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535 results for “quaternary”
Fig. 6 in Quaternary refugia in southwestern Iran: insights from two sympatric moth species (Insecta, Lepidoptera)
Fig. 6 Species distribution models for Gnopharmia kasrunensis based on current distribution (large map) and projection of this model to the past (6 and 21k years BP) based on two model systems (CCSM and MIROC)
Fig. 3 in Quaternary refugia in southwestern Iran: insights from two sympatric moth species (Insecta, Lepidoptera)
Fig. 3 Spatial distribution of haplotype and genetic diversity for both moth species. a and b: G. colchidaria; c and d: G. kasrunensis. The reference circle diameters for the haplotype diversity and for the genetic diversity are shown in the upper part of the figures
Fig. 5 in Quaternary refugia in southwestern Iran: insights from two sympatric moth species (Insecta, Lepidoptera)
Fig. 5 Species distribution models for Gnopharmia colchidaria based on the current distribution (large map) and projection of this model to the past (6 and 21k years BP) based on two model systems (CCSM and MIROC)
Figure 5 in Reflection of the Neogene-Quaternary phylogeography in the recent distribution limiting climatic factors of eight Mediterranean Phlebotomus species (Diptera: Psychodidae)
Figure 5. The principal component analysis result of the eight studied sand fly species according to the January mean temperature limits of the species.
FIGURE 2 in New Quaternary records of Conilurus (Rodentia: Muridae) from eastern and northern Australia with the description of a new species
FIGURE 2. Terminology of the upper molars. Only features mentioned in this work are included. This image is based on C. capricornensis, but includes features not seen in that species. Cusp names are topological and do not necessarily reflect homology.
Figure 1 in Quaternary range dynamics and taxonomy of the Mediterranean collared dwarf racer, Platyceps collaris (Squamata: Colubridae)
Figure 1. Phylogenetic tree resulting from the Bayesian inference (BI) analysis of three mitochondrial and three nuclear genes concatenated. Nodes were considered supported when Bayesian posterior probability was ≥ 0.95 and maximum likelihood (ML) bootstrap values ≥ 70. Lengths of branches connecting the split between Platyceps collaris and Platyceps najadum and the crown nodes of those species are not proportional to the rest of the tree and the scale, which is indicated by their partial transparency. The two clades, the Balkan–Anatolian and the Levantine, are highlighted in the tree with the red and green shading, respectively. Four species of Telescopus used to root the tree are not shown. Each tree tip is connected by a dashed line with the locality of its sample, which is marked by a number (for details, see Table 1). Type localities are marked with stars: P. collaris collaris in green, P. collaris rubriceps in white and Coluber rubriceps thracius in pink. The potential current distribution of P. collaris based on the species distribution model with the maximum training sensitivity plus specificity threshold applied is shown in blue. Haplotype networks reconstructed for the six markers are on the right. Circles are colour coded according to the clade assignment, and their size is proportional to the number of individuals. Lines represent mutational steps. The network for the cytb gene was constructed using the 148-bp-long fragment that was available for the types of Coluber rubriceps thracius. The position of sample DJ8199 from locality 19, whose phylogenetic placement differed in the maximum likelihood and Bayesian inference analyses, is marked with the locality number in each network.
Figure 2 in Quaternary range dynamics and taxonomy of the Mediterranean collared dwarf racer, Platyceps collaris (Squamata: Colubridae)
Figure 2. Phylogenetic network from SPLITSTREE, showing the reticulate relationships within the two clades of Platyceps collaris, the Balkan–Anatolian clade (red) and the Levantine clade (green). Numbers in circles are locality numbers shown in Figure 1 and detailed in Table 1. Bootstrap support values for major nodes ≥ 70 are indicated. The specimen depicted is from Ropotamo, Bulgaria.
QUIN 2.0 - new release of the QUaternary fault strain INdicators database from the Southern Apennines of Italy
<p>This database relates to the paper “QUIN 2.0 - new release of the QUaternary fault strain INdicators database from the Southern Apennines of Italy”, by:</p> <p>Giusy Lavecchia<sup>1,2</sup>, Simone Bello<sup>1,2<strong>*</strong></sup>, Carlo Andrenacci<sup>1,2</sup>, Daniele Cirillo<sup>1,2</sup>, Federico Pietrolungo<sup>1,2</sup>, Donato Talone<sup>1,2</sup>, Federica Ferrarini<sup>1,2</sup>, Rita de Nardis<sup>1,2</sup>, Paolo Galli<sup>3,4</sup>, Joanna Faure Walker<sup>5</sup>, Claudia Sgambato<sup>6</sup>, Marco Menichetti<sup>2,7</sup>, Carmelo Monaco<sup>2,8,9</sup>, Salvatore Gambino<sup>2,8</sup>, Giorgio De Guidi<sup>2,8</sup>, Giovanni Barreca<sup>2,8</sup>, Francesco Carnemolla<sup>2,8</sup>, Fabio Brighenti<sup>2,8</sup>, Salvatore Giuffrida<sup>2,8</sup>, Filippo Carboni<sup>2,10,11</sup>, Luigi Ferranti<sup>2,12</sup>, Luisa Valoroso<sup>13</sup>, Giovanni Toscani<sup>2,14</sup>, Massimiliano R. Barchi<sup>2,11</sup>, Gerald Roberts<sup>6</sup> & Francesco Brozzetti<sup>1,2</sup></p> <p>QUIN 2.0 is a second release (after QUIN 1.0, Lavecchia et al., 2022 - Scientific Data) and includes 4,297 Fault Striation Pairs on 738 Structural Sites from southern Italy.</p> <p>The manuscript related to the dataset here hosted is on the Journal "Scientific Data", where each of the fields of the dataset is described. Refer to the manuscript for details.</p>
Antibacterial Properties of Silicon Incorporated With Quaternary Ammonium Polyethylenimine Nanoparticles
ClinicalTrials.gov study NCT01007240. IPD Sharing: Not stated. Countries: 0. Publications: 0.
Glucocorticoid Receptor Quaternary Structure Drives Chromatin Occupancy and Transcriptional Outcome
GEO Series GSE108634. Mus musculus. 83 samples. Type: Expression profiling by high throughput sequencing; Genome binding/occupancy profiling by high throughput sequencing.
Intratracheal instillation of quaternary ammonium compounds in rats
GEO Series GSE263314. Rattus norvegicus. 52 samples. Type: Expression profiling by high throughput sequencing.
MOVPE growth and characterization of quaternary (Ga,In)(As,Bi) on GaAs substrates
<p>The incorporation of dilute amounts of Bi into the host lattice of a III/V semiconductor has a strong influence on its electronic properties. The bandgap is strongly redshifted which makes these materials interesting for application in the near- to mid-infrared regime. Furthermore, the spin-orbit splitting is increased resulting in suppression of hot-hole producing Auger recombination, which makes the fabrication of highly efficient optical devices feasible. However, for ternary Ga(As,Bi) grown using metal organic vapor phase epitaxy (MOVPE), it has proven difficult to achieve the desired composition of the ternary material. Therefore, the additional incorporation of indium (In) into Ga(As,Bi), which should induce a further redshift of the bandgap, is investigated and summarized in this paper. For deposition of quaternary (Ga,In)(As,Bi), two different low temperature growth techniques using MOVPE are conducted. The strain and photoluminescence peak positions of the samples are correlated to estimate the composition of the (Ga,In)(As,Bi) layers. It was found that the trimethylindium and tertiarybutylarsine supplies need to be carefully adjusted to grow high quality bulk materials and that the incorporation of indium is inversely related to the amount of incorporated Bi.</p>
FIGURE 19 in A new and most complete pampathere (Mammalia, Xenarthra, Cingulata) from the Quaternary of Bahia, Brazil
FIGURE 19. Right scapula of Holmesina cryptae sp. nov. (holotype, LPP-PV-001). Scale bar = 30 mm.
Fig. 3 in Sesquiterpenoids and their quaternary ammonium hybrids from the mycelium of mushroom Stereum hirsutum by medium optimization
Fig. 3. Selected HMBC (arrows) and 1H–1H COSY (bold bond) correlations of 2–5.
Influence of the Canossa-San Romano Fault on the Quaternary deposits of the Roteglia Terrace (Northern Apennines, Italy)
<p>Data of publication in Atti della Soc. dei Nat. e Mat. di Modena, 153 (2022), pp. 49-66.</p>
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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.