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.

Redox Biology
|July 31, 2024
PubMed

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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