Testing for ROS1 in non-small cell lung cancer: a review with recommendations
Lukas Bubendorf1, Reinhard Büttner2, Fouad Al-Dayel3
1Institute of Pathology, University Hospital Basel, Basel, Switzerland.
Abstract:
Rearrangements of the ROS1 gene occur in 1-2 % of non-small cell lung cancers (NSCLCs). Crizotinib, a highly effective inhibitor of ROS1 kinase activity, is now FDA-approved for the treatment of patients with advanced ROS1-positive NSCLC. Consequently, focus on ROS1 testing is growing. Most laboratories currently rely on fluorescence in situ hybridisation (FISH) assays using a dual-colour break-apart probe to detect ROS1 rearrangements. Given the rarity of these rearrangements in NSCLC, detection of elevated ROS1 protein levels by immunohistochemistry may provide cost-effective screening prior to confirmatory FISH testing. Non-in situ testing approaches also hold potential as stand-alone methods or complementary tests, including multiplex real-time PCR assays and next-generation sequencing (NGS) platforms which include commercial test kits covering a range of fusion genes. In order to ensure high-quality biomarker testing, appropriate tissue handling, adequate control materials and participation in external quality assessment programmes are essential, irrespective of the testing technique employed. ROS1 testing is often only considered after negative tests for EGFR mutation and ALK gene rearrangement, based on the assumption that these oncogenic driver events tend to be exclusive. However, as the use of ROS1 inhibitors becomes routine, accurate and timely detection of ROS1 gene rearrangements will be critical for the optimal treatment of patients with NSCLC. As NGS techniques are introduced into routine diagnostic practice, ROS1 fusion gene testing will be provided as part of the initial testing package.
Insights
Testing for ROS1 gene rearrangements is crucial for non-small cell lung cancer (NSCLC) treatment. Various methods, including fluorescence in situ hybridization (FISH) and next-generation sequencing (NGS), are available for accurate ROS1 testing.
Area of Science:
- Oncology
- Molecular Diagnostics
- Genetics
Background:
- ROS1 gene rearrangements are found in 1-2% of non-small cell lung cancers (NSCLCs).
- Crizotinib, a ROS1 kinase inhibitor, is FDA-approved for advanced ROS1-positive NSCLC, increasing the importance of ROS1 testing.
- Current ROS1 testing primarily uses fluorescence in situ hybridization (FISH), but alternative methods are emerging.
Purpose of the Study:
- To review current and emerging methods for detecting ROS1 gene rearrangements in NSCLC.
- To highlight the importance of accurate and timely ROS1 testing for patient treatment.
- To discuss quality control measures essential for reliable biomarker testing.
Main Methods:
- Review of fluorescence in situ hybridization (FISH) assays.
- Evaluation of immunohistochemistry (IHC) for screening elevated ROS1 protein levels.
- Discussion of non-in situ methods including multiplex real-time PCR and next-generation sequencing (NGS).
Main Results:
- Immunohistochemistry (IHC) may serve as a cost-effective screening tool for ROS1 rearrangements.
- Multiplex real-time PCR and NGS offer alternative or complementary approaches to FISH.
- NGS is expected to become part of routine initial testing packages for NSCLC.
Conclusions:
- Accurate and timely ROS1 testing is critical for optimal NSCLC patient management with targeted therapies.
- Ensuring high-quality biomarker testing requires proper tissue handling, controls, and external quality assessment.
- The integration of NGS into diagnostics will streamline ROS1 fusion gene testing.
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