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Quantitative Microscopy for Cell-Surface and Cell-Cell Interactions in Immunology
Beatriz Díaz-Bello1, Dalia El Arawi1, Rémy Torro1,2
1Aix-Marseille University, CNRS, INSERM, LAI, Turing Center for Living Systems, Marseille, France.
Insights
This study introduces novel optical microscopy assays for analyzing Natural Killer (NK) cell interactions with cancer cells and surfaces. These methods enable precise quantification of cell-cell cytotoxicity and receptor-ligand dynamics for immunotherapy research.
Area of Science:
- * Immunology
- * Cell Biology
- * Optical Microscopy
Background:
- * Cell-surface and cell-cell interactions are crucial for understanding receptor-ligand dynamics, immune responses, and therapeutic applications like cancer immunotherapy.
- * Traditional methods often rely on ensemble measurements or indirect readouts, limiting detailed analysis of cellular behavior.
- * Optical microscopy offers direct, time-lapsed, cell-level observation, providing advantages over ensemble or indirect techniques.
Purpose of the Study:
- * To describe two complementary microscopy-based assays for evaluating Natural Killer (NK) cell interactions.
- * To quantify dynamic cell-surface ligand binding between primary NK cells and a cancer-mimicking surface.
- * To assess antibody-dependent cell-mediated cytotoxicity (ADCC) between NK cells and tumor cells using advanced imaging and analysis.
Main Methods:
- * Development of a cell-surface ligand binding assay using label-free imaging to study NK cell spreading on antibody-coated surfaces.
- * Implementation of a cell-cell interaction assay for evaluating ADCC via fluorescence imaging and deep learning-based death detection.
- * Utilization of Celldetective, an open-source GUI, for quantitative analysis of cell interaction dynamics from 2D time-lapse microscopy data.
Main Results:
- * Enabled quantitative analysis of dynamic NK cell spreading on antibody-coated surfaces at varying antibody concentrations.
- * Provided high-resolution evaluation of NK cell-mediated ADCC against tumor cells.
- * Facilitated direct observation and quantification of cellular morphology, motility, and interactions at single-cell resolution.
Conclusions:
- * The described microscopy assays offer a powerful, adaptable approach for studying cell interactions in immunology and beyond.
- * These methods, coupled with open-source software, facilitate detailed mechanistic analysis of immune cell functions, including cytotoxicity and synapse formation.
- * The protocol supports antibody evaluation and therapeutic development, particularly in cancer immunotherapy, by providing precise, quantitative insights into cellular dynamics.
Abstract:
Cell-surface and cell-cell interaction assays are fundamental for studying receptor-ligand interactions and characterizing cellular responses and functions. They play a critical role in diagnostics and in modulating immune system activity for therapeutic applications, notably in cancer immunotherapy. By providing time-lapsed and cell-level direct observation of the sample, optical microscopy offers strong advantages compared to current go-to techniques, which are typically either ensemble methods (e.g., measuring cell populations) or indirect readouts (e.g., impedance for adherent cells). This protocol describes two complementary microscopy-based assays: (1) a cell-surface ligand binding assay to quantify dynamic interactions between human primary Natural Killer (NK) cells and a cancer-mimicking surface, and (2) a cell-cell interaction assay to evaluate antibody-dependent cell cytotoxicity (ADCC) mediated by NK cells targeting tumor cells. Additionally, the protocol uses Celldetective, a new open graphical user interface for quantitative analysis of cell interaction dynamics from 2D time-lapse microscopy datasets. Although applied here to primary immune cells, these methods are adaptable to various cell types, including other immune cells, fibroblasts, and cancer cells. This approach enables direct observation and quantification of cellular morphology, motility, cell-cell interactions, and dynamic behaviors at single-cell resolution over time, facilitating detailed analysis of mechanisms such as cell death, migration, and immune synapse formation. Key features • End-to-end protocol for antibody evaluation by optical microscopy on living cells using simple reagents, followed by full open-source software image analysis and data rendering • Quantitative analysis of cell-surface interactions using label-free imaging to study the dynamic spreading of NK cells on antibody-coated surfaces under different antibody concentrations. • High-resolution evaluation of antibody-dependent cell cytotoxicity in NK-cancer cells co-culture using fluorescence imaging, deep learning-based death detection, and synchronized single-cell measurements.
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