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Published on: October 20, 2019
The Asymmetric Threat of Maternal Cell Contamination in Prenatal Single-Gene Testing
Mengmeng Li1, Jieping Song2, Kui Sun3
1National Clinical Research Center for Women's Health and Obstetric and Gynecologic Diseases, Department of Obstetrics and Gynecology, Peking Union Medical College Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing 100730, China.
Abstract:
Background/Objectives: Maternal cell contamination (MCC) is a pervasive challenge in prenatal single-gene testing, as it can cause both false-positive and false-negative results. Despite its clinical significance, quantitative tolerance thresholds for MCC in whole exome sequencing (WES) and Sanger sequencing remain limited. Methods: We established a gradient contamination model (5-95%) using genomic DNA from 20 mother-child pairs and assessed the detection fidelity for single-nucleotide variants (SNVs) and insertions/deletions (InDels) in two clinically relevant scenarios using both WES and Sanger sequencing-Scenario 1 (Fetus Heterozygous/Mother Wild-type) and Scenario 2 (Fetus Wild-type/Mother Heterozygous). Results: In Scenario 1, analysis of the 20 loci evaluated by both WES and Sanger sequencing revealed false-negative rates of 0% when MCC ≤ 30%, which then increased sharply across the 30-70% MCC range and reached 100% at 95% MCC. In Scenario 2, analysis of 12,627 WES loci showed a false-positive rate of ≤1.0% when MCC ≤ 10%, which then increased from 1.0% to 76.6% within the 10-30% MCC range and climbed to 89.8% at 50% MCC. A similar pattern was observed for the 20 loci analyzed by both WES and Sanger sequencing in this scenario. These findings potentially support a three-tier stratification: low-risk (MCC ≤ 30% in Scenario 1 and ≤10% in Scenario 2), moderate-risk (30% < MCC < 70% in Scenario 1, 10% < MCC < 30% in Scenario 2), and high-risk (MCC ≥ 70% in Scenario 1 and ≥30% in Scenario 2). Conclusions: Our findings reveal a clear directional asymmetry of MCC tolerance between the two scenarios, indicating that MCC tolerance depends not only on contamination level but also on the genotype of the contaminating DNA. We further propose a clinical reference framework based on a three-tier risk stratification for prenatal single-gene testing, which can guide result interpretation and laboratory decision-making, including decisions about reliable reporting, orthogonal validation, or re-sampling.
Insights
Maternal cell contamination (MCC) poses risks in prenatal testing. This study establishes risk thresholds for MCC in whole exome sequencing and Sanger sequencing, proposing a three-tier framework for interpreting results accurately.
Area of Science:
- Genetics
- Molecular Biology
- Bioinformatics
Background:
- Maternal cell contamination (MCC) is a significant challenge in prenatal genetic testing, potentially leading to inaccurate results.
- Quantitative thresholds for acceptable MCC levels in whole exome sequencing (WES) and Sanger sequencing are not well-defined.
Purpose of the Study:
- To establish quantitative tolerance thresholds for MCC in prenatal single-gene testing using WES and Sanger sequencing.
- To assess the impact of MCC on variant detection in different genetic scenarios.
Main Methods:
- A gradient contamination model (5-95% MCC) was created using DNA from 20 mother-child pairs.
- Detection fidelity of single-nucleotide variants (SNVs) and insertions/deletions (InDels) was evaluated in two scenarios: Fetus Heterozygous/Mother Wild-type and Fetus Wild-type/Mother Heterozygous.
Main Results:
- In Scenario 1 (Fetus Heterozygous/Mother Wild-type), false-negative rates remained 0% for MCC ≤ 30%, increasing sharply thereafter.
- In Scenario 2 (Fetus Wild-type/Mother Heterozygous), false-positive rates were ≤1.0% for MCC ≤ 10%, rising significantly with higher contamination levels.
- A three-tier risk stratification (low, moderate, high) for MCC was proposed based on these findings.
Conclusions:
- MCC tolerance exhibits directional asymmetry, dependent on both contamination level and the genotype of the contaminating DNA.
- The proposed three-tier risk stratification framework can guide interpretation of prenatal genetic testing results and inform laboratory decisions.
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