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anti epcam cd326 antibodies  (Miltenyi Biotec)


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    Structured Review

    Miltenyi Biotec anti epcam cd326 antibodies
    Anti Epcam Cd326 Antibodies, supplied by Miltenyi Biotec, used in various techniques. Bioz Stars score: 95/100, based on 45 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/mouse+anti+epcam+antibody/CD326+(EpCAM)+Antibody%2C+anti-mouse/bio_rxiv__64898__2026__03__24__713994-178-11-21
    Average 95 stars, based on 45 article reviews
    anti epcam cd326 antibodies - by Bioz Stars, 2026-09
    95/100 stars

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    Related Articles

    Labeling:

    Article Title: Receptor-Targeted Nipah Virus Glycoproteins Improve Cell-Type Selective Gene Delivery and Reveal a Preference for Membrane-Proximal Cell Attachment.
    Article Snippet: After 48 h, adherent cells were detached with PBS-EDTA solution and subsequently washed in 800 μl FACS washing buffer (PBS, 2% FCS, 0.1% NaN3), and incubated with a phycoerythrin (PE)conjugated mouse anti-His antibody (clone GG11-8F3.5.1, Miltenyi Biotec, Bergisch Gladbach, Germany, dilution 1:100) in FACS washing buffer. .. Human EpCAM was detected by an Allophycocyanin (APC) labeled mouse anti-EpCAM antibody (clone HEA-125, Miltenyi Biotec, Bergisch Gladbach, Germany, dilution 1:100). .. CD117 and CD117short expression was detected by staining with PE-coupled CD117 antibody (clone: 104D2; 1:100; BioLegend, San Diego, USA).

    Article Title: Receptor-Targeted Nipah Virus Glycoproteins Improve Cell-Type Selective Gene Delivery and Reveal a Preference for Membrane-Proximal Cell Attachment
    Article Snippet: After 48 h, adherent cells were detached with PBS-EDTA solution and subsequently washed in 800 μl FACS washing buffer (PBS, 2% FCS, 0.1% NaN 3 ), and incubated with a phycoerythrin (PE)-conjugated mouse anti-His antibody (clone GG11-8F3.5.1, Miltenyi Biotec, Bergisch Gladbach, Germany, dilution 1:100) in FACS washing buffer. .. Human EpCAM was detected by an Allophycocyanin (APC) labeled mouse anti-EpCAM antibody (clone HEA-125, Miltenyi Biotec, Bergisch Gladbach, Germany, dilution 1:100). .. CD117 and CD117short expression was detected by staining with PE-coupled CD117 antibody (clone: 104D2; 1:100; BioLegend, San Diego, USA).

    Blocking Assay:

    Article Title: Development of an optimized cell-based selection system for phage display libraries
    Article Snippet: .. The commercial mouse anti-EpCAM antibody (HEA-125, 130-113-268, Miltenyi Biotec, Bergisch Gladbach, Germany) was diluted from 0 to 1000 ng/μl with blocking solution. .. Bound human antibodies were detected with HRP-conjugated anti-human IgG antibody (1:5000, Sigma-Aldrich, St Louis, MO, USA) and HEA-125 with HRP-conjugated goat anti-mouse antibody (1:5000, Dianova, Hamburg, Germany) for 45 min at RT in a humid chamber.



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    GucyCART induces GUCY2C loss in multiple low antigen models. (A) LS174T, SKCO1, and LoVo CRC cells were exposed to GucyCART for 48 hours. (B) Cytolysis kinetics were quantified over the 48 hour co-culture. AUCs were calculated for each condition, and one-way ANOVA was used to compare GucyCART and control CART at each E:T ratio. Each data point in (B) represents the mean ± SD from n ≥ 3 technical replicates in a single experiment that is representative of 3–5 experiments; **** p < 0.0001. (C, D) Following 48 hours of cytolysis, remaining cells were collected, and GUCY2C mRNA (C) and protein (D) were quantified relative to the epithelia-specific housekeeping control <t>EPCAM.</t> Each data point represents the average of biological replicates in separate experiments (N = 3–5 experiments). One-way ANOVA was used to compare each E:T of GucyCART to control CART; ** p < 0.01, *** p < 0.0001. Figure schematics were generated using BioRender.com .
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    BDS treatment increases tuft cell numbers and promotes type 2 immune cytokine release. (A) Representative images of immunofluorescence for GATA3 (scale bar = 50 μm). (B) Representative images of immunofluorescence for DCLK1 (scale bar = 50 μm). (C) Relative fluorescence intensity of GATA3. (D) Relative fluorescence intensity of DCLK1. (E) ELISA measurement of IL-4 concentration in colon organoids. (F) ELISA measurement of IL-13 concentration in colon organoids. (G) ELISA measurement of IL-25 concentration in colon organoids. (H) Flow cytometry analysis of tuft cell proportions in colon organoids. (I) The percentage of CD170 + <t>CD326</t> + Tuft cells in colon organoids. Data are presented as the mean ± SD, n = 3. Significance levels are indicated as * p < 0.05, ** p < 0.01.
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    Cell Signaling Technology Inc cat no 2929s
    Representation and validation of the AF4‐MALS‐FLD method . (A) Overview of the workflow used for identification of EV surface proteins. PE‐conjugated antibodies were incubated with the sample (e.g. pre‐purified EVs, cell culture supernatant, urine, or plasma) and loaded into the AF4 channel. (B) The light scatter elution profile (in relative scale) (black, full line), UV elution profile (black, dotted line) and the size determination ( R rms in nm) (red) obtained by the multi‐angle light scattering (MALS) detector is plotted against time for labelling of SK‐BR‐3‐derived EVs with PE‐conjugated anti‐CD81 antibody. (C) The fluorescent light detector (FLD) signal (in relative scale) for SK‐BR‐3‐derived EVs labelled with PE‐conjugated anti‐CD9, anti‐CD63 and anti‐CD81 is plotted against time. (D) Transmission electron microscopy (TEM) images of different fractions of the AF4‐MALS‐FLD elution profile are shown (scale bar = 200 nm).
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    AF4‐MALS‐FLD analysis of EV surface proteins with biomarker potential in prostate and breast cancer . MCF‐7‐, MDA‐MB‐231‐ and SK‐BR‐3‐derived EVs were labelled with <t>PE‐conjugated</t> <t>anti‐EpCAM</t> antibodies and analysed by AF4‐MALS‐FLD. (A) The elution profile (in relative scale) of the multi‐angle light scatter (MALS) detector and the size ( R rms in nm) were plotted against time. The fluorescent light detector (FLD) signal for MCF‐7‐, MDA‐MB‐231‐ and SK‐BR‐3‐derived EVs labelled with (B) PE‐conjugated anti‐EpCAM and (C) PE‐conjugated anti‐HER2 antibodies were plotted. (D) From FLD elution profiles, the area under the curve for the EV peak (24–80 min) was determined. Unstained EV samples were used as a negative control. (E) Different concentrations (6 × 10 9 , 8 × 10 9 , 1 × 10 10 and 2 × 10 10 particles as measured by NTA) including a negative control of LNCaP‐derived EVs (high PSMA expression) were labelled with anti‐PSMA antibodies and analysed by the AF4‐MALS‐FLD protocol. (F) The area under the curve for the EV peak was determined for LNCaP‐derived EVs. Different concentrations (2 × 10 10 , 4 × 10 10 and 6 × 10 10 particles as measured by NTA) including a negative control of (G) MCF‐7‐derived EVs (high EpCAM expression) or (I) SK‐BR‐3‐derived EVs (high HER2 expression) were labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies respectively and analysed by the AF4‐MALS‐FLD protocol. The area under the curve for the EV peak (24–80 min) was determined for (H) MCF‐7‐ and (J) SK‐BR‐3‐derived EVs.
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    Image Search Results


    GucyCART induces GUCY2C loss in multiple low antigen models. (A) LS174T, SKCO1, and LoVo CRC cells were exposed to GucyCART for 48 hours. (B) Cytolysis kinetics were quantified over the 48 hour co-culture. AUCs were calculated for each condition, and one-way ANOVA was used to compare GucyCART and control CART at each E:T ratio. Each data point in (B) represents the mean ± SD from n ≥ 3 technical replicates in a single experiment that is representative of 3–5 experiments; **** p < 0.0001. (C, D) Following 48 hours of cytolysis, remaining cells were collected, and GUCY2C mRNA (C) and protein (D) were quantified relative to the epithelia-specific housekeeping control EPCAM. Each data point represents the average of biological replicates in separate experiments (N = 3–5 experiments). One-way ANOVA was used to compare each E:T of GucyCART to control CART; ** p < 0.01, *** p < 0.0001. Figure schematics were generated using BioRender.com .

    Journal: Frontiers in Immunology

    Article Title: IFNγ-induced antigen loss in chimeric antigen receptor-T cell therapy

    doi: 10.3389/fimmu.2026.1772472

    Figure Lengend Snippet: GucyCART induces GUCY2C loss in multiple low antigen models. (A) LS174T, SKCO1, and LoVo CRC cells were exposed to GucyCART for 48 hours. (B) Cytolysis kinetics were quantified over the 48 hour co-culture. AUCs were calculated for each condition, and one-way ANOVA was used to compare GucyCART and control CART at each E:T ratio. Each data point in (B) represents the mean ± SD from n ≥ 3 technical replicates in a single experiment that is representative of 3–5 experiments; **** p < 0.0001. (C, D) Following 48 hours of cytolysis, remaining cells were collected, and GUCY2C mRNA (C) and protein (D) were quantified relative to the epithelia-specific housekeeping control EPCAM. Each data point represents the average of biological replicates in separate experiments (N = 3–5 experiments). One-way ANOVA was used to compare each E:T of GucyCART to control CART; ** p < 0.01, *** p < 0.0001. Figure schematics were generated using BioRender.com .

    Article Snippet: Membranes were probed using an anti-human GUCY2C antibody (37517, Cell Signaling Technology), anti-human GAPDH (2118S, Cell Signaling Technology), anti-human STAT1 (14994T, Cell Signaling Technology), anti-human phospho-STAT1 (9167S, Cell Signaling Technology), anti-human CHOP (2895S, Cell Signaling Technology), anti-human β-actin (2128S, Cell Signaling Technology), anti-human EpCAM (2929S, Cell Signaling Technology) anti-human CDH17 (88594T, Cell Signaling Technology), and anti-human HER2 (2165T, Cell Signaling Technology).

    Techniques: Co-Culture Assay, Control, Generated

    BDS treatment increases tuft cell numbers and promotes type 2 immune cytokine release. (A) Representative images of immunofluorescence for GATA3 (scale bar = 50 μm). (B) Representative images of immunofluorescence for DCLK1 (scale bar = 50 μm). (C) Relative fluorescence intensity of GATA3. (D) Relative fluorescence intensity of DCLK1. (E) ELISA measurement of IL-4 concentration in colon organoids. (F) ELISA measurement of IL-13 concentration in colon organoids. (G) ELISA measurement of IL-25 concentration in colon organoids. (H) Flow cytometry analysis of tuft cell proportions in colon organoids. (I) The percentage of CD170 + CD326 + Tuft cells in colon organoids. Data are presented as the mean ± SD, n = 3. Significance levels are indicated as * p < 0.05, ** p < 0.01.

    Journal: Frontiers in Immunology

    Article Title: Renshen-Baidu-San restores epithelial–immune crosstalk and drives type 2 immune repair in ulcerative colitis: an integrated multi-omics study

    doi: 10.3389/fimmu.2026.1777808

    Figure Lengend Snippet: BDS treatment increases tuft cell numbers and promotes type 2 immune cytokine release. (A) Representative images of immunofluorescence for GATA3 (scale bar = 50 μm). (B) Representative images of immunofluorescence for DCLK1 (scale bar = 50 μm). (C) Relative fluorescence intensity of GATA3. (D) Relative fluorescence intensity of DCLK1. (E) ELISA measurement of IL-4 concentration in colon organoids. (F) ELISA measurement of IL-13 concentration in colon organoids. (G) ELISA measurement of IL-25 concentration in colon organoids. (H) Flow cytometry analysis of tuft cell proportions in colon organoids. (I) The percentage of CD170 + CD326 + Tuft cells in colon organoids. Data are presented as the mean ± SD, n = 3. Significance levels are indicated as * p < 0.05, ** p < 0.01.

    Article Snippet: HPLC grade acetonitrile, formic acid and methanol were purchased from Thermo Fisher Scientific Co., Ltd (Waltham, MA, USA); Ultrapure water was purified using UNIQUE laboratory multifunctional ultra-pure water system (Fujian, China); DSS (mw: 36–50 kDa) was purchased from MeilunBio Biological Technology Co., Ltd (Dalian, China); Collagenase I, II, and neutral protease were obtained from Sangon Biotech (Shanghai, China); The cell viability dyes Calcein AM (live), DRAQ7TM (dead) and RevertAid First Strand cDNA Synthesis Kit were purchased from Thermo Fisher Scientific Co., Ltd (Waltham, MA, USA); QubitTM dsDNA HS Assay Kit was obtained from Beckman Coulter Co., Ltd (Brea, CA, USA); Enhanced Cartridge Reagent and BD RhapsodyTM WTA Amplification Kit were obtained from BD Biosciences Co., Ltd (San Jose, CA, USA); KAPA Library Quant Kit was obtained from Illumin, Inc. (San Diego, CA, USA); Matrigel ® Matrix for Organoid Culture was obtained from Corning Inc. (NY, USA); Intestinal tissue digestion solution and organoid growth medium was obtained from Aimingmed Technologies Co., Ltd. (Hangzhou, China); Trizol-bead-based RNA extraction kit was obtained from Genstone Biotech Co., Ltd. (Beijing, China); RevertAid First Strand cDNA Synthesis Kit was obtained from Thermo Fisher Scientific Co., Ltd (Waltham, MA, USA); TB Green ® Premix Ex Taq was obtained from TakaraBio Inc. (Beijing, China); Anti-DCAMKL1, anti-Ki67 antibodies and Goat Anti-Rabbit IgG H&L (Alexa Fluor ® ) were provided by Abcam (Cambridge, MA, USA); Anti-GATA3 antibody was provided by Proteintech Group (Wuhan, China); APC Anti-Mouse CD170 and FITC Anti-Mouse CD326 antibodies were obtained from Elabscience (Wuhan, China); Elisa kit of IL-4, IL-13 and IL-25 were purchased from Jianglai Biotechnology Co., Ltd (Shanghai, China).

    Techniques: Immunofluorescence, Fluorescence, Enzyme-linked Immunosorbent Assay, Concentration Assay, Flow Cytometry

    Representation and validation of the AF4‐MALS‐FLD method . (A) Overview of the workflow used for identification of EV surface proteins. PE‐conjugated antibodies were incubated with the sample (e.g. pre‐purified EVs, cell culture supernatant, urine, or plasma) and loaded into the AF4 channel. (B) The light scatter elution profile (in relative scale) (black, full line), UV elution profile (black, dotted line) and the size determination ( R rms in nm) (red) obtained by the multi‐angle light scattering (MALS) detector is plotted against time for labelling of SK‐BR‐3‐derived EVs with PE‐conjugated anti‐CD81 antibody. (C) The fluorescent light detector (FLD) signal (in relative scale) for SK‐BR‐3‐derived EVs labelled with PE‐conjugated anti‐CD9, anti‐CD63 and anti‐CD81 is plotted against time. (D) Transmission electron microscopy (TEM) images of different fractions of the AF4‐MALS‐FLD elution profile are shown (scale bar = 200 nm).

    Journal: Journal of Extracellular Biology

    Article Title: A One‐Step Workflow for Size‐Based Separation of Extracellular Vesicles With Integrated Surface Marker Detection

    doi: 10.1002/jex2.70109

    Figure Lengend Snippet: Representation and validation of the AF4‐MALS‐FLD method . (A) Overview of the workflow used for identification of EV surface proteins. PE‐conjugated antibodies were incubated with the sample (e.g. pre‐purified EVs, cell culture supernatant, urine, or plasma) and loaded into the AF4 channel. (B) The light scatter elution profile (in relative scale) (black, full line), UV elution profile (black, dotted line) and the size determination ( R rms in nm) (red) obtained by the multi‐angle light scattering (MALS) detector is plotted against time for labelling of SK‐BR‐3‐derived EVs with PE‐conjugated anti‐CD81 antibody. (C) The fluorescent light detector (FLD) signal (in relative scale) for SK‐BR‐3‐derived EVs labelled with PE‐conjugated anti‐CD9, anti‐CD63 and anti‐CD81 is plotted against time. (D) Transmission electron microscopy (TEM) images of different fractions of the AF4‐MALS‐FLD elution profile are shown (scale bar = 200 nm).

    Article Snippet: The following primary and secondary antibodies were used for western blot analysis: mouse monoclonal anti‐Alix (1:1000) (cat no. 2171S, Cell Signaling Technology), rabbit monoclonal anti‐CD9 (1:1000) (cat no. 13403S, Cell Signaling Technology), rabbit monoclonal anti‐Syntenin‐1 (1:1000) (cat no. ab133267, Abcam), mouse monoclonal anti‐TSG101 (1:1000) (cat no. sc‐7964, Santa Cruz Biotechnology), rabbit monoclonal anti‐PSMA (1:1000) (cat no. 12702S), mouse monoclonal anti‐EpCAM (1:1000) (cat no. 2929S, Cell Signaling Technology), rabbit monoclonal anti‐HER2 (1:1000) (cat no. 2165S, Cell Signaling Technology), mouse monoclonal anti‐GAPDH (1:2500) (cat no. G8795, Merck Life Science), sheep anti‐mouse horseradish peroxidase‐linked (1:3000) (cat no. NA931V, GE Healthcare Life Sciences) and donkey anti‐rabbit horseradish peroxidase‐linked antibody (1:8000) (cat no. NA934V, GE Healthcare Life Sciences).

    Techniques: Biomarker Discovery, Incubation, Purification, Cell Culture, Clinical Proteomics, Multi-Angle Light Scattering, Derivative Assay, Transmission Assay, Electron Microscopy

    AF4‐MALS‐FLD analysis of EV surface proteins with biomarker potential in prostate and breast cancer . MCF‐7‐, MDA‐MB‐231‐ and SK‐BR‐3‐derived EVs were labelled with PE‐conjugated anti‐EpCAM antibodies and analysed by AF4‐MALS‐FLD. (A) The elution profile (in relative scale) of the multi‐angle light scatter (MALS) detector and the size ( R rms in nm) were plotted against time. The fluorescent light detector (FLD) signal for MCF‐7‐, MDA‐MB‐231‐ and SK‐BR‐3‐derived EVs labelled with (B) PE‐conjugated anti‐EpCAM and (C) PE‐conjugated anti‐HER2 antibodies were plotted. (D) From FLD elution profiles, the area under the curve for the EV peak (24–80 min) was determined. Unstained EV samples were used as a negative control. (E) Different concentrations (6 × 10 9 , 8 × 10 9 , 1 × 10 10 and 2 × 10 10 particles as measured by NTA) including a negative control of LNCaP‐derived EVs (high PSMA expression) were labelled with anti‐PSMA antibodies and analysed by the AF4‐MALS‐FLD protocol. (F) The area under the curve for the EV peak was determined for LNCaP‐derived EVs. Different concentrations (2 × 10 10 , 4 × 10 10 and 6 × 10 10 particles as measured by NTA) including a negative control of (G) MCF‐7‐derived EVs (high EpCAM expression) or (I) SK‐BR‐3‐derived EVs (high HER2 expression) were labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies respectively and analysed by the AF4‐MALS‐FLD protocol. The area under the curve for the EV peak (24–80 min) was determined for (H) MCF‐7‐ and (J) SK‐BR‐3‐derived EVs.

    Journal: Journal of Extracellular Biology

    Article Title: A One‐Step Workflow for Size‐Based Separation of Extracellular Vesicles With Integrated Surface Marker Detection

    doi: 10.1002/jex2.70109

    Figure Lengend Snippet: AF4‐MALS‐FLD analysis of EV surface proteins with biomarker potential in prostate and breast cancer . MCF‐7‐, MDA‐MB‐231‐ and SK‐BR‐3‐derived EVs were labelled with PE‐conjugated anti‐EpCAM antibodies and analysed by AF4‐MALS‐FLD. (A) The elution profile (in relative scale) of the multi‐angle light scatter (MALS) detector and the size ( R rms in nm) were plotted against time. The fluorescent light detector (FLD) signal for MCF‐7‐, MDA‐MB‐231‐ and SK‐BR‐3‐derived EVs labelled with (B) PE‐conjugated anti‐EpCAM and (C) PE‐conjugated anti‐HER2 antibodies were plotted. (D) From FLD elution profiles, the area under the curve for the EV peak (24–80 min) was determined. Unstained EV samples were used as a negative control. (E) Different concentrations (6 × 10 9 , 8 × 10 9 , 1 × 10 10 and 2 × 10 10 particles as measured by NTA) including a negative control of LNCaP‐derived EVs (high PSMA expression) were labelled with anti‐PSMA antibodies and analysed by the AF4‐MALS‐FLD protocol. (F) The area under the curve for the EV peak was determined for LNCaP‐derived EVs. Different concentrations (2 × 10 10 , 4 × 10 10 and 6 × 10 10 particles as measured by NTA) including a negative control of (G) MCF‐7‐derived EVs (high EpCAM expression) or (I) SK‐BR‐3‐derived EVs (high HER2 expression) were labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies respectively and analysed by the AF4‐MALS‐FLD protocol. The area under the curve for the EV peak (24–80 min) was determined for (H) MCF‐7‐ and (J) SK‐BR‐3‐derived EVs.

    Article Snippet: The following primary and secondary antibodies were used for western blot analysis: mouse monoclonal anti‐Alix (1:1000) (cat no. 2171S, Cell Signaling Technology), rabbit monoclonal anti‐CD9 (1:1000) (cat no. 13403S, Cell Signaling Technology), rabbit monoclonal anti‐Syntenin‐1 (1:1000) (cat no. ab133267, Abcam), mouse monoclonal anti‐TSG101 (1:1000) (cat no. sc‐7964, Santa Cruz Biotechnology), rabbit monoclonal anti‐PSMA (1:1000) (cat no. 12702S), mouse monoclonal anti‐EpCAM (1:1000) (cat no. 2929S, Cell Signaling Technology), rabbit monoclonal anti‐HER2 (1:1000) (cat no. 2165S, Cell Signaling Technology), mouse monoclonal anti‐GAPDH (1:2500) (cat no. G8795, Merck Life Science), sheep anti‐mouse horseradish peroxidase‐linked (1:3000) (cat no. NA931V, GE Healthcare Life Sciences) and donkey anti‐rabbit horseradish peroxidase‐linked antibody (1:8000) (cat no. NA934V, GE Healthcare Life Sciences).

    Techniques: Biomarker Discovery, Derivative Assay, Multi-Angle Light Scattering, Negative Control, Expressing

    Detection of EVs in complex matrices . (A) Different volumes of cell culture supernatant (0, 20, 40 and 60 µL) collected from the MCF‐7 cells were labelled with PE‐conjugated anti‐EpCAM antibodies and analysed by AF4‐MALS‐FLD. The area under the curve for the EV peak in complex matrices (40–80 min) was determined. (B) Different amounts of LNCaP‐derived EVs were spiked in 100 µL of concentrated urine, diluted 1:1 in PBS to reduce viscosity, labelled with PE‐conjugated anti‐PSMA antibodies, and analysed by AF4‐MALS‐FLD. The area under the curve for the EV peak was determined. Different amounts of (C) MCF‐7‐ or (D) SK‐BR‐3‐derived EVs were spiked in 100 µL of blood plasma, diluted 1:1 in PBS to reduce viscosity, and labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies, respectively. Labelled EVs were analysed by AF4‐MALS‐FLD and the area under the curve for the EV peak was determined. Different amounts of SK‐BR‐3 EVs were also spiked in blood plasma and labelled with isotype control antibodies. (E) Different concentrations of soluble EpCAM (1, 5 and 10 ng/mL) and soluble HER2 (50, 100 and 150 ng/mL) were spiked in blood plasma, labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies respectively, and analysed by AF4‐MALS‐FLD.

    Journal: Journal of Extracellular Biology

    Article Title: A One‐Step Workflow for Size‐Based Separation of Extracellular Vesicles With Integrated Surface Marker Detection

    doi: 10.1002/jex2.70109

    Figure Lengend Snippet: Detection of EVs in complex matrices . (A) Different volumes of cell culture supernatant (0, 20, 40 and 60 µL) collected from the MCF‐7 cells were labelled with PE‐conjugated anti‐EpCAM antibodies and analysed by AF4‐MALS‐FLD. The area under the curve for the EV peak in complex matrices (40–80 min) was determined. (B) Different amounts of LNCaP‐derived EVs were spiked in 100 µL of concentrated urine, diluted 1:1 in PBS to reduce viscosity, labelled with PE‐conjugated anti‐PSMA antibodies, and analysed by AF4‐MALS‐FLD. The area under the curve for the EV peak was determined. Different amounts of (C) MCF‐7‐ or (D) SK‐BR‐3‐derived EVs were spiked in 100 µL of blood plasma, diluted 1:1 in PBS to reduce viscosity, and labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies, respectively. Labelled EVs were analysed by AF4‐MALS‐FLD and the area under the curve for the EV peak was determined. Different amounts of SK‐BR‐3 EVs were also spiked in blood plasma and labelled with isotype control antibodies. (E) Different concentrations of soluble EpCAM (1, 5 and 10 ng/mL) and soluble HER2 (50, 100 and 150 ng/mL) were spiked in blood plasma, labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies respectively, and analysed by AF4‐MALS‐FLD.

    Article Snippet: The following primary and secondary antibodies were used for western blot analysis: mouse monoclonal anti‐Alix (1:1000) (cat no. 2171S, Cell Signaling Technology), rabbit monoclonal anti‐CD9 (1:1000) (cat no. 13403S, Cell Signaling Technology), rabbit monoclonal anti‐Syntenin‐1 (1:1000) (cat no. ab133267, Abcam), mouse monoclonal anti‐TSG101 (1:1000) (cat no. sc‐7964, Santa Cruz Biotechnology), rabbit monoclonal anti‐PSMA (1:1000) (cat no. 12702S), mouse monoclonal anti‐EpCAM (1:1000) (cat no. 2929S, Cell Signaling Technology), rabbit monoclonal anti‐HER2 (1:1000) (cat no. 2165S, Cell Signaling Technology), mouse monoclonal anti‐GAPDH (1:2500) (cat no. G8795, Merck Life Science), sheep anti‐mouse horseradish peroxidase‐linked (1:3000) (cat no. NA931V, GE Healthcare Life Sciences) and donkey anti‐rabbit horseradish peroxidase‐linked antibody (1:8000) (cat no. NA934V, GE Healthcare Life Sciences).

    Techniques: Cell Culture, Derivative Assay, Viscosity, Clinical Proteomics, Control

    Validation of the AF4‐MALS‐FLD workflow on patient samples . Urine samples of five prostate cancer patients were labelled for PSMA and analysed by the AF4‐MALS‐FLD workflow. Fractions 40–80 min were collected, concentrated and processed for mass spectrometry‐based proteomic analysis. (A) EV markers Syntenin‐1, Flotillin‐1, CD63, CD9, CD81, Flotillin‐2, Alix and TSG101 were analysed (missing sample indicated in grey). Z ‐score transformation of intensities were plotted. (B) Targeted mass spectrometry analysed the presence of PSMA (FOLH1) in patient samples. The z ‐score transformation of intensities was plotted with the AF4‐MALS‐FLD peak area. (C) Blood plasma samples of healthy controls ( n = 7) and HER2 amplified breast cancer patients ( n = 10) were labelled with PE‐conjugated anti‐HER2 antibodies. (D) Blood plasma samples of healthy controls ( n = 6) and breast cancer patients ( n = 8) were labelled with PE‐conjugated anti‐EpCAM antibodies. The area under the curve values were normalised for the mean value in the healthy control group.

    Journal: Journal of Extracellular Biology

    Article Title: A One‐Step Workflow for Size‐Based Separation of Extracellular Vesicles With Integrated Surface Marker Detection

    doi: 10.1002/jex2.70109

    Figure Lengend Snippet: Validation of the AF4‐MALS‐FLD workflow on patient samples . Urine samples of five prostate cancer patients were labelled for PSMA and analysed by the AF4‐MALS‐FLD workflow. Fractions 40–80 min were collected, concentrated and processed for mass spectrometry‐based proteomic analysis. (A) EV markers Syntenin‐1, Flotillin‐1, CD63, CD9, CD81, Flotillin‐2, Alix and TSG101 were analysed (missing sample indicated in grey). Z ‐score transformation of intensities were plotted. (B) Targeted mass spectrometry analysed the presence of PSMA (FOLH1) in patient samples. The z ‐score transformation of intensities was plotted with the AF4‐MALS‐FLD peak area. (C) Blood plasma samples of healthy controls ( n = 7) and HER2 amplified breast cancer patients ( n = 10) were labelled with PE‐conjugated anti‐HER2 antibodies. (D) Blood plasma samples of healthy controls ( n = 6) and breast cancer patients ( n = 8) were labelled with PE‐conjugated anti‐EpCAM antibodies. The area under the curve values were normalised for the mean value in the healthy control group.

    Article Snippet: The following primary and secondary antibodies were used for western blot analysis: mouse monoclonal anti‐Alix (1:1000) (cat no. 2171S, Cell Signaling Technology), rabbit monoclonal anti‐CD9 (1:1000) (cat no. 13403S, Cell Signaling Technology), rabbit monoclonal anti‐Syntenin‐1 (1:1000) (cat no. ab133267, Abcam), mouse monoclonal anti‐TSG101 (1:1000) (cat no. sc‐7964, Santa Cruz Biotechnology), rabbit monoclonal anti‐PSMA (1:1000) (cat no. 12702S), mouse monoclonal anti‐EpCAM (1:1000) (cat no. 2929S, Cell Signaling Technology), rabbit monoclonal anti‐HER2 (1:1000) (cat no. 2165S, Cell Signaling Technology), mouse monoclonal anti‐GAPDH (1:2500) (cat no. G8795, Merck Life Science), sheep anti‐mouse horseradish peroxidase‐linked (1:3000) (cat no. NA931V, GE Healthcare Life Sciences) and donkey anti‐rabbit horseradish peroxidase‐linked antibody (1:8000) (cat no. NA934V, GE Healthcare Life Sciences).

    Techniques: Biomarker Discovery, Mass Spectrometry, Transformation Assay, Clinical Proteomics, Amplification, Control

    AF4‐MALS‐FLD analysis of EV surface proteins with biomarker potential in prostate and breast cancer . MCF‐7‐, MDA‐MB‐231‐ and SK‐BR‐3‐derived EVs were labelled with PE‐conjugated anti‐EpCAM antibodies and analysed by AF4‐MALS‐FLD. (A) The elution profile (in relative scale) of the multi‐angle light scatter (MALS) detector and the size ( R rms in nm) were plotted against time. The fluorescent light detector (FLD) signal for MCF‐7‐, MDA‐MB‐231‐ and SK‐BR‐3‐derived EVs labelled with (B) PE‐conjugated anti‐EpCAM and (C) PE‐conjugated anti‐HER2 antibodies were plotted. (D) From FLD elution profiles, the area under the curve for the EV peak (24–80 min) was determined. Unstained EV samples were used as a negative control. (E) Different concentrations (6 × 10 9 , 8 × 10 9 , 1 × 10 10 and 2 × 10 10 particles as measured by NTA) including a negative control of LNCaP‐derived EVs (high PSMA expression) were labelled with anti‐PSMA antibodies and analysed by the AF4‐MALS‐FLD protocol. (F) The area under the curve for the EV peak was determined for LNCaP‐derived EVs. Different concentrations (2 × 10 10 , 4 × 10 10 and 6 × 10 10 particles as measured by NTA) including a negative control of (G) MCF‐7‐derived EVs (high EpCAM expression) or (I) SK‐BR‐3‐derived EVs (high HER2 expression) were labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies respectively and analysed by the AF4‐MALS‐FLD protocol. The area under the curve for the EV peak (24–80 min) was determined for (H) MCF‐7‐ and (J) SK‐BR‐3‐derived EVs.

    Journal: Journal of Extracellular Biology

    Article Title: A One‐Step Workflow for Size‐Based Separation of Extracellular Vesicles With Integrated Surface Marker Detection

    doi: 10.1002/jex2.70109

    Figure Lengend Snippet: AF4‐MALS‐FLD analysis of EV surface proteins with biomarker potential in prostate and breast cancer . MCF‐7‐, MDA‐MB‐231‐ and SK‐BR‐3‐derived EVs were labelled with PE‐conjugated anti‐EpCAM antibodies and analysed by AF4‐MALS‐FLD. (A) The elution profile (in relative scale) of the multi‐angle light scatter (MALS) detector and the size ( R rms in nm) were plotted against time. The fluorescent light detector (FLD) signal for MCF‐7‐, MDA‐MB‐231‐ and SK‐BR‐3‐derived EVs labelled with (B) PE‐conjugated anti‐EpCAM and (C) PE‐conjugated anti‐HER2 antibodies were plotted. (D) From FLD elution profiles, the area under the curve for the EV peak (24–80 min) was determined. Unstained EV samples were used as a negative control. (E) Different concentrations (6 × 10 9 , 8 × 10 9 , 1 × 10 10 and 2 × 10 10 particles as measured by NTA) including a negative control of LNCaP‐derived EVs (high PSMA expression) were labelled with anti‐PSMA antibodies and analysed by the AF4‐MALS‐FLD protocol. (F) The area under the curve for the EV peak was determined for LNCaP‐derived EVs. Different concentrations (2 × 10 10 , 4 × 10 10 and 6 × 10 10 particles as measured by NTA) including a negative control of (G) MCF‐7‐derived EVs (high EpCAM expression) or (I) SK‐BR‐3‐derived EVs (high HER2 expression) were labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies respectively and analysed by the AF4‐MALS‐FLD protocol. The area under the curve for the EV peak (24–80 min) was determined for (H) MCF‐7‐ and (J) SK‐BR‐3‐derived EVs.

    Article Snippet: The following antibodies were used for ONI experiments: breast cancer‐derived EV samples were incubated with Alexa Fluor 555 conjugated monoclonal anti‐EpCAM (1 μg/mL) (cat no. 5488S, Cell Signaling Technology) and Alexa Fluor 647 conjugated monoclonal anti‐HER2 (8.5 μg/mL) (cat no. NBP2‐34643AF647, Novus Biologicals).

    Techniques: Biomarker Discovery, Derivative Assay, Multi-Angle Light Scattering, Negative Control, Expressing

    Detection of EVs in complex matrices . (A) Different volumes of cell culture supernatant (0, 20, 40 and 60 µL) collected from the MCF‐7 cells were labelled with PE‐conjugated anti‐EpCAM antibodies and analysed by AF4‐MALS‐FLD. The area under the curve for the EV peak in complex matrices (40–80 min) was determined. (B) Different amounts of LNCaP‐derived EVs were spiked in 100 µL of concentrated urine, diluted 1:1 in PBS to reduce viscosity, labelled with PE‐conjugated anti‐PSMA antibodies, and analysed by AF4‐MALS‐FLD. The area under the curve for the EV peak was determined. Different amounts of (C) MCF‐7‐ or (D) SK‐BR‐3‐derived EVs were spiked in 100 µL of blood plasma, diluted 1:1 in PBS to reduce viscosity, and labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies, respectively. Labelled EVs were analysed by AF4‐MALS‐FLD and the area under the curve for the EV peak was determined. Different amounts of SK‐BR‐3 EVs were also spiked in blood plasma and labelled with isotype control antibodies. (E) Different concentrations of soluble EpCAM (1, 5 and 10 ng/mL) and soluble HER2 (50, 100 and 150 ng/mL) were spiked in blood plasma, labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies respectively, and analysed by AF4‐MALS‐FLD.

    Journal: Journal of Extracellular Biology

    Article Title: A One‐Step Workflow for Size‐Based Separation of Extracellular Vesicles With Integrated Surface Marker Detection

    doi: 10.1002/jex2.70109

    Figure Lengend Snippet: Detection of EVs in complex matrices . (A) Different volumes of cell culture supernatant (0, 20, 40 and 60 µL) collected from the MCF‐7 cells were labelled with PE‐conjugated anti‐EpCAM antibodies and analysed by AF4‐MALS‐FLD. The area under the curve for the EV peak in complex matrices (40–80 min) was determined. (B) Different amounts of LNCaP‐derived EVs were spiked in 100 µL of concentrated urine, diluted 1:1 in PBS to reduce viscosity, labelled with PE‐conjugated anti‐PSMA antibodies, and analysed by AF4‐MALS‐FLD. The area under the curve for the EV peak was determined. Different amounts of (C) MCF‐7‐ or (D) SK‐BR‐3‐derived EVs were spiked in 100 µL of blood plasma, diluted 1:1 in PBS to reduce viscosity, and labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies, respectively. Labelled EVs were analysed by AF4‐MALS‐FLD and the area under the curve for the EV peak was determined. Different amounts of SK‐BR‐3 EVs were also spiked in blood plasma and labelled with isotype control antibodies. (E) Different concentrations of soluble EpCAM (1, 5 and 10 ng/mL) and soluble HER2 (50, 100 and 150 ng/mL) were spiked in blood plasma, labelled with PE‐conjugated anti‐EpCAM or anti‐HER2 antibodies respectively, and analysed by AF4‐MALS‐FLD.

    Article Snippet: The following antibodies were used for ONI experiments: breast cancer‐derived EV samples were incubated with Alexa Fluor 555 conjugated monoclonal anti‐EpCAM (1 μg/mL) (cat no. 5488S, Cell Signaling Technology) and Alexa Fluor 647 conjugated monoclonal anti‐HER2 (8.5 μg/mL) (cat no. NBP2‐34643AF647, Novus Biologicals).

    Techniques: Cell Culture, Derivative Assay, Viscosity, Clinical Proteomics, Control

    Validation of the AF4‐MALS‐FLD workflow on patient samples . Urine samples of five prostate cancer patients were labelled for PSMA and analysed by the AF4‐MALS‐FLD workflow. Fractions 40–80 min were collected, concentrated and processed for mass spectrometry‐based proteomic analysis. (A) EV markers Syntenin‐1, Flotillin‐1, CD63, CD9, CD81, Flotillin‐2, Alix and TSG101 were analysed (missing sample indicated in grey). Z ‐score transformation of intensities were plotted. (B) Targeted mass spectrometry analysed the presence of PSMA (FOLH1) in patient samples. The z ‐score transformation of intensities was plotted with the AF4‐MALS‐FLD peak area. (C) Blood plasma samples of healthy controls ( n = 7) and HER2 amplified breast cancer patients ( n = 10) were labelled with PE‐conjugated anti‐HER2 antibodies. (D) Blood plasma samples of healthy controls ( n = 6) and breast cancer patients ( n = 8) were labelled with PE‐conjugated anti‐EpCAM antibodies. The area under the curve values were normalised for the mean value in the healthy control group.

    Journal: Journal of Extracellular Biology

    Article Title: A One‐Step Workflow for Size‐Based Separation of Extracellular Vesicles With Integrated Surface Marker Detection

    doi: 10.1002/jex2.70109

    Figure Lengend Snippet: Validation of the AF4‐MALS‐FLD workflow on patient samples . Urine samples of five prostate cancer patients were labelled for PSMA and analysed by the AF4‐MALS‐FLD workflow. Fractions 40–80 min were collected, concentrated and processed for mass spectrometry‐based proteomic analysis. (A) EV markers Syntenin‐1, Flotillin‐1, CD63, CD9, CD81, Flotillin‐2, Alix and TSG101 were analysed (missing sample indicated in grey). Z ‐score transformation of intensities were plotted. (B) Targeted mass spectrometry analysed the presence of PSMA (FOLH1) in patient samples. The z ‐score transformation of intensities was plotted with the AF4‐MALS‐FLD peak area. (C) Blood plasma samples of healthy controls ( n = 7) and HER2 amplified breast cancer patients ( n = 10) were labelled with PE‐conjugated anti‐HER2 antibodies. (D) Blood plasma samples of healthy controls ( n = 6) and breast cancer patients ( n = 8) were labelled with PE‐conjugated anti‐EpCAM antibodies. The area under the curve values were normalised for the mean value in the healthy control group.

    Article Snippet: The following antibodies were used for ONI experiments: breast cancer‐derived EV samples were incubated with Alexa Fluor 555 conjugated monoclonal anti‐EpCAM (1 μg/mL) (cat no. 5488S, Cell Signaling Technology) and Alexa Fluor 647 conjugated monoclonal anti‐HER2 (8.5 μg/mL) (cat no. NBP2‐34643AF647, Novus Biologicals).

    Techniques: Biomarker Discovery, Mass Spectrometry, Transformation Assay, Clinical Proteomics, Amplification, Control