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Updated: May 31, 2026

Next Generation Sequencing for the Detection of Actionable Mutations in Solid and Liquid Tumors
Published on: September 20, 2016
KRAS mutant allele-specific imbalance in lung adenocarcinoma
Simion I Chiosea1, Carol K Sherer, Tomislav Jelic
1Department of Pathology, University of Pittsburgh Medical Center, Presbyterian University Hospital, Pittsburgh, PA, USA. chioseasi@upmc.edu
Abstract:
The significance of KRAS mutant allele-specific imbalance (MASI) in lung adenocarcinomas is unknown. KRAS MASI was defined as predominance of the mutant allele over the wild-type allele. We assessed the frequency of KRAS MASI by comparing peak heights of mutant and wild-type alleles on sequencing electropherograms and by KRAS fluorescence in situ hybridization (FISH). A review of sequencing electropherograms of 207 KRAS-mutated lung adenocarcinomas demonstrated 23 (11%) cases with the mutant allele peak higher than the wild-type allele peak and 15 (7%) cases with the mutant allele peak equal to the wild-type allele peak. Of 17 cases with the mutant allele peak higher or equal to the wild-type allele peak, 8 (47%) showed KRAS amplification by FISH. KRAS FISH analysis of 36 KRAS-mutated lung adenocarcinomas with the mutant allele peak lower than the wild-type allele peak, 21 KRAS and EGFR wild-type and 16 EGFR-mutated adenocarcinomas showed no KRAS amplification. KRAS MASI was associated with selective amplification of the KRAS mutant allele (P<0.001). Patients with KRAS MASI showed worse overall survival. The cumulative proportion surviving at 17 months for KRAS MASI group was 35% compared with 84.1% for patients with KRAS mutant allele peak lower than wild-type allele peak (P=0.012). The adverse prognostic significance of KRAS MASI was independent of clinical stage and was maintained among stage I patients. The detection of KRAS MASI in lung adenocarcinomas by sequencing electropherograms may identify patients with more aggressive disease.
Insights
KRAS mutant allele-specific imbalance (MASI) in lung adenocarcinomas is linked to KRAS amplification and worse survival. Detecting KRAS MASI via sequencing may identify aggressive lung cancers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The clinical significance of KRAS mutant allele-specific imbalance (MASI) in lung adenocarcinomas remains unclear.
- KRAS MASI is defined as a predominance of the mutant KRAS allele over the wild-type allele.
Purpose of the Study:
- To investigate the frequency and significance of KRAS MASI in lung adenocarcinomas.
- To determine the association between KRAS MASI, KRAS amplification, and patient prognosis.
Main Methods:
- Assessed KRAS MASI frequency by comparing allele peak heights on sequencing electropherograms.
- Utilized KRAS fluorescence in situ hybridization (FISH) to detect KRAS amplification.
- Correlated KRAS MASI status with overall survival and clinical stage.
Main Results:
- KRAS MASI was detected in a subset of lung adenocarcinomas, with a higher mutant allele peak observed in 11% of cases.
- KRAS MASI was significantly associated with selective amplification of the KRAS mutant allele (P<0.001).
- Patients with KRAS MASI exhibited significantly worse overall survival (17-month survival: 35% vs. 84.1%, P=0.012), independent of clinical stage.
Conclusions:
- KRAS MASI, detectable by sequencing, is associated with KRAS amplification and adverse prognosis in lung adenocarcinomas.
- This finding may help identify patients with more aggressive lung cancer, guiding clinical management.
- Further research is warranted to explore therapeutic strategies targeting KRAS MASI.
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