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313 results for “Gecarcinucidae”
Fig. 4 in Description of a new species of Spiralothelphusa Bott, 1968, and redescription of Spiralothelphusa wuellerstorfi (Heller, 1862) (Decapoda: Brachyura: Gecarcinucidae)
Fig. 4. Spiralothelphusa wuellerstorfi (Heller, 1862), lectotype, ♂ (37.4 × 28.5 mm) (NHMW CR 27063). A. Thoracic sternites with G1 in situ. B. Left G1, dorsal view. C. Left G1, ventral view. D. Left G2. Scale bars: A = 5 mm; B–D = 1 mm.
Fig. 11 in Description of a new species of Spiralothelphusa Bott, 1968, and redescription of Spiralothelphusa wuellerstorfi (Heller, 1862) (Decapoda: Brachyura: Gecarcinucidae)
Fig. 11. Spiralothelphusa andhra sp. nov. – A–B. Paratype, ♂ (20.4 × 15.8 mm) (ZSI-FBRC INV/2480). C–E. Paratype, ♂ (15.1 × 11.5 mm) (ZSI-FBRC INV/2257). A, C. Entire animal, dorsal view. B. Right G1, dorsal view. D. S1–S4 with telson. E. Left G1, dorsal view. Scale bars: A, C = 10 mm; D = 2 mm; B, E = 1 mm.
Fig. 7. Telson and G1 in Description of a new species of Spiralothelphusa Bott, 1968, and redescription of Spiralothelphusa wuellerstorfi (Heller, 1862) (Decapoda: Brachyura: Gecarcinucidae)
Fig. 7. Telson and G1 in Spiralothelphusa species showing diagnostic features. – A, F, I. Spiralothelphusa gibberosa Pati & Sudha Devi, 2015, holotype, ♂ (28.0 × 23.0 mm) (ZSI-WRC C.1186). – B, K, M. S. wuellerstorfi (Heller, 1862). B. ♂ (37.5 × 27.1 mm) (ZSI-WRC C.1960). K, M. Lectotype, ♂ (37.4 × 28.5 mm) (NHMW CR 27063). – C. S. hydrodroma (Herbst, 1794), topotype, ♂ (27.2 × 21.4 mm) (ZMUC CRU 2824). – D, G. S. senex (Fabricius, 1798), lectotype, ♂ (25.9 × 20.3 mm) (ZMUC CRU 4626). – E, H. S. fernandoi Ng, 1994, holotype, ♂ (35.7 × 26.5 mm) (ZRC 1984.7547). – J. S. parvula (Fernando, 1961), paratype, ♂ (19.4 × 15.0 mm) (ZRC 1984.7887). – L, N. S. andhra sp. nov., holotype, ♂ (37.8 × 30.2 mm) (ZSI-FBRC INV/2256). A–B. Left G1, apical view. C, L. Right G1, dorsal view (horizontally flipped). D–F, J–K. Left G1, dorsal view. G–I, M–N. Pleonal somite 6 and telson. Scale bars: A–F, J–L = 1 mm; G–I, M–N = 5 mm. C–E, G–H, J adapted from Ng & Tay (2001) and I is adapted from Pati & Sudha Devi (2015).
Fig. 14 in Description of a new species of Spiralothelphusa Bott, 1968, and redescription of Spiralothelphusa wuellerstorfi (Heller, 1862) (Decapoda: Brachyura: Gecarcinucidae)
Fig. 14. Habitats ofSpiralothelphusa andhra sp. nov. in the Penna River, nearApparaopalem-Perumallapadu Bridge of Sri Potti Sriramulu Nellore District, Andhra Pradesh, South India. A. Habitat dominated with Typha angustata Bory & Chaub. B. Habitat dominated with Saccharum spontaneum Linnaeus.
Fig. 9 in Description of a new species of Spiralothelphusa Bott, 1968, and redescription of Spiralothelphusa wuellerstorfi (Heller, 1862) (Decapoda: Brachyura: Gecarcinucidae)
Fig. 9. Spiralothelphusa andhra sp. nov., holotype, ♂ (37.8 × 30.2 mm) (ZSI-FBRC INV/2256). A. Entire animal, dorsal view. B. Cephalothorax, frontal view. C. Cephalothorax, frontal view of medial part. D. Entire animal, ventral view. Scale bars: A–B, D = 10 mm; C = 5 mm.
Fig. 10 in Description of a new species of Spiralothelphusa Bott, 1968, and redescription of Spiralothelphusa wuellerstorfi (Heller, 1862) (Decapoda: Brachyura: Gecarcinucidae)
Fig. 10. Spiralothelphusa andhra sp. nov., holotype, ♂ (37.8 × 30.2 mm) (ZSI-FBRC INV/2256). A. Thoracic sternites with G1 in situ (right G1 removed). B. Pleon. C. Right G1, dorsal view. D. Right G1, ventral view. E. Right G2. Scale bars: A–B = 5 mm, C–E = 1 mm.
Fig. 6 in Description of a new species of Spiralothelphusa Bott, 1968, and redescription of Spiralothelphusa wuellerstorfi (Heller, 1862) (Decapoda: Brachyura: Gecarcinucidae)
Fig. 6. Spiralothelphusa wuellerstorfi (Heller, 1862). Dorsal view of left G1. A. ♂ (38.3 × 29.0 mm) (ZRC 2003.0243; formerly WHT 10749). B. ♂ (41.0 × 30.8 mm) (ZSI-WRC C.1995). C. ♂ (37.5 × 27.1 mm) (ZSI-WRC C.1960). Scale bars = 1 mm.
Fig. 13 in Description of a new species of Spiralothelphusa Bott, 1968, and redescription of Spiralothelphusa wuellerstorfi (Heller, 1862) (Decapoda: Brachyura: Gecarcinucidae)
Fig. 13. Spiralothelphusa andhra sp. nov., holotype, ♂ (37.8 × 30.2 mm) (ZSI-FBRC INV/2256), colour of dorsal surface when freshly preserved. Scale bar = 10 mm.
Fig. 7 in Fig. 3 in Fig. 5 in Fig. 3 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 7. Taiwanese species of Oxyomus and their diagnostic characters. A–D, dorsal habitus (A, O. masumotoi; B, O. nanxiensis, paratype; C, O. taipingensis; D, O. alligator sp. nov., paratype). E–G, male genitalia in dorsal and lateral views (E, O. masumotoi; F, O. nanxiensis; G, O. taipingensis). H–I, punctation of the first elytral interval at the level of metathorax (H, O. nanxiensis; I, O. taipingensis). J–K, elytra in lateral view, showing elytral costae (J, O. masumotoi; K, O. nanxiensis). L–M, setation of elytral costae (L, O. masumotoi; M, O. nanxiensis). N–O, punctation of pronotal disc (N, O. masumotoi, O, O. nanxiensis).
Fig. 6 in Fig. 3 in Fig. 5 in Fig. 3 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 6. Thorax and abdomen of the larva of Oxyomus alligator sp. nov. (A–F, M–N, third instar, HS3_062L sequenced specimen; G–L, second instar, HS03_060L, sequenced specimen). A, thorax in lateral view; B, abdominal segment III in lateral view; C, abdominal apex in lateral view; D, abdominal apex in ventral view; E, thoracic spiracle; F, abdominal spiracle. G–I, legs of the second instar larva in posterior view (G, prothoracic; H, mesothoracic; I, metathoracic); J–L, trochanters of second instar larva with chaetotaxy of posterior and anterior surfaces (J, prothoracic, K, mesothoracic; L, metathoracic). M–N, prothoracic leg of the third instar larva (M, posterior view; N, anterior view).
Fig. 2 in Fig. 3 in Fig. 5 in Fig. 3 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 2. Oxyomus alligator sp. nov.: adult (A–G) and larva (H–J). A–G, male holotype (A, dorsal view; B, ventral view; C, lateral view; D–E, aedeagus; F, epipharynx; G, detail of head and pronotum). H–J, third instar larva, additional non-sequenced specimen HS3062L (H, lateral view; I, head in dorsal view; J, ventral surface of the abdominal apex).
Fig. 5 in Fig. 3 in Fig. 5 in Fig. 3 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 5. Head appendages of the larva of Oxyomus alligator sp. nov. (E–G, L, second instar, HS3_060L sequenced specimen; A–D, H–K, M–R, third instar, HS03_062L, sequenced specimen). A–E, maxilla: A–B, left maxilla (A, ventral view; B, dorsal view); C–E, right maxilla (C, ventral view; D–E, dorsal view). F–I, antenna (F, H, ventral view; G, I, dorsal view); J–L, labium (J, L, ventral view; K, dorsal view = hypopharynx). M–O, left mandible (dorsal, internal and ventral view); P–R, right mandible (ventral, internal and dorsal view). Scale bars: a for A–D, J–K; b for E, L; c for F–G; d for H–I; e for M–R.
Fig. 1 in Fig. 3 in Fig. 5 in Fig. 3 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 1. Maximum likelihood analysis of available cox1 sequences of Oxyomus, with Aphodius fimetarius as an outgroup. Accession numbers and country of origin are provided for sequences from BOLD. Sequenced larvae of O. alligator sp. nov. used for the morphological description are highlighted.
Fig. 4 in Fig. 3 in Fig. 5 in Fig. 3 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 4. Head morphology of the larva of Oxyomus alligator sp. nov. A–D, head of the second instar larva, sequenced specimen HS3_060L (A, dorsal view; B, posterior view; C, lateral view; D, ventral view). E, chaetotaxy of the dorsal surface of the head capsule of the third instar larva (HS03_62L, sequenced specimen). F, epipharynx of the third instar larva (HS03_62L, sequenced specimen).
Fig. 3 in Fig. 3 in Fig. 5 in Fig. 3 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 3. The comparison of the females of Oxyomus alligator sp. nov. (A–B, paratype) and O. kocoti Minkina, 2018 (C–D, holotype).
Fig. 3 in Fig. 5 in Fig. 3 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 3. Number of Austruca annulipes and Gelasimus vocans individuals that hoarded supplemented food during different periods of the feeding cycle (3 hours). For A. annulipes, n = 80 (40 males and 40 females) and G. vocans, n = 60 (30 males and 30 females). Percentages of crabs (out of the respective numbers of male, female crabs, and both sexes combined) are provided within parentheses above the respective bars.
Fig. 2 in Fig. 5 in Fig. 3 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 2. Mean percentage time (± S.E.) that Austruca annulipes (a–c) and Gelasimus vocans (d–f) were engaged in three behaviors after burrow emergence a, d: both sexes combined (n = 16 for each species); b, e: male crabs only; c, f: female crabs only.
Fig. 1 in Fig. 5 in Fig. 3 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 1. Non-metric multidimensional scaling plot of the overall activity budget of Austruca annulipes and Gelasimus vocans superimposed with Bray-Curtis cluster analysis using 80% similarity. 2D stress = 0.02.
Fig. 1 in Fig. 6 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 1. Circular map of the mitogenome of Xeruca formosensis. Genome map contains 13 protein-coding genes (PCGs), 2 ribosomal RNA genes (12S ribosomal RNA and 16S ribosomal RNA), 22 transfer RNA (tRNA) genes, and a putative control region (D-loop).
Fig. 3. Genealogical network for the 557 in Fig. 5 in Fig. 1 in Fig. 20. A-E in Establishment of A New Bornean Genus of Gecarcinucidae (Crustacea: Brachyura), with Descriptions of Five New Species.
Fig. 3. Genealogical network for the 557-bp 16S haplotypes observed within Tubuca arcuata, constructed with TCS. The ancestral haplotype is indicated by square. Green and red circles mean the haplotypes of the N and W clades, respectively; and the square and circle in purple represent the haplotypes that are shared by N and W clades. Unlabelled hatches and node indicate inferred haplotypes not found in the sampled population.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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