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190 results for “molecular species delimitation”

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zenodo32/100

Figure 5 in Cryptic diversity and species delimitation in the Xiphinema americanum-group complex (Nematoda: Longidoridae) as inferred from morphometrics and molecular markers

Figure 5. Relationship between body length and functional and replacement odontostyle (Ost and rOst, respectively) length in all developmental stages from first-stage juveniles (J1) to mature females of: A, Xiphinema vallense sp. nov. and B, Xiphinema astaregiense sp. nov.

opennotspecifiedFeb 2016View details →
zenodo32/100

FIGURE 8 in Eriocaenus (Acari: Trombidiformes: Eriophyoidea), a new genus from Equisetum spp. (Equisetaceae): morphological and molecular delimitation of two morphologically similar species

FIGURE 8. Semi-schematic drawings of Eriocaenus equiseti (Farkas): N. Nymph; L. Larva. Scale bar: 50 µm.

opennotspecifiedDec 2015View details →
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FIGURE 7 in Eriocaenus (Acari: Trombidiformes: Eriophyoidea), a new genus from Equisetum spp. (Equisetaceae): morphological and molecular delimitation of two morphologically similar species

FIGURE 7. Semi-schematic drawings of Eriocaenus equiseti (Farkas) female: AD. Antero-dorsal view; AL. Antero-lateral view; CG. Coxal-genital region; em. Empodium; GM. Genital region, male; IG. Internal genitalia, female; L1. Leg I; LO. Lateral opisthosoma; PM. Postero-lateral mite (telosoma). Scale bar: 25 µm, (except for em = 5 µm).

opennotspecifiedDec 2015View details →
zenodo32/100

FIGURE 5 in Eriocaenus (Acari: Trombidiformes: Eriophyoidea), a new genus from Equisetum spp. (Equisetaceae): morphological and molecular delimitation of two morphologically similar species

FIGURE 5. Eriocaenus equiseti (SEM), female: A. Dorsal view of anterior section; B. Epigynium; C. Tarsal empodium, Leg. I, lateral view; D. Tarsal empodium,Leg I dorsal aspect; F. E. ramosissimi n. sp., tarsal empodium Leg I.

opennotspecifiedDec 2015View details →
zenodo32/100

FIGURE 6 in Eriocaenus (Acari: Trombidiformes: Eriophyoidea), a new genus from Equisetum spp. (Equisetaceae): morphological and molecular delimitation of two morphologically similar species

FIGURE 6. Location of Eriocaenus ramosissimi n. sp. on Equisetum ramosissimum, showing a group of mites inside the scale-like leaves which are joined together to form a special envelope known as an "ohrea.

opennotspecifiedDec 2015View details →
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FIGURE 2 in Eriocaenus (Acari: Trombidiformes: Eriophyoidea), a new genus from Equisetum spp. (Equisetaceae): morphological and molecular delimitation of two morphologically similar species

FIGURE 2. Semi-schematic drawings of Eriocaenus ramosissimi n. sp. female: AD. Antero-dorsal view; AL. Antero-lateral view; CG. Coxal-genital region; em. Empodium; GM. Genital region, male; IG. Internal genitalia, female; L1. Leg I; LO. Lateral opisthosoma; PM. Postero-lateral mite (telosoma). Scale bar: 25 µm (except for em = 5 µm).

opennotspecifiedDec 2015View details →
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FIGURE 1 in Eriocaenus (Acari: Trombidiformes: Eriophyoidea), a new genus from Equisetum spp. (Equisetaceae): morphological and molecular delimitation of two morphologically similar species

FIGURE 1. Distribution of eriophyoid mite genera within the families of Moniliophyta. Phylogeny of Moniliophyta according to Stevens (2001 onwards). Legend: 1. Eriocaenus n. gen. (2 species); 2. Aculops (1 species); 3. Acaphylisa (1 species); 4. Acerimina (2 species); 5. Cymeda (1 species); 6. Litaculus (6 species); 7. Aceria (1 species); 8. Phyllocoptes (2 species); 9. Eriophyes (5 species); 10. Leipothrix (3 species); 11. Nothopoda (1 species); 12. Diphytoptus (1 species); 13. Floracarus (1 species); 14. Esalquia (1 species).

opennotspecifiedDec 2015View details →
zenodo32/100

FIGURE 4. Eriocaenus ramosissimi n in Eriocaenus (Acari: Trombidiformes: Eriophyoidea), a new genus from Equisetum spp. (Equisetaceae): morphological and molecular delimitation of two morphologically similar species

FIGURE 4. Eriocaenus ramosissimi n. sp. (DIC images): A. Dorsal view of whole mite; B. Dorsal view of anterior section; C. Anterior section of male, ventrally; E. Genital coverflap; F. Internal female genitalia; D. Genital coverflap of E. equiseti.

opennotspecifiedDec 2015View details →
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FIGURE 3 in Phylogenetic analyses and species delimitation of Aconurella Ribaut (Hemiptera Cicadellidae: Deltocephalinae: Chiasmini) in China based on molecular data

FIGURE 3. Phylogenetic tree for Aconurella based on mitochondrial COI haplotypes from BEAST. Bootstrap support and posterior probabilities of nodes are indicated above and below the branches, respectively. The right vertical bars indicate the number of putative species using various methods as indicated at the top. The scale bar shows the number of substitutions per site. Morphological species are uniquely coloured.

opennotspecifiedNov 2022View details →
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FIGURE 2 in Phylogenetic analyses and species delimitation of Aconurella Ribaut (Hemiptera Cicadellidae: Deltocephalinae: Chiasmini) in China based on molecular data

FIGURE 2. Bayesian consensus phylogenetic tree for Aconurella based on three-gene data set (COI, 16S and ITS2). Numbers on the node represents the posterior probabilities. The right vertical bars indicate the putative species using BPP. The scale bar shows the number of substitutions per site. Morphological species are uniquely coloured.

opennotspecifiedNov 2022View details →
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FIGURE 5 in Phylogenetic analyses and species delimitation of Aconurella Ribaut (Hemiptera Cicadellidae: Deltocephalinae: Chiasmini) in China based on molecular data

FIGURE 5. Phylogenetic tree for Aconurella based on mitochondrial ITS2 haplotypes from BEAST. Bootstrap support and posterior probabilities of nodes are indicated above and below the branches, respectively. The right vertical bars indicate the number of putative species using various methods as indicated at the top. The scale bar shows the number of substitutions per site. Morphological species are uniquely coloured.

opennotspecifiedNov 2022View details →
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FIGURE 4 in Phylogenetic analyses and species delimitation of Aconurella Ribaut (Hemiptera Cicadellidae: Deltocephalinae: Chiasmini) in China based on molecular data

FIGURE 4. Phylogenetic tree for Aconurella based on mitochondrial 16S haplotypes from BEAST. Bootstrap support and posterior probabilities of nodes are indicated above and below the branches, respectively. The right vertical bars indicate the number of putative species using various methods as indicated at the top. The scale bar shows the number of substitutions per site. Morphological species are uniquely coloured.

opennotspecifiedNov 2022View details →
zenodo32/100

Figure 1 in First molecular phylogeny and species delimitation of West Palaearctic Pollenia (Diptera: Polleniidae)

Figure 1. Representative taxa of Pollenia males: A, P. amentaria (Poland); B, P. atramentaria (Poland); C, P. bulgarica (Bulgaria); D, P. dasypoda (Turkey); E, P. labialis (Poland); F, P. mayeri (Poland); G, P. pediculata (Poland); H, P. Ʋagabunda (Poland); I, P. Ʋenturii (Poland). Scale bar 2 mm. Voucher specimens are stored at the Department of Ecology and Biogeography, Nicolaus Copernicus University in Toruń, Poland.

opennotspecifiedMay 2022View details →
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Figure 2 in First molecular phylogeny and species delimitation of West Palaearctic Pollenia (Diptera: Polleniidae)

Figure 2. Maximum likelihood tree inferred from the analysis of combined mitochondrial (1 locus: COI) and nuclear (2 loci: Ef-1α, CAD) sequence data for 18 representatives of Pollenia in RAxML. Bootstrap support from maximum likelihood analyses using RAxML, GARLI and PHYML software and posterior probability for Bayesian inference with MRBAYES are given at nodes. Nodes that were not recovered in one of the analyses are marked with hyphen (-). Only support values> 60 and posterior probability> 0.6 were presented and considered significant. The red font indicates high support (support value> 88, posterior probability = 1.0), the blue font indicates moderate support (support value 60–74, posterior probability 0.60–0.74). Species-group names are written in bold.

opennotspecifiedMay 2022View details →
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Supplementary material 1 from: Damadi E, Yazdani Moghaddam F, Ghanbarifardi M (2023) Species delimitation, molecular phylogeny and historical biogeography of the sweetlips fish (Perciformes, Haemulidae). Zoosystematics and Evolution 99(1): 135-147. https://doi.org/10.3897/zse.99.96386

Sampling information and GenBank accession numbers for the specimens included in the phylogenetic analyses

opencc-zeroFeb 2023View details →
zenodo32/100

Supplementary material 2 from: Souza CS, Mattox GMT, Vita G, Ochoa LE, Melo BF, Oliveira C (2023) Molecular species delimitation and description of a new species of Phenacogaster (Teleostei, Characidae) from the southern Amazon basin. ZooKeys 1164: 1-21. https://doi.org/10.3897/zookeys.1164.102436

Best-score results of Assemble Species by Automatic Partitioning (ASAP) delimitation of species of Phenacogaster

opencc-zeroMay 2023View details →
dryad32/100

Data from: Reverse taxonomy applied to the Brachionus calyciflorus cryptic species complex: morphometric analysis confirms species delimitations revealed by molecular phylogenetic analysis and allows the (re)description of four species

Open the record for dataset details and reuse information.

publicAug 2019View details →
dryad32/100

Data from: What have been and what can be delimited as species using molecular data under the multi-species coalescent model? A case study using Hercules beetles (Dynastes; Dynastidae)

Open the record for dataset details and reuse information.

publicJan 2019View details →
dryad32/100

Data from: Molecular species-delimitation methods recover most song-delimited cicada species in the European Cicadetta montana complex

Open the record for dataset details and reuse information.

publicSep 2015View details →
dryad32/100

Data from: Incongruence in molecular species delimitation schemes: what to do when adding more data is difficult.

Open the record for dataset details and reuse information.

publicMar 2018View details →

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Allen Brain Atlas

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DANDI Archive for NWB datasets

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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.

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OpenNeuro

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