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F I G U R E 2 in Unravelling the taxonomy of an interstitial fish radiation: Three new species of Gouania (Teleostei: Gobiesocidae) from the Mediterranean Sea and redescriptions of G. willdenowi and G. pigra
F I G U R E 2 Comparative morphological overview and lateral line system. (a) Main morphological characteristics of head region of (a) G. adriatica sp. nov. (PMR VP4618 – Holotype), (b) G. orientalis sp. nov. (PMR VP4585 – Holotype), (c) G. hofrichteri sp. nov. (PMR VP4595 – Holotype) and (d) G. pigra (Nardo 1827) (PMR VP3529 – Neotype). (e) Position of pores (bold) and neuromasts (italic) shown on the example of G. willdenowi (Risso 1810) (PMR VP4574 – Neotype) and the main morphological characteristics in the head region of this species. (f) Longitudinal infralateral and suborbital transversal rows of superficial neuromasts can be placed on the well-defined bottom of a deep (+) or shallow (–) groove. U, upper opercular tip; Abbreviations: L, lower opercular tip; SR, supralabial row; NR, nasal row; LIR, longitudinal infralateral; STR, suborbital transversal row; POR, postorbital transversal row; PTR, preopercular transversal row; SLR, subopercular longitudinal row; MR, mandibular row; AVR, anterior ventral row; PVR, posterior ventral row; ADR, anterior dorsal row; PDR, posterior dorsal row; HR, hyomandibular row; SR1, supraopercular row; SR2, suprapectoral row; DLR, dorsolateral longitudinal row; VLR, ventrolateral longitudinal row. Photographs by M. Wagner and M. Kovacˇic
Figure 7 in Systematic taxonomy of middle Miocene Sphaeroidinellopsis (planktonic foraminifera)
Figure 7. Sphaeroidinellopsis kochi: A, B, NHMUK PM PF 75170; C, D, NHMUK PM PF 75171, umbilical and spiral views from sample 159/959B 17H-6 (87–89 cm), Zone M10 middle Miocene, east equatorial Atlantic; E, F, NHMUK PM PF 75172; G, H, NHMUK PM PF 75173; J, K, NHMUK PM PF 75174; I, L, NHMUK PM PF 75175, from sample 159/959B 17H-6 (36–38 cm), Zone M10 middle Miocene, east equatorial Atlantic; M, N, NHMUK PM PF 75176; O, P, NHMUK PM PF 75177, from sample 154/925A 4R-2 (65–67 cm), Zone M7 middle Miocene, western equatorial Atlantic. Scale bars = 100 Mm.
Figure 8 in Systematic taxonomy of middle Miocene Sphaeroidinellopsis (planktonic foraminifera)
Figure 8. Sphaeroidinellopsis phylogeny. Sphaeroidinellopsis disjuncta appeared from Globoturborotalita woodi in the early Miocene, giving rise to two different lineages. With a progressive elongation of the last chamber, the transition to S. kochi took place at the end of the early Miocene. The second lineage arose from the three-chambered populations giving rise to S. seminulina, leading to the Sphaeroidinella lineage. Globoturborotalita woodi is provisionally retained as the ancestor according to the literature and in the absence of transitional individuals between G. druryi or G. labiacrassata and S. disjuncta.
Figure 4 in Systematic taxonomy of middle Miocene Sphaeroidinellopsis (planktonic foraminifera)
Figure 4. Sphaeroidinellopsis kochi: A–C, NHMUK PM PF 75151, umbilical, edge and spiral views from sample 154/925A 4R-3 (60–62 cm), Zone M6 middle Miocene, western equatorial Atlantic; D, H, L, NHMUK PM PF 75152, from sample 159/959B 17H-6 (36–38 cm), Zone M10 middle Miocene, east equatorial Atlantic; P, wall texture detail in 50 × 50 Mm surface from specimen D; E–G, NHMUK PM PF 75153; J–I, NHMUK PM PF 75154; M–O, NHMUK PM PF 75155, from sample 154/925A 4R-2 (65–67 cm), Zone M7 middle Miocene, western equatorial Atlantic. Scale bars: A–O = 100 Mm; P = 10 Mm.
Figure 1 in Systematic taxonomy of middle Miocene Sphaeroidinellopsis (planktonic foraminifera)
Figure 1. Locations of the Ocean Drilling Program (ODP) Sites 925 and 959 in the Atlantic Ocean. Image made using Ocean Data View (Schlitzer 2018).
Figure 6 in Systematic taxonomy of middle Miocene Sphaeroidinellopsis (planktonic foraminifera)
Figure 6. Sphaeroidinellopsis kochi: A, B, NHMUK PM PF75162; C, D, NHMUK PM PF 75163; E, F, NHMUK PM PF 75164; G, H, NHMUK PM PF 75165; J, K, NHMUK PM PF 75166; I–L, NHMUK PM PF 75167; M, N, NHMUK PM PF 75168; O, P, NHMUK PM PF 75169, umbilical and spiral views from sample 159/959B 17H-6 (87–89 cm), Zone M10 middle Miocene, east equatorial Atlantic. Scale bars = 100 Mm.
Figure 3 in Systematic taxonomy of middle Miocene Sphaeroidinellopsis (planktonic foraminifera)
Figure 3. Sphaeroidinellopsis disjuncta: A, B, NHMUK PM PF 75143; C, D, NHMUK PM PF 75144; E, F, NHMUK PM PF 75145; G, H, NHMUK PM PF 75146, umbilical and spiral views from sample 159/959B 17H-6 (87–89 cm), Zone M10 middle Miocene, east equatorial Atlantic; G, H, from sample 159/959B 17H-6 (36–38 cm), Zone M10 middle Miocene, east equatorial Atlantic; Sphaeroidinellopsis disjuncta–Sphaeroidinellopsis kochi: J, K, NHMUK PM PF 75147; I–L, NHMUK PM PF 75148; M–O, NHMUK PM PF 75149; P, Q, NHMUK PM PF 75150, transitional individuals from sample 154/925A 4R-3 (60–62 cm), Zone M6 middle Miocene, western equatorial Atlantic; O, wall texture detail in 50 × 50 Mm surface of specimen shown in M, N. Scale bars: A–N, P, Q = 100 Mm; O = 10 Mm.
Figure 2. A–H in Systematic taxonomy of middle Miocene Sphaeroidinellopsis (planktonic foraminifera)
Figure 2. A–H, Dentoglobigerina altispira; A, NHMUK PM PF 75178; B, NHMUK PM PF 75179, umbilical view from sample 159/959B 17H-6 (87–89 cm), Zone M10 middle Miocene, east equatorial Atlantic; Dentoglobigerina venezuelana: C, NHMUK PM PF 75180; D, NHMUK PM PF 75181, from sample 159/959B 17H-6 (36–38 cm), Zone M10 middle Miocene, east equatorial Atlantic; Globigerinoides cf. altiaperturus: E, NHMUK PM PF 75182; F, G, NHMUK PM PF 75183, umbilical, spiral views and wall detail on 50 × 50 Mm, from sample 154/925A 4R-2 (65–67 cm), Zone M7 middle Miocene, western equatorial Atlantic; Globoquadrina dehiscens: H, NHMUK PM PF 75184, umbilical view, from sample 154/925A 4R-2 (65–67 cm), Zone M7 middle Miocene, western equatorial Atlantic; Clavatorella bermudezi: J, NHMUK PM PF 75185; K, NHMUK PM PF 75186; L, M, NHMUK PM PF 75187; N, NHMUK PM PF 75188, umbilical, edge and spiral views, and wall detail; from sample 154/925A 4R-2 (65–67 cm), Zone M7 middle Miocene, western equatorial Atlantic; Sphaeroidinellopsis disjuncta–Sphaeroidinellopsis kochi: O, NHMUK PM PF 75189, transitional specimen umbilical view from sample 154/925A 4R-2 (65–67 cm), Zone M7 middle Miocene, western equatorial Atlantic; Sphaeroidinellopsis kochi: P, NHMUK PM PF 75190, umbilical view from sample 154/925A 4R-2 (65–67 cm), Zone M7 middle Miocene, western equatorial Atlantic; Orbulina suturalis: Q, NHMUK PM PF 75191, from sample 159/959B 17H-6 (87–89 cm), Zone M10 middle Miocene, east equatorial Atlantic. Scale bars: A–F, H–L, N–Q = 100 Mm; G, M = 10 Mm.
Figure 5 in Systematic taxonomy of middle Miocene Sphaeroidinellopsis (planktonic foraminifera)
Figure 5. Sphaeroidinellopsis kochi: A–C, NHMUK PM PF 75156; D, H, L, NHMUK PM PF 75157; E–G, NHMUK PM PF 75158; J–I, NHMUK PM PF 75159; M–O, NHMUK PM PF 75160; P, NHMUK PM PF 75161, from sample 154/925A 4R-2 (65–67 cm), Zone M7 middle Miocene, western equatorial Atlantic; D, H, L, P from sample 154/925A 4R-3 (60–62 cm), Zone M6 middle Miocene, western equatorial Atlantic. Scale bars = 100 Mm.
Figure 3 in On the distribution and taxonomy of bats of the Myotis mystacinus morphogroup from the Caucasus region (Chiroptera: Vespertilionidae)
Figure 3. Bivariate plot of the examined samples of the Myotis mystacinus morphogroup from the Caucasus region: tibia length (LTib) against the thumb length (LPol). For explanations see Figure 2.
Figure 6 in On the distribution and taxonomy of bats of the Myotis mystacinus morphogroup from the Caucasus region (Chiroptera: Vespertilionidae)
Figure 6. Bivariate plot of the examined samples of the Myotis mystacinus morphogroup from the Caucasus region: results of the principal component analysis of the dimensions and relative dimensions of upper canines and premolars. For explanations see Figure 2.
Figure 2 in On the distribution and taxonomy of bats of the Myotis mystacinus morphogroup from the Caucasus region (Chiroptera: Vespertilionidae)
Figure 2. Bivariate plot of the examined samples of the Myotis mystacinus morphogroup from the Caucasus region: greatest length of skull (LCr) against the length of the upper tooth-row (CM3). The closed symbols denote specimens identified with the help of genetic analysis (with the exception of M. brandtii, for details see text), open symbols all other specimens (arranged to geographical sets); bold capital letters denote holotype specimens of the following taxa: A – Myotis mystacinus aurascens Kuzâkin, 1935; C – Myotis mystacinus caucasicus Tsytsulina, 2000; M – Myotis meinertzhageni Thomas, 1926; P – Myotis mystacinus popovi Strelkov, 1983; R – Myotis mystacinus pamirensis Kuzâkin, 1935; S – Myotis mystacinus sogdianus Kuzâkin, 1934; T – Myotis mystacinus transcaspicus Ogneff & Heptner, 1928.
Figure 5 in On the distribution and taxonomy of bats of the Myotis mystacinus morphogroup from the Caucasus region (Chiroptera: Vespertilionidae)
Figure 5. Bivariate plot of the examined samples of the Myotis mystacinus morphogroup from the Caucasus region: results of the principal component analysis of all tooth dimensions and relative dimensions. For explanations see Figure 2.
Figure 4 in On the distribution and taxonomy of bats of the Myotis mystacinus morphogroup from the Caucasus region (Chiroptera: Vespertilionidae)
Figure 4. Bivariate plot of the examined samples of the Myotis mystacinus morphogroup from the Caucasus region: results of the principal component analysis of all skull dimensions and relative dimensions. For explanations see Figure 2.
Figure 1. Bayesian 50 in On the distribution and taxonomy of bats of the Myotis mystacinus morphogroup from the Caucasus region (Chiroptera: Vespertilionidae)
Figure 1. Bayesian 50% majority rule consensus tree depicting the phylogenetic relationships in the Myotis mystacinus morphogroup from the Caucasus region and adjacent parts of the Western Palaearctic based on the cytochrome b sequences.
Geographic range maps for Mammal Diversity Database v1.3 taxonomy
<p>Update of mammal maps based on the taxonomy of the Mammal diversity database. These maps are different from the original, have been downscaled and are distributed under the R package mdd (github.com/alrobles/mdd).</p>
FIGURE 1 in Contributions to the taxonomy of Trachelyopterus (Siluriformes): comparative cytogenetic analysis in three species of Auchenipteridae
FIGURE 1 | Karyotypes of A. Parauchenipterus striatulus, B. Parauchenipterus galeatus and C. Trachelyopterus coriaceus. Giemsa stained karyotypes. The chromosome pairs marked with silver nitrate are in the boxes; D, E, F. C-banding sequentially karyotypes; G, H, I. Karyotypes hybridized with 5S rDNA and 18S rDNA probes. G. rDNA probe 18S (rhodamine, red signal), 5S rDNA probe (FITC, green signal). H, I. rDNA probe 18S (FITC, green signal), 5S rDNA probe (rhodamine, red signal).
Figure 5 in Revised taxonomy of eastern North Pacific killer whales ( Orcinus orca ): Bigg's and resident ecotypes deserve species status
Figure 5. Global phylogenetic trees of killer whales based on (a) haplotypes from 452 mitogenomes and (b) 49 nuclear genome sequences. Reprinted with permission from Morin et al. [15] (figure 2; by permission from John Wiley & Sons, licence 5458310335802) and [9] (electronic supplementary material, figure S3b, by permission from Andrew D. Foote). Black branches in (a) lead to haplotypes that are from animals that have not been identified to ecotype (see electronic supplementary material, table S1 from [15]).
Figure 3 in Revised taxonomy of eastern North Pacific killer whales ( Orcinus orca ): Bigg's and resident ecotypes deserve species status
Figure 3. PCA plot of first two principal components based on (a) 88 SNPs: offshore (n = 3), resident (n = 11), Bigg's (n = 30) from data in Morin et al. [15]; (b) 26 microsatellites: offshore (n = 5), resident (n = 250), Bigg's (n = 116) (samples genotyped at ≥20 loci) [56]; unpublished); (c) 3678 RADseq SNPs: offshore (n = 7), resident (n = 52) and Bigg's (n = 37) populations [57,62]; (d) 1 00 000 (subset from 6 371 282) SNPs from 147 high-coverage genomes of offshore (n = 7), Bigg's (n = 14) and resident (n = 126) samples from multiple geographically and behaviourally defined subpopulations (Alaska, northern and southern resident populations) (based on subset of SNP genotype data from [113]. See Supplementary Materials for methods and data set information.
Figure 7 in Revised taxonomy of eastern North Pacific killer whales ( Orcinus orca ): Bigg's and resident ecotypes deserve species status
Figure 7. Photographs of neotype skulls for (a) Orcinus rectipinnus (USNM 594671) and (b) Orcinus ater (USNM 594672).
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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.