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Expediting Comprehensive Molecular Analysis to Optimize Initial Treatment of Lung Cancer Patients With Minimal
Ibiayi Dagogo-Jack1, Hayley Robinson2, Mari Mino-Kenudson3
1Massachusetts General Hospital, Cancer Center and Department of Medicine, Boston, Massachusetts.
Introduction:
Lung cancer patients with tumors harboring actionable alterations can achieve very durable responses to first-line targeted therapy. However, identifying targetable alterations using next-generation sequencing (NGS) is a complex and time-intensive process. As actionable genetic alterations are enriched in lung cancers arising in patients with limited smoking history, we designed a workflow to expedite NGS testing for this group.
Methods:
We developed a protocol to allow for next-day extraction of nucleic acids from frozen tissue. Specimens were designated as high priority during sequencing. We determined the interval between biopsy and NGS results to evaluate whether the workflow reduced the pre-analytical period and in-laboratory turnaround time and allowed for rapid initiation of genotype-matched therapy.
Results:
Between January 2017 and May 2018, 21 patients participated in the expedited sequencing program. The median interval between biopsy and NGS results was 10.7 days. Six patients received results within 1 week of biopsy. Performing molecular analysis on frozen tissue and prioritizing sequencing and analysis of these specimens reduced the pre-analytical period from 3.5 to 1.3 days (p < 0.0001) and shortened in-laboratory turnaround time by 3 days (11.8 versus 8.4 business days, p < 0.0001). Ninety-three percent of patients with an actionable molecular alteration received first-line targeted therapy. The median time-to-initiation of treatment was 19.7 days from biopsy.
Conclusions:
Sequencing and analyzing nucleic acids from frozen tissue is a practical strategy for shortening the time to matched therapy. The significant advantage of upfront treatment with targeted therapies in subsets of lung cancer patients provides rationale for developing workflows that accelerate comprehensive molecular analysis.
Insights
This study developed an expedited workflow for next-generation sequencing (NGS) in lung cancer patients, significantly reducing turnaround time for targeted therapy initiation. This rapid molecular analysis enables faster genotype-matched treatment for improved patient outcomes.
Area of Science:
- Oncology
- Genomics
- Molecular Diagnostics
Background:
- Lung cancer patients with actionable alterations benefit from targeted therapy.
- Identifying these alterations via next-generation sequencing (NGS) is often time-intensive.
- Actionable alterations are more common in lung cancers of patients with limited smoking history.
Purpose of the Study:
- To design and evaluate an expedited NGS workflow for lung cancer patients with limited smoking history.
- To reduce the turnaround time from biopsy to actionable molecular alteration results.
- To facilitate rapid initiation of genotype-matched targeted therapy.
Main Methods:
- Developed a protocol for next-day nucleic acid extraction from frozen lung tumor tissue.
- Prioritized high-priority specimens for sequencing and analysis.
- Evaluated the reduction in pre-analytical and in-laboratory turnaround times.
Main Results:
- The median interval between biopsy and NGS results was 10.7 days.
- The expedited workflow reduced the pre-analytical period from 3.5 to 1.3 days (p < 0.0001).
- In-laboratory turnaround time was shortened by 3 days (11.8 to 8.4 business days, p < 0.0001), with 93% of patients receiving targeted therapy.
Conclusions:
- Utilizing frozen tissue for nucleic acid analysis is a practical approach to shorten the time to targeted therapy.
- Accelerated comprehensive molecular analysis workflows are warranted to leverage the benefits of upfront targeted therapies in specific lung cancer subsets.
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