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671 results for “Window”
BRAIN CT PERFUSION IN ACUTE ISCHEMIC STROKE PATIENTS IN THE EARLY TIME WINDOW
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Implantation of abdominal imaging windows on the mouse liver - short version
<p>This video describes the surgical process of implanting an abdominal imaging window (AIW) on the liver of mice. This window can be used for acute or longitudinal imaging. All experiments have been reviewed and approved by the local authorities (Landesdirektion Sachsen).</p> <p>Implantation of chronic abdominal windows allows for microscopical investigation of highly dynamic processes in physiological and pathological circumstances and is generally tolerated well by experimental animals. It enables insights which otherwise could only be obtained using high numbers of experimental animals. The method can be regarded as reduction approach in terms of 3R implementation.</p> <p>This upload contains the short version and is distributed under CC BY-ND 4.0 license to inhibit decontextualized misuse. Please check license terms for usage, especially for remixing/transforming! If you want to remix the material, get in contact with the author.</p>
Implantation of abdominal imaging windows on the mouse liver
<p>This video describes the surgical process of implanting an abdominal imaging window (AIW) on the liver of mice. This window can be used for acute or longitudinal imaging. All experiments have been reviewed and approved by the local authorities (Landesdirektion Sachsen).</p> <p>Implantation of chronic abdominal windows allows for microscopical investigation of highly dynamic processes in physiological and pathological circumstances and is generally tolerated well by experimental animals. It enables insights which otherwise could only be obtained using high numbers of experimental animals. The method can be regarded as reduction approach in terms of 3R implementation.</p> <p>This upload contains the full version and is distributed under CC BY-ND 4.0 license to inhibit decontextualized misuse. Please check license terms for usage, especially for remixing/transforming! If you want to remix the material, get in contact with the author.</p>
Implantation of abdominal imaging windows on the mouse kidney - short version
<p>This video describes the surgical process of implanting an abdominal imaging window (AIW) on the kidney of mice. This window can be used for acute or longitudinal imaging. All experiments have been reviewed and approved by the local authorities (Landesdirektion Sachsen).</p> <p>Implantation of chronic abdominal windows allows for microscopical investigation of highly dynamic processes in physiological and pathological circumstances and is generally tolerated well by experimental animals. It enables insights which otherwise could only be obtained using high numbers of experimental animals. The method can be regarded as reduction approach in terms of 3R implementation.</p> <p>This upload contains the shortened version and is distributed under CC BY-ND 4.0 license to inhibit decontextualized misuse. Please check license terms for usage, especially for remixing/transforming! If you want to remix the material, get in contact with the author.</p>
FIGURE. DnaSP DNA polymorphism analysis - Nucleotide variability (Pi) comparison between Strobilanthes lupulina and S. glandulata. The window length and step size were set to 600bp and 200bp respectively. The most varying regions and the commonly used barcoding regions are listed against the base-pair differences found. in Strobilanthes glandulata (Acanthaceae), a new species from Sri Lanka based on the morphological and molecular evidences
FIGURE. DnaSP DNA polymorphism analysis - Nucleotide variability (Pi) comparison between Strobilanthes lupulina and S. glandulata. The window length and step size were set to 600bp and 200bp respectively. The most varying regions and the commonly used barcoding regions are listed against the base-pair differences found.
Tidal channel meanders serve as stepping-stones to facilitate cordgrass landward spread by creating invasion windows
<p>Understanding the mechanisms by which geomorphic structures affect habitat invasibility by mediating various abiotic and biotic factors is essential for predicting whether these geomorphic structures may provide spatial windows of opportunity to facilitate range-expansion of invasive species in salt marshes. Many studies have linked geomorphic landscape features such as tidal channels to invasion by exotic plants, but the role of tidal channel meanders (i.e., convex and concave sides) in regulating the <em>Spartina</em> invasion remains unclear. Here, we examined the combined effects of tidal channel meander-mediated hydrodynamic variables, soil abiotic stresses and propagule pressure on the colonization of <em>Spartina</em> in the Yellow River Delta, China, by conducting field observations and experiments. The results showed that lower hydrodynamic disturbance, bed shear stress, and higher propagule pressure triggered by eddies due to the convex structure of channel meanders facilitated <em>Spartina</em> seedling establishment and growth, whereas the concave side considerably inhibited the <em>Spartina</em> invasion. Lower soil abiotic stresses also significantly promoted the invasibility of the channel meanders by <em>Spartina</em>. Based on these findings, we propose a conceptual framework to illustrate the effects of the meandering geomorphology of tidal channels on the mechanisms that might allow the landward spread of <em>Spartina</em> and related processes. Our results demonstrate that the meandering geomorphic structures of tidal channels could act as stepping-stones to significantly facilitate the landward invasion of <em>Spartina</em> along tidal channels. This implies that geomorphic characteristics of tidal channels should be integrated into invasive species control and salt marsh management strategies.</p>
FIG. 8 in Blackwater Diving: An Exciting Window into the Planktonic Arena and Its Potential to Enhance the Quality of Larval Fish Collections
FIG. 8. (A) Images of live (left), fixed (right) larva of Brama orcini, USNM 447023, 6 mm. Images of fixed larvae of (B) Brama orcini, USNM 447025, 7 mm; (C) Brama orcini, USNM 447024, 6.5 mm.
FIG. 6 in Blackwater Diving: An Exciting Window into the Planktonic Arena and Its Potential to Enhance the Quality of Larval Fish Collections
FIG. 6. Images of live (left and upper right) and fixed (lower right) larvae of: (A) Liopropoma cf. latifasciatum, USNM 446983, 10.5 mm. (B) Barbourisia rufa, USNM 447041, 8.5 mm. (C) Images of live and fixed (center) larva of: Carapidae, USNM 447005, ca 120 mm. Photo of fixed specimen by M. Montalvo.
FIG. 3 in Blackwater Diving: An Exciting Window into the Planktonic Arena and Its Potential to Enhance the Quality of Larval Fish Collections
FIG. 3. Images of live (left column) and fixed (right column) larvae of: (A) Himantolophus albinares, USNM 447045, 4 mm. (B) Gigantactis vanhoeffeni, USNM 447056, 7 mm. (C) Melanocetus johnsonii, USNM 447048, 5 mm. (D) Pseudogramma brederi, USNM 446998, 9 mm.
FIG. 2 in Blackwater Diving: An Exciting Window into the Planktonic Arena and Its Potential to Enhance the Quality of Larval Fish Collections
FIG. 2. Images of live (left column) and fixed (right column) larvae of: (A) Eustomias, USNM 447021, 30 mm. (B) Aristostomias, USNM 447051, 24 mm. (C) Phtheirichthys lineatus, USNM 447055, 17 mm. (D) Ariosoma fasciatum, USNM 446991, 35 mm.
FIG. 1 in Blackwater Diving: An Exciting Window into the Planktonic Arena and Its Potential to Enhance the Quality of Larval Fish Collections
FIG. 1. (A) Victor Hensen (1835–1924) image from Wikipedia https:// en.wikipedia.org/wiki/Victor_Hensen#/media/File:Victor_Hensen.jpg. (B) Ernst Haeckel (1834–1919) image from Wikipedia https://en. wikipedia.org/wiki/Ernst_Haeckel#/media/File:Ernst_Haeckel_1860. jpg.
FIG. 7 in Blackwater Diving: An Exciting Window into the Planktonic Arena and Its Potential to Enhance the Quality of Larval Fish Collections
FIG. 7. Images of fixed larvae of: (A) Myripristis berndti, USNM 446992, 15 mm. (B) Plectrypops lima, USNM 446999, 15 mm. (C) cf. Sargocentron, USNM 447047, 11 mm. (D) Zapogon evermanni, USNM 447053, 8 mm. (E) Makaira nigricans, USNM 447037, 17 mm. (F) Thunnus albacares, USNM 447010, 10 mm. (G) Acanthurus thompsoni, USNM 447036, 6 mm. (H) Sebastapistes fowleri, USNM 447057, 13 mm. (I) Dolopichthys, USNM 447039, 9 mm. (J) Saurenchelys taiwanensis, USNM 447029, 110 mm. (J) Photo by S. Raredon.
FIG. 9 in Blackwater Diving: An Exciting Window into the Planktonic Arena and Its Potential to Enhance the Quality of Larval Fish Collections
FIG. 9. Images of live (left column) and fixed (right column) larvae of: (A) Eutaeniophorus, USNM 447049, 44 mm (with head close-up image). (B) Malacosarcus macrostoma, USNM 447046, 13 mm. (C) Luciobrotula, USNM 447052, 24 mm. (D) Bathymicrops cf. regis, USNM 447054, 19 mm.
FIG. 5 in Blackwater Diving: An Exciting Window into the Planktonic Arena and Its Potential to Enhance the Quality of Larval Fish Collections
FIG. 5. Images of live (left) and fixed (right) larvae of: (A) Bathophilus, USNM 447003, 19 mm. (B) Zu cristatus, USNM 447018, 9 mm.
Deep subduction of the Philippine Sea slab and formation of slab window beneath central Japan
<p>The travel-time data, the velocity model from seismic tomography and the temperature distributions from numerical simulation.</p>
3D printing template for The Water-Exclusion Trap (WET): A 3D printable window trap collector that prevents DNA degradation
<p><span>3D templates of a long-term storable bottom collector for window or pitfall traps. The collection medium in a LEE trap barely evaporates and does not dilute because water is excluded, maximizing DNA preservation. Based on field-collected specimens and lab experiments, we confirm that the LEE significantly outperforms conventional traps in terms of DNA quality. </span></p>
Data of "Towards linking slab window geodynamics with the geophysical and geochemical signature of the upper mantle", Sanhueza et al. EPSL
<p><strong>Description for sanhuezaetal_epsl_ternary.zip</strong><br> These files contain a high resolution figure and a script to reproduce the ternary diagram (Figure 5d) of the paper:</p> <p>Sanhueza et al. Towards linking slab window geodynamics with the geophysical and geochemical signature of the upper mantle, <br> under review in Earth and Planetary Science Letters.</p> <p>A high resolution figure of the ternary diagram is provided (sanhuezaetal_EPSL_ternary.pdf).</p> <p>In addition, the MATLAB script to plot this diagram is included.<br> This script (ternary_plot.m) uses 4 files: temp_RGB.txt, melt_RGB.txt, matrix_RGB.txt, rminmax_RGB.txt</p> <p><br> FILE LIST<br> sanhuezaetal_EPSL_ternary.zip<br> -sanhuezaetal_EPSL_ternary.pdf - High resolution Figure 5d of the manuscript<br> -ternary_plot.m - MATLAB script to generate Figure 5d<br> -temp_RGB.txt - Normalized temperatures in the r-alpha space<br> -melt_RGB.txt - Normalized upward melt flux in the r-alpha space<br> -matrix_RGB.txt - Normalized upward matrix flux in the r-alpha space<br> -rminmax.txt - Envelope of r = rcmin and r = rcmax<br> </p> <p>---------------------------------------------------------------------------------------------------------------------------------------------------------------</p> <p><strong>Description for sanhuezaetal_epsl_3dmodelresults.zip</strong><br> These files contain 3D model results presented in the manuscript:</p> <p>Sanhueza et al. Towards linking slab window geodynamics with the geophysical and geochemical signature of the upper mantle, <br> under review in Earth and Planetary Science Letters.</p> <p>These files were obtained after interpolating the model in a regular grid with cells of 10 km x 10 km x 10 km.</p> <p><br> FILE LIST<br> sanhuezaetal_EPSL_results.zip</p> <p>a0r1_Tvxvyvz.txt, a0r2_Tvxvyvz.txt a0r05_Tvxvyvz.txt<br> a10r1_Tvxvyvz.txt, a10r3_Tvxvyvz.txt, a10r04_Tvxvyvz.txt<br> a20r1_Tvxvyvz.txt, a20r2_Tvxvyvz.txt, a20r05_Tvxvyvz.txt<br> a30r1_Tvxvyvz.txt, a30r07_Tvxvyvz.txt, a30r15_Tvxvyvz.txt<br> a45r1_Tvxvyvz.txt, a45r08_Tvxvyvz.txt, a45r12_Tvxvyvz.txt<br> a60r1_Tvxvyvz.txt, a70r1_Tvxvyvz.txt</p>
Window
Traditional Window, from Yemen, Sana'a old style Source: Objaverse 1.0 / Sketchfab
CT Based Definition of a Tissue Window for Acute Stroke Thrombolysis
ClinicalTrials.gov study NCT00463281. IPD Sharing: Not stated. Countries: 1. Publications: 3.
A Window of Opportunity Study to Assess the Modulation of Biomarkers in Head and Neck Squamous Cell Cancer (HNSCC) By Preoperative Treatment With BYL719
ClinicalTrials.gov study NCT03138070. IPD Sharing: Not stated. Countries: 1. Publications: 1.
ScienceDex guides
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International Brain Laboratory public data
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OpenNeuro
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