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1,692 results for “Caenogastropoda”

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Figure 11 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 11. Anatomy of Pseudamnicola (C.) manueli sp. nov. from type locality (MNCN 15.05/49176b). (A,B) Partial nervous system; (C) ctenidium and osphradium; (D) head of a male and penis; (E) prostate gland; (F) stomach; (G) female genitalia; (H) bursa copulatrix and seminal receptacle.

opennotspecifiedJan 2012View details →
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Figure 9 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 9. Shells of Pseudamnicola (C.) manueli sp. nov. (A, D–G) Shells from La Garganta stream in Nava de San Pedro, Jaén (type locality); (B) shell from Arroyo del Valle, La Iruela, Jaén (MNCN 15.05/49183); (C) shell from El Céfano spring in La Iruela, Jaén (MNCN 15.05/49180). (A, D) Holotype (MNCN 15.05/49176a); (E–G) paratypes (MNCN 15.05/49176b), protoconch and microsculpture from the protoconch.

opennotspecifiedJan 2012View details →
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Figure 8 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 8. Shells of several populations of Pseudamnicola (C.) falkneri. (A) Holotype (SMF 219026); (B,C) paratypes (SMF 219027/1, 219028/10); (D) shell from La Armada spring, Orce, Granada (MNCN 15.05/49161); (E) shell from Dos Caños spring, Castril, Granada (MNCN 15.05/49171); (F) shell from Fuente Palo, Orce, Granada (MNCN 15.05/49163).

opennotspecifiedJan 2012View details →
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Figure 10 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 10. Operculum and radula of Pseudamnicola (C.) manueli sp. nov. from La Garganta stream in Nava de San Pedro, Jaén (type locality, MNCN 15.05/49176b). (A) Internal side of the operculum; (B) external side of the operculum; (C) radula; (D) rows of teeth of the radula; (E) detail of central tooth; (F) inner and outer marginal teeth.

opennotspecifiedJan 2012View details →
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Figure 17 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 17. Anatomy of Pseudamnicola (C.) marisolae sp. nov. from type locality (MNCN 15.05/49417b). (A, B) Partial nervous system; (C) ctenidium and osphradium; (D) head of a male and penis; (E) prostate gland; (F) stomach; (G) female genitalia; (H) bursa copulatrix and seminal receptacle.

opennotspecifiedJan 2012View details →
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Figure 7 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 7. Anatomy of Pseudamnicola (C.) falkneri from La Armada spring, Orce, Granada (MNCN 15.05/49162). (A,B) Partial nervous system; (C) ctenidium and osphradium; (D) prostate gland; (E) head of a male and penis; (F) stomach; (G) first morphology of female genitalia; (H) bursa copulatrix and seminal receptacle of first morphology; (I) second morphology of female genitalia; (J) bursa copulatrix and seminal receptacle of second morphology.

opennotspecifiedJan 2012View details →
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Figure 6 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 6. Operculum and radula of Pseudamnicola (C.) falkneri from La Armada spring, Orce, Granada (MNCN 15.05/49161). (A) Internal side of the operculum; (B): external side of the operculum; (C): radula; (D) rows of teeth of the radula; (E) central tooth; (F) outer marginal teeth.

opennotspecifiedJan 2012View details →
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Figure 5 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 5. Shells of Pseudamnicola (C.) falkneri. (A, D–G) Shells from La Armada spring, Orce, Granada (MNCN 15.05/49161); (B) shell from Dos Caños spring, Castril, Granada (MNCN 15.05/49171; (C) shell from La Errá spring, La Dehesa, Albacete (MNCN 15.05/49172). (E–G) protoconch and microsculpture.

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Figure 4 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 4. Anatomy of Pseudamnicola (C.) luisi from the type locality (MNCN 15.05/49148). (A, B) Partial nervous system; (C) ctenidium and osphradium; (D) prostate gland; (E) stomach; (F) head of a male and penis; (G) female genitalia; (H) bursa copulatrix and seminal receptacle. Gc, gastric caecum; PW, pallial wall; Ro, renal oviduct; SR, seminal receptacle.

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Figure 3 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 3. Operculum and radula of Pseudamnicola (C.) luisi from La Gitana spring in La Peza, Granada (type locality, MNCN 15.05/49148). (A) Internal side of the operculum; (B) external side of the operculum; (C) radula; (D) rows of teeth of the radula; (E) central tooth; (F) detail of an outer marginal tooth.

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Figure 2 in Underestimated diversity of hydrobiid snails. The case of Pseudamnicola (Corrosella) (Mollusca: Caenogastropoda: Hydrobiidae)

Figure 2. Shells of Pseudamnicola (C.) luisi. (A, C–F) Shells from La Gitana spring in La Peza, Granada (type locality, MNCN 15.05/49148); B: shell from Polvorista stream, Quéntar, Granada (MNCN 15.05/49155); (D–F) protoconch and detail of protoconch microsculpture.

opennotspecifiedJan 2012View details →
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Figure 9 in The evolutionary and biomechanical implications of snout and proboscis morphology in Caenogastropoda (Mollusca: Gastropoda)

Figure 9. Transverse histological sections through the proboscis of three caenogastropod taxa. (A) Cabestana spengleri (Ranellidae) everted proboscis and branching ventral odontophoral retractor muscles; (B) C. spengleri proboscis base, ventrolateral and dorsolateral retractor muscles; (C) C. spengleri proboscis wall; (D) Semicassis pyrum (Cassidae) everted proboscis and ventral odontophoral retractor muscles; (E) S. pyrum proboscis wall; (F) Ficus subintermedia (Ficidae) introverted proboscis; (G) F. subintermedia proboscis wall. Scale bars: (A, B, D, F) 1 mm; (C, E, G) 200 µm; for abbreviations see Appendix 2.

opennotspecifiedOct 2009View details →
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Figure 8 in The evolutionary and biomechanical implications of snout and proboscis morphology in Caenogastropoda (Mollusca: Gastropoda)

Figure 8. Transverse histological sections through the proboscis of two epitoniid taxa. (A) Janthina janthina (Epitoniidae) proboscis and aortic muscles; (B) J. janthina proboscis wall; (C) Opalia ballinensis (Epitoniidae) introverted proboscis and accessory proboscis retractor muscles (D) O. ballinensis aortic muscles; (E) O. ballinensis proboscis wall. Scale bars: (A, C) 1 mm; (B, E) 100 µm; (D) 500 µm; for abbreviations see Appendix 2.

opennotspecifiedOct 2009View details →
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Figure 7 in The evolutionary and biomechanical implications of snout and proboscis morphology in Caenogastropoda (Mollusca: Gastropoda)

Figure 7. Transverse histological sections through the proboscis of three "ptenoglossan" taxa. (A) Mesophora fusca (Triphoridae) introverted proboscis and ventral odontophoral retractor muscles; (B) M. fusca proboscis wall; (C) Ataxocerithium sp. (Cerithiopsidae) introverted proboscis and aortic muscles; (D) Ataxocerithium sp. proboscis wall (E) Apicalia cf. brazieri (Eulimidae) partially everted proboscis; (F) Apicalia cf. brazieri introverted proboscis and aortic muscles (G) Apicalia cf. brazieri proboscis wall. Scale bars: (A, C, E, F) 200 µm; (B, D, G) 50 µm; for abbreviations see Appendix 2.

opennotspecifiedOct 2009View details →
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Figure 12 in The evolutionary and biomechanical implications of snout and proboscis morphology in Caenogastropoda (Mollusca: Gastropoda)

Figure 12. Snout and proboscis evolution in Caenogastropoda, illustrated on a phylogeny of Caenogastropoda based on the strict consensus tree generated by Ponder et al. (2008) (Figure 13.16) using maximum parsimony analysis of a morphological dataset. Taxa originally included in their analysis which were not examined in this study have been pruned; Columbellidae, Vanikoridae and Turbinellidae were not included by Ponder et al. (2008) and are not

opennotspecifiedOct 2009View details →
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Figure 2 in The evolutionary and biomechanical implications of snout and proboscis morphology in Caenogastropoda (Mollusca: Gastropoda)

Figure 2. Transverse histological sections through the snout of four non-caenogastropod taxa. (A) Montfortula rugosa (Fissurellidae) snout; (B) M. rugosa snout wall; (C) Austrocochlea porcata (Trochidae) snout; (D) A. porcata snout wall; (E) Nerita atramentosa (Neritidae) snout; (F) N. atramentosa snout wall; (G) Pyrgulina pascoei (Pyramidellidae) introverted proboscis (H) P. pascoei proboscis wall. Scale bars: (A, C, E) 1 mm; (B, D, F–H) 100 µm; for abbreviations see Appendix 2.

opennotspecifiedOct 2009View details →
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Figure 4 in The evolutionary and biomechanical implications of snout and proboscis morphology in Caenogastropoda (Mollusca: Gastropoda)

Figure 4. Transverse histological sections through the snout of three caenogastropod taxa. (A) Serpulorbis sp. (Vermetidae) snout; (B) Serpulorbis sp. snout wall; (C) Bembicium nanum (Littorinidae) snout; (D) B. nanum fused aortic muscles; (E) B. nanum snout wall; (F) Carinaria cristata (Carinariidae) snout; (G) C. cristata accessory retractor muscles; (H) C. cristata snout wall. Scale bars: (A, C, D, F, G) 1 mm; (B, E, H) 100 µm; for abbreviations see Appendix 2.

opennotspecifiedOct 2009View details →
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Figure 1 in The evolutionary and biomechanical implications of snout and proboscis morphology in Caenogastropoda (Mollusca: Gastropoda)

Figure 1. Schematic classification of proboscis and snout morphology, with retractor muscles shown in grey. (A) Snout; (B) acrembolic proboscis everted; (C) acrembolic proboscis introverted; (D) pleurembolic proboscis everted; (E) pleurembolic proboscis introverted; (F) intraembolic proboscis extended; (G) intraembolic proboscis retracted; (H) polyembolic proboscis everted; (I) polyembolic proboscis introverted; (J) "argobucciniform" proboscis extended; (K) "argobucciniform" proboscis retracted. A–E modified from Fretter and Graham (1994, Figure 88); F–I modified from Miller (1989, Figure 3); J–K modified from Day (1969, Figure 1).

opennotspecifiedOct 2009View details →
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Figure 3 in The evolutionary and biomechanical implications of snout and proboscis morphology in Caenogastropoda (Mollusca: Gastropoda)

Figure 3. Transverse histological sections through the snout of four caenogastropod taxa. (A) Pomacea bridgesii (Ampullariidae) snout (A); P. bridgesii snout wall; (C) Pupina robusta (Pupinidae) snout; (D) P. robusta snout wall; (E) Batillaria australis (Batillariidae) snout; (F) B. australis snout wall; (G) Cerithium columna (Cerithiidae) snout; (H) C. columna aortic muscles; (I) C. columna snout wall. Scale bars: (A, C, E, G, H) 1 mm; (B, D, E, I) 100 µm; for abbreviations see Appendix 2.

opennotspecifiedOct 2009View details →
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Figure 5 in The evolutionary and biomechanical implications of snout and proboscis morphology in Caenogastropoda (Mollusca: Gastropoda)

Figure 5. Transverse histological sections through the snout of four caenogastropod taxa. (A) Rissoina crassa (Rissoidae) snout; (B) R. crassa circumoesophageal nerve ring and aortic muscles (C) R. crassa snout wall; (D) Edgbastonia alanwillsi (Hydrobiidae) snout; (E) E. alanwillsi snout wall; (F) Vanikoro cancellata (Vanikoridae) snout; (G) V. cancellata snout wall; (H) Bostrycapulus pritzkeri (Calyptraeidae) snout; (I) B. pritzkeri snout wall. Scale bars: (A, B, D, H) 200 µm; (C, E, G, I) 50 µm; (F) 1 mm; for abbreviations see Appendix 2.

opennotspecifiedOct 2009View details →

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International Brain Laboratory public data

The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.

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