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33 results for “Anoplocephalidae”
FIGURE 10 in Phylogenetic relationships and taxonomic revision of Paranoplocephala Lühe, 1910 sensu lato (Cestoda, Cyclophyllidea, Anoplocephalidae)
FIGURE 10. Microticola etholeni from Microtus pennsylvanicus from Alaska (USA). A. Scolex and neck. B. Mature proglottid. Redrawn from Haukisalmi et al. (2002).
FIGURE 12. Hunkeleriella dasymidis from Dasymys incomtus from Ivory Coast. A. Scolex and neck. B in Phylogenetic relationships and taxonomic revision of Paranoplocephala Lühe, 1910 sensu lato (Cestoda, Cyclophyllidea, Anoplocephalidae)
FIGURE 12. Hunkeleriella dasymidis from Dasymys incomtus from Ivory Coast. A. Scolex and neck. B. Mature proglottid. Redrawn from Haukisalmi (2013). The position of the proximal end of the vagina is shown by an arrow.
FIGURE 5 in Phylogenetic relationships and taxonomic revision of Paranoplocephala Lühe, 1910 sensu lato (Cestoda, Cyclophyllidea, Anoplocephalidae)
FIGURE 5. Phylogeny based on concatenated nad1 + cox1 (mtDNA) sequences. Details as in Fig. 3. The three most important morphological features are mapped on the tree by letters within black boxes. L, scolex and suckers large, latter protruding, directed anteriorly; in other species, scolex and suckers small, latter not protruding, directed laterally or antero-laterally. W, neck wide relative to the scolex width (66–85%); in other species, neck thin (<66% of the scolex width). S, Vagina short relative to the cirrus-sac (<60%); in other species, vagina long relative to the cirrus-sac (>60%).
FIGURE 3 in Phylogenetic relationships and taxonomic revision of Paranoplocephala Lühe, 1910 sensu lato (Cestoda, Cyclophyllidea, Anoplocephalidae)
FIGURE 3. Phylogeny based on cox1 (mtDNA) sequences. DNA codes (haplotypes) in parentheses after the species names refer to Table 1. Posterior probabilities of nodes thought to be significant (≥95%) are shaded. The name of the type species of each genus is in bold. The names of the genera of the Paranoplocephala-like cestodes are in bold.
FIGURE 2 in Phylogenetic relationships and taxonomic revision of Paranoplocephala Lühe, 1910 sensu lato (Cestoda, Cyclophyllidea, Anoplocephalidae)
FIGURE 2. Study localities in North America. 13, Seward Peninsula, Alaska, USA. 14, Bering Land Bridge National Preserve, Alaska, USA. 15, Cape Krusenstern National Monument, Alaska, USA. 16, Noatak National Park, Alaska, USA. 17, Gates of the Arctic National Park and Preserve, Alaska, USA. 18, Fairbanks, Alaska, USA. 19, Paxson and Dot Lake, Alaska, USA. 20, Denali National Park, Alaska, USA. 21, Wrangell-St. Elias National Park and Preserve, Alaska, USA. 22, Ivvavik National Park, Yukon, Canada. 23, Cape Bathurst, Northwest Territories, Canada. 24, Byron Bay, Nunavut, Canada. 25, British Columbia, Canada. 26, Nevada, USA. 27, Yosemite National Park, California, USA.
FIGURE 1 in Phylogenetic relationships and taxonomic revision of Paranoplocephala Lühe, 1910 sensu lato (Cestoda, Cyclophyllidea, Anoplocephalidae)
FIGURE 1. Study localities in Eurasia. 1, Kilpisjärvi, Finland. 2, Pallasjärvi, Finland. 3, Turku, Finland. 4, Bourg-Saint- Maurice, France. 5, Loze, Croatia. 6, Izsák, Hungary. 7, Barbacs and Hanság, Hungary. 8, Buryatia, Russia. 9, Fenglin, Heilongjiang, China. 10, Taymyr Peninsula, Russia. 11, Elegan River, Russia. 12, Wrangel Island, Russia.
FIGURE 2 in Monoecocestus (Cestoda: Anoplocephalidae) diversity in Sigmodontinae rodents characterized by morphology and molecular methods
FIGURE 2. Scanning electron micrographs of Monoecocestus threlkeldi: (a) scolex, lateral view; (b) acicular filitriches; (c) genital peduncle with everted cirrus, apical view; (d) genital peduncle, lateral view; (e) cirrus spined; (f) cirrus spines detail. Histological section of Monoecocestus sp.3: (g) full strobila; (h) cirrus sac and cirrus spined.
FIGURE 4 in Monoecocestus (Cestoda: Anoplocephalidae) diversity in Sigmodontinae rodents characterized by morphology and molecular methods
FIGURE 4. Phylogenetic tree of Monoecocestus spp. (Cestoda: Anoplocephalidae) based on concatenated rDNA (ITS1) and mtDNA (cox1). Phylogenetic tree inferred using Bayesian method. Maximum Likelihood bootstrap values of clades are listed first, followed by Bayesian Posterior Probabilities respectively, for clade frequencies exceeding 65%.
FIGURE 1 in Monoecocestus (Cestoda: Anoplocephalidae) diversity in Sigmodontinae rodents characterized by morphology and molecular methods
FIGURE 1. Morphological features of Monoecocestus threlkeldi: (a) scolex, (b) mature proglottids, (c) egg; Monoecocestus sp.1: (d) scolex, (e) mature proglottids, (f) egg; Monoecocestus sp.2: (g) scolex, (h) mature proglottids, (i) egg; Monoecocestus sp.3: (j) scolex, (k) mature proglottids, (l) egg.
FIGURE 3 in Monoecocestus (Cestoda: Anoplocephalidae) diversity in Sigmodontinae rodents characterized by morphology and molecular methods
FIGURE 3. Phylogenetic tree of Monoecocestus spp. (Cestoda: Anoplocephalidae) based on the rDNA (ITS1). Phylogenetic tree inferred using Bayesian method. Maximum Likelihood bootstrap values of clades are listed first, followed by Bayesian Posterior Probabilities respectively, for clade frequencies exceeding 65%.
Supplementary Figure S1 in Monoecocestus (Cestoda: Anoplocephalidae) diversity in Sigmodontinae rodents characterized by morphology and molecular methods
Supplementary Figure S1. Phylogenetic tree of Monoecocestus spp. (Cestoda: Anoplocephalidae) based on mtDNA (cox1). Phylogenetic tree inferred using Bayesian method. Maximum Likelihood bootstrap values of clades are listed first, followed by Bayesian Posterior Probabilities respectively, for clade frequencies exceeding 65%.
Figure 1. Pritchardia boliviensis n. gen. n in Pritchardia boliviensis N. Gen., N. Sp. (Anoplocephalidae: Linstowinae) a tapeworm from opossums (Didelphidae) in the yungas and lowlands of Bolivia and Atlantic forest of Paraguay
Figure 1. Pritchardia boliviensis n. gen. n. sp. A) Photomicrograph of complete specimen. Image shows scolex, Anlagen of genitalia in developing segment just posterior to scolex, mature proglottid, and terminal gravid proglottid. Scale = 100 µm. B) Embryonic hooks from egg capsule in uterus of gravid proglottid. Scale = 10 µm. C) Cirrus. Scale = 10 µm. D) Mature proglottid, showing arrangement of reproductive organs relative to osmoregulatory canals. Scale = 100 µm.
FIGURE 4 in Phylogenetic relationships and taxonomic revision of Paranoplocephala Lühe, 1910 sensu lato (Cestoda, Cyclophyllidea, Anoplocephalidae)
FIGURE 4. Phylogeny based on nad1 (mtDNA) sequences. Details as in Fig. 3.
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