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axioobserver z1 fluorescent microscope  (Carl Zeiss)


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    Structured Review

    Carl Zeiss axioobserver z1 fluorescent microscope
    Axioobserver Z1 Fluorescent Microscope, supplied by Carl Zeiss, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/axioobserver+fluorescence+microscope/electron+microscopy+scanning/pm40553757-233-7-11
    Average 90 stars, based on 1 article reviews
    axioobserver z1 fluorescent microscope - by Bioz Stars, 2026-09
    90/100 stars

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    Related Articles

    other:

    Article Title: Advancing Lithium Metal Batteries with In Situ Polymerized PMMA-Based Elastomeric Electrolytes
    Article Snippet: 1.5 Structure Characterization Surface morphology was characterized by scanning electron microscopy (SEM, Carl Zeiss AG, Germany).

    Article Title: Different Innovative Laser Implants Characteristics Histomorphometric and SEM-EDX Comparison for In Vivo Applications.
    Article Snippet: All specimens were analyzed with Scanning Electron Microscopy (SEM) (Zeiss GeminiSEM500, Jena, Germany) and laser profilometer (NP-Flex-1000, Bruker, Randwick, Australia) to obtain Profile heights (Ra), Root mean square average (Rq), Profile average maximum height (Rz), maximum height Profile (Ry), and Mean Spacing between peaks (Sm).

    Article Title: Segregation-assisted yield anomaly in a Co-rich chemically complex intermetallic alloy at high temperatures
    Article Snippet: Chemically complex intermetallic alloys (CCIMAs) have emerged as promising materials for achieving exceptional softening resistance at elevated temperatures, owing to their unique superlattice structures and elemental synergism.. However, the lack of experimental endeavors and understanding regarding their temperature-dependent mechanical behaviors hinders their advancement for high-temperature applications.. Here, we conducted a systematic investigation on the mechanical properties and associated deformation mechanisms of an L12 -type Co-rich CCIMA using transmission electron microscopy.

    Article Title: The multifaceted biomimetic titanium implant promotes bone integration with sequential antibacterial and immune modulation properties
    Article Snippet: The morphology and element distribution were characterized by scanning electron microscopy (SEM, Zeiss, Germany), which was equipped with an energy dispersive spectrometer (EDS).

    Article Title: 3D ultra-broadband optically dispersive microregions in lithium niobate.
    Article Snippet: The inner structure of dispersive microregions was examined by scanning electron microscopy (SEM), using backscattering mode (Gemini300 Zeiss).

    X-ray Diffraction:

    Article Title: Effects of LPBF printing parameters on the columnar-to-equiaxed grain transition in FeCoCrNiMn alloys.
    Article Snippet: The gas-atomized FeCoCrNiMn HEA powders were used as the experimental materials, which were provided by Jiangsu Wilory Advanced Materials Technology Company Limited, China. .. The phase composition and micromorphology of the powders were characterized using X-ray diffraction (XRD, Ultima IV, scanning angle 20– 100°, scanning speed 10°/min, 40 kV, 40 mA) and scanning electron microscopy (SEM, Zeiss Supra55, 15 kV, 100 μA, magnification 12x-10kx). ..

    Electron Microscopy:

    Article Title: Effects of LPBF printing parameters on the columnar-to-equiaxed grain transition in FeCoCrNiMn alloys.
    Article Snippet: The gas-atomized FeCoCrNiMn HEA powders were used as the experimental materials, which were provided by Jiangsu Wilory Advanced Materials Technology Company Limited, China. .. The phase composition and micromorphology of the powders were characterized using X-ray diffraction (XRD, Ultima IV, scanning angle 20– 100°, scanning speed 10°/min, 40 kV, 40 mA) and scanning electron microscopy (SEM, Zeiss Supra55, 15 kV, 100 μA, magnification 12x-10kx). ..


    Article Title: A biomimetic multimodal nanoplatform combining neutrophil-coated two-dimensional metalloporphyrinic framework nanosheet and exendin-4 to treat obesity-related osteoporosis
    Article Snippet: .. The 2D and 3D morphologies of CTZ and DPA@NM@CTZE were examined using scanning electron microscopy (SEM, ZEISS, Germany) and transmission electron microscopy (TEM, FEI, USA). ..

    Transmission Assay:

    Article Title: A biomimetic multimodal nanoplatform combining neutrophil-coated two-dimensional metalloporphyrinic framework nanosheet and exendin-4 to treat obesity-related osteoporosis
    Article Snippet: .. The 2D and 3D morphologies of CTZ and DPA@NM@CTZE were examined using scanning electron microscopy (SEM, ZEISS, Germany) and transmission electron microscopy (TEM, FEI, USA). ..

    Transmission Electron Microscopy:

    Article Title: A biomimetic multimodal nanoplatform combining neutrophil-coated two-dimensional metalloporphyrinic framework nanosheet and exendin-4 to treat obesity-related osteoporosis
    Article Snippet: .. The 2D and 3D morphologies of CTZ and DPA@NM@CTZE were examined using scanning electron microscopy (SEM, ZEISS, Germany) and transmission electron microscopy (TEM, FEI, USA). ..



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    (A) Hippocampal neurons from ZH3 (Prnp -/- ) mice were transduced at DIV6 with a lentivirus encoding eGFP under control of the synapsin promoter to achieve neuron-specific expression. Cultures were then imaged on DIV21 using the EVOS Live Cell Imaging <t>Microscope</t> with transillumination ( Trans ) or <t>fluorescence</t> illumination ( GFP ). Merge shows a superposition of the two images. (B) Prnp -/- neurons were untransduced, or were transduced with lentiviruses encoding WT, G126V, or V208M PrP. Cells were fixed and stained with Alexa488-phalloidin (green) to visualize F-actin in dendritic spines and with D18 antibody (red) to detect PrP. Neurons from ZH3 (Prnp -/- ) and C57BL/6 (Prnp +/+ ) mice were used as negative and positive controls, respectively. Scale bar = 20 µm. (C) Higher magnification images of neurons showing dendritic shafts with protruding spines. Scale bar = 5 µm. (D) Dendritic spines of 12-15 neurons (each having 3-5 dendrites/neuron) from 2 independent experiments were counted in randomly selected areas, and statistical comparisons made using a one-way ANOVA multiple comparison test. Spine number is expressed per µm length of dendrite. Prnp -/- vs WT, p=0.4802; Prnp -/- vs G126V, p=0.9493; Prnp -/- vs V208M, p=0.2103. ns = not significant.
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    (A) Hippocampal neurons from ZH3 (Prnp -/- ) mice were transduced at DIV6 with a lentivirus encoding eGFP under control of the synapsin promoter to achieve neuron-specific expression. Cultures were then imaged on DIV21 using the EVOS Live Cell Imaging <t>Microscope</t> with transillumination ( Trans ) or <t>fluorescence</t> illumination ( GFP ). Merge shows a superposition of the two images. (B) Prnp -/- neurons were untransduced, or were transduced with lentiviruses encoding WT, G126V, or V208M PrP. Cells were fixed and stained with Alexa488-phalloidin (green) to visualize F-actin in dendritic spines and with D18 antibody (red) to detect PrP. Neurons from ZH3 (Prnp -/- ) and C57BL/6 (Prnp +/+ ) mice were used as negative and positive controls, respectively. Scale bar = 20 µm. (C) Higher magnification images of neurons showing dendritic shafts with protruding spines. Scale bar = 5 µm. (D) Dendritic spines of 12-15 neurons (each having 3-5 dendrites/neuron) from 2 independent experiments were counted in randomly selected areas, and statistical comparisons made using a one-way ANOVA multiple comparison test. Spine number is expressed per µm length of dendrite. Prnp -/- vs WT, p=0.4802; Prnp -/- vs G126V, p=0.9493; Prnp -/- vs V208M, p=0.2103. ns = not significant.
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    (A) Hippocampal neurons from ZH3 (Prnp -/- ) mice were transduced at DIV6 with a lentivirus encoding eGFP under control of the synapsin promoter to achieve neuron-specific expression. Cultures were then imaged on DIV21 using the EVOS Live Cell Imaging <t>Microscope</t> with transillumination ( Trans ) or <t>fluorescence</t> illumination ( GFP ). Merge shows a superposition of the two images. (B) Prnp -/- neurons were untransduced, or were transduced with lentiviruses encoding WT, G126V, or V208M PrP. Cells were fixed and stained with Alexa488-phalloidin (green) to visualize F-actin in dendritic spines and with D18 antibody (red) to detect PrP. Neurons from ZH3 (Prnp -/- ) and C57BL/6 (Prnp +/+ ) mice were used as negative and positive controls, respectively. Scale bar = 20 µm. (C) Higher magnification images of neurons showing dendritic shafts with protruding spines. Scale bar = 5 µm. (D) Dendritic spines of 12-15 neurons (each having 3-5 dendrites/neuron) from 2 independent experiments were counted in randomly selected areas, and statistical comparisons made using a one-way ANOVA multiple comparison test. Spine number is expressed per µm length of dendrite. Prnp -/- vs WT, p=0.4802; Prnp -/- vs G126V, p=0.9493; Prnp -/- vs V208M, p=0.2103. ns = not significant.
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    (A) Hippocampal neurons from ZH3 (Prnp -/- ) mice were transduced at DIV6 with a lentivirus encoding eGFP under control of the synapsin promoter to achieve neuron-specific expression. Cultures were then imaged on DIV21 using the EVOS Live Cell Imaging <t>Microscope</t> with transillumination ( Trans ) or <t>fluorescence</t> illumination ( GFP ). Merge shows a superposition of the two images. (B) Prnp -/- neurons were untransduced, or were transduced with lentiviruses encoding WT, G126V, or V208M PrP. Cells were fixed and stained with Alexa488-phalloidin (green) to visualize F-actin in dendritic spines and with D18 antibody (red) to detect PrP. Neurons from ZH3 (Prnp -/- ) and C57BL/6 (Prnp +/+ ) mice were used as negative and positive controls, respectively. Scale bar = 20 µm. (C) Higher magnification images of neurons showing dendritic shafts with protruding spines. Scale bar = 5 µm. (D) Dendritic spines of 12-15 neurons (each having 3-5 dendrites/neuron) from 2 independent experiments were counted in randomly selected areas, and statistical comparisons made using a one-way ANOVA multiple comparison test. Spine number is expressed per µm length of dendrite. Prnp -/- vs WT, p=0.4802; Prnp -/- vs G126V, p=0.9493; Prnp -/- vs V208M, p=0.2103. ns = not significant.
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    Carl Zeiss axioobserver z1 fluorescent microscope
    (A) Hippocampal neurons from ZH3 (Prnp -/- ) mice were transduced at DIV6 with a lentivirus encoding eGFP under control of the synapsin promoter to achieve neuron-specific expression. Cultures were then imaged on DIV21 using the EVOS Live Cell Imaging <t>Microscope</t> with transillumination ( Trans ) or <t>fluorescence</t> illumination ( GFP ). Merge shows a superposition of the two images. (B) Prnp -/- neurons were untransduced, or were transduced with lentiviruses encoding WT, G126V, or V208M PrP. Cells were fixed and stained with Alexa488-phalloidin (green) to visualize F-actin in dendritic spines and with D18 antibody (red) to detect PrP. Neurons from ZH3 (Prnp -/- ) and C57BL/6 (Prnp +/+ ) mice were used as negative and positive controls, respectively. Scale bar = 20 µm. (C) Higher magnification images of neurons showing dendritic shafts with protruding spines. Scale bar = 5 µm. (D) Dendritic spines of 12-15 neurons (each having 3-5 dendrites/neuron) from 2 independent experiments were counted in randomly selected areas, and statistical comparisons made using a one-way ANOVA multiple comparison test. Spine number is expressed per µm length of dendrite. Prnp -/- vs WT, p=0.4802; Prnp -/- vs G126V, p=0.9493; Prnp -/- vs V208M, p=0.2103. ns = not significant.
    Axioobserver Z1 Fluorescent Microscope, supplied by Carl Zeiss, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/axioobserver+fluorescence+microscope/electron+microscopy+scanning/pm40553757-233-7-11
    Average 90 stars, based on 1 article reviews
    axioobserver z1 fluorescent microscope - by Bioz Stars, 2026-09
    90/100 stars
      Buy from Supplier

    Image Search Results


    (A) Hippocampal neurons from ZH3 (Prnp -/- ) mice were transduced at DIV6 with a lentivirus encoding eGFP under control of the synapsin promoter to achieve neuron-specific expression. Cultures were then imaged on DIV21 using the EVOS Live Cell Imaging Microscope with transillumination ( Trans ) or fluorescence illumination ( GFP ). Merge shows a superposition of the two images. (B) Prnp -/- neurons were untransduced, or were transduced with lentiviruses encoding WT, G126V, or V208M PrP. Cells were fixed and stained with Alexa488-phalloidin (green) to visualize F-actin in dendritic spines and with D18 antibody (red) to detect PrP. Neurons from ZH3 (Prnp -/- ) and C57BL/6 (Prnp +/+ ) mice were used as negative and positive controls, respectively. Scale bar = 20 µm. (C) Higher magnification images of neurons showing dendritic shafts with protruding spines. Scale bar = 5 µm. (D) Dendritic spines of 12-15 neurons (each having 3-5 dendrites/neuron) from 2 independent experiments were counted in randomly selected areas, and statistical comparisons made using a one-way ANOVA multiple comparison test. Spine number is expressed per µm length of dendrite. Prnp -/- vs WT, p=0.4802; Prnp -/- vs G126V, p=0.9493; Prnp -/- vs V208M, p=0.2103. ns = not significant.

    Journal: bioRxiv

    Article Title: Membrane-anchored PrP Sc is the trigger for prion synaptotoxicity

    doi: 10.1101/2025.07.11.664221

    Figure Lengend Snippet: (A) Hippocampal neurons from ZH3 (Prnp -/- ) mice were transduced at DIV6 with a lentivirus encoding eGFP under control of the synapsin promoter to achieve neuron-specific expression. Cultures were then imaged on DIV21 using the EVOS Live Cell Imaging Microscope with transillumination ( Trans ) or fluorescence illumination ( GFP ). Merge shows a superposition of the two images. (B) Prnp -/- neurons were untransduced, or were transduced with lentiviruses encoding WT, G126V, or V208M PrP. Cells were fixed and stained with Alexa488-phalloidin (green) to visualize F-actin in dendritic spines and with D18 antibody (red) to detect PrP. Neurons from ZH3 (Prnp -/- ) and C57BL/6 (Prnp +/+ ) mice were used as negative and positive controls, respectively. Scale bar = 20 µm. (C) Higher magnification images of neurons showing dendritic shafts with protruding spines. Scale bar = 5 µm. (D) Dendritic spines of 12-15 neurons (each having 3-5 dendrites/neuron) from 2 independent experiments were counted in randomly selected areas, and statistical comparisons made using a one-way ANOVA multiple comparison test. Spine number is expressed per µm length of dendrite. Prnp -/- vs WT, p=0.4802; Prnp -/- vs G126V, p=0.9493; Prnp -/- vs V208M, p=0.2103. ns = not significant.

    Article Snippet: 10-15 neurons were randomly selected and imaged using a Zeiss AxioObserver D1 Fluorescence Microscope and/or a Zeiss LSM 700 Laser Scanning Confocal Microscope with 63X oil objectives.

    Techniques: Control, Expressing, Live Cell Imaging, Microscopy, Fluorescence, Transduction, Staining, Comparison