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47 results for “Bruggmanniella”

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Fig. 5 in Fig. 2. Gonadal development during Yntema stages 15, 17, 19 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 5. Austruca perplexa (H. Milne Edwards, 1852) (A, C) and A. citrus n. sp. (B, D, E). A, B, carapace; C–E, major chela. A, C, male (NCHUZOOL 15053; CW 15.6 mm, PL 25.6 mm; Negeri Sembilan, Malaysia); B, D, holotype of A. citrus (MNHN-IU-2017-9121; CW 10.9 mm, CL 6.7 mm, PL 17.6 mm; Wallis & Futuna); E, male (UF 3843; CW 12.9 mm, PL 25.6 mm; Fiji).

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Fig. 7 in Fig. 2. Gonadal development during Yntema stages 15, 17, 19 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 7. Carapaces of male Austruca perplexa (H. Milne Edwards, 1852) (A–C, F, G) and A. citrus n. sp. (D, E, H). A, male, CW 17.3 mm (NCHUZOOL 15046), Kuching, Sarawak, Malaysia; B, male, CW 12.5 mm (QM W19270), Queensland, Australia; C, male, CW 12.0 mm (ZRC 1995.966), Queensland, Australia; D, male, CW 12.7 mm (MNHN-IU-2017-9123), Wallis & Futuna; E, male, CW 11.0 mm (UF 1488), Fiji; F, female, CW 13.7 mm (NCHUZOOL 14643), Tainan, Taiwan; G, female, CW 11.3 mm (NCHUZOOL 15052), Selangor, Malaysia; H, female, CW 11.7 mm (MNHN-IU-2017-9122), Wallis & Futuna.

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Fig. 8 in Fig. 2. Gonadal development during Yntema stages 15, 17, 19 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 8. Major chelae of Austruca perplexa (H. Milne Edwards, 1852) (A–D) and A. citrus n. sp. (E–H). A, CW 17.3 mm (NCHUZOOL 15046), Kuching, Sarawak, Malaysia; B, CW 14.9 mm (NCHUZOOL 15058), Singapore; C, CW 12.5 mm (QM W19270), Queensland, Australia; D, CW 12.0 mm (ZRC 1995.966), Queensland, Australia; E, CW 12.7 (SMF 5675), Samoa; F, CW 12.0 mm (MNHN-IU-2017-9123), Wallis & Futuna; G, CW 11.6 mm (UF 1488), Fiji; H, CW 11.0 mm (UF 1488), Fiji.

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Fig. 1 in Fig. 6 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 1. Map of Taiwan. Collection sites are indicated in bold letters for the present study and in italics for the previous reports (Hirose and Nozawa 2010; Hirose and Su 2011; Hirose et al. 2014 2015). Gray arrows indicate the Kuroshio Current modified from Ujiié et al. (2003 2016).

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Fig. 7 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 7. Summary diagram of the chronology of developmental stages in embryos of the snail-eating turtle M. macrocephala.

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Fig. 6 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 6. Immunostaining of apoptotic cells in the presumed female gonad of the M. macrocephala embryo at Yntema stages (a) 15, (b) 17, (c) 19, and (d) 25. Black arrows indicate PCNA-positive cells.

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Fig. 4 in Fig. 6 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 4. Irregularly shaped sheet of Diplosoma virens colony at Maobitou (A) and small oval colonies of D. aggregatum at Dabaisha in Lyudao (B).

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Fig. 3 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 3. Immunostaining of proliferating cells in the presumed male gonad of the M. macrocephala embryo at Yntema stages (b) 17, (c) 19, and (d) 25. Black arrows indicate PCNA-positive cells.

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Fig. 5 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 5. Immunostaining of apoptotic cells in the presumed male gonad of the M. macrocephala embryo at Yntema stages (a) 15, (b) 17, (c) 19, and (d) 25. Black arrows indicate PCNA-positive cells.

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Fig. 3 in Fig. 6 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 3. Lissoclinum and Trididemnum species. (A, B), Lissoclinum bistratum at Gonzibi (A, colony; B, tunic spicules). (C–E), Lissoclinum midui at Gonzibi (C, colony; D, thorax; E, tunic spicules). (F–H), Lissoclinum punctatum at Gonzibi (F, colony; G tunic phycocyte; H, tunic spicules). (I–L), Trididemnum clinides at Shimen (I, colony; J, tunic spicules; K, unicellular cyanobacteria in the tunic; L, filamentous, multicellular cyanobacteria in the tunic). (M–P), Trididemnum cyclops at Shimen (M, colony; N, tunic spicules; O, enlargement of colony surface showing a zooid; P, thorax). Arrows in O and P indicate pigmentation at the top of endostyle (pigment cap). an, anus; fp, fecal pellet; g, greenish cyanobacteria; n, nucleus of tunic phycocyte; r, reddish cyanobacterium; un, unknown organ. Scale bars: B, E, G, H, J–L, N, and O = 20 µm; D and P = 0.1 mm; O = 0.2 mm.

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Fig. 2. Gonadal development during Yntema stages 15, 17, 19 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 2. Gonadal development during Yntema stages 15, 17, 19, and 25 when incubated at the MPT (26°C) or FPT (32°C). Location of the gonad at Yntema stages (a, b) 15 (black arrows), (c) 17 (MPT), (d) 17 (FPT), (e) 19 (MPT), (f) 19 (FPT), (g) 25 (MPT), and (h) 25 (FPT). C = cortical region or outer layer of tissue immediately below the epithelium; F = ovarian follicle; M = medullar region or the inner region of the gonad which is distinguishable from the outer region; SC = medullary sex cord; ST = seminiferous tubule; an asterisk indicates an area with germ cell division; a star indicates an area with cortical development.

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Fig. 1 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 1. Location of the PGCs in M. macrocephala embryos. The red oval line indicates the location of the PGCs at the current stage, while the black oval dashed line indicates their previous location in embryos at stage (a) 10, (b) 11, (c) 12, (d) 13, and (e) 14, plus the (f) area and (g) character of the PGCs, which can be identified by its large size, round nuclei, and pale cytoplasm (red arrow).

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Fig. 4 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 4. Immunostaining of proliferating cells in the presumed female gonad of the M. macrocephala embryo at Yntema stages (a) 15, (b) 17, (c) 19, and (d) 25. Black arrows indicate PCNA-positive cells.

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Fig. 2. I in Fig. 2. Gonadal development during Yntema stages 15, 17, 19 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 2. I llustrations of syntypes of Gelasimus perplexus, G. annulipes and Uca annulipes var. orientalis (A–C), and specimen of A. perplexa from Borneo (D). A, Gelasimus perplexus H. Milne Edwards, 1852 (after H. Milne Edwards 1852: pl. 4(18a)); B, Gelasimus annulipes H. Milne Edwards, 1837 (after H. Milne Edwards 1852: pl. 4(15b); C, Uca annulipes var. orientalis Nobili, 1901 (after Nobili 1901: fig. A); D, specimen from Buntal, Kuching, Sarawak, Malaysia (after Maccagno 1928: fig. 21).

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Fig. 1 in Fig. 2. Gonadal development during Yntema stages 15, 17, 19 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 1. Collection sites for specimens of Austruca citrus n. sp. and A. perplexa (H. Milne Edwards, 1852) used in this study: blue solid squares (nos. 1–3) for A. citrus and pink solid circles (nos. 4–33) for A. perplexa (see Table 1). Blue empty square and pink empty circles indicate additional records of the two species from other references (see synonymy under A. perplexa). Different lines indicate the updated ranges of the two species.

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Fig. 6. G1s in Fig. 2. Gonadal development during Yntema stages 15, 17, 19 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 6. G1s of Austruca citrus n. sp. (A–D, J) and A. perplexa (H. Milne Edwards, 1852) (E–I). A–D, G–J, right G1; E–F, left G1. A, E, mesial view; B, G–J, mesial view of distal part; C, F, lateral view D, lateral view of distal part. A–D, holotype, CW 10.9 mm, MNHN-IU-2017-9121, Wallis & Futuna; J, paratype, CW 12.0 mm, MNHN IU-2017-9123, Wallis & Futuna; E–F, paralectotype, MNHN-IU-2008-10646, CW ~15–16 mm, Java; G, CW 15.2 mm, ZRC 2020.0288, Singapore; H, CW 17.5 mm, NCHUZOOL 14636; I, CW 12.5 mm, QM W19270. Scale bars: A–D = 2.0 mm; G–J = 0.5 mm.

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Fig. 3 in Fig. 2. Gonadal development during Yntema stages 15, 17, 19 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 3. The syntypes of Gelasimus perplexus H. Milne Edwards, 1852 (MNHN-IU-2008-10646). A–C, male paralectotype, rehydrated specimen; D–E, male lectotype, dry specimen. A, B, outer and inner surfaces of major cheliped (PL 17 mm); C, broken carapace, CW ~15–16 mm; D, carapace, CW 13.8 mm; E, outer surface of major cheliped, PL 25.7 mm.

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Fig. 4 in Fig. 2. Gonadal development during Yntema stages 15, 17, 19 in Bruggmanniella sanlianensis Lin, Yang & Tokuda, 2020, sp. nov.

Fig. 4. Holotype of Austruca citrus n. sp. (MNHN-IU-2017-9121; CW 10.9 mm). A, dorsal view; B, major chela; C, pleon and telson; D, third maxillipeds. Scale bars: A, B = 5.0 mm; C, D = 2.0 mm.

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Figures 9. a in Three new species of Bruggmanniella Tavares, 1909 (Diptera, Cecidomyiidae) from Brazil with a key to species

Figures 9. a) B. maytenuse, larva, prothoracic spatula, ventral view. b) B. duguetiae, adult head, frontal view, from Urso-Guimarães and Amorim (2004). c) B. bumeliae, larva, prothoracic spatula, sternal and lateral papillae, ventral view, from Felt (1907). d-e) B. actinodaphnes, from Tokuda and Yukawa (2006): d) male hypoproct, dorsal view; e) pupal apices of antennal horns, frontal view. f) B. cinnamomi, male hypoproct, dorsal view, from Tokuda and Yukawa (2006). g-i) pupal apices of antennal horns, frontal view: g) B. cinnamomi, from Tokuda and Yukawa (2006); h) B. bumeliae, from Felt (1907); i) B. oblita, from Tavares (1920). Figures c, e, g-i without scales in the original drawings. Scale bars in mm.

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Figures 4 in Three new species of Bruggmanniella Tavares, 1909 (Diptera, Cecidomyiidae) from Brazil with a key to species

Figures 4. Bruggmanniella notatae new species: a) female head, frontal view; b) male flagellomere 4; c) female flagellomere 6; d) female tarsal claw and empodium of midleg; e) male, abdominal segments 6–8, dorsolateral view; f) male, terminalia, dorsolateral view; g) female, abdominal segments 5 – 8, dorsolateral view. Scale bars in millimeters (mm).

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