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nikon inverted fluorescence microscope  (Nikon)


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    Nikon nikon inverted fluorescence microscope
    Synthesis and characterization of BA-HPCS@CGRP microspheres based on microfluidic fabrication. A. Fourier transform infrared spectroscopy spectra of the HPCS, 3-Carboxyphenylboronic acid (BA), and BA-HPCS. B. The hydrogel precursors appear as a liquid macroscopically before gelation. C. The hydrogels appear milky white after photo-crosslinking. D. The imaging of BA-HPCS@CGRP microspheres based on microfluidic chips: macroscopic and microscopic observations. E. Particle size distribution of BA-HPCS@CGRP microspheres. F and G. Representative scanning electron <t>microscope</t> images of BA-HPCS@CGRP microspheres. H. The pore size distribution of lyophilized BA-HPCS@CGRP microspheres. I. The releasing of CGRP from BA-HPCS@CGRP in PBS and different glucose conditions (100 mg/dL, 400 mg/dL). J. Representative live/dead <t>fluorescence</t> images of L929 cells after co-culture with microspheres (green calcein-AM for live cells, red propidium iodide for dead cells). K. The quantitative analysis of L929 cell viability co-cultured with microspheres. ns, no significance. ∗∗∗ p < 0.001; ∗∗ p < 0.01; ∗ p < 0.05; ns, no significance. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
    Nikon Inverted Fluorescence Microscope, supplied by Nikon, used in various techniques. Bioz Stars score: 99/100, based on 11849 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/inverted+microscope+nikon+eclipse+ti2/ECLIPSE+Ti2/pmc13014975-133-9-13
    Average 99 stars, based on 11849 article reviews
    nikon inverted fluorescence microscope - by Bioz Stars, 2026-10
    99/100 stars

    Images

    1) Product Images from "Sustained-release CGRP microspheres accelerate diabetic wound healing by synergistically promoting neurovascular regeneration through modulation of macrophage and endothelial cell functions"

    Article Title: Sustained-release CGRP microspheres accelerate diabetic wound healing by synergistically promoting neurovascular regeneration through modulation of macrophage and endothelial cell functions

    Journal: Materials Today Bio

    doi: 10.1016/j.mtbio.2026.103015

    Synthesis and characterization of BA-HPCS@CGRP microspheres based on microfluidic fabrication. A. Fourier transform infrared spectroscopy spectra of the HPCS, 3-Carboxyphenylboronic acid (BA), and BA-HPCS. B. The hydrogel precursors appear as a liquid macroscopically before gelation. C. The hydrogels appear milky white after photo-crosslinking. D. The imaging of BA-HPCS@CGRP microspheres based on microfluidic chips: macroscopic and microscopic observations. E. Particle size distribution of BA-HPCS@CGRP microspheres. F and G. Representative scanning electron microscope images of BA-HPCS@CGRP microspheres. H. The pore size distribution of lyophilized BA-HPCS@CGRP microspheres. I. The releasing of CGRP from BA-HPCS@CGRP in PBS and different glucose conditions (100 mg/dL, 400 mg/dL). J. Representative live/dead fluorescence images of L929 cells after co-culture with microspheres (green calcein-AM for live cells, red propidium iodide for dead cells). K. The quantitative analysis of L929 cell viability co-cultured with microspheres. ns, no significance. ∗∗∗ p < 0.001; ∗∗ p < 0.01; ∗ p < 0.05; ns, no significance. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
    Figure Legend Snippet: Synthesis and characterization of BA-HPCS@CGRP microspheres based on microfluidic fabrication. A. Fourier transform infrared spectroscopy spectra of the HPCS, 3-Carboxyphenylboronic acid (BA), and BA-HPCS. B. The hydrogel precursors appear as a liquid macroscopically before gelation. C. The hydrogels appear milky white after photo-crosslinking. D. The imaging of BA-HPCS@CGRP microspheres based on microfluidic chips: macroscopic and microscopic observations. E. Particle size distribution of BA-HPCS@CGRP microspheres. F and G. Representative scanning electron microscope images of BA-HPCS@CGRP microspheres. H. The pore size distribution of lyophilized BA-HPCS@CGRP microspheres. I. The releasing of CGRP from BA-HPCS@CGRP in PBS and different glucose conditions (100 mg/dL, 400 mg/dL). J. Representative live/dead fluorescence images of L929 cells after co-culture with microspheres (green calcein-AM for live cells, red propidium iodide for dead cells). K. The quantitative analysis of L929 cell viability co-cultured with microspheres. ns, no significance. ∗∗∗ p < 0.001; ∗∗ p < 0.01; ∗ p < 0.05; ns, no significance. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

    Techniques Used: Fourier Transform Infrared Spectroscopy, Spectroscopy, Imaging, Microscopy, Pore Size, Fluorescence, Co-Culture Assay, Cell Culture

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    Fabrication process. The process begins with 3D printing of a template, followed by pouring and curing the first polymer layer, followed by removal of the template to obtain its negative shape. A second layer with a closely matched refractive index is then added to the negative template. The two layers are sandwiched between flat glass substrates. Finally, the completed mask is bonded to a 3D-printed adapter, allowing simple plug-and-play insertion into a conventional inverted <t>microscope</t> (DIC slot), Nikon Eclipse <t>Ti2</t> in this example.
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    Image Search Results


    Synthesis and characterization of BA-HPCS@CGRP microspheres based on microfluidic fabrication. A. Fourier transform infrared spectroscopy spectra of the HPCS, 3-Carboxyphenylboronic acid (BA), and BA-HPCS. B. The hydrogel precursors appear as a liquid macroscopically before gelation. C. The hydrogels appear milky white after photo-crosslinking. D. The imaging of BA-HPCS@CGRP microspheres based on microfluidic chips: macroscopic and microscopic observations. E. Particle size distribution of BA-HPCS@CGRP microspheres. F and G. Representative scanning electron microscope images of BA-HPCS@CGRP microspheres. H. The pore size distribution of lyophilized BA-HPCS@CGRP microspheres. I. The releasing of CGRP from BA-HPCS@CGRP in PBS and different glucose conditions (100 mg/dL, 400 mg/dL). J. Representative live/dead fluorescence images of L929 cells after co-culture with microspheres (green calcein-AM for live cells, red propidium iodide for dead cells). K. The quantitative analysis of L929 cell viability co-cultured with microspheres. ns, no significance. ∗∗∗ p < 0.001; ∗∗ p < 0.01; ∗ p < 0.05; ns, no significance. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

    Journal: Materials Today Bio

    Article Title: Sustained-release CGRP microspheres accelerate diabetic wound healing by synergistically promoting neurovascular regeneration through modulation of macrophage and endothelial cell functions

    doi: 10.1016/j.mtbio.2026.103015

    Figure Lengend Snippet: Synthesis and characterization of BA-HPCS@CGRP microspheres based on microfluidic fabrication. A. Fourier transform infrared spectroscopy spectra of the HPCS, 3-Carboxyphenylboronic acid (BA), and BA-HPCS. B. The hydrogel precursors appear as a liquid macroscopically before gelation. C. The hydrogels appear milky white after photo-crosslinking. D. The imaging of BA-HPCS@CGRP microspheres based on microfluidic chips: macroscopic and microscopic observations. E. Particle size distribution of BA-HPCS@CGRP microspheres. F and G. Representative scanning electron microscope images of BA-HPCS@CGRP microspheres. H. The pore size distribution of lyophilized BA-HPCS@CGRP microspheres. I. The releasing of CGRP from BA-HPCS@CGRP in PBS and different glucose conditions (100 mg/dL, 400 mg/dL). J. Representative live/dead fluorescence images of L929 cells after co-culture with microspheres (green calcein-AM for live cells, red propidium iodide for dead cells). K. The quantitative analysis of L929 cell viability co-cultured with microspheres. ns, no significance. ∗∗∗ p < 0.001; ∗∗ p < 0.01; ∗ p < 0.05; ns, no significance. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

    Article Snippet: Following the incubation, fluorescence images were captured using a Nikon inverted fluorescence microscope (Nikon, Japan, Modle: Eclipse Ti2-E).

    Techniques: Fourier Transform Infrared Spectroscopy, Spectroscopy, Imaging, Microscopy, Pore Size, Fluorescence, Co-Culture Assay, Cell Culture

    Fabrication process. The process begins with 3D printing of a template, followed by pouring and curing the first polymer layer, followed by removal of the template to obtain its negative shape. A second layer with a closely matched refractive index is then added to the negative template. The two layers are sandwiched between flat glass substrates. Finally, the completed mask is bonded to a 3D-printed adapter, allowing simple plug-and-play insertion into a conventional inverted microscope (DIC slot), Nikon Eclipse Ti2 in this example.

    Journal: ACS Photonics

    Article Title: Compact Spectral Encoding Microscopy by Terrace Grating Optics

    doi: 10.1021/acsphotonics.5c02701

    Figure Lengend Snippet: Fabrication process. The process begins with 3D printing of a template, followed by pouring and curing the first polymer layer, followed by removal of the template to obtain its negative shape. A second layer with a closely matched refractive index is then added to the negative template. The two layers are sandwiched between flat glass substrates. Finally, the completed mask is bonded to a 3D-printed adapter, allowing simple plug-and-play insertion into a conventional inverted microscope (DIC slot), Nikon Eclipse Ti2 in this example.

    Article Snippet: Finally, the phase mask is mounted and glued to a 3D-printed adapter designed to fit the dedicated slot of a conventional Nikon inverted microscope (Nikon Eclipse Ti2).

    Techniques: Polymer, Refractive Index, Inverted Microscopy