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Figure 6 in Nidicolous tadpoles rather than direct development in Malagasy frogs of the genus Gephyromantis
Figure 6. Drawings of the preserved DNA voucher tadpole of Gephyromantis ventrimaculatus (ZSM 852/2007 – ZCMV 4927). (A) Dorsal view; (B) lateral view; (C) oral disc.
Figure 4 in Nidicolous tadpoles rather than direct development in Malagasy frogs of the genus Gephyromantis
Figure 4. Drawings of the preserved DNA voucher tadpole of Gephyromantis sculpturatus (ZSM 16/2008 – ZCMV 4833). (A) Dorsal view; (B) lateral view; (C) oral disc.
Figure 3 in Nidicolous tadpoles rather than direct development in Malagasy frogs of the genus Gephyromantis
Figure 3. Colouration in life of tadpoles of three species of Gephyromantis in dorsal, lateral and ventral views. (A) G. sculpturatus (ZSM 16/2008 – ZCMV 4833); (B) G. tschenki (ZSM 142/2007 – ZCMV 4335); (C) G. ventrimaculatus (ZSM 852/2007 – ZCMV 4927). The scale bars represent 1 mm.
Figure 2 in Nidicolous tadpoles rather than direct development in Malagasy frogs of the genus Gephyromantis
Figure 2. Drawings of the preserved DNA voucher tadpole of Gephyromantis granulatus (ZSM 298/2008 – Tad 2004/75). (A) Dorsal view; (B) lateral view; (C) oral disc.
Figure 1 in Nidicolous tadpoles rather than direct development in Malagasy frogs of the genus Gephyromantis
Figure 1. Photographs of the oral disc of the preserved voucher specimens of tadpoles described in this paper (stained with methylene blue). (A) Gephyromantis granulatus (ZSM 298/2008 – Tad 2004-75); (B) G. sculpturatus (ZSM 16/2008 – ZCMV 4833); (C) G. tschenki (ZSM 142/2007 – ZCMV 4335); (D) G. ventrimaculatus (ZSM 852/2007 – ZCMV 4927); (E) G. ambohitra (ZSM 756/2004 – FGMV 2003-1946); (F) G. asper (ZSM 1912/2007 – ZCMV 3401); (G) G. azzurae (ZSM 1922/2007 – T 2007-511); (H) G. corvus ZSM 0674/2008 – T 001); (I) G. pseudoasper (ZSM 707/2004 – FGMV 2003-1919). The scale bars represent 1 mm.
Figure 7 in Reproduction, development and parental care in two direct-developing flatworms (Platyhelminthes: Polycladida: Acotylea)
Figure 7. Imogine zebra parental care: (A) covering newly laid eggs, (B) attacking a gastropod near a recently laid egg plate, scale bars, 1 mm. Imogine zebra, ventral views: (C) before oviposition, showing egg-filled uteri (u), filled ventral glands (gl), and gonopore (gp), scale bar 5 mm; (D) immediately after oviposition, showing marked decrease in gland contents, scale bar 2 mm.
Figure 4 in Reproduction, development and parental care in two direct-developing flatworms (Platyhelminthes: Polycladida: Acotylea)
Figure 4. Relationship between adult length (in mm) and (A) egg production and (B) the number of egg batches in Pleioplana atomata and Imogine zebra.
Figure 5 in Reproduction, development and parental care in two direct-developing flatworms (Platyhelminthes: Polycladida: Acotylea)
Figure 5. Imogine zebra, developmental stages. (A) egg blebbing, (B) two-cell to eight-cell stage, (C) 16-cell stage, (D) 32-cell stage, (E) solid morulae, (F) gastrulation by epiboly, arrowhead indicates blastopore, (G) embryo with one pair of eyes (arrowheads), (H) embryos with noticeable pharynges, (I) embryo with two pairs of eyes, (J) juvenile worm hatching out of eggshell. Scale bars (C, D, I) 50 mm, all others 100 mm.
Figure 3 in Reproduction, development and parental care in two direct-developing flatworms (Platyhelminthes: Polycladida: Acotylea)
Figure 3. Egg masses: (A) Pleioplana atomata, (B) Imogine zebra. Scale bars, 500 mm. Pleioplana atomata: (C) two eggs per egg capsule, scale bar 150 mm, (D) conjoined hatchlings, scale bar 100 mm.
Figure 1 in Reproduction, development and parental care in two direct-developing flatworms (Platyhelminthes: Polycladida: Acotylea)
Figure 1. Pleioplana atomata reproductive behaviour: (A) initial encounters, (B) and (C) reciprocal prodding of ventral surface, and (D) copulation. Images are video stills.
Figure 8 in Reproduction, development and parental care in two direct-developing flatworms (Platyhelminthes: Polycladida: Acotylea)
Figure 8. Variation in mean hatching rate (¡1 SE) per batch of eggs with and without parental care in Pleioplana atomata and Imogine zebra. (A, C) Treatment 1 – egg hatching rate for all batches per individual; black bars – with parental care, white bars – without parental care, (B, D) Treatment 2 – three egg batches with parental care and three batches without parental care per individual.
Figure 2 in Reproduction, development and parental care in two direct-developing flatworms (Platyhelminthes: Polycladida: Acotylea)
Figure 2. Imogine zebra reproductive behaviour: (A) initial encounter and gliding over each other, (B) prodding of dorsal surface, (C) unilateral sperm transfer, (D) sperm transfer among multiple animals, (E) spermatophores on dorsal surface. Images are video stills.
Figure 6 in Reproduction, development and parental care in two direct-developing flatworms (Platyhelminthes: Polycladida: Acotylea)
Figure 6. Hatchlings (A) Pleioplana atomata and (B) Imogine zebra, arrowheads indicate caudal cilia. Scale bars, 100 mm.
Figure 1 in Direct development of the bush frog Raorchestes longchuanensis (Yang and Li 1978) under laborary conditions in Southern China
Figure 1. The map of the study area. Red star denotes Yinjiang, Yunnan, China, the locality of Raorchestes longchuanensis.
Figure 3 in Direct development of the bush frog Raorchestes longchuanensis (Yang and Li 1978) under laborary conditions in Southern China
Figure 3. Stages of embryo development. (a) Fertilised eggs after mating and spawning (stage 0). (b) Eggs incubated for 7 days (stage 3): unpigmented subdermal eyes visible; head lengthens, slightly further forward beyond yolk; forelimb buds visible; hind limb buds longer; tail about twice its length at Stage 2, laterally curved left or right. (c) Eggs incubated for 8 days (stage 4): dorsal and lateral pigmented; eyes pigmented; forelimb buds more prominent beside head; tail about half diameter of yolk. (d) Eggs incubated for 10 days (stage 6): pigmented on sides of abdomen; toe 3 demarcated; cornea clearing, iris black, pupil clear grey. (e) Eggs incubated for 14 days (stage 9): forelimb elbow emerges, hands clearly distinguishable on forearms; head region longer; eyes larger; legs lengthen. (f) Eggs incubated for 18 days (stage 11): pigment denser over abdomen; enlarged digits rounded; hind limbs more developed. (g) Eggs incubated for 20 days (stage 13): palm and foot pigmented, more densely dorsally and laterally; eyes like an adult in shape; tail reduction begins. (h) Fully formed adult frog out of eggs incubated for 26 days (stage 15): hatched and walking; tail resorbed; yolk almost disappear.
TECHNOLOGICAL PROGRESS AS A CHALLENGE TO THE DEVELOPMENT OF LAW: Directions and Perspectives for the 21st Century
<p>[International Scientific Conference on »Challenges and Perspectives of the Development of Legal Systems in the XXI Century« organised by the University of Banja Luka Faculty of Law on September 15, 2022] [13:15]</p> <p>1. Introduction 2. Challenges to be Responded Directly 3. The Law Getting New Dimensions 4. Changes in Law 5. A New Paradigm for Understanding the Social Order</p>
Assessment of Direct Biomarkers of Aspirin Action to Develop a Precision Chemoprevention Therapy of Colorectal Cancer
ClinicalTrials.gov study NCT03957902. IPD Sharing: NO. Countries: 1. Publications: 1.
Data from: Energy and lipid metabolism during direct and diapause development in a pierid butterfly
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Changes in the direction of the diversity-productivity relationship over fifteen years of stand development in a planted temperate forest
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Data from: Adaptive developmental plasticity in a butterfly: mechanisms for size and time at pupation differ between diapause and direct development
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
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.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.