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Published on: October 20, 2015
Circulating tumor DNA measurement provides reliable mutation detection in mice with human lung cancer xenografts
Ling Wei1, Li Xie1,2, Xingwu Wang1
1Shandong Provincial Key Laboratory of Radiation Oncology, Cancer Research Center, Shandong Cancer Hospital affiliated to Shandong University, Shandong Academy of Medical Sciences, Jinan, China.
Abstract:
Genotype-directed targeted therapy has become one of the standard treatment options for non-small cell lung cancer (NSCLC). There have been numerous limitations associated with mutation analysis of tissue samples. Consequently, mutational profile analysis of circulating cell-free DNA (cfDNA) by highly sensitive droplet digital PCR (ddPCR) assay has been developed. Possibly due to differences in cfDNA concentrations, previous studies have shown numerous discrepancies in mutation detection consistency between tissue and cfDNA. In order to rigorously analyze the amount of cfDNA needed, we constructed 72 athymic nude mice xenografted with NCI-H1975 (harboring a EGFR T790M mutation) or NCI-H460 (harboring a KRAS Q61H mutation) human NSCLC. We thoroughly investigated the relationship between plasma cfDNA using Q-PCR targeting human long interspersed nuclear element-1 (LINE-1) retrotransposon and the mouse ACTB gene, and the accuracy of mutation detection by ddPCR at different times post-graft. Our results show that the concentration and fragmentation of human (tumor) derived cfDNA (hctDNA) were positively correlated with tumor weight, but not with mouse-derived cfDNA (mcfDNA). Quantification of cfDNA by Q-PCR depends on the amplified target length. Mutation copies in plasma of per milliliter were positively linked to tumor weight, hctDNA level and hctDNA/mcfDNA ratio, respectively. Furthermore, tumor weight, hctDNA level and ratio of hctDNA/mcfDNA were significantly higher in cfDNA mutation-positive mice than in negative mice. Also, our data indicate that when plasma hctDNA level and hctDNA/mcfDNA ratio reach a certain level in xenografted mice, plasma cfDNA mutation can be detected. In summary, the present study suggests that determination of ctDNA levels may be essential for reliable mutation detection by analysis of cfDNA.
Insights
Accurate non-small cell lung cancer mutation detection using cell-free DNA (cfDNA) requires careful consideration of cfDNA levels. Tumor-derived cfDNA (ctDNA) concentration and ratio are key indicators for reliable mutation identification in plasma.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Genotype-directed targeted therapy is crucial for non-small cell lung cancer (NSCLC).
- Tissue-based mutation analysis has limitations.
- Circulating cell-free DNA (cfDNA) analysis offers an alternative but faces challenges due to variable cfDNA concentrations.
Purpose of the Study:
- To investigate the optimal amount of cfDNA required for accurate mutation detection.
- To analyze the relationship between plasma cfDNA concentration and mutation detection accuracy in NSCLC xenografts.
- To establish reliable indicators for cfDNA-based mutation detection.
Main Methods:
- Constructed 72 NSCLC xenografts in athymic nude mice (NCI-H1975 for EGFR T790M, NCI-H460 for KRAS Q61H).
- Quantified plasma cfDNA using Q-PCR targeting human LINE-1 and mouse ACTB genes.
- Assessed mutation detection accuracy by droplet digital PCR (ddPCR) at various time points post-graft.
Main Results:
- Human cfDNA (hctDNA) concentration and fragmentation correlated positively with tumor weight.
- Mutation copies per milliliter of plasma were linked to tumor weight, hctDNA level, and hctDNA/mcfDNA ratio.
- Higher tumor weight, hctDNA level, and hctDNA/mcfDNA ratio were observed in mutation-positive mice.
Conclusions:
- Tumor-derived cfDNA (ctDNA) levels are critical for reliable mutation detection in plasma.
- The ratio of hctDNA to mouse-derived cfDNA (mcfDNA) is a significant factor in mutation detection.
- Determining ctDNA levels is essential for accurate cfDNA-based mutation analysis in NSCLC.
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