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Visualizing DNA Damage Repair Proteins in Patient-Derived Ovarian Cancer Organoids via Immunofluorescence Assays
Published on: February 24, 2023
Predicting DNA damage response in non-small cell lung cancer organoids via simultaneous label-free autofluorescence
Terrence T Roh1, Aneesh Alex1, Prasanna M Chandramouleeswaran2
1GSK Center for Optical Molecular Imaging, Beckman Institute for Advanced Science and Technology, University of Illinois Urbana-Champaign, Urbana, IL, 61801, USA; In Vitro In Vivo Translation, GSK plc, Collegeville, PA, 19426, USA.
Abstract:
The DNA damage response (DDR) is a fundamental readout for evaluating efficacy of cancer therapeutics, many of which target DNA associated processes. Current techniques to evaluate DDR rely on immunostaining for phosphorylated histone H2AX (γH2AX), which is an indicator of DNA double-strand breaks. While γH2AX immunostaining can provide a snapshot of DDR in fixed cell and tissue samples, this method is technically cumbersome due to temporal monitoring of DDR requiring timepoint replicates, extensive assay development efforts for 3D cell culture samples such as organoids, and time-consuming protocols for γH2AX immunostaining and its evaluation. The goal of this current study is to reduce overall burden on assay duration and development in non-small cell lung cancer (NSCLC) organoids by leveraging label-free multiphoton imaging. In this study, simultaneous label-free autofluorescence multiharmonic (SLAM) microscopy was used to provide rich intracellular information based on endogenous contrasts. SLAM microscopy enables imaging of live samples eliminating the need to generate sacrificial sample replicates and has improved image acquisition in 3D space over conventional confocal microscopy. Predictive modeling between label-free SLAM microscopy and γH2AX immunostained images confirmed strong correlation between SLAM image features and γH2AX signal. Across multiple DNA targeting chemotherapeutics and multiple patient-derived NSCLC organoid lines, the optical redox ratio and third harmonic generation channels were used to robustly predict DDR. Imaging via SLAM microscopy can be used to more rapidly predict DDR in live 3D NSCLC organoids with minimal sample handling and without labeling.
Insights
This study introduces Simultaneous Label-free Autofluorescence Multiharmonic (SLAM) microscopy to rapidly assess DNA damage response (DDR) in non-small cell lung cancer organoids, reducing assay time and complexity.
Area of Science:
- Cancer Therapeutics
- Molecular Biology
- Biophotonics
Background:
- DNA damage response (DDR) evaluation is crucial for cancer therapeutics.
- Current methods like γH2AX immunostaining are time-consuming and complex for 3D models.
- Assay development for 3D cell cultures, such as organoids, presents significant challenges.
Purpose of the Study:
- To reduce assay duration and development burden for DDR evaluation in non-small cell lung cancer (NSCLC) organoids.
- To leverage label-free multiphoton imaging for efficient DDR assessment.
- To establish a rapid prediction method for DDR in live 3D NSCLC organoids.
Main Methods:
- Simultaneous Label-free Autofluorescence Multiharmonic (SLAM) microscopy was employed.
- SLAM microscopy utilizes endogenous contrasts for intracellular information.
- Predictive modeling correlated SLAM features with γH2AX immunostaining.
Main Results:
- SLAM microscopy enabled live imaging, eliminating the need for sacrificial replicates.
- Strong correlation was confirmed between SLAM image features and γH2AX signal.
- Optical redox ratio and third harmonic generation channels robustly predicted DDR across different chemotherapeutics and NSCLC organoid lines.
Conclusions:
- SLAM microscopy offers a rapid, label-free method for DDR prediction in live 3D NSCLC organoids.
- This approach significantly reduces sample handling and assay complexity.
- SLAM microscopy streamlines the evaluation of cancer therapeutic efficacy by providing timely DDR insights.
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