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Fig. 11 in Sieve-type normal pore canals in Jurassic ostracods: A review with description of a new genus
Fig. 11. Distribution of macro sieve-type normal pore canals (StPC-M), micro sieve-type normal pore canals (StPC-m), and simple normal pore canals NPC) on the inner side of cytherid ostracods Minyocythere gen. nov. and Dolocythere Mertens, 1956. A. Minyocythere macroporosa sp. nov., holotype, SMF Xe 23721 from Borehole Hambühren WA2, 166 m, NW Germany, Witchellia laeviuscula Zone (Braun Jura γ), Lower Bajocian; male left valve. B. Dolocythere rara Mertens, 1956, SMF Xe 23756 from Borehole Rodewald WA6, 206 m, NW Germany, Lower Albian; male left valve (B1), detail (B2). C. Minyocythere sp. cf. M. macroporosa sp. nov., SMF Xe 23724 from Borehole Rodewald WA12, 386 m, NW Germany, Upper Aalenian (Braun Jura β upper); male right valve. D. Dolocythere amphistiela sp. nov., paratype, SMF Xe 23765 from Borehole Rodewald WA4, 187 m, NW Germany, Leymeriella tradefurcata Zone, Lower Albian; male left valve. In A and C, black dots refer to StPC-M, white arrows point to StPC-m; in B1, B2, D white arrows point to NPC; black arrows in B1, B2 indicate the peculiar pores of D. rara (which do not exist in D. amphistiela). Scale bars 100 μm.
Fig. 14 in Sieve-type normal pore canals in Jurassic ostracods: A review with description of a new genus
Fig. 14. Cytherid ostracod Minyocythere maculosa (Bate, 1963) from Everthorpe Quarry, South Cave, UK, Basement Beds, Bajocian (A, B) and Borehole Rodewald WA12, 395 m (C, D), 390 m (E), NW Germany, Witchellia laeviuscula Zone (Braun Jura γ), Lower Bajocian. A. Topotype, SMF Xe 23744, male left valve in external view (A1), macro sieve-type pore canals (StPC-M) (A2), micro sieve-type normal pore canals (StPC-m) (A3), and simple pore (A4). B. Topotype, SMF Xe 23745, female right valve in internal view (B1), muscle scars (B2), hinge (B3). C. SMF Xe 23746, male left valve in external view (C1), StPC-M (C2, C3), StPC-m (C4). D. SMF Xe 23747, female right valve in external (D1) and internal (D3) views, simple pore (D2), StPC-M (D4), StPC-m (D5), hinge, posterior part (D6), muscle scars (D7). E. SMF Xe 23748, interior of StPC-M (E1), fragment of a left valve in internal view (E2).
Figure 2 in Ensamble de mamíferos medianos y grandes del Parque Natural Provincial "Islas y Canales Verdes del Río Uruguay", Entre Ríos, Argentina: diversidad, uso del espacio, patrones temporales, y desafíos para su conservación
Figure 2: Mammal species recorded in the protected area "Islas y Canales Verdes del Río Uruguay", Entre Ríos, Argentina. (A) Hydrochoerus hydrochaeris, (A) Sus scrofa, (C) Axis axis, (D and E) Leopardus geoffroyi, (F) Bos primigenius taurus, (G) Didelphis albiventris, (H and I) Cerdocyon thous, (J) Dasypus novemcinctus and (K) Procyon cancrivorus.
Figura 1 in Ensamble de mamíferos medianos y grandes del Parque Natural Provincial "Islas y Canales Verdes del Río Uruguay", Entre Ríos, Argentina: diversidad, uso del espacio, patrones temporales, y desafíos para su conservación
Figura 1. Caracterización del área de estudio y sistemas de monitoreo. (A) Localización del área protegida "Islas y Canales Verdes del Río Uruguay", Entre Ríos, Argentina. (B) Islas monitoreadas: Dolores, San Genaro y Colón Grande; se señala la localización de las cámaras trampas: los rombos amarillos el monitoreo sistemático (punto 1 al 9) y los puntos rosados representan el monitoreo participativo (puntos 10 al 17).
Figura 4 in Ensamble de mamíferos medianos y grandes del Parque Natural Provincial "Islas y Canales Verdes del Río Uruguay", Entre Ríos, Argentina: diversidad, uso del espacio, patrones temporales, y desafíos para su conservación
Figura 4. Ordenamiento multidimensional no métrico (NMDS) de la abundancia y composición de especies del ensamble de mamíferos medianos y grandes del área protegida "Islas y Canales Verdes del Río Uruguay", Entre Ríos, Argentina. (A) islas monitoreadas (San Genaro, Dolores y Colón); (B) ambientes monitoreados (Bosque de Albardón Costero -BAC-, Bosque de Albardón Interno -BAI- y Matorrales de Esteros -ME-) (C) entre los monitoreos (monitoreo participativo -MP-, monitoreo sistemático -MS-).
Fig. 4 in The Canal da Piracema at Itaipu Dam as a fish pass system
Fig. 4. Number of individuals of the principal species, according to reproductive strategy by different biotope: LDMI (long-distance migratory species), SNPC (sedentary with no parental care), SPC (sedentary with parental care), SIFE (sedentary with internal fertilization and external development), SIFI (sedentary with internal fertilization and internal development) and UNK (unknown).
Fig. 3 in The Canal da Piracema at Itaipu Dam as a fish pass system
Fig. 3. Ordination (correspondence analysis – CA; Axis 1 – CA1; Axis 2 – CA2) of the samples taken with seining nets, electrofishing, gillnets, and cast nets, at different stations located in the Canal da Piracema (a). Representation of the mean scores by fishing gears in axis 1 (b) and axis 2 (c).
Fig. 2 in The Canal da Piracema at Itaipu Dam as a fish pass system
Fig. 2. Species number by order and family. Dotted lines delimit the families in relation to the orders.
PLATE XIV Ornithomius altus, Lambe. Fig. l. Posterior dorsal vertebra, viewed from the left, natural size. Page 50 Fig. 2. Caudal vertebral., superior view, natural size. Page 52. Fig. The same, inferior view. Fig. 4. The same, left lateral view. Fig. The saule, posterior view. Fig. G. Distal end of iuetzttarszil III. of left pes, viewed from the front; natural size. Page 50. Fig. 7. The same, posterior view. Fig. ö. Terminal phalanx of pes, side view, natural size. Page 50. Fig. Ü. The same, posterior view. Fig. lo. 'Terminal phalanx of manus, side view; natural size. Page Õf. Fig. ll. The same, posterior view. Fig. 12. - Interior tooth, provisionally associated with O. altus, side view, natural size. Page 53. Fig. 13. Posterior view of the saure, showing the minute deııticulııtioııs on one of the two posterior gariugu, neural spine s, pim-zygapopliysis É, postzygapophysis, n, neural arch, J, diapophysis, _/, facet for chevron hone L', neural canal, c, posterior articular' face of ccntruin. in New genera and species from the Belly River Series (mid-Cretaceous)
PLATE XIV Ornithomius altus, Lambe. Fig. l. Posterior dorsal vertebra, viewed from the left, natural size. Page 50 Fig. 2. Caudal vertebral., superior view, natural size. Page 52. Fig. The same, inferior view. Fig. 4. The same, left lateral view. Fig. The saule, posterior view. Fig. G. Distal end of iuetzttarszil III. of left pes, viewed from the front; natural size. Page 50. Fig. 7. The same, posterior view. Fig. ö. Terminal phalanx of pes, side view, natural size. Page 50. Fig. Ü. The same, posterior view. Fig. lo. 'Terminal phalanx of manus, side view; natural size. Page Õf. Fig. ll. The same, posterior view. Fig. 12. - Interior tooth, provisionally associated with O. altus, side view, natural size. Page 53. Fig. 13. Posterior view of the saure, showing the minute deııticulııtioııs on one of the two posterior gariugu, neural spine s, pim-zygapopliysis É, postzygapophysis, n, neural arch, J, diapophysis, _/, facet for chevron hone L', neural canal, c, posterior articular' face of ccntruin.
Figure 7 E in Structure of the mouthparts and alimentary canal of Eusomus ovulum Germar, 1824 (Coleoptera: Curculionidae)
Figure 7 E. ovulum, adult: (A) General view of colon (SM), (B) Malpighian tubules (Mt) encapsulating the wall of the colon (Cl), (C) The histological section of colon showing intima (In), epithelium (Ep), Malpighian tubules (Mt), muscles (Ml) and lumen (Lu) (H&E) (LM), (D) The cross section of the colon (SEM), (E) The histological section of rectum (Rc) showing intima (In), epithelium (Ep), rectal pad (Rp), Malpighian tubules (Mt), muscles (Ml) and lumen (Lu) is filled with fecal matter (H&E) (LM), (F) Lumen (Lu), epithelium (Ep) and intima (In) in the rectum wall (SEM), (G, H) The connection of rectum (Rc) with anus (An) (H&E) (LM) (SEM). H & E-hematoxylin and eosine, LM-Light microscopy, SEM-Scanning electron microscopy, SM-stereo microscope.
Figure 2 in Structure of the mouthparts and alimentary canal of Eusomus ovulum Germar, 1824 (Coleoptera: Curculionidae)
Figure 2 (A, B) General structure of the alimentary canal of adult E. ovulum (SM, SEM), (C, D) General view of regions of the foregut (SM) (E) Illustration of muscle bundles (Mb) near the pharynx and esophagus (SEM), (F) High magnification of individual muscles (SEM). (Am) anterior midgut, (Cl) colon, (Cr) crop, (Es) esophagus, (Hd) head capsule, (İl) ileum, (Mt) Malpighian tubules, (Pm) posterior midgut, (Pv) proventriculus, (Rc) rectum. SEM-Scanning electron microscopy, SM-stereo microscope.
Figure 5 E in Structure of the mouthparts and alimentary canal of Eusomus ovulum Germar, 1824 (Coleoptera: Curculionidae)
Figure 5 E. ovulum, adult: (A) Over view of the posterior midgut (Pm) (SM), (B) Histological section of the posterior midgut and gastric caeca (LM) (H & E), (C, D) Microvilli extend into lumen from the apical surfaces of epithelial cells in posterior midgut (SEM). (E, F) Morphological view of the gastric caeca (Gc) (SEM). (Ep) epithelium, (Lu) lumen, (Mt) Malpighian tubules, (Mv) microvilli, (Nu) nucleus, (Sg) secretory granules, (Tr) tracheae. H & E-hematoxylin and eosine, LM-Light microscopy, SEM-Scanning electron microscopy, SM-stereo microscope.
Text-fig. 1. Letovichthys tuberculatus ŠTAMBERG, 2007. Reconstruction of the dermal skull in lateral view, x 3. After Štamberg (2007). Dent – dentalosplenial; Dhy – dermohyal; dlac – dorso-lateral-anterior sensory canal; Dpt – dermopterotic; Dsph – dermosphenotic; Ext.l – extrascapular lateral; Ext.m – extrascapular medial; Fr – frontal; Gu.l – gular lateral; ifc – infraorbital canal; Io.s – infraorbital superior; mdc – mandibular canal; Na – nasal; Op – operculum; Pa – parietal; Pmx – premaxillar; Pop - preoperculum; Pscs – postspiracular; Pt – posttemporal; Ptr – postrostral; Rbr – branchiostegal rays; Sbo – suborbital; Scl – supracleithrum; Sop – suboperculum; stc – supratemporal commisural sensory canal. in Knowledge Of The Carboniferous And Permian Actinopterygian Fishes Of The Bohemian Massif - 100 Years After Antonín Frič
Text-fig. 1. Letovichthys tuberculatus ŠTAMBERG, 2007. Reconstruction of the dermal skull in lateral view, x 3. After Štamberg (2007). Dent – dentalosplenial; Dhy – dermohyal; dlac – dorso-lateral-anterior sensory canal; Dpt – dermopterotic; Dsph – dermosphenotic; Ext.l – extrascapular lateral; Ext.m – extrascapular medial; Fr – frontal; Gu.l – gular lateral; ifc – infraorbital canal; Io.s – infraorbital superior; mdc – mandibular canal; Na – nasal; Op – operculum; Pa – parietal; Pmx – premaxillar; Pop - preoperculum; Pscs – postspiracular; Pt – posttemporal; Ptr – postrostral; Rbr – branchiostegal rays; Sbo – suborbital; Scl – supracleithrum; Sop – suboperculum; stc – supratemporal commisural sensory canal.
Text-fig. 4. Setlikia bohemica ŠTAMBERG et ZAJÍC, 1994. The postrostral and the skull roof in dorsal view. Holotype YA 1352, x 2.7. After Štamberg and Zajíc 1994. Dpt – dermopterotic; Dsph –dermosphenotic; Fr – frontal; ifc – infraorbital canal; In – infraorbital; Na – nasal; Op – operculum; Pa – parietal; Pp – postparietal; Ptr – postrostral; so – spiracular opening; soc – supraorbital canal. in Knowledge Of The Carboniferous And Permian Actinopterygian Fishes Of The Bohemian Massif - 100 Years After Antonín Frič
Text-fig. 4. Setlikia bohemica ŠTAMBERG et ZAJÍC, 1994. The postrostral and the skull roof in dorsal view. Holotype YA 1352, x 2.7. After Štamberg and Zajíc 1994. Dpt – dermopterotic; Dsph –dermosphenotic; Fr – frontal; ifc – infraorbital canal; In – infraorbital; Na – nasal; Op – operculum; Pa – parietal; Pp – postparietal; Ptr – postrostral; so – spiracular opening; soc – supraorbital canal.
Text-fig. Fig. 9. Cucurbitaceae 1–4. Cucurbitaciphyllum lobatum (KNOWLTON) comb. nov. Specimens from Shirley Canal, Montana, USGS loc. 8519. 1. Trilobate leaf, with rounded lobal sinues, and entire to serrated margin. USNM 313167. 2. Leaf with pronounced secondary lobes and cordate base, USNM 313179. 3. Detail of central lobe from fig. 1. 4. Higher magnification, showing abundant trichome impressions. Scales = 3 cm in 1–3; 3 mm in 4. in Revisions To Roland Brown'S North American Paleocene Flora
Text-fig. Fig. 9. Cucurbitaceae 1–4. Cucurbitaciphyllum lobatum (KNOWLTON) comb. nov. Specimens from Shirley Canal, Montana, USGS loc. 8519. 1. Trilobate leaf, with rounded lobal sinues, and entire to serrated margin. USNM 313167. 2. Leaf with pronounced secondary lobes and cordate base, USNM 313179. 3. Detail of central lobe from fig. 1. 4. Higher magnification, showing abundant trichome impressions. Scales = 3 cm in 1–3; 3 mm in 4.
Text-fig. 6. Eospondylus primigenius (STÜRTZ) Bundenbach, Eschenbach-Bocksberg quarry, Lower Devonian, Lower Emsian (Zlichovian), Hunsrück Slate, NM S 4766, x 12.5. Undersurface of arm segments in Hunsrück Slate articulated specimen. A few lateral plates are displaced and expose details of vertebrae. The canal for radial water vessel is in center of zygosphene knob and zygotreme pit, like spout and funnel. At distal outer edges of vertebrae is cupola for tube feet. There are no under arm plates. in Isolated Ossicles Of The Family Eospondylidae Spencer Wright, 1966, In The Lower Devonian Of Bohemia (Czech Republic) And Correction Of The Systematic Position Of Eospondylid Brittlestars (Echinodermata: Ophiuroidea: Oegophiurida)
Text-fig. 6. Eospondylus primigenius (STÜRTZ) Bundenbach, Eschenbach-Bocksberg quarry, Lower Devonian, Lower Emsian (Zlichovian), Hunsrück Slate, NM S 4766, x 12.5. Undersurface of arm segments in Hunsrück Slate articulated specimen. A few lateral plates are displaced and expose details of vertebrae. The canal for radial water vessel is in center of zygosphene knob and zygotreme pit, like spout and funnel. At distal outer edges of vertebrae is cupola for tube feet. There are no under arm plates.
Figure 5 in Ecology and life cycle of the filter-feeding Amphipsyche meridiana Ulmer 1902 (Trichoptera: Hydropsychidae) in an irrigation canal, central Thailand
Figure 5. The percentage of larval instars of Amphipsyche meridiana Ulmer 1902 at the sampling site was calculated using the distribution of head capsule width for each month.
Figure 8 in Ecology and life cycle of the filter-feeding Amphipsyche meridiana Ulmer 1902 (Trichoptera: Hydropsychidae) in an irrigation canal, central Thailand
Figure 8. Food item in Amphipsyche meridiana's digestive system under a bright field microscope (magnification x40).
Figure 7 in Ecology and life cycle of the filter-feeding Amphipsyche meridiana Ulmer 1902 (Trichoptera: Hydropsychidae) in an irrigation canal, central Thailand
Figure 7. Food item proportions in the gut contents of the larval instar of Amphipsyche meridiana in each month from the irrigation canal. The gut content of A. meridiana larvae (n = 120) from the study area. The presence (%) represents the percentage of larvae with guts containing this type of material.
Figure 4 in Ecology and life cycle of the filter-feeding Amphipsyche meridiana Ulmer 1902 (Trichoptera: Hydropsychidae) in an irrigation canal, central Thailand
Figure 4. The frequency distribution of larval instars of Amphipsyche meridiana Ulmer 1902 based on head capsule width (n = 12,513) from December 2021 to November 2022.
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