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4,005 results for “Oribatida”
Fig. 1 in New Faunistical Data On Oribatid Mites From The Philippines, With A Description Of A New Species Of The Genus Trachyoribates (Acari, Oribatida, Haplozetidae)
Fig. 1. Trachyoribates insularis sp. n., adult: A = dorsal view (legs not shown); B = ventral view (gnathosoma and legs not shown); C = right lateral view (legs not shown); D = poste-
Fig. 8 in Two New Species Of Insect Phoretic Siculobata (Paraleius) (Acari, Oribatida, Scheloribatidae) From U.S.A. And Trinidad
Fig. 8. Siculobata (Paraleius) trinidadensis sp. n., dissected adult, microscope images: A = rostrum; B = bothridial head; C = part of lateral side of prodorsum; D = humeral saccule Ah; E = leg claw II; F = leg claw III
Fig. 6 in Two New Species Of Insect Phoretic Siculobata (Paraleius) (Acari, Oribatida, Scheloribatidae) From U.S.A. And Trinidad
Fig. 6. Siculobata (Paraleius) trinidadensis sp. n., adult: A = posterior view; B = subcapitulum, ventral view; C = palp, right, antiaxial view; D = chelicera, right, antiaxial view. Scale bar
Fig. 5 in Two New Species Of Insect Phoretic Siculobata (Paraleius) (Acari, Oribatida, Scheloribatidae) From U.S.A. And Trinidad
Fig. 5. Siculobata (Paraleius) trinidadensis sp. n., adult: A = dorsal view (legs not shown); B = ventral view (gnathosoma and legs not shown); C = lateral view (gnathosoma and legs not
Fig. 3 in Two New Species Of Insect Phoretic Siculobata (Paraleius) (Acari, Oribatida, Scheloribatidae) From U.S.A. And Trinidad
Fig. 3. Siculobata (Paraleius) americana sp. n., adult: A = leg I, without trochanter, right, antiaxial view; B = trochanter, femur and genu of leg II, right, antiaxial view; C = trochanter, femur and genu of leg III, left, antiaxial view; D = leg IV, left, antiaxial view. Scale bar 20 Μm
Fig. 1 in Two New Species Of Insect Phoretic Siculobata (Paraleius) (Acari, Oribatida, Scheloribatidae) From U.S.A. And Trinidad
Fig. 1. Siculobata (Paraleius) americana sp. n., adult: A = dorsal view (legs not shown); B = ventral view (gnathosoma and legs not shown); C = lateral view (gnathosoma and legs not shown). Scale bar 50 Μm
Fig. 2 in New Faunistical Data On Oribatid Mites From The Philippines, With A Description Of A New Species Of The Genus Trachyoribates (Acari, Oribatida, Haplozetidae)
Fig. 2. Trachyoribates insularis sp. n., adult: A = subcapitulum, ventral view; B = palp, left, paraxial view; C = chelicera, left, paraxial view; D = leg I, right, antiaxial view; E = leg II, without tarsus, right, antiaxial view; F = leg III, without tarsus, left, antiaxial view; G = leg IV, left, antiaxial view. Scale bars 20 μm (A, C–G), 10 μm (B)
Fig. 7 in Two New Species Of Insect Phoretic Siculobata (Paraleius) (Acari, Oribatida, Scheloribatidae) From U.S.A. And Trinidad
Fig. 7. Siculobata (Paraleius) trinidadensis sp. n., adult: A = leg I, without trochanter, left, paraxial view; B = trochanter, femur and genu of leg II, left, paraxial view; C = trochanter, femur
Fig. 4 in Two New Species Of Insect Phoretic Siculobata (Paraleius) (Acari, Oribatida, Scheloribatidae) From U.S.A. And Trinidad
Fig. 4. Siculobata (Paraleius) americana sp. n., dissected adult, microscope images: A = rostrum; B = bothridial seta; C = part of lateral side of prodorsum; D = humeral saccule Ah; E = ceroteg-
Fig. 2 in A New Species Of Ceratobates (Acari, Oribatida) From Peru And A Key To Known Species Of The Genus
Fig. 2. Ceratobates pachiteaensis sp. n., adult: A = subcapitulum, ventral view; B = palp, right, antiaxial view; C = chelicera, left, paraxial view; D = leg I, right, antiaxial view; E = leg II, without tarsus, right, antiaxial view; F = leg III, without tarsus, left, antiaxial view; G = leg IV, left, antiaxial view. Scale bar 20 μm
Figure 2 in Molecular evolutionary trends and biosynthesis pathways in the Oribatida revealed by the genome of Archegozetes longisetosus
Figure 2 Comparisons and annotations of the official gene set (OGS) of Archegozetes longisetosus.a – Number of gene models of the mites compared to other mites, chelicerates and the fruit fly (Grbić et al., 2011; Cao et al., 2013; dos Santos et al., 2015; Gulia-Nuss et al., 2016; Schwager et al., 2017). b – Non-linear multidimensional scaling plot (NMDS) of clustered orthogroups based on the OGS or predicted proteins
Figure 3 in Molecular evolutionary trends and biosynthesis pathways in the Oribatida revealed by the genome of Archegozetes longisetosus
Figure 3 Orthology comparison and phylogenetic placement of Archegozetes longisetosusamong other chelicerates. a – Maximum likelihood phylogeny based on concatenation of 1,121 orthologs showing the mites phylogenetic position within the Oribatida (all nodes have 100%
Figure 7 in Molecular evolutionary trends and biosynthesis pathways in the Oribatida revealed by the genome of Archegozetes longisetosus
Figure 7 Horizontal gene transfer (HGT) and implications for the feeding biology of Archegozetes longisetosus. a – Blob-plot of the long- read genome assembly contigs plotting the read coverage against GC proportion [%]. Contigs are colored according to the taxonomic order
Figure 3 in Two new species of the genus Ghilarovizetes (Acari: Oribatida: Ceratozetidae) from China
Figure 3 Ghilarovizetes sichuanensis sp. nov., adult: A – dorsal view (legs not shown); B – rostral seta and anterio-dorsal view of rostrum; C – bothridial seta; D – palp, left, paraxial view; E – chelicera, left, paraxial view. Scale bar 200 μm (A), 100 μm (E, D), 50 μm (B, C)
Figure 6 in Molecular evolutionary trends and biosynthesis pathways in the Oribatida revealed by the genome of Archegozetes longisetosus
Figure 6 The sensory systems of Archegozetes longisetosusand phylogenetic analysis of selected photoreceptor and chemosensory genes. a – Scanning electron micrograph (SEM) showing the end of tarsus on Archegozetes′ first leg. Images shows normal setae, but also modified chemosensory setae, namely eupathidia, both paired (p) and single (s), as well as an omega-3 solenidium. SEM picture courtesy of Michael Heethoff. b – Phylogeny and classification of opsin genes across the Metazoa, including those of several Chelicerata. The tree was constructed using a maximum likelihood approach (LG+F+R4 model) and rooted with a jelly fish opsin. Archegozetes sequences are depicted in red, Drosophila in turquoise; branch length unit is substitutions per site. c – Maximum likelihood phylogeny of ionotropic receptors and ionotropic glutamate receptors (LG+F+R6 model) of Archegozetes (Along), Dinothrombium (Dt), Leptothrombidium (Ld), Tetranychus (Tu) and Drosophila (Dmel). IR25a/IR8a and antenna/1 st leg IRs contain genes with known chemosensory function in Drosophila. The tree was rooted to the middle point; Archegozetes sequences are depicted in red, Drosophila in turquoise; branch length unit is substitutions per site. Bootstrap values can be found in the supplementary Figure S13. d – Maximum likelihood phylogenetic tree of gustatory receptors (JTT+F+R6 model) of Archegozetes(Along), Ixodes (Is), Tropilaelaps (Tm), Metaseiulus (Mocc) and Drosophila (Dmel). The tree was rooted to the middle point; Archegozetessequences are depicted in red, Drosophila in turquoise; branch length unit is substitutions per site. Bootstrap values can be found in the supplementary Figure S14. e – Combined image of volume rendering (grey) and reconstructed nervous system of Archegozetesin dorsal view. Color-code corresponds to different parts of the nervous system, as depicted in the legend. The blue structure in the middle of the synganglion is the part of the esophagus which penetrates the synganglion. Scale bar: 200 µm. Image courtesy of Sebastian Schmelzle based
Figure 1 in Molecular evolutionary trends and biosynthesis pathways in the Oribatida revealed by the genome of Archegozetes longisetosus
Figure 1 The mite, Archegozetes longisetosus, in its phylogenetic and natural environment. a – Species tree of selected oribatid mites of the family Trhypochthoniidae based on phylogenetic analyses and divergence time estimates (Heethoff et al., 2011b). b – Two adults and one tritonymph of Archegozeteson a piece of leaf litter. The algae growing on the leaf serves as a food source for the mites. c – Habitus of an adult mite based on a surface rendering of a µCT-scan reconstruction. Image courtesy of Sebastian Schmelzle. d – Hi-C interaction matrix maps of the nine Archegozeteschromosomes. The corrected contacts are indicated by the color scale on the right from red (high density) to blue (low density)
Figure 8 in Molecular evolutionary trends and biosynthesis pathways in the Oribatida revealed by the genome of Archegozetes longisetosus
Figure 8 Reconstruction of the biosynthetic pathway leading to monoterpenes in Archegozetes longisetosus. a – Representative gas chro- matogram of the mite′ gland content; in order of retention time: 2-hydroxy-6-methyl-benzaldehyde (2,6-HMBD), neral (( Z)-3,7-dimethylocta- 2,6-dienal) neryl formate (( Z)-3,7-dimethyl-2,6-octadienyl formate), tridecane, 3-hydroxybenzene-1,2-dicarbaldehyde (γ-acaridial). Further alkanes/alkenes (pentadec-7-ene, pentadecane, heptadeca-6,9-diene, heptadec-8-ene, heptadecane) are not shown. Monoterpenes are marked
Figure 2 in Two new species of the genus Ghilarovizetes (Acari: Oribatida: Ceratozetidae) from China
Figure 2 Ghilarovizetes labaheensis sp. nov., adult: A – leg I, left, paraxial view; B – leg IV, right, antiaxial view. Scale bar 50 μm.
Figure 1 in Two new species of the genus Ghilarovizetes (Acari: Oribatida: Ceratozetidae) from China
Figure 1 Ghilarovizetes labaheensis sp. nov., adult: A – dorsal view (legs not shown); B – ventral view (palp and legs not shown); C – lateral aspect of podosoma (legs, subcapitulum, palp and notogaster not shown); D – palp, left, paraxial view; E – chelicera, left, paraxial view. Scale bar all 100 μm (A-E)
Figure 5 in Two new species of the genus Ghilarovizetes (Acari: Oribatida: Ceratozetidae) from China
Figure 5 Ghilarovizetes sichuanensis sp. nov., adult: A – leg I, left, paraxial view; B – leg IV, right, antiaxial view. Scale bar 50 μm.
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