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Supplementary material 2 from: Basset Y, Donoso DA, Hajibabaei M, Wright MTG, Perez KHJ, Lamarre GPA, De León LF, Palacios-Vargas JG, Castaño-Meneses G, Rivera M, Perez F, Bobadilla R, Lopez Y, Ramirez JA, Barrios H (2020) Methodological considerations for monitoring soil/litter arthropods in tropical rainforests using DNA metabarcoding, with a special emphasis on ants, springtails and termites. Metabarcoding and Metagenomics 4: e58572. https://doi.org/10.3897/mbmg.4.58572
Appendix S2
Fig. 3 in Desoria calderonis sp. nov., a new species of alpine cryophilic springtail (Collembola: Isotomidae) from the Apennines (Italy), with phylogenetic and ecological considerations
Fig. 3. Desoria calderonis sp. nov. A. Leg I, left; upper and lower subcoxa, coxa and trochanter. B. Leg II, left; upper and lower subcoxa, coxa and trochanter. C. Leg III, left; upper and lower subcoxa, coxa and trochanter. D. Ventral side of furca. E. Dorsal side of furca. F. Retinaculum. G. Mucro and apical part of dens, lateral and dorsal views. H. Lateral part of Abd. IV–V sternites. I. Tita III and Claw III.
FIGURE 1 in Catalogue of Vietnamese springtails (Hexapoda, Collembola)
FIGURE 1. Map of Vietnam showing the regions and provinces where Collembola has been recorded.
Figure 3 in The amount of mulch increases the abundance, and its composition the species diversity of springtails in crop rotation on chernozem soils
Figure 3. Effect of the mulch amount and composition on groups of life forms. – epigeic, – hemiedaphic, — euedaphic. (A) plant residues of peas, (B) plant residues of wheat.
Figure 5 in The amount of mulch increases the abundance, and its composition the species diversity of springtails in crop rotation on chernozem soils
Figure 5. Species-treatment plot resulting from redundancy analyses (RDA) of Collembola community composition.
Figure 4 from: Lessel T, Marx M, Eisenbeis G (2011) Effects of ecological flooding on the temporal and spatial dynamics of carabid beetles (Coleoptera, Carabidae) and springtails (Collembola) in a polder habitat. ZooKeys 100: 421-446. https://doi.org/10.3897/zookeys.100.1538
Figure 4 - Mean number of individuals of hygrophilic (A/B) and xerophilic/mesophilic (C/D) carabid beetle species at the fallow (A/C) and ruderal area (B/D) during different moisture conditions. Abbreviations: ef = ecological flooding (higher Rhine water levels); spe = flood caused by a strong precipitation event; dc = drought conditions; ° outliers. Different letters represent statistically significant differences (Mann-Whitney U-test).
Figure 3 from: Lessel T, Marx M, Eisenbeis G (2011) Effects of ecological flooding on the temporal and spatial dynamics of carabid beetles (Coleoptera, Carabidae) and springtails (Collembola) in a polder habitat. ZooKeys 100: 421-446. https://doi.org/10.3897/zookeys.100.1538
Figure 3 - Mean number of individuals per trap and day (± SE) and total carabid beetle species number at location 1 (fallow area) and location 6 (ruderal area) (n=3) during the vegetation period of 2008. Hygrophilic species (black bars) and xerophilic as well as mesophilic species (grey bars) are shown. Abbreviations: ef = ecological flooding; spe = strong precipitation event.
Figure 1 from: Lessel T, Marx M, Eisenbeis G (2011) Effects of ecological flooding on the temporal and spatial dynamics of carabid beetles (Coleoptera, Carabidae) and springtails (Collembola) in a polder habitat. ZooKeys 100: 421-446. https://doi.org/10.3897/zookeys.100.1538
Figure 1 - Location of the polder "Ingelheim" in Germany and location of the different areas and pitfall trap localities (L1–L6) within this polder (A). Abbreviations: LA 0: ruderal area; HB 0: fallow area; LA 0 + HB 0: transition area between LA 0 and HB 0; HA 0: agricultural fields; L1–6: locations of the six pitfall trap groups (three pitfall traps per locality). The pictures show the main flood gate (left) and the ecological flood gate (right), and an ecological flooding in March 2007 (B) and the fast drying event in the ruderal area after ecological flooding in April 2007 (C).
Figure 6 from: Lessel T, Marx M, Eisenbeis G (2011) Effects of ecological flooding on the temporal and spatial dynamics of carabid beetles (Coleoptera, Carabidae) and springtails (Collembola) in a polder habitat. ZooKeys 100: 421-446. https://doi.org/10.3897/zookeys.100.1538
Figure 6 - PCA of springtail communities in the fallow area (location 1) and the ruderal area (location 6) during ecological flooding, the flood caused by a strong precipitation event and drought conditions. Only species with more than 1% dominance value in at least one area are included. Abbreviations of the species: I.pal=Isotomurus palustris; I.vir=Isotoma viridis; L.cya=Lepidocyrtus cyaneus; O.vil=Orchesella villosa; P.aqu=Podura aquatica; S.aqu=Sminthurides aquaticus. Percentage variation explained by the two PCA axes are included.
Figure 2 from: Lessel T, Marx M, Eisenbeis G (2011) Effects of ecological flooding on the temporal and spatial dynamics of carabid beetles (Coleoptera, Carabidae) and springtails (Collembola) in a polder habitat. ZooKeys 100: 421-446. https://doi.org/10.3897/zookeys.100.1538
Figure 2 - PCA of carabid beetle communities in the fallow area (location 1) and the ruderal area (location 6) during ecological flooding, the flood caused by a strong precipitation event and drought conditions. Only species with more than 1% dominance value in at least one area are included. Abbreviations of the species: A.mar=Agonum marginatum; A.bif=Amara bifrons; A.sim=Amara similata; B.lam=Bembidion lampros; B.pro=Bembidion properans; B.qua=Bembidion quadrimaculatum; C.pur=Carabus purpurascens; H.aff=Harpalus affinis; H.ruf=Harpalus rufipes; H.sma=Harpalus smaragdinus; N.bre=Nebria brevicollis; O.ard=Ophonus ardosiacus; P.cup=Poecilus cupreus; P.ant=Pterostichus anthracinus; P.mel=Pterostichus melanarius; P.nig=Pterostichus nigrita. Percentage variation explained by the two PCA axes is included.
Figure 5 from: Lessel T, Marx M, Eisenbeis G (2011) Effects of ecological flooding on the temporal and spatial dynamics of carabid beetles (Coleoptera, Carabidae) and springtails (Collembola) in a polder habitat. ZooKeys 100: 421-446. https://doi.org/10.3897/zookeys.100.1538
Figure 5 - Mean individual numbers per trap and day (± SE) and total species numbers of springtails of the pitfall traps of location 1 and location 6 (n=3) over the vegetation period 2008. Hygrophilic and hygrotolerant species (black bars) and xerotolerant as well as mesophilic species (grey bars) are shown. Abbreviations: ef = ecological flooding; spe = strong precipitation event.
Figure 7 from: Lessel T, Marx M, Eisenbeis G (2011) Effects of ecological flooding on the temporal and spatial dynamics of carabid beetles (Coleoptera, Carabidae) and springtails (Collembola) in a polder habitat. ZooKeys 100: 421-446. https://doi.org/10.3897/zookeys.100.1538
Figure 7 - Mean number of individuals of hygrophilic/hygrotolerant (A/B) and xerotolerant/mesophilic (C/D) collembolan species at the fallow (A/C) and ruderal area (B/D) during different moisture conditions. Abbreviations: ef = ecological flooding (higher Rhine water levels); spe = flood caused by a strong precipitation event; dc = drought conditions; ° outliers. Different letters represent statistically significant differences (Mann-Whitney U-test).
Figures 41-46 from: Soto-Adames F (2011) New species of springtails in the Proisotoma genus complex from Vermont and New York, USA with descriptive notes on Ballistura alpa Christiansen & Bellinger 1980 (Hexapoda, Collembola, Isotomidae). ZooKeys 147: 19-37. https://doi.org/10.3897/zookeys.147.2093
Figures 41-46 - Pachyotoma alpa (Christiansen & Bellinger) 41 dorsal chaetotaxy of Th. 2-Abd. 5, s= sensilla, ms= microsensilla 42 Ant. 4 subapical sense organ 43 Ant. 3 sense organ and associated sensilla, arrow points anteriorly 45 Mucro 46 Lateral anal valve 47 Chaetotaxy of anterolateral (al), anteromedial (am) and posterior (p) furcula subcoxae and their position relative to tenaculum (ten).
Figures 14-25 from: Soto-Adames F (2011) New species of springtails in the Proisotoma genus complex from Vermont and New York, USA with descriptive notes on Ballistura alpa Christiansen & Bellinger 1980 (Hexapoda, Collembola, Isotomidae). ZooKeys 147: 19-37. https://doi.org/10.3897/zookeys.147.2093
Figures 14-25 - Subisotoma joycei sp. n. 14 Habitus of holotype 15 Sensillar chaetotaxy of Th. 2-Abd. 5, s=sensilla, ms= microsensilla, arrow points at position of Abd. 3 medial sensilla in a different individual 16 Subapical organ of Ant. 4 17 Eye patch and PAO 18 Labial palp papilla E 18a dorsal aspect 18b ventral aspect 19 Lateral anal valve 20–22 Postlabial chaetotaxy showing variation in number of setae assigned to column C 23 Modified metatibiotarsal seta in mature male 24 Mucro 24a lateral aspect 24b oblique aspect 25 Organization of furcula.
Figures 1-13 from: Soto-Adames F (2011) New species of springtails in the Proisotoma genus complex from Vermont and New York, USA with descriptive notes on Ballistura alpa Christiansen & Bellinger 1980 (Hexapoda, Collembola, Isotomidae). ZooKeys 147: 19-37. https://doi.org/10.3897/zookeys.147.2093
Figures 1-13 - Ballistura rossi sp. n. 1 Habitus 2 Eye patch and PAO 3 Labial and postlabial chaetotaxy 4 Lateral anal valve chaetotaxy 5 Chaetotaxy of Th. 2-Abd. 4 6 Chaetotaxy of Abd. 5 7 Posterior chaetotaxy of mesotibiotarsus 8 ventral chaetotaxy of dens 9 Dorsal chaetotaxy of dens, tubercles represented by dotted line 10 General anterior (left side) and posterior (right side) chaetotaxy of furcula 11 Metatibiotarsus and claw complex 12–13 Mucro from two individuals.
Figures 29-40 from: Soto-Adames F (2011) New species of springtails in the Proisotoma genus complex from Vermont and New York, USA with descriptive notes on Ballistura alpa Christiansen & Bellinger 1980 (Hexapoda, Collembola, Isotomidae). ZooKeys 147: 19-37. https://doi.org/10.3897/zookeys.147.2093
Figures 29-40 - Scutisotoma champi sp. n. 29 Habitus 30 Eye patch and PAO 31 Outer maxillary lobe 32 Frontal aspect of maxilla 33 Dorsal chaetotaxy of Th. 2-Abd. 1, s= sensilla, ms= microsensilla, M= macroseta 34 Ventral aspect of labial palp, terminal process of papilla A, C and E omitted 35 Labial and postlabial chaetotaxy 36 Dorsal chaetotaxy of Abd. 3-Abd. 5 37 Male metathoracic leg, lateral view 38 Chaetotaxy of pro-, meso- and meta thoracic subcoxae, from left to right, respectively 39 Dorsal (lower half) and ventral (upper half) chaetotaxy of furcula 40 mucro.
Figures 26-28 from: Soto-Adames F (2011) New species of springtails in the Proisotoma genus complex from Vermont and New York, USA with descriptive notes on Ballistura alpa Christiansen & Bellinger 1980 (Hexapoda, Collembola, Isotomidae). ZooKeys 147: 19-37. https://doi.org/10.3897/zookeys.147.2093
Figures 26-28 - Subisotoma joycei sp. n. 26 Posterior view of mesothoracic tibiotarsus 27 Metatibiotarsus, arrow points at abnormal seta 28 Dorsal (left side) and ventral (right side) chaetotaxy of manubrial base, manubrium and dens.
Figure 6 from: Katz AD, Taylor SJ, Soto-Adames FN, Addison A, Hoese GB, Sutton MR, Toulkeridis T (2016) New records and new species of springtails (Collembola: Entomobryidae, Paronellidae) from lava tubes of the Galápagos Islands (Ecuador). Subterranean Biology 17: 77-120. https://doi.org/10.3897/subtbiol.17.7660
Figure 6 - Heteromurus (Heteromurtrella) nitens. A–D dorsal chaetotaxy: A Abd. I B Abd. II C Abd. III D Abd. IV E hind claw complex.
Figure 9 from: Katz AD, Taylor SJ, Soto-Adames FN, Addison A, Hoese GB, Sutton MR, Toulkeridis T (2016) New records and new species of springtails (Collembola: Entomobryidae, Paronellidae) from lava tubes of the Galápagos Islands (Ecuador). Subterranean Biology 17: 77-120. https://doi.org/10.3897/subtbiol.17.7660
Figure 9 - Lepidocyrtus nigrosetosus. A–C dorsal chaetotaxy: A Abd. II B Abd. II of Lepidocyrtus leleupi paratype; C Abd. III.
Figure 3 from: Katz AD, Taylor SJ, Soto-Adames FN, Addison A, Hoese GB, Sutton MR, Toulkeridis T (2016) New records and new species of springtails (Collembola: Entomobryidae, Paronellidae) from lava tubes of the Galápagos Islands (Ecuador). Subterranean Biology 17: 77-120. https://doi.org/10.3897/subtbiol.17.7660
Figure 3 - March 2015 relative humidity (%) and air temperature (°C) by cave zone for nine caves (Cueva Cañón, Cueva Cascajo, Cueva Chato 1, Cueva Chato 2, Cueva Gallardo, Cueva JoAnn, Cueva Primicias, Cueva Soyla, and La Llegada) on Santa Cruz Island, Galápagos Islands, Ecuador, where biological sampling took place during this study.
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