| Literature DB >> 23960142 |
C Panke1, D Weininger, A Haas, F Schelter, T Schlothauer, S Bader, R Sircar, H P Josel, U Baer, H Burtscher, O Mundigl, M Grote, U Brinkmann, C Sustmann.
Abstract
Flow cytometry is an established method for fast and accurate quantitation of cellular protein levels and requires fluorescently labeled antibodies as well as calibration standards. A critical step for quantitation remains the production of suitable detection antibodies with a precisely defined ratio of antigen-binding sites to fluorophores. Problems often arise as a consequence of inefficient and unspecific labeling which can influence antibody properties. In addition, the number of incorporated fluorophores necessitates a special normalization step for quantitation. To address these problems, we constructed different mono- and bivalent bispecific antibodies with binding site(s) for the cell surface antigens, cMET, EGFR1/HER1, ErbB2/HER2 or ErbB3/HER3 and with an additional digoxigenin-binding single-chain Fv fusion. The fluorophore Cy5 was covalently coupled to digoxigenin and quantitatively bound by the bispecific antibody. A panel of tumor cell lines was assessed under different culture conditions for absolute receptor expression levels of the indicated antigens and the data were set in relation to mRNA, gene count and immunoblot data. We could reproducibly quantify these receptors, omit the otherwise required normalization step and demonstrate the superiority of a 1 + 1 bispecific antibody. The same antibodies were also used to quantify the number of proteins in intracellular vesicles in confocal microscopy. The antibodies can be stored like regular antibodies and can be coupled with different digoxigenin-labeled fluorophores which makes them excellent tools for FACS and imaging-based experiments.Entities:
Keywords: ErbB; bispecific antibodies; cMET; digoxigenin; receptor quantification
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Year: 2013 PMID: 23960142 PMCID: PMC3785250 DOI: 10.1093/protein/gzt035
Source DB: PubMed Journal: Protein Eng Des Sel ISSN: 1741-0126 Impact factor: 1.650
Fig. 1.Generation of bispecific antibodies for receptor quantitation of cell surface cMET. (a) Schematic presentation of different BsAb formats (variable regions shaded). (b) Coomassie stained SDS–PAGE under non-reducing (NR) and reducing (R) conditions in the order as presented in A (HC 1/2 indicates the two different heavy chains, LC, light chain, *, chain with scFv). (c) Analytical HPLC of Protein A and size-exclusion chromatography purified BsAb. (d) Chemical structure of the small molecule Dig-Cy5. (e) Binding possibilities of a 1 + 1 and 2 + 2 format emphasizing that a 2 + 2 BsAb can also bind monovalently.
Fig. 2.Establishing receptor quantitation and the FACS gating strategy. (a) Gating and quality control of MESF calibration beads used for calibration curve. Numbers indicate four different bead populations. (b) Analysis of Dig-Cy5 to antibody ratio for indicated antibodies using simple cellular beads. (c) Concentration-dependent analysis of BsAb cell surface binding to cMEThigh H1993 (red = Met1v1, blue = Met2v2, green = Met Fab1v1). Saturation is dependent on absolute cMET receptor expression. (d) Exemplary scatter profile for a cMETlow and cMEThigh (A549, MKN45) cell line with additional histogram analysis for Met1v1 (red) and IgG control (black).
Fig. 3.Influence of culture conditions on cell surface expression levels of cMET determined by flow cytometry. (a) Time course receptor quantitation experiment with Met1v1 in A549 and MKN45. MESF values at Day 3 were set to 100% (absolute MESF values at Day 3: A549 = 49 984; MKN45 = 569 090). Prior analysis bright field pictures were taken at each day (Days 1–4) at a magnification of 100×. (b) Immunoblot analysis of total (t) and phosphorylated (p) cMET in nine cell lines (black triangle indicates t- and p-cMET). Cell lysates were harvested at Day 3 after seeding.
MESF values for cMET
| Cell line | Met2v2 | Met1v1 | Met Fab1v1 | Factor | |||
|---|---|---|---|---|---|---|---|
| Mean MESF | STD (MESF) | Mean MESF | STD (MESF) | Mean MESF | STD (MESF) | Met2v2/Met1v1 | |
| T47D | n.d. | n.d. | n.d. | n.d. | n.d. | n.d. | n.d. |
| H441 | 137 252 | ±42 899 | 109 909 | ±36 334 | 109 270 | ±39 611 | 1.2 |
| Du145 | 11 211 | ±2009 | 7000 | ±1057 | 5511 | ±1180 | 1.6 |
| HT29 | 15 460 | ±1898 | 9440 | ±2219 | 9139 | ±2339 | 1.6 |
| A549 | 45 096 | ±6530 | 37 224 | ±6878 | 34 360 | ±87 | 1.2 |
| Hs746T | 235 601 | ±5958 | 152 191 | ±33 867 | 150 603 | ±24 984 | 1.5 |
| MKN45 | 752 311 | ±47 944 | 698 653 | ±40 066 | 783 259 | ±61 171 | 1.1 |
| Snu5 | 1 417 397 | ±91 892 | 1 145 582 | ±149 106 | 1 226 230 | ±129 951 | 1.2 |
| H1993 | 1 188 770 | ±11 388 | 1 173 664 | ±100 686 | 1 178 566 | ±40 577 | 1.0 |
Flow cytometric quantitation of cMET cell surface levels at Day 3 using different bispecific antibodies as indicated. Standard deviation (STD) presented in absolute values. F/P, ratio of MESF values for Met2v2 and Met1v1. Flow cytometric experiments were performed in three biological replicates with two technical replicates per measurement (n.d., not detectable).
MESF values for ErbB2/Her2 and ErbB3/Her3
| Cell line | HER2 | HER3 | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| Her2 Fab1v2 | Her2 Fab1v1 | Her3 Fab1v1 | ||||||||
| mRNA | STD | Mean MESF | STD | Mean MESF | STD | mRNA | STD | Mean MESF | STD | |
| T47D | 565 | ±23 | 80 677 | ±14 938 | 32 637 | ±6762 | 2436 | ±71 | 5080 | ±1641 |
| DU145 | 229 | ±4 | 20 524 | ±2317 | 11 066 | ±997 | 159 | ±24 | 2751 | ±429 |
| HT29 | 364 | ±32 | 45 029 | ±1683 | 22 354 | ±3113 | 1472 | ±57 | 4020 | ±86 |
| H1993 | 139 | ±13 | 59 036 | ±4358 | 29 231 | ±1355 | 163 | ±5 | 8482 | ±450 |
| H441 | 465 | ±11 | 66 913 | ±11 847 | 32 722 | ±6152 | 1105 | ±168 | 8297 | ±1932 |
| A549 | 139 | ±12 | 12 219 | ±3157 | 6230 | ±1163 | 21 | ±4 | 1498 | ±266 |
| Hs746T | 161 | ±3 | 16 629 | ±2578 | 7610 | ±888 | 1 | ±3 | 900 | ±326 |
| MKN45 | 405 | ±4 | 53 227 | ±4559 | 27 041 | ±3974 | 1473 | ±30 | 7403 | ±1310 |
| SNU-5 | n.d. | n.d. | 72 193 | ±8871 | 31 752 | ±3322 | n.d. | n.d. | 3175 | ±696 |
Flow cytometric quantitation of 1v1 and 1v2 normalization of Her2 and Her3 cell surface levels at Day 3 using a Fab1v1 BsAb. Flow cytometric experiments were performed in three biological replicates with two technical replicates. mRNA data and standard deviation (STD) are shown in absolute values.
Fig. 4.Comparison of BsAb based receptor quantitation with standard FACS-based methods. (a) cMET receptor quantitation in MKN45 and H1993 with either Dig-Cy5 BsAbs (black bars) or lysine-coupled Cy5 mAbs (white bars). (b) HER3 receptor levels in A549-B34, H441 and MDA-MB175. Dig-Cy5 Her3 Fab1v1 and a HER3-phycoerythrin antibody (QuantiBRITE) were compared.
Fig. 5.Visualization of cMET on tumor cells by confocal microscopy. (a) Analysis of cMET cell surface expression with the indicated antibodies. Cells were stained at 4°C. (b) Gray value–concentration plot of defined concentrations of Cy-5 dye in solution. Measurements were taken at 10 µm distance from the coverglass surface. (c) Analysis cMET cell surface expression and internalized cMET. Cells were incubated with antibodies for 60 min at 37°C. Signals for Met2v2 were corrected for the number of Dig-binding scFv per antibody.