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FIG. 2 in A new genus and new species of Pupinidae (Gastropoda: Caenogastropoda) from Northern Vietnam
FIG. 2. Map of Vietnam showing the type locality (black dot) of Chuatienpupa megacanalis gen. nov. et sp. nov. РИС. 2. Карта Вьетнама с типовым местонахождением (черный кружок) Chuatienpupa megacanalis gen. nov. et sp. nov.
FIG. 4. A. Pupina keraudrenii Vignard, 1829 in A new genus and new species of Pupinidae (Gastropoda: Caenogastropoda) from Northern Vietnam
FIG. 4. A. Pupina keraudrenii Vignard, 1829 (NMR 178592). B. Pupina anceyi Bavay et Dautzenberg, 1899 (syntype MNHN- IM-2000-35833). C. Pupinella illustris (Mabille, 1887) (lectotype of Pupina tonkiniana Bavay & Dautzenberg, 1899, MNHN-IM-2000-35838). D. Pupinella mansuyi (Dautzenberg et Fischer, 1908) (syntype RBINS MT970). E. Barnaia longituba (Páll-Gergely et Gargominy, 2017) (holotype MNHN 2012-27162). F. Rhaphaulus tonkinensis Páll-Gergely, Hunyadi et Maassen, 2014 (holotype HNHM 98757, from Páll-Gergely et al., 2014). (На предыдуЩей странице) РИС. 4. A. Pupina keraudrenii Vignard, 1829 (NMR 178592). B. Pupina anceyi Bavay et Dautzenberg, 1899 (синтип MNHN-IM-2000-35833). C. Pupinella illustris (Mabille, 1887) (лектотип Pupina tonkiniana Bavay & Dautzenberg, 1899, MNHN-IM-2000-35838). D. Pupinella mansuyi (Dautzenberg et Fischer, 1908) (синтип RBINS MT970). E. Barnaia longituba (Páll-Gergely et Gargominy, 2017) (голотип MNHN 2012-27162). F. Rhaphaulus tonkinensis Páll-Gergely, Hunyadi et Maassen, 2014 (голотип HNHM 98757, по Páll-Gergely et al., 2014).
Figure 4 in Revision of the A. delicata group of Afriodinia d'Abrera, 2009 (Papilionoidea: Riodinidae) with the description of a new species from Mount Lico, Northern Mozambique, and the reinstatement of a species
Figure 4 – Comparison of the aedeagi of Afriodinia species and subspecies. a. Afriodinia lico: ABRI-2018-4657; b. Afriodinia lico: ABRI-2018-4648; c. Afriodinia zanzibarica: ABRI-2021- 0023; d. Afriodinia zanzibarica: ABRI-2021-0025; e. Afriodinia delicata delicata: ABRI-2018-4658; f. Afriodinia delicata tanzania; ABRI-2021-0024. Label data as per Fig. 3
Figure 2 in Revision of the A. delicata group of Afriodinia d'Abrera, 2009 (Papilionoidea: Riodinidae) with the description of a new species from Mount Lico, Northern Mozambique, and the reinstatement of a species
Figure 2 – Specimens of Afriodinia species: recto (left) and verso (right) (photos D. Bernard). a. Afriodinia lico ♂; ABRI-2022-0001; Mt Lico, Zambesia, Mozambique; 15°47.538'S; 37°21.783'E, 1000 m; 15–16.v.2018; J. Bayliss; b. ♀; ABRI-2022-0002; Mt Lico, Zambesia, Mozambique; 15°47.538'S; 37°21.783'E, 1000 m; 15–16.v.2018; J. Bayliss; c. Afriodinia zanzibarica ♂; ABRI-2022-0003; Jozani Forest, Zanzibar, Tanzania; 6.2417°S; 39.4111°E, 12 m; ix.1990; S.C. Collins; d. ♀; ABRI-2022- 0004; Jozani Forest, Zanzibar, Tanzania; 6.2417°S; 39.4111°E, 12 m; vii.1987; S.C. Collins; e. Afriodinia delicata delicata ♂; ABRI-2018- 4658; River Ruo, Mt Mulanje, Malawi; 15.95° S; 35.617° E, 900 m; ii.1983; S.C. Collins; f. ♀; ABRI-2022-0007; River Ruo, Mt Mulanje, Malawi; 15.95° S; 35.617° E, 900 m; v.1988; R.J. Murphy, S.C. Collins; g. Afriodinia delicata tanzania ♂; ABRI-2022-0005; Udzungwa Mts, Tanzania; 7.80°S; 36.88°E, 1000 m; 16.iii.2000; T.C.E. Congdon, I. Bampton, P. Walwanda, M. Hassan; h. ♀; ABRI-2022-0005; Udzungwa Mts, Tanzania; 7.80°S; 36.88°E, 1000 m; 3.iii.2000; T.C.E. Congdon, I. Bampton, P. Walwanda, M. Hassan.
Figure 6 in Revision of the A. delicata group of Afriodinia d'Abrera, 2009 (Papilionoidea: Riodinidae) with the description of a new species from Mount Lico, Northern Mozambique, and the reinstatement of a species
Figure 6 – Klee diagram of barcode pairwise differences (number of nucleotides different) for Afriodinia species using sequences listed in BOLD and the sequence for A. lico.
Figure 3 in Revision of the A. delicata group of Afriodinia d'Abrera, 2009 (Papilionoidea: Riodinidae) with the description of a new species from Mount Lico, Northern Mozambique, and the reinstatement of a species
Figure 3 – Comparison of the uncus, gnathos and valve of Afriodinia species and subspecies. a,b,c. Afriodinia lico: ABRI-2018-4657; Mt Lico, Zambesia, Mozambique; 15°47.538'S; 37°21.783'E, 1000 m; 15–16.v.2018; J. Bayliss. d,e. Afriodinia lico: ABRI-2018-4648; otherwise as for a,b,c. f,g,h. Afriodinia zanzibarica: ABRI-2021-0023; Jozani Forest, Zanzibar, Tanzania; 6.2417°S; 39.4111°E, 12 m; ix.1990; S.C.Collins. i,j,k. Afriodinia zanzibarica: ABRI-2021-0025; otherwise as for f.c.h. but iv.1994; S.C.Collins. l,m,n. Afriodinia delicata delicata: ABRI-2018-4658; River Ruo, Mt Mlanje, Malawi; 15.95°S; 3.5617°E, 900 m; ii.1983; S.C. Collins. p,q,r. Afriodinia delicata tanzania; ABRI-2021-0024; Udzungwa Mts, Tanzania; 7.80°S 36.88°E, 1000 m; iii.2000; T.C.E. Congdon, I. Bampton, P.Walwanda, M. Hassan.
Figure 5 in Revision of the A. delicata group of Afriodinia d'Abrera, 2009 (Papilionoidea: Riodinidae) with the description of a new species from Mount Lico, Northern Mozambique, and the reinstatement of a species
Figure 5 – Direct photographic comparison of the aedeagi of a. Afriodinia lico: ABRI-2018-4657 b. Afriodinia lico: ABRI-2018-4648; c. Afriodinia zanzibarica: ABRI-2021-0023 d. Afriodinia delicata delicata: ABRI-2018-4658. Label data as per Fig. 3.
Figure 1 in Revision of the A. delicata group of Afriodinia d'Abrera, 2009 (Papilionoidea: Riodinidae) with the description of a new species from Mount Lico, Northern Mozambique, and the reinstatement of a species
Figure 1 – Map showing study area between Malawi and Mozambique, and location of Mount Lico in relation to neighbouring mountains above 1000m
Fig 10 in Correction: Integrated Taxonomy Reveals Hidden Diversity in Northern Australian Fishes: A New Species of Seamoth (Genus Pegasus)
Fig 10. Molecular species identification of Pegasus species using Genetic treeML trees. (A) sequences from the 16S gene; (B) sequences from the COI gene. Trees are based on the K2 evolutionary distance model and are shown here with mined Pegasus and Eurypegasus sequences from GenBank. The trees are shown here with an E. draconis outgroup. Bootstrap support values (following 1000 replicates) are shown above the nodes. https://doi.org/10.1371/journal.pone.0251680.g001
Fig. 12. Holotypes. A–C. H in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 12. Holotypes. A–C. H. lozekiana sp. nov. (NHMW 113638). D–E. H. steffeki sp. nov. (NHMW 113640). Scale bar = 500 µm.
Fig. 1 in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 1. Current distribution of Hauffenia Pollonera, 1898 in relation to the extension of the Pannonian Sea 10 Ma.
Fig. 17 in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 17. Penes (SEM micrographs). A–B. H. lozekiana sp. nov. (different specimens). C–E. H. steffeki sp. nov. (one specimen). Arrow points at penial stylet, which is withdrawn in A and B. Scale bars: A–C = 50 µm; D = 10 µm; E = 2 µm.
Fig. 9 in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 9. Phylogenetic time-tree from Bayesian analysis in BEAST based on COI. Specimens identified by two-digit locality code in bold, four digit individual DNA code, and orographic unit (see Table 1) or GenBank accession number (from Wilke & Davis 2000; Wilke 2003; Ponder et al. 2008; Falniowski & Szarowska 2015; Barco et al. 2016; Rysiewska et al. 2017); posterior probabilities and highest posterior density intervals at nodes; arrow points at calibrated node; scale bar in substitutions per site; timeline on bottom in Ma before present.
Fig. 6 in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 6. Phylogenetic tree from Bayesian analysis in MrBayes based on 16S rRNA and ITS2 (outgroup pruned off). Specimens identified by two-digit locality code in bold, four digit individual DNA code, and orographic unit (see Table 1) or GenBank accession number (from Ponder et al. 2008); posterior probabilities at nodes; scale bar in substitutions per site.
Fig. 5 in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 5. Type locality of H. lozekiana sp. nov. (71) and Dabarska Pećina, a locality of H. steffeki sp. nov. (72) (see Table 1).
Fig. 14 in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 14. Protoconchs (SEM micrographs). A. H. lozekiana sp. nov., paratype (NHMW 113639). B. H. steffeki sp. nov., paratype (NHMW 113641). Scale bars = 100 µm.
Fig. 8 in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 8. Phylogenetic tree from Bayesian analysis in MrBayes based on COI, 16S rRNA and ITS2 (outgroup pruned off). Specimens identified by two-digit locality code in bold, four digit individual DNA code, and orographic unit (see Table 1); posterior probabilities at nodes; scale bar in substitutions per site.
Fig. 11 in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 11. Monitoring of H. kissdalmae Erőss & Petró, 2008 in spring Ľadová Studňa, Driekyňa Valley, Slovenská Ľupča, Slovakia (locality 61 from Table 1) from 2012–2021.
Fig. 4 in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 4. Selected localities of H. kissdalmae Erőss & Petró, 2008. Image numbers correspond to locality numbers in Table 1.
Fig. 7 in On the origin and diversification of the stygobiotic freshwater snail genus Hauffenia (Caenogastropoda: Hydrobiidae) with special focus on the northern species and the description of two new species
Fig. 7. Phylogenetic tree from maximum likelihood analysis in W-IQ-TREE based on 16S rRNA and ITS2 (outgroup pruned off). Specimens identified by two-digit locality code in bold, four digit individual DNA code, and orographic unit (see Table 1) or GenBank accession number (from Ponder et al. 2008); bootstrap support values at nodes> 50; not given for extremely short nodes within H. kissdalmae Erőss & Petró, 2008 and H. wienerwaldensis Haase, 1992; scale bar in substitutions per site.
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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.