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confocal laser scanning microscopy clsm nikon a1  (Nikon)

 
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    Structured Review

    Nikon confocal laser scanning microscopy clsm nikon a1
    Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) <t>CLSM</t> images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
    Confocal Laser Scanning Microscopy Clsm Nikon A1, supplied by Nikon, 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/result/confocal laser scanning microscopy clsm nikon a1/product/Nikon
    Average 90 stars, based on 1 article reviews
    confocal laser scanning microscopy clsm nikon a1 - by Bioz Stars, 2026-03
    90/100 stars

    Images

    1) Product Images from "Genetically engineered bio-composite mediated dual-modality imaging-guided synergistic chemo-FUAS for tumor therapy"

    Article Title: Genetically engineered bio-composite mediated dual-modality imaging-guided synergistic chemo-FUAS for tumor therapy

    Journal: Materials Today Bio

    doi: 10.1016/j.mtbio.2025.101928

    Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) CLSM images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
    Figure Legend Snippet: Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) CLSM images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

    Techniques Used: Staining, Zeta Potential Analyzer, Incubation, Flow Cytometry



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    Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) <t>CLSM</t> images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
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    Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) <t>CLSM</t> images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
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    Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) <t>CLSM</t> images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
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    Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) <t>CLSM</t> images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
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    Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) <t>CLSM</t> images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
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    Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) <t>CLSM</t> images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
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    Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) <t>CLSM</t> images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
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    Image Search Results


    Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) CLSM images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

    Journal: Materials Today Bio

    Article Title: Genetically engineered bio-composite mediated dual-modality imaging-guided synergistic chemo-FUAS for tumor therapy

    doi: 10.1016/j.mtbio.2025.101928

    Figure Lengend Snippet: Characterization of GVs- Ec @p/D. ( a ) GVs- E. coli dispersed in PBS. ( b ) Gram staining of GVs- E. coli . Scale bar: 50 μm. ( c ) TEM image of GVs- E. coli . Scale bar: 200 nm. ( d ) Zeta potential and ( e ) Size distribution of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( f ) Absorbance spectra of DOX, GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( g ) Plate counts of GVs- Ec @p at different pDA concentrations (0, 0.5, 1, 2, and 4 mg/mL). ( h ) Plate counts of GVs- Ec @p/D after incubation with 0, 50, 100, 200, and 400 μg/mL DOX. ( i ) Growth curve of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D. ( j ) CLSM images of GVs- Ec @p/D. Green and red indicate pDA-FITC and DOX, respectively. Scale bar: 25 μm. ( k ) Representative flow cytometry histograms of GVs- E. coli , GVs- Ec @p and GVs- Ec @p/D, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

    Article Snippet: PDA was replaced with pDA-FITC during the preparation of GVs- Ec @p/D and the coating of pDA and DOX on the surface of GVs- E. coli was observed by confocal laser scanning microscopy (CLSM) (Nikon A1, Japan).

    Techniques: Staining, Zeta Potential Analyzer, Incubation, Flow Cytometry