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Fig. 6 in Morphometry Of The Digestive Gland Of Terrestrial Mollusks Cornu Aspersum (Gastropoda, Helicidae)
Fig. 6. Structure of the digestive gland capsule of Cornu aspersum with two muscle bundle layers (Heidenhain's azan): internal muscle bundle layer (1), outer muscle bundle layer (2), collagen fibers layer (3), collagen fibers in muscle layer (4), epithelial layer (5), epithelial microciliae (6).
Fig. 4 in Morphometry Of The Digestive Gland Of Terrestrial Mollusks Cornu Aspersum (Gastropoda, Helicidae)
Fig. 4. Collagen fibers between digestive ducts of the digestive gland of Cornu aspersum (Heidenhain's azan): digestive duct (1), collagen fibers (2).
Fig. 2 in Morphometry Of The Digestive Gland Of Terrestrial Mollusks Cornu Aspersum (Gastropoda, Helicidae)
Fig. 2. Structure of the digestive gland of Cornu aspersum snail (haematoxylin-eosin): hemocoelical ducts (1), digestive ducts (2), stomach duct (3).
Fig. 5 in Morphometry Of The Digestive Gland Of Terrestrial Mollusks Cornu Aspersum (Gastropoda, Helicidae)
Fig. 5. Collagen fibers in the parenchyma of the digestive gland of Cornu aspersum (Heidenhain's azan): digestive duct (1), stomach duct (2), collagen fibers (3), supporting cells of haemocelical duct (4).
Fig. 11 in Morphometry Of The Digestive Gland Of Terrestrial Mollusks Cornu Aspersum (Gastropoda, Helicidae)
Fig. 11. Topography of vacuoles and brown granules in the digestive gland of Cornu aspersum (Potassium ferricyanide after Schmorl): Calcium cell (1), digestive cells (2), large brown granules (3), formation of large granules by small granules joining together (4).
Fig. 3 in Morphometry Of The Digestive Gland Of Terrestrial Mollusks Cornu Aspersum (Gastropoda, Helicidae)
Fig. 3. Structure of ducts of the digestive gland of Cornu aspersum (stained by haematoxylin-eosin): digestive cells (1), Calcium cells (2), vacuoles without brown granules (3), vacuoles with brown granules (4), duct lumen (5), inter-duct connective tissue (6), cells of inter-duct connective tissue (7).
Fig. 10 in Morphometry Of The Digestive Gland Of Terrestrial Mollusks Cornu Aspersum (Gastropoda, Helicidae)
Fig. 10. Vacuoles and granules in digestive ducts of Cornu aspersum (PAS reaction): Calcium cell (1), digestive cell (2), large brown granules (3), small granules joining into large granules (4).
Fig. 8 in Morphometry Of The Digestive Gland Of Terrestrial Mollusks Cornu Aspersum (Gastropoda, Helicidae)
Fig. 8. Muscle bundles in parenchyma of the digestive gland of Cornu aspersum (aldehyde-fuchsin after Gabe-Dyban): straight muscle bundles (1), horseshoe-shaped muscle bundles (2).
Fig. 2 in Morphological Features Of The Digestive Tube In Sand Lizards, Lacerta Agilis (Sauria, Lacertidae)
Fig. 2. Fragment of microscopic structure of stomach wall of sand lizard: 1 — stomach wall; 2 — stomach contents; 3 — gastric glands; 4 — columnar epithelium; 5 — cubic epithelium. Hematoxilin and eosin. ×100; 400.
Fig. 5 in Morphological Features Of The Digestive Tube In Sand Lizards, Lacerta Agilis (Sauria, Lacertidae)
Fig. 5. Fragment of microscopic structure of large intestine of sand lizard: 1 — intestine wall; 2 — epithelial cells; 3 — lymphoid formations. Hematoxilin and eosin. ×100; 400.
Fig. 1 in Morphological Features Of The Digestive Tube In Sand Lizards, Lacerta Agilis (Sauria, Lacertidae)
Fig. 1. The topography of internal organs of sand lizard: (A): 1 — heart; 2 — lung; 3 — liver; 4 — stomach; 5 — small intestine; 6 — large intestine; 7 — ovary; (B): 1 — tongue; (C): 1 — stomach; 2 — pylorus; 3 — small intestine.
Fig. 3 in Morphological Features Of The Digestive Tube In Sand Lizards, Lacerta Agilis (Sauria, Lacertidae)
Fig. 3. Fragment of microscopic structure of duodenum of sand lizard: 1 — wall of villus; 2 — epithelial cells; 3 — stroma of villus. Hematoxilin and eosin. ×100; 400.
Fig. 4 in Morphological Features Of The Digestive Tube In Sand Lizards, Lacerta Agilis (Sauria, Lacertidae)
Fig. 4. Fragment of microscopic structure of jejunum of sand lizard: 1 — wall of villus; 2 — fragment of nutrition between two villi; 3 — epithelial cells; 4 — stroma of villus. Hematoxilin and eosin. ×100; 400.
Fig. 1 in The Plasticity And Morphofunctional Organization Of The Digestive System Of Waders (Charadrii) As Migrants
Fig. 1. The esophagus wall Tringa ochropus, cross cut, caudal section. Histopreparation (hematoxylin and eosin, х100). 1 — folds; 2 — epithelial layer; 3 — esophageal glands; 4 — muscle plate; 5 — submucosal basis; 6 — muscle (а — inner longitudinal layer; b — outer circle layer); 7 — layers of connective tissue.
Fig. 5 in The Plasticity And Morphofunctional Organization Of The Digestive System Of Waders (Charadrii) As Migrants
Fig. 5. The wall of the cecum Philomachus pugnax, the area of the body, cross cut. Histopreparation (hematoxylin and eosin, х100). 1 — mucosal plates; 2 — crypt; 3 — lymphoid tissue; 4 — submucosal basis; 5 — muscle.
Fig. 4 in The Plasticity And Morphofunctional Organization Of The Digestive System Of Waders (Charadrii) As Migrants
Fig. 4. Crypt in the wall of the duodenum Tringa nebularia, cross cut. Histopreparation (hematoxylin and eosin, ×250). 1 — crypt; 2 — corpuscle enterocytes; 3 — alveolar extension of the bottom part of the crypt; 4 — separate muscle cell myocytes; 5 — submucosal basis; 6 — muscle (а — inner longitudinal layer; b — outer circle layer); 7 — gray serum.
Fig. 3 in The Plasticity And Morphofunctional Organization Of The Digestive System Of Waders (Charadrii) As Migrants
Fig. 3. The wall of the jejunum Calidris ferruginea, cross cut, cranial section. Histopreparation (hematoxylin and eosin, х100). 1 — plates of the mucous, located zigzag; 2 — goblet cells; 3 — intestinal crypt; 4 — muscle.
Fig. 2 in The Plasticity And Morphofunctional Organization Of The Digestive System Of Waders (Charadrii) As Migrants
Fig. 2. The wall of the muscular stomach Tringa nebularia cross cut. Histopreparation (hematoxylin and eosin, х40). 1 — cuticle, 2 — tubular glands; 3 — muscle (а — inner longitudinal layer; b — outer thick circle layer); 4 — layers of connective tissue; 5 — blood vessels,
Fig. 6 in The Plasticity And Morphofunctional Organization Of The Digestive System Of Waders (Charadrii) As Migrants
Fig. 6. The wall of the rectum Tringa glareola, cross cut, cranial section. Histopreparation (hematoxylin and eosin, ×100). 1 — fold of the wall; 2 — mucosal plates; 3 — crypt; 4 — muscle plate; 5 — submucosal basis; 6 — muscle (а — inner circle layer; б — outer longitudinal layer).
Enzymatic digestion method development for long-term stored chitinaceous planktonic samples - Data
<table> <tbody> <tr> <td>Data for Carrillo-Barragán, Priscilla, Heather Sugden, Catherine Scott, and Clare Fitzsimmons. 2022.<br> “Enzymatic Digestion Method Development for Long-Term Stored Chitinaceous Planktonic Samples.”<br> Marine Pollution Bulletin. </td> </tr> </tbody> </table>
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OpenNeuro
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