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A simple and effective approach for detecting maternal cell contamination in molecular prenatal diagnosis
T Antoniadi1, C Yapijakis, P Kaminopetros
1Laboratory of Molecular Biology, Department of Genetics and Molecular Biology, Mitera Maternity and Surgical Center, Athens, Greece. thantoniadi@yahoo.com
Abstract:
The presence of maternal cells in fetal samples constitutes a serious potential source for prenatal misdiagnosis. Here we present our approach for detecting maternal cell contamination (MCC) at prenatal diagnosis for eight monogenic disorders (autosomal recessive: beta-thalassaemia, sickle-cell anaemia, cystic fibrosis, prelingual deafness; autosomal dominant: achondroplasia, Huntington disease, myotonic dystrophy, neurofibromatosis type I; X-linked: spinobulbar muscular atrophy). Our aim was to apply a simple and low-cost approach, which would easily and accurately provide information on the fetal tissue MCC status. MCC testing was applied to cases of recessive inheritance where the primary mutation screening of the fetus revealed the presence of the maternal mutation, to cases concerning dominant inheritance and to cases of multiple gestation. The potential presence of maternal cells was determined by the amplification of the 3'-HVR/APO B, D1S80, THO1 and VNTRI of vWf polymorphic loci, which have previously demonstrated high heterozygosity in Caucasians. Among 135 prenatal diagnoses, 44 finally needed to be tested for MCC (32.6%). MCC was detected in four cases, where DNA was isolated directly from chorionic villi samples (CVS), and in one case with DNA isolated directly from amniotic fluid (AF). In almost 90% of cases a simple test of one polymorphic locus provided sufficient information about MCC. The choice of the appropriate locus is therefore essential, while the simultaneous screening of both parents provides the means for distinguishing non-informative sites about MCC.
Insights
Maternal cell contamination (MCC) can cause prenatal misdiagnosis. This study presents a simple, low-cost method using polymorphic loci to detect MCC in prenatal samples, ensuring accurate genetic testing for monogenic disorders.
Area of Science:
- Genetics
- Prenatal Diagnostics
- Molecular Biology
Background:
- Maternal cell contamination (MCC) in fetal samples poses a significant risk for inaccurate prenatal diagnosis of monogenic disorders.
- Accurate genetic testing is crucial for timely intervention and management of inherited conditions.
Purpose of the Study:
- To develop and validate a simple, low-cost method for detecting maternal cell contamination (MCC) in prenatal diagnostic samples.
- To ensure the reliability of genetic testing for eight monogenic disorders across different inheritance patterns.
Main Methods:
- Utilized polymorphic loci (3'-HVR/APO B, D1S80, THO1, vWf) for MCC detection in prenatal samples undergoing diagnosis for various monogenic disorders.
- Applied MCC testing to cases with potential maternal mutation presence, dominant inheritance, and multiple gestations.
- Analyzed DNA from chorionic villi samples (CVS) and amniotic fluid (AF).
Main Results:
- Out of 135 prenatal diagnoses, 44 (32.6%) required MCC testing.
- MCC was identified in four cases using CVS and one case using AF.
- A single polymorphic locus test was sufficient for MCC detection in nearly 90% of cases.
Conclusions:
- The developed method effectively detects maternal cell contamination in prenatal samples.
- Accurate selection of polymorphic loci and parental screening are crucial for reliable MCC assessment.
- This approach enhances the accuracy of prenatal diagnosis for monogenic disorders.
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