Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
933
datasets available to search
ShareScore release 0.7.1
Dataset results
933 results for “Phytoseiidae”
Figure 4 in Morphological characteristics of Neoseiulus setarius Ma, Meng & Fan, sp. nov. (Acari: Phytoseiidae) from China
Figure 4. Neoseiulus setarius Ma, Meng & Fan, sp. nov., adult male. A. Dorsal idiosoma; B. Ventral idiosoma; C. Spermatodactyl. Scale bars: A–B = 50 μm; C = 20 μm.
Figure 5 in Morphological characteristics of Neoseiulus setarius Ma, Meng & Fan, sp. nov. (Acari: Phytoseiidae) from China
Figure 5. Neoseiulus setarius Ma, Meng & Fan, sp. nov., adult male. A. dorsal idiosoma; B. ventral idiosoma; C. spermatodactyl. Scale bars = 20 μm.
Figure 3 in Morphological characteristics of Neoseiulus setarius Ma, Meng & Fan, sp. nov. (Acari: Phytoseiidae) from China
Figure 3. Neoseiulus setarius Ma, Meng & Fan, sp. nov., adult female. A. Gnathosoma; B. Palp; C. Leg I; D. Leg II; E. Leg III; F. Leg IV. Scale bars: A–B = 20 μm; C–F = 50 μm.
Figure 2 in Morphological characteristics of Neoseiulus setarius Ma, Meng & Fan, sp. nov. (Acari: Phytoseiidae) from China
Figure 2. Neoseiulus setarius Ma, Meng & Fan, sp. nov., adult female. A. Dorsal idiosoma; B. Ventral idiosoma; C. Chelicera; D. Spermatheca. Scale bars: A–B = 40 μm; C–D = 10 μm.
Figure 1 in Morphological characteristics of Neoseiulus setarius Ma, Meng & Fan, sp. nov. (Acari: Phytoseiidae) from China
Figure 1. Neoseiulus setarius Ma, Meng & Fan, sp. nov., adult female. A. Dorsal idiosoma; B. Ventral idiosoma; C. Chelicera; D–E. Variations of spermatheca. Scale bars: A–B = 50 μm; C–E = 20 μm.
Figure 1 in The effects of two essential oils on thefunctional response of Amblyseius swirskii (Acari: Phytoseiidae) fed on Frankliniella occidentalis (Thysanoptera: Thripidae)
Figure 1. The functional response curves and feeding percentages of Amblyseius swirskii on the first instar Frankliniella occidentalis after exposure to Mentha piperita (a1, b1), and Laurus nobilis (a2, b2) essential oils.
Figures 1–5 in First record of Amblyseius bryophilus Karg (Acari: Phytoseiidae) for the Turkish fauna
Figures 1–5. Amblyseius bryophilus Karg (♀). Dorsal shield, 2. Ventral surface 3. Chelicera 4. Spermathecae, 5. Leg IV.
Fig. 2 in Preference of Neoseiulus californicus (Acari: Phytoseiidae) for volatiles of Bt maize induced by multiple herbivory
Fig. 2. Predatory mite Neoseiulus californicus preference for volatile compounds in two-choice olfactometer tests, comparing: conventional maize plants infested by Tetranychus urticae (C + Tu); conventional maize plants infested by Tetranychus urticae and Spodoptera frugiperda (C + Tu + Sf); Bt maize plants infested by T. urticae (Bt + Tu); Bt maize plants infested by T. urticae and S. frugiperda (Bt + Tu + Sf). Numbers in bars represent individual predatory mites that choose the indicated odor. No significant p ≥ 0.05.
Fig. 5 in Preference of Neoseiulus californicus (Acari: Phytoseiidae) for volatiles of Bt maize induced by multiple herbivory
Fig. 5. Projection to principal component analysis (PCA) based on the headspace composition of volatiles of conventional maize plants uninfested (C = o); conventional maize plants infested by Tetranychus urticae (C + Tu = •); Bt maize plants uninfested (Bt = Δ); and Bt maize plants infested by T. urticae (Bt + Tu = N), using the first two principal components (Dim) with explained variance in brackets.
Fig. 1 in Preference of Neoseiulus californicus (Acari: Phytoseiidae) for volatiles of Bt maize induced by multiple herbivory
Fig. 1. Predatory mite Neoseiulus californicus preference for volatile compounds in two-choice olfactometer tests, comparing: conventional maize plants uninfested (C); conventional maize plants infested by Tetranychus urticae (C + Tu); Bt maize plants uninfested (Bt); and Bt maize plants infested by T. urticae (Bt + Tu); Numbers in bars represent individual predatory mites that choose the indicated odor. No significant p ≥ 0.05.
Fig. 3 in Preference of Neoseiulus californicus (Acari: Phytoseiidae) for volatiles of Bt maize induced by multiple herbivory
Fig. 3. Chromatograms of volatile compounds extracted from leaves of conventional maize plants uninfested (C); conventional maize plants infested by Tetranychus urticae (C + Tu); Bt maize plants uninfested (Bt); and Bt maize plants infested by T. urticae (Bt + Tu). The compounds observed in analysis were 1 = (E)-Hex-2-enal; 2 = heptanal; 3 = (E)-Oct-2-enal; 4 = α-pineno; 5 = β-cisocimeno; 6 = β-Ciclocitral; 7 = 1-metil-6-(3-metilbuta-1,3-dienil)-7-oxabiciclo[4,1,0]heptano; 8 = no identificated = C8; 9 = no identificated = C9; 10 = β-ionona; 11 = Ciclosativena; 12 = (E)-7-tetradecen-1-ol; 13 = no identificated = C13; 14 = Linolenic acid ethyl ester; 15 = no identificated = C15.
Fig. 4 in Preference of Neoseiulus californicus (Acari: Phytoseiidae) for volatiles of Bt maize induced by multiple herbivory
Fig. 4. Chromatograms of volatile compounds extracted from leaves of conventional maize plants infested by Tetranychus urticae (C + Tu); conventional maize plants infested by Tetranychus urticae and Spodoptera frugiperda (C + Tu + Sf = +); Bt maize plants infested by T. urticae (Bt + Tu); Bt maize plants infested by T. urticae and S. frugiperda (Bt + Tu + Sf). The compounds observed in analysis were 1 = (E)-Hex-2-enal; 2 = heptanal; 3 = (E)-Oct-2-enal; 4 = ˛-pineno; 5 = ˇ-cisocimeno; 6 = ˇ-Ciclocitral; 7 = 1-metil-6- (3-metilbuta-1,3-dienil)-7-oxabiciclo[4,1,0]heptano; 8 = ˇ-ionona; 9 = no identificated = C9; 10 = (E)-7-tetradecen-1-ol; 11 = no identificated = C11; 12 = Linolenic acid ethyl ester; 13 = no identificated = C13.
Fig. 9 in Biological control of the twospotted spider mite (Trombidiformes: Tetranychidae) with the predatory mite Neoseiulus californicus (Mesotigmata: Phytoseiidae) in blackberries
Fig. 9. Population of T. urticae (TU) and N. californicus (NC) eggs in treatments of N. californicus (A), Abamectin, and unsprayed (control) (B), plots on Navaho variety in a field experiment.
Fig. 5 in Biological control of the twospotted spider mite (Trombidiformes: Tetranychidae) with the predatory mite Neoseiulus californicus (Mesotigmata: Phytoseiidae) in blackberries
Fig. 5. Population of T. urticae (TU) and N. californicus (NC) motiles in N. californicus (A), Abamectin, and unsprayed (control) (B), plots on Arapaho variety in a field experiment. (The arrows on the graph indicate the time of treatment and mite density at that time.)
Fig. 3 in Biological control of the twospotted spider mite (Trombidiformes: Tetranychidae) with the predatory mite Neoseiulus californicus (Mesotigmata: Phytoseiidae) in blackberries
Fig. 3. Population of T. urticae (TU) and N. californicus (NC) eggs stages in N. californicus (A), Abamectin, and unsprayed (control) (B), plots on Arapaho variety in a greenhouse experiment.
Fig. 1 in Biological control of the twospotted spider mite (Trombidiformes: Tetranychidae) with the predatory mite Neoseiulus californicus (Mesotigmata: Phytoseiidae) in blackberries
Fig. 1. Population of T. urticae (TU) and N. californicus (NC) motiles in treatments of N. californicus (A), Abamectin, and unsprayed (control) plots (B), on Arapaho variety in a greenhouse experiment. (The arrows on the graph indicate the time of treatment and mite density at that time.)
Fig. 6 in Biological control of the twospotted spider mite (Trombidiformes: Tetranychidae) with the predatory mite Neoseiulus californicus (Mesotigmata: Phytoseiidae) in blackberries
Fig. 6. Population of T. urticae (TU) and N. californicus (NC) motiles in treatments of N. californicus (A), Abamectin, and unsprayed (control) (B), plots on Navaho variety in a field experiment. (The arrows on the graph indicate the time of treatment and mite density at that time.)
Fig. 10 in Biological control of the twospotted spider mite (Trombidiformes: Tetranychidae) with the predatory mite Neoseiulus californicus (Mesotigmata: Phytoseiidae) in blackberries
Fig. 10. Population of T. urticae (TU) and N. californicus (NC) eggs in treatments of N. californicus (A), Abamectin, and unsprayed (control) (B), plots on Ouachita variety in a field experiment. (The arrows on the graph indicate the time of treatment and mite density at that time.)
Table 2 in Predation and oviposition potential of Brazilian populations of the predatory mite Amblyseius tamatavensis (Acari: Phytoseiidae) on eggs of Bemisia tabaci (Insecta: Hemiptera)
<p><b>Table 2</b> Mean lengths (in micrometers ± standard error of the mean) of structures of populations of <i>Amblyseius tamatavensis</i> collected in different Brazilian municipalities (May 2015 to May 2016), and mean lengths given in the original description of the species (Blommers 1974).</p><table><tbody><tr><th>Parameter 1</th><th>Olho d’Água das Flores</th><th>Jataí</th><th>Nova- Crixás</th><th>Bom Repouso</th><th>Ituiutaba</th><th>Senador Amaral</th><th>Campinas</th><th>Cananéia</th><th>Mogi- Guaçu</th><th>Piracicaba (Areão)</th><th>Piracicaba (ESALQ)</th><th>Saltinho</th><th>Santa Maria da Serra</th><th>Lab.</th><th>Original descrip.</th></tr></tbody><tbody><tr><th>DSL</th><td>341±6 a</td><td>336±3 b</td><td>328±4 c</td><td>337±4 b</td><td>336±3 b</td><td>335 ± 7 b</td><td>333±3 b</td><td>338±5 b</td><td>337±5 b</td><td>333±2 c</td><td>336±4 b</td><td>324±6 c</td><td>325±2 c</td><td>342±5 a</td><td>340</td></tr><tr><th>DSW</th><td>231±4 a</td><td>226±4 b</td><td>223±3 bc</td><td>226±2 b</td><td>227±4 b</td><td>225±3 b</td><td>219±2 c</td><td>220±1 c</td><td>224±1 b</td><td>226±3 b</td><td>226±3 b</td><td>224±3 b</td><td>226 ± b</td><td>233±2 a</td><td>250</td></tr><tr><th><i>j1</i></th><td>32±0 a</td><td>31±0 a</td><td>32±0 a</td><td>32±0 a</td><td>32±0 a</td><td>32±1 a</td><td>30±3 a</td><td>31±1 a</td><td>33±0 a</td><td>32±1 a</td><td>31±2 a</td><td>31±1 a</td><td>31 ± 0 a</td><td>32±0 a</td><td>32</td></tr><tr><th><i>j3</i></th><td>51±1 b</td><td>54±2 a</td><td>50±4 b</td><td>52±3 b</td><td>54±1 a</td><td>55±2 a</td><td>52±1 b</td><td>51±5 b</td><td>55±2 a</td><td>52±1 b</td><td>55±1 a</td><td>52±1 b</td><td>51 ± 1 b</td><td>55±1 a</td><td>54</td></tr><tr><th><i>j4</i></th><td>5±0 a</td><td>5±0 a</td><td>5±0 a</td><td>5±0 a</td><td>5±0 a</td><td>6±0 a</td><td>5±0 a</td><td>5±1 a</td><td>5±0 a</td><td>5±0 a</td><td>5±0 a</td><td>5±0 a</td><td>5 ± 0 a</td><td>5±0 a</td><td>4</td></tr><tr><th><i>j5</i></th><td>4±0 a</td><td>3±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>3±0 a</td><td>3±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>3</td></tr><tr><th><i>J2</i></th><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>5±0 a</td><td>5±0 a</td><td>6±0 a</td><td>5±1 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6 ± 0 a</td><td>6±0 a</td><td>5</td></tr><tr><th><i>J5</i></th><td>8±0 a</td><td>7±1 a</td><td>7±1 a</td><td>7±0 a</td><td>7±1 a</td><td>7±0 a</td><td>7±1 a</td><td>8±0 a</td><td>7±1 a</td><td>8±0 a</td><td>7±1 a</td><td>7±0 a</td><td>7 ± 1 a</td><td>7±1 a</td><td>6</td></tr><tr><th><i>z2</i></th><td>6±0 a</td><td>6±1 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±1 a</td><td>6±0 a</td><td>6±0 a</td><td>7±0 a</td><td>7±0 a</td><td>6±1 a</td><td>7 ± 0 a</td><td>6±0 a</td><td>6</td></tr><tr><th><i>z4</i></th><td>7±0 a</td><td>7±0 a</td><td>6±0 a</td><td>7±0 a</td><td>6±1 a</td><td>7±0 a</td><td>6±1 a</td><td>6±0 a</td><td>7±0 a</td><td>7±0 a</td><td>7±0 a</td><td>6±0 a</td><td>6 ± 0 a</td><td>7±0 a</td><td>6</td></tr><tr><th><i>z5</i></th><td>4±0 a</td><td>4±1 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>3±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4±0 a</td><td>4 ± 0 a</td><td>4±0 a</td><td>3</td></tr><tr><th><i>Z1</i></th><td>6±0 a</td><td>6±1 a</td><td>7±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±1 a</td><td>6±0 a</td><td>6±0 a</td><td>7±0 a</td><td>6±0 a</td><td>7±0 a</td><td>6 ± 0 a</td><td>7±0 a</td><td>5</td></tr><tr><th><i>Z4</i></th><td>105±2 a</td><td>107±3 a</td><td>105±2 a</td><td>105±2 a</td><td>105±2 a</td><td>107±3 a</td><td>104±1 a</td><td>106±2 a</td><td>105±3 a</td><td>105±3 a</td><td>104±2 a</td><td>104±2 a</td><td>106 ±1 a</td><td>106±1 a</td><td>115</td></tr><tr><th><i>Z5</i></th><td>229±2 a</td><td>226±5 a</td><td>225±2 a</td><td>227±2 a</td><td>228±3 a</td><td>227±4 a</td><td>225±3 a</td><td>228±4 a</td><td>228±3 a</td><td>228±1 a</td><td>228±2 a</td><td>229±2 a</td><td>227±1a</td><td>229±2 a</td><td>250</td></tr><tr><th><i>s4</i></th><td>86±3 a</td><td>88±2 a</td><td>87±3 a</td><td>87±3 a</td><td>88±2 a</td><td>89±2 a</td><td>86±2 a</td><td>86±2 a</td><td>89±3 a</td><td>88±2 a</td><td>88±3 a</td><td>86±2 a</td><td>88±1 a</td><td>87±3 a</td><td>88</td></tr><tr><th><i>S2</i></th><td>7 ±0 a</td><td>6±1 a</td><td>7±0 a</td><td>6±0 a</td><td>7±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>7±0 a</td><td>7±0 a</td><td>6 ± 0 a</td><td>6±0 a</td><td>5</td></tr><tr><th><i>S4</i></th><td>6 ±1 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>7±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6 ± 0 a</td><td>6±0 a</td><td>6</td></tr><tr><th><i>S5</i></th><td>6 ±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6±0 a</td><td>6 ± 0 a</td><td>6±0 a</td><td>6</td></tr><tr><th><i>r3</i></th><td>14±1 a</td><td>15±1 a</td><td>13±1 a</td><td>14±1 a</td><td>14±1 a</td><td>14±1 a</td><td>13±2 a</td><td>14±1 a</td><td>15±1 a</td><td>15±1 a</td><td>15±1 a</td><td>14±1 a</td><td>14 ± 0 a</td><td>15±1 a</td><td>15</td></tr><tr><th><i>R1</i></th><td>7±0 a</td><td>7±1 a</td><td>7±0 a</td><td>7±0 a</td><td>7±0 a</td><td>7±0 a</td><td>7±0 a</td><td>7±1 a</td><td>7±1 a</td><td>7±1 a</td><td>7±0 a</td><td>7±0 a</td><td>7 ± 0 a</td><td>7±1 a</td><td>5</td></tr><tr><th>VASL</th><td>117±2 a</td><td>110±4 b</td><td>110±5 b</td><td>114±1 ab</td><td>110±2 b</td><td>108±4 b</td><td>111±3 b</td><td>112±3 b</td><td>113±2 b</td><td>113±2 b</td><td>108±3 b</td><td>109±3 b</td><td>111 ± 1 b</td><td>119±3 a</td><td>120</td></tr><tr><th>VASWant</th><td>99±3 a</td><td>97±4 a</td><td>94±3 b</td><td>95±3 b</td><td>95±2 b</td><td>93±2 b</td><td>91±4 b</td><td>98±4 a</td><td>97±3 a</td><td>95±2 b</td><td>97±2 a</td><td>91±3 b</td><td>92 ± 1 b</td><td>100±4 a</td><td>100</td></tr><tr><th>VASWpost</th><td>62±3 a</td><td>60±2 a</td><td>64±3 a</td><td>63±2 a</td><td>62±2 a</td><td>63±2 a</td><td>62±1 a</td><td>63±2 a</td><td>64±3 a</td><td>63±2 a</td><td>64±2 a</td><td>62±3 a</td><td>62± 2 a</td><td>62±4 a</td><td>-</td></tr><tr><th><i>St1-St2</i></th><td>32±0 a</td><td>32±0 a</td><td>32±1 a</td><td>33±1 a</td><td>33±0 a</td><td>32±0 a</td><td>32±1 a</td><td>32±0 a</td><td>34±0 a</td><td>32±1 a</td><td>32±1 a</td><td>32±1 a</td><td>33 ± 0 a</td><td>33±0 a</td><td>-</td></tr><tr><th><i>St2-St2</i></th><td>68±2 a</td><td>69±0 a</td><td>68±2 a</td><td>68±1 a</td><td>68±0 a</td><td>68±1 a</td><td>67±1 a</td><td>69±1 a</td><td>69±1 a</td><td>67±1 a</td><td>68±0 a</td><td>68±0 a</td><td>68 ± 1 a</td><td>70±0 a</td><td>-</td></tr><tr><th><i>St3-St3</i></th><td>76±2 a</td><td>77±2 a</td><td>76±2 a</td><td>78±3 a</td><td>76±2 a</td><td>78±1 a</td><td>75±1 a</td><td>77±2 a</td><td>77±2 a</td><td>76±2 a</td><td>76±2 a</td><td>76±1 a</td><td>77 ± 1 a</td><td>78±2 a</td><td>-</td></tr><tr><th><i>St1-St3</i></th><td>59±1 a</td><td>60±2 a</td><td>61±1 a</td><td>60±1 a</td><td>60±1 a</td><td>60±1 a</td><td>59±1 a</td><td>60±1 a</td><td>61±1 a</td><td>60±1 a</td><td>59±1 a</td><td>59±1 a</td><td>61 ± 0 a</td><td>62±1 a</td><td>-</td></tr><tr><th><i>St2-St3</i></th><td>27±1 a</td><td>27±1 a</td><td>28±1 a</td><td>27±1 a</td><td>28±1 a</td><td>28±0 a</td><td>27±1 a</td><td>28±1 a</td><td>28±1 a</td><td>28±1 a</td><td>28±1 a</td><td>27±0 a</td><td>28 ± 0 a</td><td>29±1 a</td><td>-</td></tr><tr><th><i>St4-St4</i></th><td>94±3 a</td><td>86±2 b</td><td>81±3 c</td><td>86±2 b</td><td>84±1 b</td><td>88±8 ab</td><td>81±3 c</td><td>84±2 b</td><td>84±3 b</td><td>86±3 b</td><td>86±2 b</td><td>81±3 c</td><td>85 ± 1 b</td><td>92±3 a</td><td>-</td></tr><tr><th><i>St5-St5</i></th><td>74±2 a</td><td>74±1 a</td><td>74±2 a</td><td>75±1 a</td><td>74±2 a</td><td>74±2 a</td><td>73±1 a</td><td>75±1 a</td><td>76±2 a</td><td>76±2 a</td><td>74±1 a</td><td>74±2 a</td><td>75 ± 2 a</td><td>76±2 a</td><td>-</td></tr><tr><th><i>Jv1</i></th><td>15±1 a</td><td>16±0 a</td><td>16±1 a</td><td>17±1 a</td><td>16±1 a</td><td>17±1 a</td><td>16±1 a</td><td>15±1 a</td><td>17±1 a</td><td>16±1 a</td><td>17±0 a</td><td>16±1 a</td><td>17 ± 0 a</td><td>17±1 a</td><td>-</td></tr><tr><th><i>Jv2</i></th><td>15±1 a</td><td>16±1 a</td><td>15±1 a</td><td>15±1 a</td><td>15±0 a</td><td>15±1 a</td><td>16±0 a</td><td>15±1 a</td><td>15±2 a</td><td>15±1 a</td><td>15±0 a</td><td>15±0 a</td><td>15 ± 0 a</td><td>16±1 a</td><td>-</td></tr><tr><th><i>Jv4</i></th><td>8±0 a</td><td>7±0 a</td><td>7±1 a</td><td>8±0 a</td><td>8±0 a</td><td>8±0 a</td><td>8±0 a</td><td>8±1 a</td><td>8±1 a</td><td>8±0 a</td><td>8±0 a</td><td>8±0 a</td><td>8 ± 0 a</td><td>7±0 a</td><td>-</td></tr><tr><th><i>Jv5</i></th><td>78±3</td><td>73±2</td><td>77±4</td><td>78±3</td><td>79±3</td><td>81±4</td><td>74±1</td><td>80±3</td><td>83±4</td><td>81±3</td><td>82±2</td><td>80±3</td><td>81 ± 2 a</td><td>82±3</td><td>84</td></tr><tr><th><i>Zv1</i></th><td>14±1 a</td><td>16±0 a</td><td>14±1 a</td><td>14±1 a</td><td>15±0 a</td><td>15±0 a</td><td>14±1 a</td><td>14±1 a</td><td>14±1 a</td><td>14±1 a</td><td>15±0 a</td><td>15±1 a</td><td>15 ± 0 a</td><td>14±0 a</td><td>-</td></tr><tr><th><i>Zv2</i></th><td>12±1 a</td><td>12±0 a</td><td>12±1 a</td><td>12±1 a</td><td>12±1 a</td><td>12±1 a</td><td>11±1 a</td><td>12±1 a</td><td>12±0 a</td><td>12±0 a</td><td>13±0 a</td><td>12±1 a</td><td>12 ± 0 a</td><td>13±1 a</td><td>-</td></tr><tr><th><i>Zv3</i></th><td>9±0 a</td><td>9±1 a</td><td>9±0 a</td><td>9±0 a</td><td>9±0 a</td><td>9±0 a</td><td>9±0 a</td><td>9±1 a</td><td>9±1 a</td><td>9±0 a</td><td>10±1 a</td><td>9±0 a</td><td>9 ± 0 a</td><td>10±0 a</td><td>-</td></tr><tr><th><i>SgeIV</i></th><td>98±2 a</td><td>97±3 a</td><td>97±3 a</td><td>98±3 a</td><td>97±2 a</td><td>99±2 a</td><td>98±2 a</td><td>100±2 a</td><td>100±4 a</td><td>100±1 a</td><td>98±2 a</td><td>98±3 a</td><td>99 ± 2 a</td><td>100±3 a</td><td>120</td></tr><tr><th><i>StiIV</i></th><td>66±4 a</td><td>65±3 a</td><td>66±2 a</td><td>66±3 a</td><td>67±4 a</td><td>64±2 a</td><td>65±1 a</td><td>66±4 a</td><td>65±4 a</td><td>64±3 a</td><td>66±3 a</td><td>64±3 a</td><td>65 ± 2 a</td><td>64±4 a</td><td>75</td></tr><tr><th><i>StIV</i></th><td>61±4 a</td><td>63±2 a</td><td>62±3 a</td><td>63±1 a</td><td>64±2 a</td><td>63±2 a</td><td>62±3 a</td><td>62±2 a</td><td>64±1 a</td><td>64±3 a</td><td>64±2 a</td><td>62±2 a</td><td>63 ± 0 a</td><td>65±2 a</td><td>73</td></tr><tr><th>Calyx</th><td>20±1 a</td><td>19±1 a</td><td>19±1 a</td><td>20±1 a</td><td>19±1 a</td><td>18±2 a</td><td>19±1 a</td><td>20±1 a</td><td>19±1 a</td><td>19±1 a</td><td>19±0 a</td><td>20±1 a</td><td>19±1 a</td><td>21±1 a</td><td>16</td></tr></tbody></table><p><sup>1</sup> DSL: dorsal shield length along the midline; DSW: dorsal shield width at the widest level of the podonotal region; VASL: length of the ventrianal shield along the midline; VSWant and VSWpost: anterior (at level of <i>ZV2</i>) and posterior (at level of anal opening) width of the ‘ventrianal shield; <i>SgeIV, StiIV</i> and <i>StIV</i>: lengths of macrosetae of genu, tibia and tarsus of leg IV; calyx: length of calyx of spermatheca. In a same line, means followed by the same letters are not statistically different (Tukey´s test; <i>P</i>> 0.05); (-) Not given.</p>
Figure 3 in Seasonal abundance of Tetranychus urticae and Amblyseius swirskii (Acari: Tetranychidae and Phytoseiidae) on four strawberry cultivars
Figure 3. Overall mean numbers of Tetranychus urticae and Amblyseius swirskii on four strawberry cultivars during (a) 2017/2018 and (b) 2018/2019 seasons.
ScienceDex guides
Understand access before you commit
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.