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1,309 results for “Cladoceras”
Fig. 5 in Revision of the costata-group of Alona s. lato (Cladocera: Anomopoda: Chydoridae) confirms its generic status
Fig. 5. Flavalona rustica (Scott, 1895) comb. nov. A–N. Labrum, antennule and thoraciс limbs of parthenogenetic ♀ from Bol'shoe Torfyanoe lake, Bolshoi Solovetskiy Island (White Sea), Russia. A–B. Labrum. C. Antennule. D. Limb I. E. IDL and ODL of limb I. F. Scrapers of limb II. G. Gnathobase of limb II. H. Exopodite of limb III. I. Inner portion of limb III. J. Exopodite of limb IV. K. Inner portion of limb IV. L. Limb V. M. Gnathobase of limb V. N. Limb VI. O–P. Adult ♁. O. Lateral view. P. Postabdomen. Figure O redrawn from Alonso (1996) and P from Sinev (1999a).
Fig.3. A in Revision of the costata-group of Alona s. lato (Cladocera: Anomopoda: Chydoridae) confirms its generic status
Fig.3. A. Flavalona cheni (Sinev, 1999) comb. nov., head pores of parthenogenetic ♀. B–C. Flavalona natalensis (Sinev, 2008) comb. nov., parthenogenetic ♀. B. Lateral view. C. Head pores. D. Flavalona setigera (Brehm, 1931) comb. nov., head pores of parthenogenetic ♀. E–F. Flavalona weltneri (Keilhack, 1905) comb. nov., parthenogenetic ♀. E. Head pores. F. Postabdomen. Figures A and D from Sinev (1999a), B–C from Sinev (2008), E redrawn from Flössner (2000) and F redrawn from Van Damme et al. (2010).
Fig. 2 in Revision of the costata-group of Alona s. lato (Cladocera: Anomopoda: Chydoridae) confirms its generic status
Fig. 2. Flavalona costata (Sars, 1862) comb. nov., Randsfjorden Lake, Norway. A–L. Labrum and thoraciс limbs of parthenogenetic ♀. A. Labrum. B. Limb I. C. ODL of limb I. D. Ejector hooks of limb I. E. Limb II. F. Exopodite of limb III. G–H. Inner portion of limb III. I. Exopodite of limb IV. J. Inner portion of limb IV. K. Limb V. L. Limb VI. M–N. Thoracic limb I of adult ♁.
Fig. 1 in Revision of the costata-group of Alona s. lato (Cladocera: Anomopoda: Chydoridae) confirms its generic status
Fig. 1. Flavalona costata (Sars, 1862) comb. nov., Randsfjorden Lake, Norway. A–K. Parthenogenetic ♀. A. Lateral view. B. Ventral margin of valves. C. Anterior setae of valves. D. Posterior setae of valves. E. Posteroventral corner and posterior margin of valves. F. Head shield. G–H. Head pores. I. Postabdomen. J. Antennule. K. Antenna. L. Ephippial ♀. M. Ephippium. N–P. ♁. N. Lateral view. O. Postabdomen. P. Antennule and outline of rostrum.
Fig. 6 in Revision of the costata-group of Alona s. lato (Cladocera: Anomopoda: Chydoridae) confirms its generic status
Fig. 6. Flavalona bicolor (Frey, 1965) comb. nov. A–E. Parthenogenetic ♀. A. Lateral view (specimen retaining valves from previous moult). B. Head shield. C. Head pores. D. Labrum. E. Postabdomen. F. Postabdomen of adult ♁. — G–J. Flavalona hudeci (Sinev, 1999) comb. nov., parthenogenetic ♀ G. Lateral view. H. Head pores. I. Posteroventral corner of valves. J. Thoracic limb V. — K–O. Flavalona iheringula (Sinev & Kotov, 2004) comb. nov. K–M. Parthenogenetic ♀. K. Lateral view. L. Head pores. M. Thoracic limb V. N–O. Adult ♁. N. Lateral view. O. Postabdomen. — P. Flavalona sphagnophila (Van Damme & Eggermont, 2011) comb. nov., parthenogenetic ♀, head pores. Figures A–F from Sinev (2009), G–J redrawn from Hudeč (1998), K–M from Sinev (2001), N–O from Kotov & Sinev (2004) and P redrawn from Van Damme & Eggermont (2011).
Figure 1 in First evidence of parasitation of a Bosmina (Cladocera) by a water mite larva in a karst sinkhole, in Quintana Roo (Yucatán Peninsula, México)
Figure 1 Water mite larva (Unionicola sp.) attached to a water flea (Bosmina tubicen). The scale bar indicates 50 μm.
Figure 2 A in First evidence of parasitation of a Bosmina (Cladocera) by a water mite larva in a karst sinkhole, in Quintana Roo (Yucatán Peninsula, México)
Figure 2 A – Lateral view of the Unionicola larva, frontal view on the Bosmina. B – Close up of perforations made by pedipalps and chelicerae of the water mite in the valve of the water flea. Scale bars indicate 50 μm.
Figure 4 in A revision of the extinct Mesozoic family Prochydoridae Smirnov, 1992 (Crustacea: Cladocera) with a discussion of its phylogenetic position
Figure 4. SEM micrographs of Archeoxus mirabilis from Khotont, Mongolia. A–C, holotype PIN 4307/2028, general view, head and ventral margin of valve. D, E, PIN 4307/2018, general view and antenna II. F, G, paratype PIN 4397/2007, antenna II and postabdominal claws. H, paratype PIN 4307/2012, general view. Scale bars: A, D, H, 1 mm; B, C, E–G, 0.1 mm.
Figure 6 in A revision of the extinct Mesozoic family Prochydoridae Smirnov, 1992 (Crustacea: Cladocera) with a discussion of its phylogenetic position
Figure 6. SEM (A–D, F) and optical (E, G, H) micrographs of Recent Anomopoda. A, Chydorus sphaericus. B, Leberis diaphanus. C, D, Daphnia barbata, lateral view and head. E, Saycia cooki, head shield. F, Eurycercus lamellatus, dissected head. G, Daphnia magna, exuvium. H, Daphnia magna, mandibular articulation. Scale bars: 0.1 mm.
Figure 5 in A revision of the extinct Mesozoic family Prochydoridae Smirnov, 1992 (Crustacea: Cladocera) with a discussion of its phylogenetic position
Figure 5. SEM micrographs of Palaeorak scherbakovi gen. nov., sp. nov. from Khasurty, Buryat Autonomous Republic, Russia. A–C, holotype, 5026/178, general view, head and antenna II. D, lateral view, 5026/183. E, denticles on ventral margin of valve, 5026/182. F, postabdominal claws, 5026/177. G, antenna II, PIN 5026/179. H, antenna II, 5026/181. Scale bars: A, D, 1 mm; B, C, E–H, 0.1 mm.
Figure 8 in A new divergent lineage of Daphnia (Cladocera: Anomopoda) and its morphological and genetical differentiation from Daphnia curvirostris Eylmann, 1887
Figure 8. Daphnia tanakai sp. nov., male from Lake Midori-ga-ike, Japan. A, lateral view. B, caudal spine. C, head. D, E, armature of antero-ventral and posterior portion of valve. F, G, postabdomen and postabdominal claw. H, male antenna I. I, tip of male seta ('flagellum') on antenna I. J, K, limb I and its distal portion. L–O, distal-most endite of limb II.
Figure 7 in A new divergent lineage of Daphnia (Cladocera: Anomopoda) and its morphological and genetical differentiation from Daphnia curvirostris Eylmann, 1887
Figure 7. Daphnia tanakai sp. nov., thoracic limbs of parthenogenetic female from Lake Midori-ga-ike, Japan. A, B, limb I. C, D, anterior seta on its endite 3 and 2. E, limb II. F, G, stiff seta on its inner-distal end. H, gnathobase II. I, J, limb III and its inner-distal portion. K, L, limb IV and its inner-distal portion. M, N, limb V and distal portion of its exopodite.
Figure 6 in A new divergent lineage of Daphnia (Cladocera: Anomopoda) and its morphological and genetical differentiation from Daphnia curvirostris Eylmann, 1887
Figure 6. Daphnia tanakai sp. nov. from Lake Midori-ga-ike, collected on August 30, 2004 by S. Tanaka (A–F, K–O) and Lake Kagami-ike, collected on September 01, 2004 by S. Tanaka (G–J, P–R); both lakes are in Hida Mountain Range, Honshu Island, Japan. A, parthenogenetic female, lateral view. B, head of parthenogenetic female. C, D, armature of postero-ventral and posterior region of valve. E, postabdomen. F–I, postabdominal claws of adults. J, postabdominal claw of juvenile. K, L, antenna I in lateral and distal view. M, N, distal portion of basal segment in posterior and anterior view. O, swimming seta. P, Q, ephippial female and postero-dorsal portion of its carapace. R, ephippium.
Figure 3 in A new divergent lineage of Daphnia (Cladocera: Anomopoda) and its morphological and genetical differentiation from Daphnia curvirostris Eylmann, 1887
Figure 3. Daphnia curvirostris, large parthenogenetic female from Lake Glubokoe, Moscow area, European Russia, collected on August 9, 2004 by AAK. A, lateral view. B, caudal spine. C–E, head. F, G, armature of postero-ventral and posterior region of valve. H, postabdomen. I, J, postabdominal claw. K, L, antenna I in lateral and posterior view.
Figure 5 in A new divergent lineage of Daphnia (Cladocera: Anomopoda) and its morphological and genetical differentiation from Daphnia curvirostris Eylmann, 1887
Figure 5. Daphnia curvirostris from Lake Glubokoe, Moscow area, European Russia, collected on September 9, 2004 by N. N. Smirnov. A, B, ephippial female and its postero-dorsal region. C, fresh ephippium. D, adult male. E, male head. F, G, armature of ventral margin of valve. H, armature of posterior portion of valve. I, J, postabdomen and abdomen. K, antenna I. L, antenna II. M, N, limb I and its distal portion. O, armature of distal portion of largest seta of outer distal lobe. P, innerdistal portion of limb II.
Figure 2 in A new divergent lineage of Daphnia (Cladocera: Anomopoda) and its morphological and genetical differentiation from Daphnia curvirostris Eylmann, 1887
Figure 2. Mapping the characters of chromosome number and postabdominal claw morphology onto the Daphnia ND2 consensus tree (Fig. 1). A, the left cladogram shows the evolution of chromosome number. Black line denotes 2n = 22, white line denotes 2n = 20 and dot line denotes 2n = 24. B, the right cladogram shows the evolution of postabdominal claw morphology. Black line denotes variable phenotype between the longispina-claw and pulex-claw types, white line denotes the longispina- claw type, dot line denotes the pulex-claw type and grey line denotes equivocal.
Figure 4 in A new divergent lineage of Daphnia (Cladocera: Anomopoda) and its morphological and genetical differentiation from Daphnia curvirostris Eylmann, 1887
Figure 4. Daphnia curvirostris, appendages of parthenogenetic female from Lake Glubokoe, European Russia. A, coxal part of antenna II. B, distal portion of basal segment and basal portion of branches. C, distal portion of endopod. D, swimming seta. E, maxilla I. F, limb I: ODL indicates outer distal lobe; IDL indicates inner distal lobe. G–I, limb II, second seta on its inner-distal end, and gnathobase II. J–L, limb III, its inner-distal portion and filtering seta of gnathobase. M, N, limb IV and its inner-distal portion. O, limb V.
Figure 1 in A new divergent lineage of Daphnia (Cladocera: Anomopoda) and its morphological and genetical differentiation from Daphnia curvirostris Eylmann, 1887
Figure 1. ME bootstrap consensus tree of Daphnia ND2 sequences. The numbers on each branch show support values of the branch. Upper numbers indicate ME, and ML bootstrap support values for nucleotide sequences. Middle numbers indicate MP bootstrap support values and Bayesian clade credibility values for nucleotide sequences. Lower numbers indicate MP bootstrap support values and Bayesian clade credibility values for amino acid sequences. Asterisks indicate no support values.
FIGURE 5 in Cryptic diversity and gene introgression of Moinidae (Crustacea: Cladocera) in Nigeria
FIGURE 5 Haplotype network of Moinidae lineages within species, based on the mitochondrial COI gene (478 bp). Each circle represents a unique haplotype and its size reflects the number of sequences. Segment sizes within circles indicate the distribution of haplotypes among different regions (color key to regions is on the left side of the figure). The lineage ID s are shown in columns relating to the species-delimitation methods, and those newly detected from Nigeria are indicated in colored squares. The number of marks on connecting lines shows the number of mutations separating haplotypes.
FIGURE 4 in Cryptic diversity and gene introgression of Moinidae (Crustacea: Cladocera) in Nigeria
FIGURE 4 Bayesian phylogenetic tree of the (a) ITS-1 region (677 bp) and (b) ITS-2 region (955 bp) of Moinidae lineages from Nigeria. Only posterior probabilities> 0.70 are shown. The lineage ID s are shown in columns relating to the species-delimitation methods, and those newly detected from Nigeria are indicated in colored squares. The mismatch assignments by COI and ITS-1 are in bold and highlighted with an asterisk. For abbreviations of country names refer to Fig. 3.
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