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168 results for “Complex systems”
Figure 1 from: Moreno-González JA, Pinto-da-Rocha R, Gallão JE (2021) Bringing order to a complex system: phenotypic and genotypic evidence contribute to the taxonomy of Tityus (Scorpiones, Buthidae) and support the description of a new species. ZooKeys 1075: 33-75. https://doi.org/10.3897/zookeys.1075.67459
Figure 1 Phylogeny of Tityus representatives from South America obtained by analysis of DNA sequences (12S rDNA, 16S rDNA, 28S rDNA, and Cytochrome c Oxidase I- COI). Maximum likelihood tree (Log-likelihood= -12896.086), showing species-groups and subgenera. Values on nodes correspond to ultrafast-bootstrap (Ubst) values.
Figure 13 from: Moreno-González JA, Pinto-da-Rocha R, Gallão JE (2021) Bringing order to a complex system: phenotypic and genotypic evidence contribute to the taxonomy of Tityus (Scorpiones, Buthidae) and support the description of a new species. ZooKeys 1075: 33-75. https://doi.org/10.3897/zookeys.1075.67459
Figure 13 Tityus (Tityus) spelaeus sp. nov., female paratypes under laboratory conditions A, B female paratype with scorpionlings A feeding upon scorpionlings B litter on female's back C specimens feeding on a cricket.
Figure 5 from: Moreno-González JA, Pinto-da-Rocha R, Gallão JE (2021) Bringing order to a complex system: phenotypic and genotypic evidence contribute to the taxonomy of Tityus (Scorpiones, Buthidae) and support the description of a new species. ZooKeys 1075: 33-75. https://doi.org/10.3897/zookeys.1075.67459
Figure 5 Tityus C. L. Koch, 1836, female pectinal basal piece and basal middle lamellae of the pectines, showing glandular regions A, C, E White light B, D, F UV light A, BTityus (Tityus) brazilae Lourenço & Eickstedt, 1984 (MZSP 75619) C, DTityus (Archaeotityus) clathratus C. L. Koch, 1844 (MZSP 31468) E, FTityus (Atreus) forcipula (Gervais, 1843) (MZSP). Abbreviations: BML, basal middle lamellae; GR, glandular region. Scale bars: 500 μm.
Figure 12 from: Moreno-González JA, Pinto-da-Rocha R, Gallão JE (2021) Bringing order to a complex system: phenotypic and genotypic evidence contribute to the taxonomy of Tityus (Scorpiones, Buthidae) and support the description of a new species. ZooKeys 1075: 33-75. https://doi.org/10.3897/zookeys.1075.67459
Figure 12 Tityus (Tityus) spelaeus sp. nov., female holotype (MZSP 74633), metasoma and telson A, B telson A lateral view B ventral view C, D metasoma C lateral view D ventral view. Scale bars: 2 mm (A, B); 5 mm (C, D).
Figure 3 from: Moreno-González JA, Pinto-da-Rocha R, Gallão JE (2021) Bringing order to a complex system: phenotypic and genotypic evidence contribute to the taxonomy of Tityus (Scorpiones, Buthidae) and support the description of a new species. ZooKeys 1075: 33-75. https://doi.org/10.3897/zookeys.1075.67459
Figure 3 Phylogeny of Tityus representatives from South America obtained by analysis of DNA sequences (12S rDNA, 16S rDNA, 28S rDNA, Cytochrome c Oxidase I), showing distribution of the characters states exhibited by the female basal pectinal piece (orange: GR absent; grey: medium-sized GR; turquoise: relatively large GR; blue: very large GR) across different Tityus subgenera and species-groups. Boxes on branches and associated values correspond to ultrafast-bootstrap (Ubst) values. Observations= Tityus (Tityus) spelaeus sp. nov. is marked in bold. Abbreviations= GR, glandular region.
Figure 7 from: Moreno-González JA, Pinto-da-Rocha R, Gallão JE (2021) Bringing order to a complex system: phenotypic and genotypic evidence contribute to the taxonomy of Tityus (Scorpiones, Buthidae) and support the description of a new species. ZooKeys 1075: 33-75. https://doi.org/10.3897/zookeys.1075.67459
Figure 7 Tityus (Tityus) spelaeus sp. nov., female holotype (MZSP 74633) A dorsal view B ventral view. Scale bars: 10 mm.
Figure 2 from: Moreno-González JA, Pinto-da-Rocha R, Gallão JE (2021) Bringing order to a complex system: phenotypic and genotypic evidence contribute to the taxonomy of Tityus (Scorpiones, Buthidae) and support the description of a new species. ZooKeys 1075: 33-75. https://doi.org/10.3897/zookeys.1075.67459
Figure 2 Phylogeny of Tityus representatives from South America obtained by analysis of DNA sequences (12S rDNA, 16S rDNA, 28S rDNA, and Cytochrome c Oxidase I- COI), showing the distribution of the characters states of the ventral setae of telotarsi I–IV (orange: an irregularly distributed tuft of setae (type I); turquoise: two ventro-submedian rows of setae (type II)) across different Tityus subgenera and species-groups. Boxes on branches and associated values correspond to ultrafast-bootstrap (Ubst) values. Observations= Tityus (Tityus) spelaeus sp. nov. is marked in bold.
Figure 6 from: Moreno-González JA, Pinto-da-Rocha R, Gallão JE (2021) Bringing order to a complex system: phenotypic and genotypic evidence contribute to the taxonomy of Tityus (Scorpiones, Buthidae) and support the description of a new species. ZooKeys 1075: 33-75. https://doi.org/10.3897/zookeys.1075.67459
Figure 6 Tityus C. L. Koch, 1836, female pectinal basal piece and basal middle lamellae of the pectines, showing glandular regions A, C, E White light B, D, F UV light A, BTityus (Atreus) obscurus Gervais, 1843 (MNRJ 07610) C, DTityus (Tityus) serrulatus Lutz & Mello, 1922 (MZSP 28205) E, FTityus (Tityus) spelaeus sp. nov. (MZSP 74633). Abbreviations: BML, basal middle lamellae; GR, glandular region of the pectinal basal piece. Scale bars: 500 μm.
Figure 9 from: Moreno-González JA, Pinto-da-Rocha R, Gallão JE (2021) Bringing order to a complex system: phenotypic and genotypic evidence contribute to the taxonomy of Tityus (Scorpiones, Buthidae) and support the description of a new species. ZooKeys 1075: 33-75. https://doi.org/10.3897/zookeys.1075.67459
Figure 9 Tityus (Tityus) spelaeus sp. nov., female holotype (MZSP 74633), right pedipalp segments A femur, dorsal view B, C patella B dorsal view C external view. Scale bars: 1.5 mm.
Fig. 9 in Loss of complexity from larval towards adult nervous systems in Chaetopteridae (Chaetopteriformia, Annelida) unveils evolutionary patterns in Annelida
Fig. 9 The larval neurogenesis of Chaetopterus variopedatus revealed by anti-5HT a-e and anti-FMRFamide staining f, g. Confocal maximum projections. Stages are shown in hours (hpf) or days past fertilization (dpf). a: 48 hpf the posterior pioneer neuron (ppn) is well-developed and distinct neurite bundles interconnect the posterior and anterior part of the larval nervous system (white arrowheads). Prominent ganglion cells (green arrowhead & green dashed line) mark the position of the later apical organ. b: The posterior pioneer neuron (ppn) possesses a sensory cilium and marks the ontogenetic origin of the posterior nervous system. c: Later in development, the
Fig. 6 in Loss of complexity from larval towards adult nervous systems in Chaetopteridae (Chaetopteriformia, Annelida) unveils evolutionary patterns in Annelida
Fig. 6 Ultrastructure of glial cells. a: Nuclei (nu) of neurons are spherical shaped and euchromatic. Only a little soma (so) surround the nucleus. b: Nuclei of glial cells (nugc) are irregular formed and are heterochromatic. gl: gliosomes; ne: neurites; sone: somata of neu-
Fig. 5 in Loss of complexity from larval towards adult nervous systems in Chaetopteridae (Chaetopteriformia, Annelida) unveils evolutionary patterns in Annelida
Fig. 5 Ultrastructure of glial cells. a: Radial glia cell processes (gcp) are arranged perpendicular to the neurites (ne) of the brain and contain prominent bundles of intermediate filaments (if) and gliosomes (gl). b: Somata of glial cell (sogc) may contain numerous vesicles (vs). if: intermediate filaments; nugc: nucleus of glial cell. c: Neur-
Fig. 3 in Loss of complexity from larval towards adult nervous systems in Chaetopteridae (Chaetopteriformia, Annelida) unveils evolutionary patterns in Annelida
Fig. 3 Adult histology, details of brain and sensory structures, sections of anterior body region A (according to chaetopterid nomenclature). a, c, d: Spiochaetopterus costarum; b: Chaetopterus norvegicus. a: the brain (br) is composed of densely interwoven neurites (ne). Somata (so) are located dorsally of the neurites (ne). Intermediate filaments (if) are attached to the basal lamina (bl) and cross the neuropil. b: In between the neuropil of the brain nuclei of glial cells (nugc) can be found. Neurites (ne) are of different diameter. bl: basal
Fig. 1 The general chaetopterid anatomy. a in Loss of complexity from larval towards adult nervous systems in Chaetopteridae (Chaetopteriformia, Annelida) unveils evolutionary patterns in Annelida
Fig. 1 The general chaetopterid anatomy. a: living specimen of Spiochaetopterus costarum (anterior part, dorso-lateral view); b: fixed specimen of Chaetopterus norvegicus (anterior part, dorsal view); c, d: µCT, volume rendering, and 3D- reconstruction of the brain of Spiochaetopterus costarum; e: schematic drawing of palp innervation of Spiochaetopterus costarum. a: lateral view. ey: eye; mo: mouth;
Treatment of Unilateral Complicated Zygomatic Complex Fractures Using Computer-Assisted Navigation System
ClinicalTrials.gov study NCT03075384. IPD Sharing: UNDECIDED. Countries: 0. Publications: 25.
Herniectomy Versus Herniectomy With a Spinal Stabilization System for the Treatment of Complex Disc Disease
ClinicalTrials.gov study NCT00749996. IPD Sharing: Not stated. Countries: 8. Publications: 0.
The Automated Calculation of AF Cycle Length and Complexity Using a Novel EP Recording System
ClinicalTrials.gov study NCT05477602. IPD Sharing: NO. Countries: 1. Publications: 0.
Data from: How new concepts become universal scientific approaches – insights from citation network analysis of agent-based complex systems science
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Unprecedented biting performance in herbivorous fish: how the complex biting system of Pomacentridae circumvents performance trade-offs
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Data from: Predicting Collapse of Complex Ecological Systems: Quantifying the Stability-Complexity Continuum
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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.