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FIGURE 4 in A new species of the fishfly genus Neochauliodes van der Weele discovered from southwestern China through an integrative approach based on morphological and molecular evidence (Megaloptera: Corydalidae: Chauliodinae)
FIGURE 4. Interspecific phylogeny of the Neochauliodes bowringi species-group based on a concatenated dataset. Numbers at nodes are Bayesian posterior probabilities (left) and maximum likelihood bootstrap values (right). "-" at nodes indicate inconsistency in the topologies from the two methods.
FIGURE 3. Male gonocoxite 10 in A new species of the fishfly genus Neochauliodes van der Weele discovered from southwestern China through an integrative approach based on morphological and molecular evidence (Megaloptera: Corydalidae: Chauliodinae)
FIGURE 3. Male gonocoxite 10 of Neochauliodes spp., lateral view. A. N. bowringi (McLachlan); B. N. moriutii Asahina; C. N. umbratus Kimmins; D. N. tonkinensis (van der Weele); E. N. triangulatus sp. nov.; F. N. guixianus Jiang, Wang & Liu. Scale bar = 1 mm.
FIGURE 2 in A new species of the fishfly genus Neochauliodes van der Weele discovered from southwestern China through an integrative approach based on morphological and molecular evidence (Megaloptera: Corydalidae: Chauliodinae)
FIGURE 2. Neochauliodes triangulatus sp. nov., line drawing of male genitalia. A. Genitalia, lateral view; B. Ectoproct, dorsal view; C. Gonocoxite 10, ventral view. cc: callus cercus; e: ectoproct; gx: gonocoxite; S: sternum; T: tergum. Arrow indicates subapical processes of gonocoxite 10. Scale bar = 1 mm.
FIGURE 2 in Phylogenetics of the tribe Phalacropsyllini (Siphonaptera: Ctenophthalmidae: Neopsyllinae) based on molecular and morphological evidence
FIGURE 2. Some of the morphological characters used in the cladistic analysis. a) Number of teeth in genal comb; b) metacoxa with spiniforms; c) sternum VIII expanded; d) distal arm of IX sternum with membranous flap; e) fixed process bifurcated; f) five pairs of lateral plantar bristles on fifth tarsal segment of hind legs.
FIGURE 1 in Phylogenetics of the tribe Phalacropsyllini (Siphonaptera: Ctenophthalmidae: Neopsyllinae) based on molecular and morphological evidence
FIGURE 1. Habitus photographs (males). Ingroup: a) Catallagia charlottensis; b) Delotelis telegoni; c) Epitedia wenmanni; d) Phalacropsylla paradisea; e) Meringis parkeri; f) Strepsylla mina; Outgroups: g) Neopsylla inopina (Neopsyllini); h) Anomiopsyllus perotensis (Anomiopsyllini).
FIGURE 3 in Phylogenetics of the tribe Phalacropsyllini (Siphonaptera: Ctenophthalmidae: Neopsyllinae) based on molecular and morphological evidence
FIGURE 3. Phylogenetic relationships of the tribe Phalacropsyllini based on the parsimony analysis of 28S, and 18S genes, and morphological characters. Numbers below nodes indicate support values determined by symmetric resampling.
Figure 8 in High level of phenotypic homoplasy amongst eutardigrades (Tardigrada) based on morphological and total evidence phylogenetic analyses
Figure 8. Maximum clade credibility phylogram obtained with Bayesian inference using combined data: morphological matrix without gamete-related characters and molecular data (18S rRNA and 28S rRNA). Values above branches are posterior probabilities supports.
Figure 3 in High level of phenotypic homoplasy amongst eutardigrades (Tardigrada) based on morphological and total evidence phylogenetic analyses
Figure 3. The four states coded in the present study for the shape of the apophyses for the insertion of the stylet muscles (AISM) (characters 14, 15; Table 2). A State 1: AISM divided in two; B AISM shaped as one ridge; C AISM shaped as two ridges; D AISM shaped as three ridges. The images represent half a buccal tube in lateral view. The arrow in B indicates an apophysis for the insertion of the stylet muscles connecting with the end of the mouth. The rest of the apophyses for the insertion of the stylet muscles connect with the beginning of the buccal tube.
Figure 1 in High level of phenotypic homoplasy amongst eutardigrades (Tardigrada) based on morphological and total evidence phylogenetic analyses
Figure 1. Eutardigrade peribuccal structures indicated by arrows. A, lamellae (state 1 in Tables 3 and 4); B, papulae (state 3 in Tables 3 and 4); C, lobes.
Figure 7 in High level of phenotypic homoplasy amongst eutardigrades (Tardigrada) based on morphological and total evidence phylogenetic analyses
Figure 7. Agreement subtree with groups present with all concavities obtained with the Ratchet algorithm for parsimonious analyses using combined data: morphological matrix without gamete-related characters and molecular data (18S rRNA and 28S rRNA). Values above branches are bootstrap supports after 1000 replicates with a k-value of 16. Values under branches are Bremer relative supports with a k-value of 16.
Figure 5. Agreement subtree cladogram obtained with the Ratchet algorithm for parsimonious analyses using the complete morphological matrix without gamete-related characters. Values above branches are bootstrap supports after 1000 in High level of phenotypic homoplasy amongst eutardigrades (Tardigrada) based on morphological and total evidence phylogenetic analyses
Figure 5. Agreement subtree cladogram obtained with the Ratchet algorithm for parsimonious analyses using the complete morphological matrix without gamete-related characters. Values above branches are bootstrap supports after 1000 replicates; values under branches are Bremer relative supports.
Figure 2 in High level of phenotypic homoplasy amongst eutardigrades (Tardigrada) based on morphological and total evidence phylogenetic analyses
Figure 2. Different states (from 0 to 5) coded in the present study for the shape of the furcae (character 13; Table 2).
Figure 4 in High level of phenotypic homoplasy amongst eutardigrades (Tardigrada) based on morphological and total evidence phylogenetic analyses
Figure 4. Different types of claws present amongst eutardigrades (A–N) and in the outgroup Echiniscidae (O). M modified from Pilato (1971). Dotted lines in F and G indicate right angles in Isohypsibius- and Hypsibius-type claws, respectively. Arrows in D and E indicate cuticular bars joining external and internal claws in Dactylobiotus and Macroversum, respectively. Arrows in L indicate claw position. PIII, third pair of legs. PIV, fourth pair of legs.
FIGURE 3 in A reevaluation of the generic limits of Pnigalio Schrank (Hymenoptera: Eulophidae) based on molecular and morphological evidence
FIGURE 3. Best scoring maximum likelihood tree based on a concatenated dataset of 28S-D2, ITS2 and COI sequences. Bootstrap values are indicated in bold below nodes. The species identity for each taxon code is given in Table 1.
FIGURE 2 in A reevaluation of the generic limits of Pnigalio Schrank (Hymenoptera: Eulophidae) based on molecular and morphological evidence
FIGURE 2. Majority rule consensus Bayesian tree based on a concatenated dataset of 28S-D2, ITS2 and COI sequences. Posterior probability values are indicated in bold below nodes. The species identity for each taxon code is given in Table 1.
FIGURE 1 in A reevaluation of the generic limits of Pnigalio Schrank (Hymenoptera: Eulophidae) based on molecular and morphological evidence
FIGURE 1. Mesosoma of Ratzeburgiola cristata (A), R. incompleta (B), Pnigalio vidanoi (C) females: ax, axillae; no, notauli; pr, propodeum; ms, metascutellum; sc, scutellum; sg, scutellar grooves.
FIGURE 3. Selliguea wusugongii.—A. Fronds from holotype.—B in Selliguea wusugongii (Polypodiaceae), a new fern species from southeastern Xizang, China based on morphological and molecular evidence
FIGURE 3. Selliguea wusugongii.—A. Fronds from holotype.—B. Scale of phyllopodium.—C. Rhizome scale.—D-F. Cross sections of rhizome showing vascular tissues and sclerenchyma strands.
FIGURE 2. Selliguea wusugongii.—A. Habitat.—B in Selliguea wusugongii (Polypodiaceae), a new fern species from southeastern Xizang, China based on morphological and molecular evidence
FIGURE 2. Selliguea wusugongii.—A. Habitat.—B. Rhizome and scales.—C. Upper part of adaxial lamina.—D. Portion of adaxial lamina.—E. Upper part of abaxial lamina.—F. Portion of abaxial lamina showing sori.
FIGURE 1 in Selliguea wusugongii (Polypodiaceae), a new fern species from southeastern Xizang, China based on morphological and molecular evidence
FIGURE 1. Maximum likelihood phylogeny of selligueoid ferns based on five plastid markers (rbcL, rps4, rps4-trnS, trnL, trnL-F). Maximum likelihood bootstrap support (MLBS) and Bayesian inference posterior probability (BIPP) are given above and below the branches, respectively. Voucher information is indicated in blue, geographical provenances are indicated after voucher in black. Black vertical bars on the rightmost indicate the three clades.
FIGURE 1 in Taxonomy of the fern genus Didymochlaena (Didymochlaenaceae) from Asia and Pacific islands based on morphological and molecular evidence with the description of four new species and one new status
FIGURE 1. The Maximum Likelihood phylogeny of Didymochlaena from Asia and Pacific region based on six plastid markers (atpA, atpB, matK, rbcL, rps4-trnS, and trnL-F). The maximum likelihood bootstrap support (left), maximum parsimony jackknife support (middle), and Bayesian inference posterior probability (right) are along the branches. Stars indicate the maximum support values in all three analyses.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.