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18 results for “Stylochidae”
Fig. 8 in Predation of Oysters Using an Autonomic Pharynx in the Oyster Leech sp. (Polycladida: Stylochidae).
Fig. 8. Histological micrograph of Asian hard clam (Meretrix lusoria) mantle tissue. A, Cryptostylochus sp. after 12 hours of decomposition by 30 autonomic pharynges. B, Control group without autonomic pharynges.
Fig. 7 in Predation of Oysters Using an Autonomic Pharynx in the Oyster Leech sp. (Polycladida: Stylochidae).
Fig. 7. Linear regression for the clam (Meretrix lusoria) mortality percentage on the number of autonomic pharynges of Cryptostylochus sp.
Fig. 3 in Predation of Oysters Using an Autonomic Pharynx in the Oyster Leech sp. (Polycladida: Stylochidae).
Fig. 3. Sagittal section of Cryptostylochus sp. A, Genital apparatus. B, Monoglandular prostate gland. C, Anchor-shaped seminal vesicle. fg, female gonopore; gd, glandular duct; il, interior lining; j, joint of prostatic duct and ejaculatory duct; mg, male gonopore; mw, muscular wall; pd, prostatic duct; pp, penis papilla; pv, prostatic vesicle; s, secretion; sv, seminal vesicle; vd, vas deferens.
Fig. 4 in Predation of Oysters Using an Autonomic Pharynx in the Oyster Leech sp. (Polycladida: Stylochidae).
Fig. 4. The three predatory processes for Cryptostylochus sp. on Portuguese oysters (Magallana angulata). A, Attack period: flatworms extend their pharynx into the oyster from the shell opening for 4 to 8 hours and some autonomic pharynges are formed. B, Invasion period: the stylochid flatworms crawl into the shell after the oyster cannot resist and the oyster gradually loses its ability to close its shell. C, Ingestion period: the flatworm wraps the entire oyster flesh and separates it from the shell. f, flatworm; o, oyster; p, protruding pharynx.
Fig. 5 in Predation of Oysters Using an Autonomic Pharynx in the Oyster Leech sp. (Polycladida: Stylochidae).
Fig. 5. Cumulative shell valve openings and closures frequency for Portuguese oysters (Magallana angulata) and Asian hard clams (Meretrix lusoria) during the attack period by Cryptostylochus sp. (each test used five each of oysters and clams).
Fig. 2 in Predation of Oysters Using an Autonomic Pharynx in the Oyster Leech sp. (Polycladida: Stylochidae).
Fig. 2. Illustration of the collection of autonomic pharynges from Cryptostylochus sp. The flatworm is flipped over with its ventral surface facing upward. The highly ruffled pharynx is everted under stimulation by pressing the ventral surface with a paintbrush. The pharynx extends and spontaneously breaks into pieces of autonomic pharynges, which are collected by tweezers.
Fig. 1 in Predation of Oysters Using an Autonomic Pharynx in the Oyster Leech sp. (Polycladida: Stylochidae).
Fig. 1. Cryptostylochus sp. A, Dorsal view and B, ventral view. The pharynx is large and highly ruffled. The mouth is in the center of the pharynx ventrally. The head is on the right side. t, tentacles; p, pharynx; m, mouth.
Fig. 6. A in Predation of Oysters Using an Autonomic Pharynx in the Oyster Leech sp. (Polycladida: Stylochidae).
Fig. 6. A, Protruding pharynx of Cryptostylochus sp. and the autonomic pharynx shown by arrows. B, Collected autonomic pharynx placed on the surface of a clam shell to easily record and analyze the video results. Using the time-lapse video, we found that some autonomic pharynges slowly crawled around for roughly 10 hours before losing mobility. ap, autonomic pharynx; p, protruding pharynx.
Figure 6 in Two new marine species from South Korea with remarks on the family Stylochidae (Acotylea, Polycladida, Plathelminthes)
Figure 6. Munseoma maculata gen. et sp. nov. (A) Dorsal view of fixed specimen; (B) sagittal reconstruction of whole organism; (C) sagittal reconstruction of male and female genital system. Scale bars: 8 mm (A); 5 mm (B); 6 mm (C).
Figure 5 in Two new marine species from South Korea with remarks on the family Stylochidae (Acotylea, Polycladida, Plathelminthes)
Figure 5. Photomicrographs of the prostatic vesicle of Cryptostylochus koreensis sp. nov. (A) Medio-sagittal section; (B) peripheral section. Scale bars: 70 mm.
Figure 4 in Two new marine species from South Korea with remarks on the family Stylochidae (Acotylea, Polycladida, Plathelminthes)
Figure 4. Cryptostylochus koreensis sp. nov. (A) Dorsal view of fixed specimen; (B) sagittal reconstruction of whole organism; (C) sagittal reconstruction of male and female apparatus. Scale bars: 20 mm (A); 8 mm (B); 4 mm (C).
Figure 2 in Two new marine species from South Korea with remarks on the family Stylochidae (Acotylea, Polycladida, Plathelminthes)
Figure 2. Diagrammatic reconstruction of prostatic vesicles of Stylochidae. (A) Cryptostylochus coseirensis (Bock) after Meyer, 1921; (B) Imogine nebulosa (Girard); (C) Imogine oculifera Girard; (D) Stylochus alexandrinus Steinböck; (E) Stylochus frontalis Verrill; (F) Stylochus ellipticus (Verrill).
Figure 1 in Two new marine species from South Korea with remarks on the family Stylochidae (Acotylea, Polycladida, Plathelminthes)
Figure 1. Diagrammatic reconstruction of types of prostatic vesicles of Stylochidae. (A) Monoglandular type; (B) polyglandular type.
Figure 3 in Two new marine species from South Korea with remarks on the family Stylochidae (Acotylea, Polycladida, Plathelminthes)
Figure 3. Diagrammatic reconstruction of prostatic vesicles of Stylochidae. Monoglandular types: (A–C) Cryptostylochus koreensis sp. nov.: (A) medio-sagittal section through the prostatic vesicle, (B) peripheral section through the prostatic vesicle, (C) diagrammatic reconstruction of the prostatic vesicle; (D) Cryptostylochus hullensis Faubel and Gollasch. Polyglandular types: (E) Stylochus neapolitanus (Delle Chiaje); (F) Distylochus pusillus Bock. Scale bars: 70 mm.
FIGURE 4 in A new Imogine species (Turbellaria: Polycladida: Stylochidae) associated with rock oysters (Saccostrea cucullata) from the Persian Gulf, with a review of the genus
FIGURE 4. Haematoxylin-eosin stained sections of Imogine qeshmensis sp. nov. (Holotype, ZUTC Platy.1265): (A) Dorsal epidermis; (B) ventral epidermis (C) male reproductive structures; (D) close up of prostatic vesicle and ejaculatory duct. Abbreviations: bm, basement membrane; cm, circular muscles; cma, ciliated male antrum; de, dorsal epidermis; dm, diagonal muscle; ed, ejaculatory duct; exc, extra-vesicular gland canal; exg, extra-vesicular gland, gp, granular pigment; gl, glandular lining; lm, longitudinal muscle; ml, muscular layer; pv, prostatic vesicle; rb, rhabdite; sv, seminal vesicle; tm, transverse muscle; ve, ventral epidermis; vl, ventral lobe.
FIGURE 3 in A new Imogine species (Turbellaria: Polycladida: Stylochidae) associated with rock oysters (Saccostrea cucullata) from the Persian Gulf, with a review of the genus
FIGURE 3. Imogine qeshmensis sp. nov. (A) Dorsal view of paratype (sectioned specimen, ZUTC platy 1266); (B) Drawing of a cleared whole specimen; (C) pattern of cerebral and tentacular eyes; (D) Sagittal reconstruction of the male and female reproductive systems. Abbreviations: ce, cerebral eyes; cg, cement glands; cma, ciliated male antrum; ed, ejaculatory duct; exc, extra-vesicular gland canal; fg, female gonpore; gl, glandular lining; i, intestine; m, mouth; me, marginal eyes; mg, male gonopore; o, ovaries; ov, oviduct; pd, prostatic duct; ph, pharynx; pv, prostatic vesicle; sv, seminal vesicle; te, tentacular eyes;; ts, testis; v, vagina; vd, vas deferens.
FIGURE 1 in A new Imogine species (Turbellaria: Polycladida: Stylochidae) associated with rock oysters (Saccostrea cucullata) from the Persian Gulf, with a review of the genus
FIGURE 1. Map of the West Indo-Pacific and Persian Gulf. Type locality is Hamun jetty beach, Qeshm Island, the northern coasts of the Persian Gulf.
FIGURE 2 in A new Imogine species (Turbellaria: Polycladida: Stylochidae) associated with rock oysters (Saccostrea cucullata) from the Persian Gulf, with a review of the genus
FIGURE 2. (A) Type locality of Imogine qeshmensis sp. nov., rocky substrate with rock oysters (B) Living specimen of I. qeshmensis.
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