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144 results for “Paranaitis”
Figure 1 in Composition and spatio-temporal dynamics of aquatic bird community in humid areas of Alto Parana Atlantic Forest
Figure 1. Map of the RPPN Foz do Rio Aguapeí and location of the six studied areas in the RPPN Foz do Rio Aguapeí. Legend: (1) Lagoa São Gabriel; (2) Lagoa das Piranhas; (3) Lagoa dos Porcos; (4) Constructed wetland; (5) Aguapei river –; and (6) Lagoa da sede. Sources: CESP (2013) and Google Earth (2021).
Figure 2 in Composition and spatio-temporal dynamics of aquatic bird community in humid areas of Alto Parana Atlantic Forest
Figure 2. Cumulative curve of the 52 waterfowl bird species in the RPPN Foz do Rio Aguapeí showing stability from sample 27 to 31.
Figure 3 in Composition and spatio-temporal dynamics of aquatic bird community in humid areas of Alto Parana Atlantic Forest
Figure 3. NMDS (stress of 0.097) of the spatial distribution of the aquatic bird community recorded by the transect method in the lagoons of the RPPN Foz do Aguapeí, during the dry (rounded symbols) and rainy seasons (square symbols). Legend: LS = Lagoa da Sede; LSG = Lagoa São Gabriel; LP = Lagoa da Piranha and LPO = Lagoa dos Porcos.
Figure 4 in Composition and spatio-temporal dynamics of aquatic bird community in humid areas of Alto Parana Atlantic Forest
Figure 4. NMDS (stress of 0.001) of the spatial distribution of the aquatic bird community recorded by the transect method in the lotic environments of the RPPN Foz do Aguapeí, during the dry (rounded symbols) and rainy seasons (square symbols). Legend: AR = Aguapeí River and CW = Constructed wetland.
Fig. 5. Aegla parana Schmitt, 1942 in Spatial partitioning between juveniles and adults of the freshwater anomuran crab Aegla parana (Crustacea Aeglidae) from southern Brazil
Fig. 5. Aegla parana Schmitt, 1942. Aeglids median CL and respective dIstance from the collectIon sItes MedIan (horIzontal thIck lIne), first qUartIle (horizontal bottom line), third quartile (horizontal top line) and minimum and maximum range (vertical dotted line) of carapace length (mm) of females obtained from the three points of Totó River (T1, T2, T3), and from the two points of Negro River (NI, NII).
Fig. 1 in Spatial partitioning between juveniles and adults of the freshwater anomuran crab Aegla parana (Crustacea Aeglidae) from southern Brazil
Fig. 1. Map with localization of the Negro River that is the border between the municipalities of Rio Negro and Mafra and between the states of Paraná and Santa Catarina, southern Brazil. In the Negro River two collection points (NI and NII) were established and in its tributary Totó River, three collection poInts (T1, T2 and T3). Negro RIver flows from soUtheast to northwest.
Fig. 6. Aegla parana Schmitt, 1942 in Spatial partitioning between juveniles and adults of the freshwater anomuran crab Aegla parana (Crustacea Aeglidae) from southern Brazil
Fig. 6. Aegla parana Schmitt, 1942. Relationship between the median carapace length of males and females and the distance of the collection points from the source of Totó River. The relationship between the ratio biomass/number of macroinvertebrates and these distances is also presented. T1, T2, T3, NI, NII, collection points.
Fig. 1. Aegla parana Schmitt, 1942 in Morphological sexual maturity of the freshwater anomuran crab Aegla parana (Crustacea, Decapoda, Aeglidae) from Negro River Sub-basin, Upper Iguaçu Basin, southern Brazil
Fig. 1. Aegla parana Schmitt, 1942. Relationship between the length of the major propodus (LMAP) and the carapace length (CL) of the males. The inflection point is at 23.15 mm CL. Black circles represent jUveniles and adults.
Figs 3, 4 in Morphological sexual maturity of the freshwater anomuran crab Aegla parana (Crustacea, Decapoda, Aeglidae) from Negro River Sub-basin, Upper Iguaçu Basin, southern Brazil
Figs 3, 4. Relationship between the size at the onset of the morphological sexual maturity and the maximum carapace length reached by males (Fig. 3) and females (Fig. 4) of the Aegla species. References: A. franca - BUENO & SHIMIZU (2009), A. platensis - OLIVEIRA & SANTOS (2011), A. manuniflata - TREVISAN & SANTOS (2012), A. georginae - COPATTI et al. (2015), A. castro – TAKANO et al. (2016), A. marginata - ADAM et al. (2018), Aegla parana – present study.
Fig. 1 in Astyanax paranae Eigenmann, 1914 (Characiformes: Characidae) in the Alagados Reservoir, Paraná, Brazil: diet composition and variation
Fig. 1. Localization and morphometry of Alagados Reservoir, Paraná, Brazil, depicting sample sites: a=riverine zone; b=lacustrine zone.
Fig. 3 in Astyanax paranae Eigenmann, 1914 (Characiformes: Characidae) in the Alagados Reservoir, Paraná, Brazil: diet composition and variation
Fig. 3. Average values (± standart error) of the axes scores from DCA ordination of Astyanax paranae's stomach contents volume among sampling years (a), sampling months (b), sampling sites (c) and specimens sex (d) in Alagados Reservoir, Paraná, Brazil.
Fig. 2 in Astyanax paranae Eigenmann, 1914 (Characiformes: Characidae) in the Alagados Reservoir, Paraná, Brazil: diet composition and variation
Fig. 2. Volumetric proportion of food resources consumed by Astyanax paranae in Alagados Reservoir, Paraná, Brazil, among sampling years (a), sampling months (b), sampling sites (c) and specimens sex (d). dtsd=detritus/sediment; plmt=plant matter; alga=algae; aqis= aquatic insects; oaqi=other aquatic invertebrates; tris=terrestrial insects; rtin=rests of insects. The number of specimens considered in each analysis are indicated in parenthesis in the legends.
Figure 22 in A revision of Paranaitis Southern, 1914 (Polychaeta: Phyllodocidae)
Figure 22. Paranaitis moritai sp. nov., holotype (ZIHU-1925). A, anterior end, dorso-lateral view. B, proximal part of dissected proboscis, ventral view. C, cirri of segment 1, anterior view. D, parapodium of segment 2, anterior view. E, parapodium of segment 3, anterior view. F, parapodium of segment 4, anterior view. G, parapodium of segment 5, anterior view. H, parapodium of segment 43, anterior view. I, same, posterior view.
Figure 17. Paranaitis kosteriensis. A in A revision of Paranaitis Southern, 1914 (Polychaeta: Phyllodocidae)
Figure 17. Paranaitis kosteriensis. A, specimen from Sicily, Italy (SMNH-22595). B–E, specimen from Sweden (SMNH-22547). A, dissected proboscis, ventral view (median area corresponds to dorsal part). B–E, chitinous papillae.
Figure 20 in A revision of Paranaitis Southern, 1914 (Polychaeta: Phyllodocidae)
Figure 20. Paranaitis misakiensis sp. nov., paratype (ZIHU-1381). A, cirri of segment 1, anterior view. B, parapodium of segment 2, anterior view. C, parapodium of segment 3, anterior view. D, parapodium of segment 5, anterior view. E, parapodium of segment 33, anterior view. F, same, posterior view. G, parapodium of segment 75, anterior view. H, same, posterior view.
Figure 37 in A revision of Paranaitis Southern, 1914 (Polychaeta: Phyllodocidae)
Figure 37. Chaetae of species of Paranaitis. A, P. wahlbergi, specimen from Sweden, ZIHU-2014. B, P. caeca, specimen from Japan, ZIHU-1919. C, P. kosteriensis, specimen from Sweden, SMNH-22547, dorsal chaetae. D, P. kosteriensis, same specimen, ventral chaetae. E, P. misakiensis sp. nov., paratype, ZIHU-1381. F, P. polynoides, ZIHU-2016. G, P. pumila sp. nov., paratype, ZIHU-1379. H, P. speciosa, syntype USNM 380. I, P. speciosa, specimen from Japan, ZIHU-1921. J, P. uschakovi, specimen from Japan, ZIHU-1923.
Figure 15 in A revision of Paranaitis Southern, 1914 (Polychaeta: Phyllodocidae)
Figure 15. Paranaitis inflata, specimens from Australia (AM W196572). Chaetae from a single fascicle of right parapodium of segment 87. Top to bottom correspond to dorsal to ventral.
Figure 21 in A revision of Paranaitis Southern, 1914 (Polychaeta: Phyllodocidae)
Figure 21. Paranaitis misakiensis sp. nov., specimens from Japan. Relationships between A, number of segments and body length, B, number of segments and body width, and C, body length and body width.
Figure 13. Paranaitis inflata. A in A revision of Paranaitis Southern, 1914 (Polychaeta: Phyllodocidae)
Figure 13. Paranaitis inflata. A, paratype (USNM-81484). B, holotype. C–F, specimen from Hawkesbury River, Australia (AM W196572). A, anterior end, dorsal view. B, posterior end, ventral view. C, parapodium of segment 11, anterior view. D, same, posterior view. E, parapodium of segment 87, anterior view. F, same, posterior view.
Figure 29 in A revision of Paranaitis Southern, 1914 (Polychaeta: Phyllodocidae)
Figure 29. Paranaitis pumila sp. nov., type series. Relationships between A, number of segments and body length, B, number of segments and body width, and C, body length and body width.
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