. gene_ontology_blast: GO assignation based on blast results</p> <p>14. gene_ontology_pfam: GO assignation based on pfam results</p> <p>15. Contig_length: length of the contig in bp</p> <p>16. Busco_Id: name of the BUSCO (v1)</p> <p>17. Busco_status: status of the BUSCO (complete/fragmented/duplicated)</p> <p>18-32: Kallisto read counts for the 15 libraries</p> <p>A, B, C: unfed nymphs (replicates 1, 2, 3)</p> <p>D, E, F:&nbsp; partially fed nymphs (replicates 1, 2, 3)</p> <p>G, H, I: males (unfed) (replicates 1, 2, 3)</p> <p>J, K, L: unfed adult females (replicates 1, 2, 3)</p> <p>M, N, O:&nbsp; partially fed adult females (replicates 1, 2, 3)</p> <p>33. log2FoldChange_UnfedVsPartiallyFed:&nbsp; log fold change in base 2 of expression (comparison between &quot;unfed&quot; -including males- and &quot;fed&quot; ticks)</p> <p>34. pvalue_UnfedVsPartiallyFed: p-value of the comparison between &quot;unfed&quot; -including males- and &quot;fed&quot; ticks</p> <p>35. log2FoldChange_MaleVsFemale: log fold change in base 2 of expression (comparison between &quot;males&quot; and &quot;females&quot;)</p> <p>36. pvalue_MaleVsFemale: p-value of the comparison between &quot;males&quot; and &quot;females&quot;</p> <p>37. log2FoldChange_NymphsVsAdults: log fold change in base 2 of expression (comparison between &quot;nymphs&quot; and &quot;adults&quot; -males and females-)</p> <p>38. pvalue_NymphsVsAdults: p-value of the comparison between &quot;nymphs&quot; and &quot;adults&quot; -males and females-)</p> <p>&nbsp;</p> <p>&nbsp;</p>

opencc-by-4.0Jul 2017View details →
zenodo40/100

Figure 3 in Morphology of immature stages, biological parameters and life table of Microtechnites bractatus (Hemiptera: Miridae) on different host plants

Figure 3 Average survival of Microtechnites bractatus nymphs fed with alfalfa, white clover, potato, wheat, and beans under laboratory conditions (25 ± 2°C, photoperiod 12L:12D). *Lines followed by different letters differ from each other by the paired Mentex-Cox test (Log Rank) (df=1, p&lt;0.05).

opencc-by-4.0Sep 2022View details →
zenodo40/100

Figure 2 in Morphology of immature stages, biological parameters and life table of Microtechnites bractatus (Hemiptera: Miridae) on different host plants

Figure 2 Five nymphal instars of Microtechnites bractatus: (A) first instar; (B) second instar; (C) third instar; (D) fourth instar; (E) fifth instar reduced wing pads for adult brachypterous (female); (F) elongated fifth-instar wing pads for adult macropterous (male).

opencc-by-4.0Sep 2022View details →
zenodo40/100

Figure 1 in Morphology of immature stages, biological parameters and life table of Microtechnites bractatus (Hemiptera: Miridae) on different host plants

Figure 1 Eggs of Microtechnites bractatus oviposited on bean plants,Phaseolus vulgaris L. (A) egg recently oviposited and removed from the plant; (B) seven-day-old egg removed from the plant; (C) newly oviposited eggs; (D) eggs after seven days of oviposition.

opencc-by-4.0Sep 2022View details →
zenodo40/100

Table 1 in A description of the first zoeal stage of Pilumnus vinaceus A. Milne-Edwards, 1880 (Decapoda, Pilumnidae), with a revision of the first zoea morphology of Pilumnus Leach, 1815

<p>Table 1. Larval characters of the first zoeal stage of Indo-West Pacific and Eastern Pacific species of the genus <i>Pilumnus</i> Leach,1815.</p><table><tbody><tr><th></th><th></th><th></th><th><b>Indo-West Pacific</b></th><th></th><th></th><th><b>Eastern Pacific</b></th><th></th><th><b>western Atlantic</b></th><th></th><th><b>eastern Atlantic</b></th></tr></tbody><tbody><tr><th></th><td><i>Pilumnus kempi</i></td><td><i>Pilumnus longicornis</i></td><td><i>Pilumnus minutus</i></td><td><i>Pilumnus scabriusculus</i></td><td><i>Pilumnus sluiteri</i></td><td><i>Pilumnus vespertilio</i></td><td><i>Pilumnus indicus</i></td><td><i>Pilumnus limosus</i></td><td><i>Pilumnus dasypodus</i></td><td><i>Pilumnus reticulatus *</i></td><td><i>Pilumnus vinaceus</i></td><td><i>Pilumnus hirtellus</i></td><td><i>Pilumnus spinifer</i></td></tr><tr><th><b>Size</b></th></tr><tr><th><b>RDL (mm)</b></th><td><b>nd</b></td><td><b>nd</b></td><td><b>0.71</b></td><td><b>0.77</b></td><td><b>nd</b></td><td><b>1.78 (0.98)</b> <b>b</b></td><td><b>0.70</b></td><td><b>0.91</b></td><td><b>1.2</b> <b>b</b></td><td><b>1.02</b></td><td><b>0.83</b></td><td><b>1.5 (1.2)</b> <b>c</b></td><td><b>0.9</b></td></tr><tr><th><b>Carapace</b></th></tr><tr><th><b>posterodorsal s</b></th><td><b>nd</b></td><td><b>0</b></td><td><b>0</b></td><td><b>nd</b></td><td><b>2</b></td><td><b>0</b></td><td><b>nd</b></td><td><b>2</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td></tr><tr><th><b>s on ventral margin</b></th><td><b>1</b> <b>d</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>1</b></td><td><b>0</b></td><td><b>0**</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td></tr><tr><th><b>Antennule</b></th></tr><tr><th><b>a,s</b></th><td><b>7,1</b></td><td><b>4,2</b></td><td><b>3, 3</b></td><td><b>nd</b></td><td><b>5,2</b></td><td><b>3,2 (4, 2)</b> <b>c</b></td><td><b>2,2 (4)</b></td><td><b>4,1</b></td><td><b>4,1 (4, 3)</b> <b>b</b></td><td><b>4,1</b></td><td><b>4, 2</b></td><td><b>4,2</b></td><td><b>4,1</b></td></tr><tr><th><b>Antenna</b></th></tr><tr><th><b>endopod</b></th><td><b>Present</b></td><td><b>Absent</b></td><td><b>Absent</b></td><td><b>Absent</b></td><td><b>Present</b></td><td><b>Presentb</b></td><td><b>Absent</b></td><td><b>Absent</b></td><td><b>Absent</b></td><td><b>Absent</b></td><td><b>Absent</b></td><td><b>Absent</b></td><td><b>Absent</b></td></tr><tr><th><b>Maxillule</b></th></tr><tr><th><b>s on coxal end.</b></th><td><b>7</b></td><td><b>7</b></td><td><b>7</b></td><td><b>7</b></td><td><b>7</b></td><td><b>7</b></td><td><b>7</b></td><td><b>7</b></td><td><b>7</b></td><td><b>7</b></td><td><b>7</b></td><td><b>6-7</b></td><td><b>7</b></td></tr><tr><th><b>Maxilla</b></th></tr><tr><th><b>s on coxal end.</b></th><td><b>5 + 4</b></td><td><b>6 + 4</b></td><td><b>6 + 4</b></td><td><b>6 + 4</b></td><td><b>6 + 4</b></td><td><b>4 + 3 (6 + 4)</b> <b>c</b></td><td><b>6 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4 (4 + 4)</b> <b>c</b></td><td><b>5 + 4</b></td></tr><tr><th><b>s on basial end.</b></th><td><b>4 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>6 + 4 (5 + 4)</b> <b>b</b> <b></b> <b>c</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td><td><b>5 + 4</b></td></tr><tr><th><b>Maxilliped 1</b></th></tr><tr><th><b>s on basis</b></th><td><b>11 (10)</b> <b>d</b></td><td><b>10</b></td><td><b>10</b></td><td><b>10</b></td><td><b>10</b></td><td><b>9 (10)</b> <b>b</b> <b></b> <b>c</b></td><td><b>10</b></td><td><b>10</b></td><td><b>10</b></td><td><b>10</b></td><td><b>10</b></td><td><b>10</b></td><td><b>10</b></td></tr><tr><th><b>s on end</b></th><td><b>3, 2,1, 2,5</b></td><td><b>3, 2,1, 2,5</b></td><td><b>3,2, 1, 2,5</b></td><td><b>3,2,1, 2,5</b></td><td><b>3, 2,1, 2, 5</b></td><td><b>2 (3)</b> <b>b</b> <b></b> <b>c</b><b>, 2,1, 2, 5</b></td><td><b>3,2,1, 2, 5</b></td><td><b>3,2,1, 2,5</b></td><td><b>3,2, 1, 2,5</b></td><td><b>3, 2,1, 2, 5</b></td><td><b>3,2,1, 2,5</b></td><td><b>3, 2,1, 2, 5</b></td><td><b>3,2,1, 2,5</b></td></tr><tr><th><b>Pleon</b></th></tr><tr><th><b>dorsomedial s (so1)</b></th><td><b>0</b> <b>d</b></td><td><b>0</b></td><td><b>0</b></td><td><b>2</b></td><td><b>1</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>nd</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td></tr><tr><th><b>posterodorsal s (so1)</b></th><td><b>0</b> <b>d</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>1</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>nd</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td><td><b>0</b></td></tr><tr><th><b>dorsolateral processes</b></th><td><b>2</b> <b><b>nd-</b> 3</b> <b>rd</b> <b>so</b></td><td><b>2</b> <b><b>nd-</b> 3</b> <b>rd</b> <b>so</b></td><td><b>2</b> <b><b>nd-</b> 5</b> <b>th</b> <b>so</b></td><td><b>2</b> <b><b>nd-</b> 3</b> <b>rd</b> <b>so</b></td><td><b>2</b> <b><b>nd-</b> 5</b> <b>th</b> <b>so</b></td><td><b>2</b> <b><b>nd-</b> 3</b> <b>rd</b> <b>so</b></td><td><b>2</b> <b>nd</b> <b>so</b></td><td><b>2</b> <b><b>nd-</b> 3</b> <b>rd</b> so</td><td><b>2</b> <b><b>nd-</b> 3</b> <b>rd</b> <b>so</b></td><td><b>2</b> <b><b>nd-</b> 5</b> <b>th</b> <b>so</b></td><td><b>2</b> <b><b>nd-</b> 3</b> <b>rd</b> <b>so</b></td><td><b>2</b> <b><b>nd-</b> 3</b> <b>rd</b> <b>so</b></td><td><b>2</b> <b><b>nd-</b> 3</b> <b>rd</b> so</td></tr></tbody></table><p><b>a = aesthetascs;end.= endopod;nd = not described;RDL = rostrodorsal length;s = setae;so = somite;** = data from figures observation.</b></p><p><b>References: <i>P.kempi</i> (Siddiqui &amp; Tirmizi, 1992; Clark &amp; Ng,2004 <sup>d</sup>); <i>P.longicornis</i> (Clark &amp; Paula, 2003); <i>P.minutus</i> (Terada, 1984; Ko, 1994); <i>P.scabriusculus</i> (Terada, 1990); <i>P.sluiteri</i> (Clark &amp; Ng, 2004); <i>P.verpertilio</i> (Lim &amp; Tan,1981; Terada,1990 <sup>b</sup>; Clark &amp; Paula,2003 <sup>c</sup></b>); <i>P.indicus</i> (Terada,1980); <i>P.limosus</i> (Garc&iacute;a-Guerrero <i>et al.,</i> 2005).</p>

opencc-by-4.0Jun 2022View details →
zenodo40/100

TABLE 1 in A new genus and species of barnacle (Cirripedia, Verrucomorpha) associated with vents of the Lau Back-Arc Basin: its gross morphology, inferred first juvenile stage and affinities

<p>TABLE 1. &mdash; Seta/article ratios for four neolepadines compared to four sessile barnacles also from vents: the ratio (the width of the article of an intermediate segment of cirrus VI as the denominator and the length of longest seta of that article as the numerator), while highest in the bacteria-farming neolepadine (Lau sp. A), is lowest in <i>Neoverruca</i>. That for <i>Imbricaverruca</i> as well as for <i>Neobrachylepas</i> are not only similar to each other but fall in the low end of the range for vent barnacles.</p><table><tbody><tr><th></th><th><b>Measurement in mm</b></th><th><b>Ratio</b></th><th><b>Reference</b></th></tr></tbody><tbody><tr><th></th><td><b>article width</b></td><td><b>setal length</b></td><td><b>s/a</b></td><td></td></tr><tr><th>Lau sp. A</th><td>0.33</td><td>4.60</td><td>14.0</td><td>Southward &amp; Newman 1998</td></tr><tr><th>Lau sp. B</th><td>0.10</td><td>0.67</td><td>6.7</td><td><i>idem</i></td></tr><tr><th>South-East Indian Ridge</th><td>0.18</td><td>1.70</td><td>9.4</td><td><i>idem</i></td></tr><tr><th>Lihir volcano</th><td>0.30</td><td>1.85</td><td>6.2</td><td><i>idem</i></td></tr><tr><th><i>Neobrachylepas</i></th><td>0.07</td><td>0.31</td><td>4.4</td><td>Newman &amp; Yamaguchi 1995</td></tr><tr><th><i>Neoverruca</i></th><td>0.25</td><td>0.70</td><td>2.8</td><td>Newman &amp; Hessler 1989</td></tr><tr><th><i>Imbricaverruca</i></th><td>0.15</td><td>0.68</td><td>4.5</td><td>This paper</td></tr><tr><th><i>Eochionelasmus</i> (NFB)</th><td>0.25</td><td>1.65</td><td>6.6</td><td>Yamaguchi &amp; Newman 1990</td></tr></tbody></table>

opencc-by-4.0Dec 2000View details →
edi40/100

Stream stage and water table elevation in hyporheic and ground water from McRae Ck well network, Andrews Experimental Forest, 1989-1993

Measurements of stream stage of McRae Ck and water table heights from a network of shallow wells located adjacent to the stream. Data were collected from September 1989 to September 1992 on an irregular basis to sample both baseflow periods and storm events across seasons of the year. Stage height was read from staff plates permanently located at several location in the mainstem channel and in a small back channel; water table elevations were measured with a weighted measuring tape with a visible signal when the tape touched the water in the well.

openCustomNov 2016View details →
zenodo36/100

Table 1 in Agistemus collyerae (Acari: Trombidiformes: Stigmaeidae) in South Africa: first record, introduction pathways and a re-description including additional life stages

<p><b>Table 1</b> Measurements of <i>Agistemus collyerae</i> collected from South Africa, and comparison with New Zealand female specimens. All measurements are lengths unless otherwise noted. Leg length was measured from coxa to tip of empodium. Measurements are given in &mu;m. SA = South Africa; NZ = New Zealand.</p><table><tbody><tr><th></th><th>NZ female</th><th>SA female</th><th>SA male</th><th>SA deutonymphs</th></tr></tbody><tbody><tr><th></th><td>(n=6)</td><td>(n=8)</td><td>(n = 2)</td><td>(n=1)</td></tr><tr><th><b>BODY SIZE</b></th></tr><tr><th>Length (excl. gnathosoma)</th><td>224 &ndash; 298</td><td>234 &ndash; 262</td><td>193 &ndash; 201</td><td>188</td></tr><tr><th>Length (incl. gnathosoma)</th><td>323 &ndash; 416</td><td>335 &ndash; 379</td><td>308</td><td>277</td></tr><tr><th>Width (at level of c2)</th><td>171 &ndash; 242</td><td>172 &ndash; 207</td><td>156 &ndash; 160</td><td>137</td></tr><tr><th><b>GNATHOSOMA</b></th></tr><tr><th><i>m</i></th><td>21 &ndash; 25</td><td>18 &ndash; 23</td><td>20 &ndash; 23</td><td>18</td></tr><tr><th><i>n</i></th><td>23 &ndash; 27</td><td>18 &ndash; 27</td><td>18 &ndash; 19</td><td>19</td></tr><tr><th><i>or1</i></th><td>11 &ndash; 12</td><td>11 &ndash; 14</td><td>12 &ndash; 13</td><td>10</td></tr><tr><th><i>or2</i></th><td>11 &ndash; 12</td><td>10 &ndash; 14</td><td>10 &ndash; 14</td><td>9</td></tr><tr><th>Moveable cheliceral digit</th><td>31 &ndash; 36</td><td>36 &ndash; 39</td><td>35 &ndash; 40</td><td></td></tr><tr><th>Palp</th><td>72 &ndash; 80</td><td>71 &ndash; 85</td><td>86 &ndash; 89</td><td>63</td></tr><tr><th>Palp tibial claw</th><td>13 &ndash; 18</td><td>15 &ndash; 17</td><td>19 &ndash; 20</td><td>7</td></tr><tr><th><b>DORSUM</b></th></tr><tr><th>Eyes (diameter)</th><td></td><td>9 &ndash; 10</td><td></td><td>8</td></tr><tr><th>Post-ocular bodies (diameter)</th><td></td><td>6 &ndash; 8</td><td></td><td>7</td></tr><tr><th><i>ve</i></th><td>24 &ndash; 27</td><td>15 &ndash; 17</td><td>15 &ndash; 16</td><td>13</td></tr><tr><th><i>sci</i></th><td>30 &ndash; 39</td><td>21 &ndash; 28</td><td>23</td><td>19</td></tr><tr><th><i>sce</i></th><td>31 &ndash; 38</td><td>23 &ndash; 28</td><td>22 &ndash; 24</td><td>18</td></tr><tr><th><i>c1</i></th><td>24 &ndash; 31</td><td>20 &ndash; 26</td><td>15 &ndash; 17</td><td>15</td></tr><tr><th><i>c2</i></th><td>35 &ndash; 39</td><td>21 &ndash; 31</td><td>23 &ndash; 27</td><td>18</td></tr><tr><th><i>d1</i></th><td>30 &ndash; 37</td><td>20 &ndash; 25</td><td>17</td><td>17</td></tr><tr><th><i>d2</i></th><td>32 &ndash; 39</td><td>23 &ndash; 28</td><td>23 &ndash; 26</td><td>16</td></tr><tr><th><i>e1</i></th><td>42 &ndash; 46</td><td>29 &ndash; 34</td><td>12 &ndash; 13</td><td>22</td></tr><tr><th><i>e2</i></th><td>42 &ndash; 45</td><td>27 &ndash; 34</td><td>25 &ndash; 27</td><td>24</td></tr><tr><th><i>f</i></th><td>34 &ndash; 42</td><td>31 &ndash; 35</td><td>32 &ndash; 34</td><td>25</td></tr><tr><th><i>h1</i></th><td>38 &ndash; 43</td><td>34 &ndash; 39</td><td>13 &ndash; 14</td><td>26</td></tr><tr><th><i>h2</i></th><td>32 &ndash; 38</td><td>32 &ndash; 36</td><td>21 &ndash; 26</td><td>22</td></tr><tr><th><i>ve &ndash; ve</i></th><td>27 &ndash; 45</td><td>28 &ndash; 34</td><td>30 &ndash; 31</td><td>33</td></tr><tr><th><i>c1 &ndash; c1</i></th><td>36 &ndash; 43</td><td>26 &ndash; 36</td><td>34 &ndash; 40</td><td>26</td></tr><tr><th><i>d1 &ndash; d1</i></th><td>61 &ndash; 73</td><td>52 &ndash; 64</td><td>54 &ndash; 56</td><td>48</td></tr><tr><th><i>e1 &ndash; e1</i></th><td>33 &ndash; 34</td><td>24 &ndash; 34</td><td>27</td><td>22</td></tr><tr><th><i>f &ndash; f</i></th><td>65 &ndash; 80</td><td>58 &ndash; 65</td><td>38 &ndash; 42</td><td>44</td></tr><tr><th><i>h1 &ndash; h1</i></th><td>15 &ndash; 18</td><td>13 &ndash; 21</td><td>9</td><td>13</td></tr><tr><th><b>VENTER</b></th></tr><tr><th><i>g</i></th><td>35 &ndash; 39</td><td>27 &ndash; 37</td><td>-</td><td></td></tr><tr><th>Aedeagus</th><td>-</td><td>-</td><td>48 &ndash; 55</td><td>-</td></tr><tr><th><b>LEGS</b></th></tr><tr><th>Leg I</th><td>185 &ndash; 200</td><td>184 &ndash; 195</td><td>187 &ndash; 191</td><td>148</td></tr><tr><th>&omega;I</th><td>13 &ndash; 16</td><td>9 &ndash; 12</td><td>9 &ndash; 10</td><td>7</td></tr><tr><th>&omega;I&male;</th><td>-</td><td>-</td><td>10 &ndash; 13</td><td>-</td></tr><tr><th>&straightphi;I</th><td>10 &ndash; 14</td><td>8 &ndash; 11</td><td>9</td><td>5</td></tr><tr><th>leg II</th><td>166 &ndash; 189</td><td>168 &ndash; 188</td><td>169 &ndash; 174</td><td>138</td></tr><tr><th>&omega;II</th><td>10 &ndash; 13</td><td>6 &ndash; 10</td><td>9 &ndash; 11</td><td>5</td></tr><tr><th>&omega;II&male;</th><td>-</td><td>-</td><td>11 &ndash; 13</td><td>-</td></tr><tr><th>&straightphi;II</th><td>9 &ndash; 10</td><td>4 &ndash; 6</td><td>5 &ndash; 6</td><td>3</td></tr><tr><th>leg III</th><td>169 &ndash; 187</td><td>173 &ndash; 194</td><td>166 &ndash; 175</td><td>141</td></tr><tr><th>&omega;III</th><td>8 &ndash; 10</td><td>5 &ndash; 6</td><td>5</td><td>3</td></tr><tr><th>&straightphi;III</th><td>7 &ndash; 10</td><td>3 &ndash; 5</td><td>4</td><td>2</td></tr><tr><th>leg IV</th><td>185 &ndash; 210</td><td>188 &ndash; 198</td><td>184 &ndash; 186</td><td>144</td></tr><tr><th>&omega;IV&male;</th><td>-</td><td>-</td><td>5 &ndash; 6</td><td>-</td></tr></tbody></table>

opencc-by-4.0Jan 2018View details →
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Table 2 in Agistemus collyerae (Acari: Trombidiformes: Stigmaeidae) in South Africa: first record, introduction pathways and a re-description including additional life stages

<p><b>Table 2</b> <i>Agistemus collyerae</i> specimens detected on agricultural imports from other countries by South Africa.</p><table><tbody><tr><th><b>country</b></th><th><b>crop</b></th><th><b>commodity</b></th><th><b>import date(s)</b></th><th><b>specimens</b></th></tr></tbody><tbody><tr><th>Yemen</th><td>citrus (unspecified <i>Citrus sp</i>.)</td><td>budwood</td><td>Aug 1991</td><td>1 female</td></tr><tr><th>Australia</th><td>mandarin orange (<i>Citrus reticulata</i>) nectarine (<i>Prunus persica var. nucipersica</i>) peach (<i>Prunus persica)</i> citrus (unspecified <i>Citrus sp.</i>)</td><td>budwood budwood budwood budwood</td><td>Jan 2013 Feb 2007, Jan 2010, Feb 2010 Jan 2010, Mar 2013 Jan 2010</td><td>2 deutonymphs 5 females, 6 males 2 females, 1 male 3 females</td></tr><tr><th>Italy</th><td>olive (<i>Olea europaea</i>)</td><td>rooted cuttings</td><td>Oct 2007</td><td>Unable to locate specimen</td></tr><tr><th>Spain</th><td>apricot (<i>Prunus armeniaca</i>) grapes (<i>Vitis vinifera)</i></td><td>fresh fruit fresh fruit</td><td>Jun 2009 Oct 2015</td><td>1 female 1 female</td></tr><tr><th>Chile</th><td>grapevine (<i>Vitis vinifera)</i></td><td>budwood</td><td>Mar 2014</td><td>1 female</td></tr><tr><th>USA</th><td>nectarine (Prunus persica var. nucipersica) peach (<i>Prunus persica)</i> citrus (unspecified C <i>itrus sp.</i>)</td><td>budwood budwood budwood</td><td>Nov 2010 Nov 2011, Jan 2012, Nov 2012 May 2016</td><td>2 females 2 females, 1 male 1 female</td></tr><tr><th>France</th><td>nectarine (<i>Prunus persica var. nucipersica</i>)</td><td>budwood</td><td>Jan 2017</td><td>1 female</td></tr></tbody></table>

opencc-by-4.0Jan 2018View details →
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Table 1 in Effect of the seed maturation stage and pre-germination treatments on emergence of Erythrina crista-galli L.

<p><b>Table 1.</b> Mean &plusmn; standard deviation for the ESI and MET variables. Equivalent letters mean that treatments do not differ statistically (one factor ANOVA, with Tukey test for multiple comparisons of means, <i>p</i> &le; 0.05). TC &ndash; control; T1&ndash; sanded and soaked in water for 48 h; T2 &ndash; sanded and soaked in water for 24 h; T3 &ndash; soaked in water outside of heating at the initial temperature of 60 &deg;C until reaching ambient temperature; T4 &ndash; only sanded; and T5 &ndash; immature seeds.</p><table><tbody><tr><th><b>Treatment</b></th><th><b>ESI</b></th><th><b>MET</b></th></tr></tbody><tbody><tr><th>TC</th><td>16.08 &plusmn; 8.52a</td><td>10.69 &plusmn; 4.66a</td></tr><tr><th>T1</th><td>10.45 &plusmn; 1.66ab</td><td>4.73 &plusmn; 1.06 b</td></tr><tr><th>T2</th><td>3.64 &plusmn; 1.42b</td><td>5.92 &plusmn; 1.50b</td></tr><tr><th>T3</th><td>13.18 &plusmn; 1.32a</td><td>10.96 &plusmn; 0.94a</td></tr><tr><th>T4</th><td>16.02 &plusmn; 3.96a</td><td>6.89 &plusmn; 1.21ab</td></tr><tr><th>T5</th><td>16.25 &plusmn; 2.15a</td><td>6.98 &plusmn; 0.26ab</td></tr></tbody></table><p>ESI = Emergence Speed Index; MET = Mean Emergence Time.</p>

opencc-by-4.0Apr 2020View details →
zenodo36/100

TABLE 3 in A new genus and species of barnacle (Cirripedia, Verrucomorpha) associated with vents of the Lau Back-Arc Basin: its gross morphology, inferred first juvenile stage and affinities

<p>TABLE 3. &mdash; Comparison of two juvenile and four adult characters in two neoverrucid and one verrucid genus.</p><table><tbody><tr><th></th><th>Neoverruca</th><th>Imbricaverruca</th><th><i>Verruca</i></th></tr></tbody><tbody><tr><th>1) Juvenile pedunculate stages</th><td>Several stages pedunculate</td><td>Likely several stages</td><td>Peduncle vestigial</td></tr><tr><th>2) Juvenile carina</th><td>Higher than wide</td><td>Wider than high</td><td>Higher than wide</td></tr><tr><th>3) Adult median latus</th><td>Vestigial</td><td>Well-developed</td><td>Lost</td></tr><tr><th>4) Imbricating plates</th><td>Reduced in number, deciduous</td><td>Complete, well-developed</td><td>Lost</td></tr><tr><th>5) Fixed scutum &amp; tergum</th><td>Normal, higher than wide</td><td>Reduced wider than high</td><td>As wide as high</td></tr><tr><th>6) Rostrum &amp; carina</th><td>Normal, higher than wide*</td><td>Reduced, wider high</td><td>As wide as high</td></tr></tbody></table><p>*R-C gap less on movable side, as in all three genera.</p>

opencc-by-4.0Dec 2000View details →
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TABLE 2 in A new genus and species of barnacle (Cirripedia, Verrucomorpha) associated with vents of the Lau Back-Arc Basin: its gross morphology, inferred first juvenile stage and affinities

<p>TABLE 2. &mdash; Comparison between the primordial plates of the earliest juvenile stages of the principal suborders of thoracic Cirripedia (See Fig. 6 for corresponding figures and text for a full explanation).</p><table><tbody><tr><th><b>Taxon/Character</b></th><th><b>Carinal proportions</b></th><th><b>Carinal of position</b></th><th><b>Terga and scuta of each side</b></th></tr></tbody><tbody><tr><th>Lepadomorpha (Fig. 6A)</th><td>Higher than wide and longer than terga</td><td>Extending up between terga</td><td>Symmetrical</td></tr><tr><th>Scalpellomorpha (Fig. 6B)</th><td>Higher than wide and nearly as long as terga</td><td>Extending up between terga</td><td>Symmetrical</td></tr><tr><th>Verrucomorpha</th></tr><tr><th>Neoverrucidae (Fig. 6C)</th><td>Higher than wide and shorter than terga</td><td>Extending up between terga</td><td>Initially symmetrical</td></tr><tr><th>X-juvenile (Fig. 6D)</th><td>Wider than high, shorter than terga and perhaps displaced to one side</td><td>Not extending up between terga</td><td>Scuta if not terga initially symmetrical</td></tr><tr><th>Verrucidae (Fig. 6E)</th><td>About as wide as high, shorter than terga and displaced to one side</td><td>Not extending up between terga</td><td>Distinctly asymmetrical</td></tr><tr><th>Balanomorpha (Fig. 6F)</th><td>Higher than wide</td><td>Not extending up between terga</td><td>Symmetrical</td></tr></tbody></table>

opencc-by-4.0Dec 2000View details →
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TABLE 1 in The immature stages and female imago of Rheocricotopus (Psilocricotopus) sirventorum Andersen & Mendes, 2012, a Neotropical member of the chalybeatus species group (Diptera, Chironomidae, Orthocladiinae)

<p><b>TABLE 1.</b> Lengths (in &mu;m) and proportions of leg segments in <i>Rheocricotopus</i> (<i>Psilocricotopus</i>) <i>sirventorum</i> Andersen &amp; Mendes, 2012, adult female (n = 1).</p><table><tbody><tr><th></th><th><b>Fe</b></th><th><b>Ti</b></th><th><b>ta</b> <b>1</b></th><th><b>ta</b> <b>2</b></th><th><b>ta</b> <b>3</b></th><th><b>ta</b> <b>4</b></th></tr></tbody><tbody><tr><th><b>p</b> <b>1</b></th><td>424</td><td>522</td><td>315</td><td>207</td><td>148</td><td>89</td></tr><tr><th><b>p</b> <b>2</b></th><td>404</td><td>414</td><td>217</td><td>99</td><td>69</td><td>30</td></tr><tr><th><b>p</b> <b>3</b></th><td>404</td><td>483</td><td>266</td><td>118</td><td>108</td><td>49</td></tr><tr><th></th><td><b>ta</b> <b>5</b></td><td><b>LR</b></td><td><b>BV</b></td><td><b>SV</b></td><td><b>BR</b></td><td></td></tr><tr><th><b>p</b> <b>1</b></th><td>59</td><td>0.60</td><td>2.51</td><td>3.00</td><td>1.6</td><td></td></tr><tr><th><b>p</b> <b>2</b></th><td>39</td><td>0.52</td><td>4.38</td><td>3.77</td><td>0.9</td><td></td></tr><tr><th><b>p</b> <b>3</b></th><td>49</td><td>0.55</td><td>3.55</td><td>3.33</td><td>2.2</td><td></td></tr></tbody></table>

opennotspecifiedNov 2023View details →
dryad28/100

Repurposing Domperidone in Secondary Progressive MS - A Simon 2-Stage Phase 2 Futility Trial - Table e1: Results of the binary logistic regression model

<p><b>Objective:</b> To assess whether treatment with the generic drug domperidone can reduce the progression of disability in secondary progressive multiple sclerosis (SPMS), we conducted a phase 2 futility trial following the Simon two-stage design.</p> <p><b>Methods:</b> We enrolled patients in an open-label, Simon two-stage, single-center, phase 2, single-arm futility trial at the Calgary MS Clinic if they met the following criteria: age 18 to 60 years, SPMS, screening EDSS score of 4.0 to 6.5 and screening T25FW of 9 seconds or more. Patients received domperidone 10mg QID for one year. The primary outcome was worsening of disability, defined as worsening of the T25FW performance by 20% or more at 12 months compared to at baseline. This trial is registered with ClinicalTrials.gov, number NCT02308137.</p> <p><b>Results:</b> Between February 13<sup>th</sup>, 2015 and January 3<sup>rd</sup>, 2020, 110 patients were screened, 81 received treatment, 64 completed follow-up, of whom 62 were analysed. The study did not meet its primary endpoint: 22 of 62 (35%) patients experienced significant worsening of disability, which is close to the expected proportion of 40%, and above the pre-defined futility threshold. Patients with higher prolactin levels during the study had a significantly lower risk of disability progression, which may warrant further investigation. Domperidone treatment was reasonably well tolerated, but adverse events occurred in 84% and serious adverse events in 15% of patients.</p> <p><b>Conclusions:</b> Domperidone treatment could not reject futility in reducing disability progression in SPMS. The Simon two-stage trial model may be a useful model for phase 2 studies in progressive MS.</p> <p><b>Classification of Evidence:</b> This study provides Class III evidence that in individuals with secondary progressive multiple sclerosis participating in a futility trial, domperidone treatment could not reject futility in reducing disability progression at 12 months.</p>

opencc-zeroFeb 2022View details →
zenodo28/100

TABLE 1 in Description of immature stages of Hybosa acutangula Spaeth, 1913 (Coleoptera, Chrysomelidae, Cassidinae)

<p><b>TABLE 1.</b> Measurements of egg, egg mass, first and fifth instar larva and pupa of <i>Hybosa acutangula</i> (Coleoptera, Chrysomelidae, Cassidinae).</p><table><tbody><tr><th>egg</th><th>length [mm]</th><th>width [mm]</th><th></th><th></th></tr></tbody><tbody><tr><th>1.</th><td>1.40</td><td>0.90</td><td></td><td></td></tr><tr><th>2.</th><td>1.40</td><td>0.80</td><td></td><td></td></tr><tr><th>3.</th><td>1.30</td><td>0.90</td><td></td><td></td></tr><tr><th>4.</th><td>1.50</td><td>0.95</td><td></td><td></td></tr><tr><th>5.</th><td>1.30</td><td>0.90</td><td></td><td></td></tr><tr><th>egg mass</th><td>length [mm]</td><td>width [mm]</td><td></td><td></td></tr><tr><th>1.</th><td>6.00</td><td>4.50</td><td></td><td></td></tr><tr><th>2.</th><td>4.80</td><td>4.50</td><td></td><td></td></tr><tr><th>3.</th><td>6.00</td><td>5.30</td><td></td><td></td></tr><tr><th>first instar larva</th><td>length of body [mm]</td><td>width of body across metathorax [mm]</td><td>length of supra-anal processes [mm]</td><td>width of head [mm]</td></tr><tr><th>1.</th><td>0.85</td><td>0.55</td><td>0.75</td><td>0.40</td></tr><tr><th>2.</th><td>0.95</td><td>0.56</td><td>0.80</td><td>0.40</td></tr><tr><th>3.</th><td>1.10</td><td>0.55</td><td>0.80</td><td>0.40</td></tr><tr><th>4.</th><td>1.25</td><td>0.57</td><td>0.78</td><td>0.42</td></tr><tr><th>5.</th><td>1.25</td><td>0.55</td><td>0.80</td><td>0.42</td></tr><tr><th>6.</th><td>1.30</td><td>0.60</td><td>0.87</td><td>0.42</td></tr><tr><th>7.</th><td>1.25</td><td>0.57</td><td>0.82</td><td></td></tr><tr><th>fifth instar larva</th><td>length of body [mm]</td><td>width of body across metathorax [mm]</td><td>length of supra-anal processes [mm]</td><td>width of head [mm]</td></tr><tr><th>1.</th><td>10.50</td><td>4.40</td><td>2,00</td><td>1.52</td></tr><tr><th>2.</th><td>7.50</td><td>4.00</td><td>2,00</td><td>1.55</td></tr><tr><th>3.</th><td>7.40</td><td>3.50</td><td>2,00</td><td>1.65</td></tr><tr><th>4.</th><td>10.00</td><td>4.10</td><td>2,00</td><td>1.50</td></tr><tr><th>5.</th><td>8.00</td><td>4.00</td><td>2,00</td><td>1.60</td></tr><tr><th>6.</th><td>8.50</td><td>3.80</td><td>2,00</td><td>1.65</td></tr><tr><th>7.</th><td>9.00</td><td>4.50</td><td>2,00</td><td>1.50</td></tr><tr><th>8.</th><td>9.00</td><td>4.10</td><td>2,00</td><td>1.60</td></tr><tr><th>pupa</th><td>length of body [mm]</td><td>width of body across 3rd abdominal segment [mm]</td><td>length of pronotum [mm]</td><td>width of pronotum [mm]</td></tr><tr><th>1.</th><td>9.00</td><td>3.70</td><td>2.10</td><td>5.20</td></tr><tr><th>2.</th><td>10.00</td><td>3.60</td><td>2.60</td><td>5.60</td></tr><tr><th>3.</th><td>9.00</td><td>3.70</td><td>2.50</td><td>5.40</td></tr><tr><th>4.</th><td>9.90</td><td>4.80</td><td>2.80</td><td>5.50</td></tr><tr><th>5.</th><td>9.90</td><td>4.60</td><td>2.60</td><td>5.50</td></tr><tr><th>6.</th><td>9.00</td><td>3.10</td><td>2.30</td><td>5.10</td></tr></tbody></table>

opennotspecifiedOct 2024View details →
zenodo28/100

TABLE 1 in A new species of Coelidiana Oman (Hemiptera: Cicadellidae: Neocoelidiinae) from Brazil with key to Brazilian species, description of immature stages, and notes about parasitoids and host plant

<p><b>TABLE 1.</b> Measurements in millimeters of <i>Coelidiana aroeira</i> <b>sp. nov.</b> nymph instars. (n= number of specimens analyzed)</p><table><tbody><tr><th>Instar</th><th>Thorax Head length length</th><th>Abdomen length</th><th>Body length</th><th>Pronotum length</th><th>Head width</th><th>Pronotum width</th></tr></tbody><tbody><tr><th>First (n=5)</th><td>0.30-0.42</td><td>0.30-0.50</td><td>0.80-1.30</td><td>1.40-2.14</td><td>0.10</td><td>0.42-0.72</td><td>0.40-0.72</td></tr><tr><th>Second (n=12)</th><td>0.37-0.53</td><td>0.59-0.78</td><td>1,03-1,87</td><td>2.20-3.15</td><td>0.16-0.18</td><td>0.66-0.75</td><td>0.66-0.75</td></tr><tr><th>Third (n=12)</th><td>0.44-0.68</td><td>0.64-1.00</td><td>1.52-2.45</td><td>3.40-4.00</td><td>0.16-0.25</td><td>0.80-0.95</td><td>0.80-1.00</td></tr><tr><th>Fourth (n=6)</th><td>0.50-0.70</td><td>1.00-1.20</td><td>2.10-2.60</td><td>4.00-4.40</td><td>0.20-0.30</td><td>1.00-1.20</td><td>1.20-1.30</td></tr><tr><th>Fifth (n=9)</th><td>0.55-0.75</td><td>1.10-1.45</td><td>2.35-3.56</td><td>4.35-5.60</td><td>0.25-0.30</td><td>1.00-1.20</td><td>1.15-1.30</td></tr></tbody></table>

opennotspecifiedOct 2024View details →
dryad28/100

Repurposing Domperidone in Secondary Progressive MS - A Simon 2-Stage Phase 2 Futility Trial - Table e1: Results of the binary logistic regression model

Open the record for dataset details and reuse information.

publicFeb 2022View details →
geo24/100

Transcriptome profiles of three Muscat table grape cultivars at three developmental stage

GEO Series GSE130386. Vitis vinifera. 27 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenApr 2019View details →
geo20/100

Effect of high CO2 levels and low temperature storage on table grapes quality harvested at two maturity stages.

GEO Series GSE83275. Vitis vinifera. 18 samples. Type: Expression profiling by array.

openGEO-OpenSep 2016View details →

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record