Using AlphaLISA Biomarker Kits to Assess Effects of PBMC-Conditioned Media on 3D and 2D Cell Culture Models of Breast Cancer

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APPLIATION NOTE AlphaLISA Technology Authors: Jeanine Hinterneder Jen arlstrom Adam arlson awn Nida PerkinElmer, Inc. Hopkinton, MA Using AlphaLISA iomarker Kits to Assess Effects of PM-onditioned Media on 3 and 2 ell ulture Models of reast ancer Introduction Various cytokines are secreted during an active immune response that can have modulatory effects on target cell populations, including interferon gamma (IFN-γ), tumor necrosis factor alpha (TNFα) and several interleukins. 1 reast cancer cells adapt to immune cell infiltration in response to increased secretion of IFN-γ by T lymphocytes with the upregulation of a variety of proteins. Expression of one such protein, programmed cell death ligand-1 (P-L1), enables tumor cells to evade immune targeting and reduces further immune responses. 2 Human peripheral blood mononuclear cells (PMs) are a heterogeneous population of blood cells having round nuclei consisting of monocytes, macrophages, dendritic cells and lymphocytes (T cells, cells, and NK cells). To reproduce an immune response, we induced a physiologic activation of the T lymphocyte populations in PMs using ynabeads, polystyrene-coated microspheres with antibodies against human 3 and 28 proteins covalently coupled to the surface. The binding of the antibodies to 3 and 28 proteins on PMs mimic the in vivo effects of antigen presenting cells (APs), stimulating cultured T cells to proliferate and further differentiate. 3 Once activated, T cells can upregulate a variety of immune checkpoint molecules and secrete cytokines into the tumor microenvironment which have wide-ranging effects on specific target cancer cell populations. 4 We examine here the effects of these various secreted factors on a triple-negative breast cancer cell line by treatment with conditioned media from activated PMs. For research use only. Not for use in diagnostic procedures.

omplex in vitro systems, such as growing cells in 3 spheroids, can create more physiologically relevant experimental models for tumor biology. To investigate the modulatory effects of cytokines secreted by infiltrating immune cells and determine if the outcome is different when cells are grown in 3, basal breast cancer-derived H38 cells were cultured in both traditional monolayers (2) as well as in ULA-coated, roundbottomed microplates to produce spheroids (3). When using traditional wash-based ELISAs, one challenge in assessing the expression levels of multiple immune checkpoint molecules and cytokines is high sample consumption (typically 100 200 µl samples required per detection molecule of interest). AlphaLISA no-wash chemiluminescent technology offers an alternative method to quickly and easily measure multiple biomarkers using a small amount of sample (5 µl per sample). Fig. 1 shows two examples of AlphaLISA assays used to detect immune checkpoint markers and secreted cytokines. Streptavidin onor beads (Fig. 1A) bind a biotinylated antianalyte antibody and another anti-analyte antibody is directly conjugated to the AlphaLISA Acceptor beads. When the analyte is present in the sample, both antibodies bind to it and bring the onor and Acceptor beads into proximity. Upon excitation at 680 nm, the onor beads generate singlet oxygen which activates the nearby AlphaLISA Acceptor beads, resulting in light production at 615 nm. In the absence of analyte, no signal is generated. An alternate assay set-up used for detection of most of the cytokines measured here (Fig. 1) uses digoxigenin (IG)- labeled antibodies and anti-ig onor beads and is suggested for detection in samples containing high amounts of endogenous biotin. Using a selected set of AlphaLISA kits we examined the modulation of immune checkpoint protein expression and cytokine secretion in cultures of activated PMs and in H38 cells treated with PM-conditioned media or recombinant IFN-γ as a control. We show in this application note that AlphaLISA can be used to detect and quantify multiple immune-modulated proteins from the same wells in complex cell models grown in both 3 spheroid microplates and traditional 2 cell culture. Materials and Methods ell ulture and Treatment H38 (AT, #RL-2314 ) cells were grown in culture media consisting of RPMI-1640 (AT, #30-2001) supplemented with 10% FS (ThermoFisher, #26140079) and seeded into 96-well ViewPlates (PerkinElmer, #6005182) to produce traditional, 2-dimensional cell cultures. For generating 3 spheroid cultures, cells were seeded into ellarrier Spheroid ULA microplates (PerkinElmer, #6055330) which produce uniformly round spheroid-shaped cultures of H38 cells within 24 hours. A single vial of normal human PMs (AT, #PS-800-011 ) stored in liquid nitrogen was rapidly thawed, rinsed in ice-cold Hanks uffered Salt Solution (HSS, ThermoFisher, #14025-134), and re-suspended in media. Half the cells were left untreated and the other half activated by treatment with ynabead Human T-Activator 3/28 (ThermoFisher, #11131) at a standard ratio of one bead to one cell. In some conditions, cultures were treated with (100 ng/ml) recombinant human IFN-γ (iolegend, #570206). A Figure 1. AlphaLISA assays for immune checkpoint proteins and cytokines. iagrammatic representation of AlphaLISA assay set-up and representative standard curves for detection of (A, ) immune checkpoint marker P-L1 from cell lysates and (, ) IFN-γ in biotin-rich media. The sample matrix (blue lines-, ) used for recombinant standard dilution matches the biological samples, e.g., lysis buffer and cell culture media. 2

Figure 2. ell culture and treatment workflow. The experimental workflow is illustrated in Fig. 2. riefly, H38 cells were seeded at 25,000 (25K) cells in 50 µl per well on day zero for 2 cultures. For spheroid cultures, only 5,000 cells were plated per well. The same day, PMs were prepared at a concentration of 500,000 cells per ml (equivalent to 25K/ 50 µl) and grown for two days in T-25 flasks with or without ynabeads. After two days, PMs and media were removed from one set of flasks (with and without ynabead stimulation). After cells were spun down, the conditioned media (M) was collected to a separate tube and spun down a second time to ensure all PMs were removed. onditioned media or fresh media supplemented with IFN-γ were added to appropriate wells containing adherent H38 cells (at 50 µl/well for 2 plates and 10 µl/well for 3 plates). PMs from the second set of separate flasks were removed and added directly into separate wells that contained only media from day zero at the same volumes described for M. As a negative control, ynabeads were added directly to some wells of H38 cells (25K and 5K beads for 2 and 3 cultures respectively). Finally, as a control, some wells containing media only were plated with M (50 µl or 10 µl). Spheroid wells were supplemented with an additional 40 µl of media to bring the total volume of all wells to 100 µl. After two more days in culture, plates were spun down briefly (~four minutes at ~500 RPM) and 50 µl of supernatants were carefully collected (some media was left in the well so that spheroids remained intact for lysis). ultures were then lysed by adding AlphaLISA Lysis buffer (PerkinElmer, #AL001) at 4X the final concentration and shaking (at 600-700 RPM on a ELFIA PlateShaker) for 20 minutes. Supernatant and lysate samples were transferred directly to 96-well polypropylene StorPlates (PerkinElmer, #6008290) and kept up to two weeks at -20 before AlphaLISA assays were performed. AlphaLISA Assays All AlphaLISA assays were run according to their respective assay manuals. Supernatant and lysate plates were thawed before use. Multiple assay kits were run in parallel using 5 µl of sample in separate AlphaPlate -384 microplates (PerkinElmer, #6005350) to measure expression levels of various cytokines and immune checkpoint markers. ata were collected using AlphaLISA detection kits for P-L1 (#AL355), IFN-γ (#AL327), IL-17A (#AL346), IL-6 (#AL3025), IL-2 (#AL333), TNFα (#AL325), IL-1β (#AL220), VEGF (#AL201), XL1/GRO-α (#AL349) and LAG-3 (#AL3058). Total assay time was under three hours for all targets tested. Titrations of recombinant protein standards provided in each kit were run alongside test samples in the same sample matrix (culture media or a mixture of media and lysis buffer). Raw data were interpolated to standard curves to determine concentrations of each protein measured. All AlphaLISA assays were measured on the EnVision 2105 multimode plate reader using standard Alpha settings. 3

ata Analysis Standard curves were plotted in GraphPad Prism and fitted with nonlinear regression analysis using the four-parameter logistic equation (sigmoidal dose-response curve with variable slope) and 1/Y 2 weighting (Fig. 1, 1). Unknown sample concentrations were determined by interpolating the counts measured onto the standard curve; all data shown are the average of at least three individual wells. The lower detection limit (LL) of the assay was calculated by taking the average of the background, adding three times the standard deviation, and interpolating from the standard curve; LL is indicated on graphs by a dotted line. ATPlite 1step Assays ellular proliferation and viability were assessed by examining ATP content using ATPlite 1step (PerkinElmer, #6016731) and ATPlite 1step 3 (PerkinElmer, #6066736) following standard kit protocols with the following adjustments: plates were previously spun down to collect 50 µl of supernatants for biomarker analysis, therefore 50 µl of ATPlite 1step reagent was added to the remaining 50 µl of cell culture. Also, for the ATPlite 1step 3 assay, after standard incubation and mixing steps, 100 µl of the assay volume was removed to a clear bottom black ViewPlate- 96 with ackseal (PerkinElmer, #6005189) for measurement (to match assay plate color used for 2 assays). Luminescence was measured on the EnVision using standard settings. Spheroid Imaging To visualize 3 cultures, a subset of H38 cells were loaded for 30 minutes on day zero with MFA (ThermoFisher, #7025), a green fluorescent dye that is maintained through multiple cell divisions. Two flasks of PMs (to be used for imaging) were loaded with MTPX red fluorescence dye (ThermoFisher, #34552) on day two prior to addition to culture plates. One hour prior to imaging on day four, cells were further labeled with the addition of Hoechst 33342 (ThermoFisher, #H3570) and SyTox Red (ThermoFisher, #S34859) dyes to culture media. ells were imaged on the Opera Phenix High ontent Imager using the 10X objective with Harmony 4.8 software with lasers and filters set for imaging four fluorescent wavelength ranges and brightfield. Each well was imaged from -50 µm to 146 µm, with 4 µm steps to achieve a total of 50 images and a range of 196 µm to allow for imaging from the top to the bottom of each spheroid or collection of PMs. Results P-L1 Expression Upregulated by IFN-γ and PM- onditioned Media in 2 and 3 ultures H38 cells are an epithelial-like, ER-negative cell line and a representative model of triple-negative breast cancer. 5 Previously, we have shown that P-L1 expression can be induced in cultured H38 cells in a concentration-dependent manner with exogenous IFN-γ treatment and measured in cell lysates using AlphaLISA. 6 To confirm that IFN-γ is secreted by stimulated immune populations and probe the effects of IFN-γ on P-L1 expression, H38 cells were grown as monolayers and 3 spheroids. oncurrently, human PMs were suspended at the same initial density in flask cultures and half were stimulated for A 4 Figure 3. IFN-γ secreted by activated PMs and P-L1 upregulation by secreted factors in 2 adherent and 3 spheroid cultures. Human PMs stimulated with ynabeads secreted significant levels of IFN-γ as measured by AlphaLISA biomarker kits in (A) 2 and () 3 culture. P-L1 expression levels in H38 cells grown in () adherent and () spheroid cultures are potentiated by treatment with conditioned media (M) from stimulated PMs. ontrol treatment with 100 ng/ml IFN-γ is shown as a reference.

two days with ynabeads. After two days, a subset of H38 cultures were treated with PM-conditioned media (M) or media supplemented with 100 ng/ml IFN-γ. PMs were also seeded into separate wells in each plate for two additional days of cell culture. So, in this set-up, we simultaneously probe the effects of stimulating PMs on secreted levels of various cytokines in supernatant as well as the effect of conditioned media on the expression levels of membrane proteins in H38 and PM cell populations in cellular lysates. As previously reported, 2 PM stimulation with ynabeads induces IFN-γ secretion into culture media as illustrated by the red bars in Fig. 3A and 3. In 2 cultures the PMs continued to secrete IFN-γ after addition to culture plates, as seen with the PM-only wells (stimulated for four days) showing higher levels of IFN-γ than wells containing only M or H38 cells with M added on day two. This contrasts the 3 result where the levels of IFN-γ in supernatants from PMs plated in 3 cell cultures are not greater than wells treated with M two days earlier. ata from H38-alone wells indicate that ynabeads do not stimulate secretion of IFN-γ in the target cell population in both 2 and 3 culture. The addition of recombinant IFN-γ significantly enhances P-L1 expression in both 2 and 3 H38 cell cultures (Fig. 3 and 3, white bars) while treatment with M from stimulated PMs generated at least equal or greater levels of P-L1 expression. We did not detect significant P-L1 expression in the stimulated PM cultures alone, as previously reported, 7 and expect that this was due to lot differences in the source of PM (e.g., donor variation). Since the levels of IFN-γ detected in M used for stimulation (<1 ng/ml) is lower than the concentration of recombinant IFN-γ (100 ng/ml), other factors in the M must be contributing to the increase in P-L1 expression. Additional ytokines Secreted in Response to Immune ell Activation IFN-γ is one of many cytokines secreted by invading immune cells that can interact with and influence cancer cell populations. Since AlphaLISA assays only utilize a small volume (5 µl) of sample, we examined expression levels of five additional cytokines and a growth factor from supernatants collected from the same samples shown in Fig. 3. The data from these secreted proteins are presented in Figs. 4 and 5. We observe a few different modulatory effects of treatment when measuring cytokine concentrations secreted by either PMs or H38 cells. IL-17A is a pro-inflammatory cytokine secreted primarily by a subset of T helper lymphocytes and we observe in our cultures that PM activation resulted in IL-17A secretion. IL-17A is reported to be a powerful inducer of other inflammatory cytokines such as TNFα. 8 It is, therefore, not surprising to see large amounts of both TNFα and IL-1β (also linked to IL-17A secretion) in activated PM conditions in both culture types (Fig. 4). In addition, TNFα and IL-17A have been reported to up-regulate P-L1 expression in other human cancer types. 9 Interestingly, IL-6 (Fig. 5A, 5) and IL-2 (Fig. 5, 5E) were present in the greatest amounts in H38 wells treated with M from activated PMs. This suggests that H38 cells are induced to secrete IL-6 and IL-2 by factors present in the M from activated PMs. This effect is not due to IFN-γ, as treatment of H38 cells with recombinant IFN-γ alone does not enhance secretion of either IL-2 or IL-6 (data not shown). It is important to note here that IL-6 secretion levels exceeded the concentration range of the assay for 2 cultures, so all samples were first diluted 1:3 with assay buffer. Vascular endothelial growth factor (VEGF), a signaling protein that promotes the growth of new blood vessels, was found to be secreted in both 2 (Fig. 5) and 3 (Fig. 5F) cultures by the H38 cells and not affected by any treatments. A E F Figure 4. etection of cytokines in cell culture supernatants. Levels of TNFα (A, ), IL-1β (, E) and IL-17A (, F) measured in supernatants from PMs and H38 cells in 2 (top graphs) and 3 culture plates (bottom graphs) with AlphaLISA kits. 5

A E F Figure 5. Additional cytokines and growth factors detected in cell culture supernatants. Levels of IL-6 (A, ), IL-2 (, E), and VEGF (, F) measured in cell supernatants from PMs and H38 cells cultured in 2 (top graphs) and 3 (bottom graphs). etection of Proteins Modulated by Treatment in Lysate Samples In addition to measuring cytokine secretion in supernatants, cells from the same wells of the culture plate were lysed and measured for the presence of other proteins. LAG-3 (223) is an inhibitory immune checkpoint receptor expressed primarily on activated NK and T cell lines which is rapidly gaining in popularity as a hot target for development of cancer immunotherapies. Multiple LAG-3-targeted therapies are currently in preclinical development and in clinical trials. 10 Assessment of our cultures show LAG-3 expressed in activated PMs and, to a lesser extent, in conditioned media from activated PMs in both 2 and 3 cultures (Fig. 6A and 6). To lyse free-floating spheroid cultures, it was necessary to leave a small volume of media in each well and more concentrated lysis buffer added to lyse cells. Therefore, the lysate samples are a mixture of cellular lysate and residual supernatant. In order to compare 3 and 2 cultures, the same volumes of supernatants and lysis buffers were added. It is important to note that there are no cells present in the M only condition, so the results for LAG-3 suggest that the AlphaLISA kit can detect the soluble form of LAG-3 (slag-3). GROα/XL1 is a chemokine that acts as a chemoattractant for leukocytes during inflammation with recent reports describing a role for GROα in tumor cell transformation and metastasis in various forms of cancer, including triple negative breast cancer cell lines such as H38 cells. 11 Examination of our culture models confirm that GROα is highly expressed by H38 cells. The expression levels were so high that sample dilution (2X in assay buffer) was necessary to adjust concentrations to fall within the dynamic range for the assay. Interestingly, GROα expression by H38 cells increases dramatically when cells are stimulated with M from activated PMs (Fig. 6 and 6), particularly in the 2 cell cultures. GROα expression induced by M in H38 cells is likely caused by heightened levels of inflammatory markers other than IFN-γ since treatment with recombinant IFN-γ alone did not affect levels of GROα protein. 6

A Figure 6. etection of immune checkpoint molecules and chemokines. LAG-3 (A, ) and GROα (, ) were measured in 2 (top graphs) and 3 (bottom graphs) cell culture. Samples were a mixture of lysate and supernatant collected from the same wells as in previous figures. ata for GROα were corrected for dilution factor. Effects of Treatment ondition on ell Viability, Proliferation, and 3 Morphology Treatment effects on cellular proliferation and viability were assessed using ATPlite 1step (Fig. 7A) and ATPlite 1step 3 (Fig. 7) assays. Recombinant IFN-γ had no apparent effect on cell viability or number in H38 cells (Fig. 7, white bars). Treatment of H38 cells for two days with M from activated PMs resulted in a mild reduction in ATP in both culture formats, suggesting that secreted factors from PMs were affecting cancer cell proliferation or promoting cell death. Additionally, in PMs alone, stimulation with ynabeads resulted in large enhancement in total number of PMs, especially so in 3 cell culture plates, measured by increased ATP levels (Fig. 7) and by visual inspection (see images of 3 cultures in Fig. 8). In comparison, H38 cells treated for three days with ynabeads displayed no effect on ATP levels and cell health. A Figure 7. Assessing treatment effects on cellular viability and proliferation. (A) ATPlite 1step and () ATPlite 1step 3 assays measured ATP content in cultures of H38 cells and PMs. 7

To visually inspect and assess the effects of treatment on 3 morphology, a separate spheroid plate was prepared concurrently for imaging. H38 and PM cell populations were individually loaded with fluorescent dyes just before plating (H38 with green and PM with red). On day four, just before imaging, cells were also labeled with Hoechst (1:2000 final dilution) and SyTox Red (1:1000 final dilution) to label nuclei and dead cells. Spheroid culture plates were then imaged on the Opera Phenix. Representative images (made from the maximum projection image) for each condition were compiled and are presented in Fig. 8. These images indicate activation of PMs increases the apparent number of cells per well. Also, there appears to be similar levels of cell death occurring between conditions (with no overt differences in SyTox Red label). onclusion We show here that AlphaLISA assays can be used to rapidly measure multiple proteins in both cell culture supernatant and lysates from the same wells of a culture plate in parallel. This data can be used to examine and compare complex protein expression profiles containing numerous targets from cancer and immune cells in either 2 or 3 cell cultures. Stimulation of PMs with ynabeads and H38 cells with conditioned media from activated immune cells induced differential expression and secretion levels of inflammatory cytokines, chemokines and immune checkpoint proteins which was not dependent simply on an increase in cell number. Many of these inflammatory cytokines interact within the complex tumor microenvironment in vivo to affect the expression of different checkpoint proteins that can either promote or inhibit tumor progression. Although the trends seen here were similar between 2 and 3 culture methods for the selected cell stimulations, that may not be the case for other targets of interest for cancer immunotherapies. Additionally, the level of target protein measured was at times reduced in 3 spheroids compared to 2 culture. ontinuing to perform research in the traditional 2 format could potentially result in overestimation of the physiological significance of the relative levels of a protein present in the tumor microenvironment. Figure 8. Images of 3 spheroid cultures. H38 cells and PMs grown in ellarrier Spheroid microplates imaged on the Opera Phenix with the 10X long working distance objective. Representative images shown are of the maximum projected image through the stack to optimize the number of cells displayed. rightfield images (top), green-labeled H38 cells or orange-labeled PMs (2 nd row), nuclear stain (3 rd row), and SyTox Red (bottom row) stain are shown for each representative spheroid. 8

References 1. Hinterneder, J et al. (2018). iotin-free AlphaLISA Assays for the etection of ytokines in PM Supernatants. PerkinElmer Application Note. 2. Tolba, MF and Omar, HA (2018). Immunotherapy, an evolving approach for the management of triple negative breast cancer: onverting non-responders to responders. ritical Reviews in Oncology/Hematology: Vol 122, 202-207. 3. Martkamchan, S et al. (2016). The effects of Anti-3/28 oated eads and IL-2 on Expanded T ell for Immunotherapy. Adv lin Exp Med: Vol 25(5), 821-828. 4. Zhu, J, et al. (2010). ifferentiation of Effector 4 T ell Populations. Annu Rev Immunol: Vol 28, 445-489. 5. Grigoriadis, A et al. (2012). Molecular haracterization of ell Line Models for Triple-Negative reast ancers. M Genomics: Vol 13, 619. 6. Hinterneder, J (2017). Measuring P-L1 expression in reast ancer ell Lines with AlphaLISA. PerkinElmer Application Note. 7. Hinterneder, J et al. (2018). Rapid, No-wash Measurement of Immune heckpoint Molecules and ytokines in o-cultures of Immune ells and ancer ell Lines. PerkinElmer Application Note. 8. Fabre, J et al. (2016). Targeting the Tumor Microenvironment: The Protumor Effects of IL-17 Related to ancer Type. Int J Mol Sci: Vol 17, 1433-1445. 9. Wang, X et al. (2017). Inflammatory cytokines IL-17 and TNF-α up-regulate P-L1 expression in human prostate and colon cancer cells. Immunol Lett: Vol 184, 7-14. 10. Andrews, L et al.(2017). LAG3 (223) as a ancer Immunotherapy Target. Immunol. Rev.: 276(1): 80-96. 11. hat, K et al. (2017). GROα overexpression drive cell migration and invasion in triple negative breast cancer cells. Oncology Reports: Vol 38: 21-30. PerkinElmer, Inc. 940 Winter Street Waltham, MA 02451 USA P: (800) 762-4000 or (+1) 203-925-4602 www.perkinelmer.com For a complete listing of our global offices, visit www.perkinelmer.com/ontactus opyright 2018, PerkinElmer, Inc. All rights reserved. PerkinElmer is a registered trademark of PerkinElmer, Inc. All other trademarks are the property of their respective owners. 014425_01 PKI