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zenodo32/100

Figure 1 in Shedding light on species boundaries in small endogeic animals through an integrative approach: species delimitation in the centipede Clinopodes carinthiacus (Chilopoda: Geophilidae) in the south-eastern Alps

Figure 1. Study area (white contour), sampling sites for the integrative species delimitation analysis (labelled symbols; codes as in Table 1) and all other sites of occurrence based on confidently identified specimens and validated published records (symbols without labels). Sites of occurrence of the two resulting species are distinguished (see key), and the single site of syntopy is indicated (white arrow).

opennotspecifiedSep 2022View details →
zenodo32/100

Figure 4 in Shedding light on species boundaries in small endogeic animals through an integrative approach: species delimitation in the centipede Clinopodes carinthiacus (Chilopoda: Geophilidae) in the south-eastern Alps

Figure 4. Number of pairs of legs in specimens confidently identified as belonging to Clinopodes carinthiacus s.s. and Clinopodes strasseri in the study area. Differences between species are statistically significant for both males and females (Mann–Whitney U-test: P <0.0001 for both sexes; Supporting Information, Table S8).

opennotspecifiedSep 2022View details →
zenodo32/100

Fig. 8 in Multi-gene phylogeny of the subclass Astomatia (Protista: Ciliophora) refreshed with two rare astome ciliates from the digestive tube of endogeic earthworms

Fig. 8 Phylogenetic tree based on the 18S, 5.8S, and 28S rRNA genes, showing the systematic positions of Metaradiophrya speculorum sp. n. and Maupasella mucronata. The subclass Hymenostomatia was used to a posteriori root the tree. Bootstrap values for maximum likelihood conducted in IQTrees as well as posterior probabilities for Bayesian inferences conducted in Phycas and MrBayes were mapped onto the

opennotspecifiedJan 2021View details →
zenodo32/100

Fig. 7 in Multi-gene phylogeny of the subclass Astomatia (Protista: Ciliophora) refreshed with two rare astome ciliates from the digestive tube of endogeic earthworms

Fig. 7 Phylogenetic tree based on the 18S rRNA gene and the ITS region, showing the systematic positions of Metaradiophrya speculorum sp. n. and Maupasella mucronata within the subclass Astomatia. The tree was a posteriori rooted according to Fig. 6. Bootstrap values for maximum likelihood conducted in IQTrees as well as posterior probabilities for Bayesian inferences conducted in Phycas and MrBayes were mapped

opennotspecifiedJan 2021View details →
zenodo32/100

Fig. 5 in Multi-gene phylogeny of the subclass Astomatia (Protista: Ciliophora) refreshed with two rare astome ciliates from the digestive tube of endogeic earthworms

Fig. 5 Phylogenetic tree based on the 18S rRNA gene, showing the systematic positions of Metaradiophrya speculorum sp. n. and Maupasella mucronata within the class Oligohymenophorea. The subclass Peniculia was used to a posteriori root the tree. Bootstrap values for maximum likelihood conducted in IQTrees as well as posterior probabilities for Bayesian inferences conducted in Phycas and

opennotspecifiedJan 2021View details →
zenodo32/100

Fig. 2 in Multi-gene phylogeny of the subclass Astomatia (Protista: Ciliophora) refreshed with two rare astome ciliates from the digestive tube of endogeic earthworms

Fig. 2 Metaradiophrya speculorum sp. n., holotype specimen in vivo. a Overview, showing the general body organization. Arrow marks the arched skeletal ridge; arrowheads denote the contractile vacuoles. b, d–f Details showing the ciliary pattern, the skeletal system, the nuclear apparatus, and the multiple contractile vacuoles (arrowheads). The skeletal system consists of a fibrillar hook and numerous fibers, which

opennotspecifiedJan 2021View details →
zenodo32/100

Fig. 1 in Multi-gene phylogeny of the subclass Astomatia (Protista: Ciliophora) refreshed with two rare astome ciliates from the digestive tube of endogeic earthworms

Fig. 1 Metaradiophrya speculorum sp. n., holotype specimen in vivo. a, b Semi-schematic diagram of the ventral and the dorsal side, showing the ciliary pattern, the nuclear apparatus, as well as the skeletal system. c Ventral view, showing the general body organization. Arrow marks the arched skeletal ridge; arrowheads denote the contractile vacuoles. d Detail of the skeletal system, which consists of a fibrillar hook and

opennotspecifiedJan 2021View details →
zenodo32/100

Fig. 6 in Multi-gene phylogeny of the subclass Astomatia (Protista: Ciliophora) refreshed with two rare astome ciliates from the digestive tube of endogeic earthworms

Fig. 6 Phylogenetic tree based on the 18S rRNA gene, showing the systematic positions of Metaradiophrya speculorum sp. n. and Maupasella mucronata isolated from endogeic lumbricid earthworms. The phylogenetic tree suggests that the evolution of endosymbiotic astome ciliates has proceeded through specialization to ecological groups of their host earthworms. Haptophrya planariarum and Dexiotricha spp. were used to a posteriori root the tree. Bootstrap

opennotspecifiedJan 2021View details →
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Fig. 4 in Multi-gene phylogeny of the subclass Astomatia (Protista: Ciliophora) refreshed with two rare astome ciliates from the digestive tube of endogeic earthworms

Fig. 4 Maupasella mucronata, Slovak specimens in vivo. a, b, g Overviews, showing the ciliary pattern, the skeletal system, and the nuclear apparatus. c Detail of the thorn and its supporting fibers. d The supporting fibers of the attachment apparatus of the opisthe are formed at the anterior end of the broken somatic ciliary rows. e Somatic kineties are narrowly arranged and composed of very densely spaced basal bodies. f

opennotspecifiedJan 2021View details →
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Fig. 3 in Multi-gene phylogeny of the subclass Astomatia (Protista: Ciliophora) refreshed with two rare astome ciliates from the digestive tube of endogeic earthworms

Fig. 3 Maupasella mucronata, Slovak specimens in vivo. a, d Semischematic diagrams of the ventral side, showing the ciliary pattern and the nuclear apparatus of representative specimens. b, c Ventral view, showing the ciliary pattern and the nuclear apparatus of a mid-divider. e, f Semi-schematic diagrams, showing the general body organization. Arrows mark the thorn, which consists of two skeletal fibers arranged in

opennotspecifiedJan 2021View details →
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Fig. 9 in Multi-gene phylogeny of the subclass Astomatia (Protista: Ciliophora) refreshed with two rare astome ciliates from the digestive tube of endogeic earthworms

Fig. 9 Putative secondary structure of ITS2 molecules of Metaradiophrya speculorum sp. n. and Maupasella mucronata as well as comparison of stems of helix III between Metaradiophrya speculorum and Metaradiophrya lumbrici

opennotspecifiedJan 2021View details →
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Bioturbation by endogeic earthworms facilitates entomopathogenic nematode movement toward herbivore-damaged maize roots

Open the record for dataset details and reuse information.

publicAug 2022View details →
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Fig. 5 in An unusually elongate endogeic centipede from Sardinia (Chilopoda: Geophilidae)

Fig. 5. Localities where Endogeophilus ichnusae gen. et sp. nov. has been collected, in the Sulcis- Iglesiente, Sardinia. The type locality is indicated by a star.

opencc-by-3.0Sep 2016View details →
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Fig. 4 in An unusually elongate endogeic centipede from Sardinia (Chilopoda: Geophilidae)

Fig. 4. Forcipules of Endogeophilus ichnusae gen. et sp. nov. and the two most similar geophilid species. Left part of the forcipular segment, ventral view, in adult females. A. E. ichnusae gen. et sp. nov., holotype, ♀, original drawing. B. Geophilus electricus (Linnaeus, 1758), original drawing from a representative specimen, ♀ (see 'Material and methods'). C. Galliophilus beatensis Ribaut & Brolemann, 1927, holotype, ♀, redrawn from Brolemann (1927). Scale bars = 200 µm.

opencc-by-3.0Sep 2016View details →
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Fig. 3 in An unusually elongate endogeic centipede from Sardinia (Chilopoda: Geophilidae)

Fig. 3. Endogeophilus ichnusae gen. et sp. nov., paratype A, ³. A. Leg-bearing segment 20, ventral view. B. Posterior part of leg-bearing segment 21 and anterior part of segment 22, ventral view. C. Right forcipular tarsungulum, ventral view. D. Right tarsungulum, ventro-mesal view. E. Right tarsungulum, frontal view. SEM micrographs. Scale bars = 50 µm.

opencc-by-3.0Sep 2016View details →
zenodo28/100

FIGURE 1 in Baezia vulcania sp. n., an endogeous weevil from La Palma I. (Canary Is.) (Coleoptera: Curculionidae: Molytinae)

FIGURE 1. Baezia vulcania sp. n. Male holotype, dorsal view.

opennotspecifiedDec 2002View details →
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Figure 1 in Morphological alteration in response to endogeic habitat and ant association in two new planthopper species from New Caledonia (Hemiptera: Auchenorrhyncha: Fulgoromorpha: Delphacidae)

Figure 1. Taxonomic distribution of hypogeic (troglobitic, endogeic, and troglophilic) Fulgoromorpha species. Morphology-based consensus cladogram combined after Asche (1987), Bourgoin (1997), and Emeljanov (1990).

opencc-by-4.0Dec 2006View details →
geo24/100

Yeast EndoG prevents genome instability by degrading extranuclear DNA species

GEO Series GSE246469. Saccharomyces cerevisiae. 95 samples. Type: Other.

openGEO-OpenDec 2023View details →
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Figure 5 in Shedding light on species boundaries in small endogeic animals through an integrative approach: species delimitation in the centipede Clinopodes carinthiacus (Chilopoda: Geophilidae) in the south-eastern Alps

Figure 5. Contribution of the bioclimatic variables on the first two principal components of climatic variation in the study area, and density of occurrence of Clinopodes carinthiacus s.s. and Clinopodes strasseri on the two principal components estimated with ecospat, based on 106 sites (former species) and 16 sites (latter). Continuous and dashed contour lines indicate 100% and 50% of the available climatic space, respectively.

opennotspecifiedSep 2022View details →

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