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Figure 22 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 22. Holotype of L. leopardinus sp. nov. (UTEP 22577) from Balolombo Village, Busira River, Équateur Province, DRC. A, Dorsal and ventral view of body. B, Details of right manus and (C) pes. D, Detailed view of head in ventral, dorsal, and lateral views (from top to bottom). Photos by J.L.R.
Figure 21 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 21. Holotype of L. mirabundus sp. nov. (UTEP 22585) from Katako Kombe, Sankuru Province, DRC. A, Dorsal and ventral view of body. B, Details of cloacal region and (C) right pes. D, Detailed view of head in dorsal, ventral, and lateral views (from top to bottom). Photos by J.L.R.
Figure 19 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 19. Holotype of L. karamoja sp. nov. (UTEP 22590) from Agoro Town, Imatong Foothills, Northern Region, Uganda. A, Dorsal and ventral view of body, (B) details of cloacal section, (C) regenerated tail tip, and (D) left pes. E, Detailed view of head in dorsal, ventral, and lateral views (from top to bottom). Photos by J.L.R.
Figure 20 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 20. Specimens of L. karamoja sp. nov. in life from (A–B) Agoro Town (holotype: UTEP 22590), Imatong Foothills and (D–E) Nakapiripirit (UTEP 22594), Mount Kadam, Northern Region, Uganda. Photo of habitat at (C) Imatong Foothills, and (F) Mount Kadam, Northern Region, Uganda. Photographs by D.F.H.
Figure 18 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 18. Specimens of Lygodactylus kibera sp. nov. in life or freshly euthanized from (A) Mpishi (holotype: UTEP 22566), near Kibira National Park, Bubanza Province, Burundi, (B) N'Komo River (UTEP 22586), South Kivu Province, DRC, and (C) Bujumbura city, Bujumbura Mairie Province (UTEP 22576), Burundi. Photo of habitat at (D) Mpishi, Bubanza Province, Burundi. Photographs by E.G. (A–C) and C.K. (D).
Figure 17 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 17. Holotype of Lygodactylus kibera sp. nov. (UTEP 22566) from Mpishi, near Kibira National Park, Bubanza Province, Burundi. A, Dorsal and ventral view of body. B, Detailed view of head in dorsal, ventral, and lateral views (from top to bottom). Details of cloacal region (C), (D) tail tip, and (E) left manus.
Figure 16 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 16. Dorsal and ventral views of head showing gular ornamentation and pholidosis variation in L. depressus. Red points denote males and blue points denote females.
Figure 1 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 1. Maximum likelihood analysis based on 532 bp of the mitochondrial 16S rRNA gene, for all available samples of the Afro-American Lygodactylus Clade (Clade C of Gippner et al. 2021). Support values (ML BS = Maximum Likelihood bootstrap values; BI PP = Bayesian Inference posterior probabilities) are shown graphically at the nodes according to the colours shown in the inset key.
Figure 13 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 13. Dorsolateral and ventral variation of two male specimens [RMCA R.8575/A (left) and RMCA R.8575/B (right)] of L. depressus, collected in sympatry at Flandria, Équateur Province, DRC.
Figure 9 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 9. Lectotype of L. gutturalis (ZMB 7771) from Bissau, Bissau Region, Guinea-Bissau. A, Dorsal and ventral views of body. B, Details of cloacal region. C, Details of left manus. D, Detailed views of head in dorsal, ventral, and both lateral views (from top to bottom). Photos by Frank Tillack: Museum für Naturkunde, Berlin (ZMB).
Figure 5 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 5. Gular and skull osteology comparisons between holotype material or representative material of all members of the L. gutturalis subgroup and the L. angularis group mentioned in this work. From top to bottom, ventral view gular section; dorsal, lateral, and ventral view of the skull; lateral, dorsal, medial, and ventral view of jaw; and number of tooth loci. PM = premaxilla, MX(R) = right maxilla, MX(L) = left maxilla, DN(R) = right dentary of the jaw.
Figure 8 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 8. Paratype of L. paurospilus [RMCA (=MRAC) R.27409] from Haute Lubitshako, South Kivu Province, DRC. A, Ventral and dorsal views of body. B, Details of head in ventral, dorsal, and lateral views (from top to bottom). C, Details of cloacal region. D, Details of right manus. Photos by J.L.R.
Figure 7 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 7. Holotype of L. heeneni [RMCA (= MRAC) R.8477] from Kapiri, Lualaba Province, DRC. A, Ventral and dorsal view of body. B, Details of head in dorsal, ventral, and lateral views (from top to bottom). Photos by J.L.R.
Figure 3 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 3. Comparative figure including dorsal (or dorsolateral) and ventral views of preserved holotypes (with exception of Lygodactylus gutturalis that is represented by a paratype) of all species within the L. gutturalis subgroup used in the current study.
Figure 15 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 15. Specimens of L. depressus in life or freshly euthanized from (A) Npenda, Équateur Province, DRC (UTEP 22580), (B) Katopa, Maniema Province, DRC (UTEP 22597), (C) Lake Tumba, Équateur Province, DRC (UTEP 22578), and (E–G) Barra do Cuanza, Cuanza Sul Province, Angola (MNCN 50772). Photo of habitat at (D) Lake Tumba, Équateur Province, DRC and (H) Barra do Cuanza, Cuanza Sul Province, Angola. Photographs by E.G. (A–C), C.K. (D), P.V.P. (E–G), and J.L.R. (H).
Figure 4. A in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 4. A, PCA plots of the first principal component (PC1) vs. the second principal component (PC2). Species are represented by different colours included in the legend. B, Boxplots (top whisker–maximum value; lower whisker–minimum value; dark horizontal line–median) of the body size (SVL) and linear measurements analysed in this study. Values in all the variables with the exception of SVL, are represented using the Least-squares means interaction plot (function Lsmip, package lsmeans). For abbreviations and further details see Material and methods section.
Figure 6 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 6. Geographical distribution of the L. gutturalis complex in Africa, on a hybrid map of the major vegetation divisions (Sayre et al. 2013) and 1 arc-second elevation map across tropical Africa (NASA 2000). Different colours depict records of different species within the L. gutturalis subgroup; see inset for explanations of symbols. White circles denote records of L. cf. gutturalis that cannot be assigned to any of the nominate taxa. Black stars represent the type localities of each nominate taxon within the L. picturatus subgroup (1– L. picturatus, 1S– L. picturatus sudanensis, 1U– L. picturatus ukerewensis, 2– L. inexpectatus, 3– L. keniensis, 4– L. kimhowelli, 5– L. manni, 6– L. mombasicus, 7– L. scorteccii, 8– L. tsavoensis, 9– L. wojnowskii, 10– L. williamsi).
Figure 11 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 11. Specimens of L. gutturalis in life from (A–C) Guinea Bissau and (D–E) Senegal. Photos of habitat at (F) Sambatchur, Bafata Region, Guinea Bissau, (G) Kalan Kalan, Kankan Region, Guinea, (H) Guiguisso, Donga Department, Benin, (I) Nsonsomea, Sunyani Region, Ghana, and (J) Mlomp, Zinguinchor Region, Senegal. Photographs by J.F.T. (A–C and F–J) and Alberto Sanchez-Vialas (D–E).
Figure 10. A–D in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 10. A–D, Lateral view and gular detail of four representatives of L. gutturalis that present four different combinations of dorsolateral + gular pattern (between lined or ocellated dorsolateral pattern, and two or three gular chevrons). E, Details of nostril, showing intraspecific variation in L. gutturalis. F, Detailed view of the right manus with a visible thumb claw in L. gutturalis, and SEM image of isolated claw. G, Detailed view of the tail tip in L. gutturalis, and two different SEM images of terminal tail scansors.
Figure 14 in Integrative revision of the Lygodactylus gutturalis (Bocage, 1873) complex unveils extensive cryptic diversity and traces its evolutionary history
Figure 14. Holotype of L. depressus (AMNH 10345) from Medje, Ituri Forest, Haut-Uele Province, DRC. A, Dorsal and ventral view of body. B, Detailed view of head in dorsal, ventral, and lateral views (from top to bottom). C, Details of cloacal region. D, Details of left manus. Photos provided by Lauren Vonnahme: American Museum of Natural History, New York City (AMNH).
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
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.