Noninvasive Prenatal Diagnosis of Duchenne Muscular Dystrophy: Comprehensive Genetic Diagnosis in Carrier, Proband, and Fetus

Author:

Yoo Seong-Keun12,Lim Byung Chan34,Byeun Jiyoung3,Hwang Hee3,Kim Ki Joong3,Hwang Yong Seung3,Lee JoonHo5,Park Joong Shin5,Lee Yong-Sun6,Namkung Junghyun6,Park Jungsun6,Lee Seungbok1,Shin Jong-Yeon17,Seo Jeong-Sun12789,Kim Jong-Il189,Chae Jong Hee34

Affiliation:

1. Genomic Medicine Institute (GMI), Medical Research Center, Seoul National University, Seoul, Korea

2. Interdisciplinary Program in Bioinformatics, Seoul National University, Seoul, Korea

3. Department of Pediatrics, Seoul National University College of Medicine, Seoul National University Children's Hospital, Seoul, Korea

4. Institute of Reproductive Medicine and Population, Medical Research Center, Seoul National University, Seoul, Korea

5. Department of Obstetrics and Gynecology, Seoul National University College of Medicine, Seoul National University Children's Hospital, Seoul, Korea

6. Bioinformatics Technology Lab, Healthcare Group, Future Technology R&D Division, SK Telecom, Sungnam, Korea

7. Macrogen, Seoul, Korea

8. Department of Biomedical Sciences, Seoul National University Graduate School, Seoul, Korea

9. Department of Biochemistry and Molecular Biology, Seoul National University College of Medicine, Seoul, Korea

Abstract

Abstract BACKGROUND Noninvasive prenatal diagnosis of monogenic disorders using maternal plasma and targeted massively parallel sequencing is being investigated actively. We previously demonstrated that comprehensive genetic diagnosis of a Duchenne muscular dystrophy (DMD) patient is feasible using a single targeted sequencing platform. Here we demonstrate the applicability of this approach to carrier detection and noninvasive prenatal diagnosis. METHODS Custom solution-based target enrichment was designed to cover the entire dystrophin (DMD) gene region. Targeted massively parallel sequencing was performed using genomic DNA from 4 mother and proband pairs to test whether carrier status could be detected reliably. Maternal plasma DNA at varying gestational weeks was collected from the same families and sequenced using the same targeted platform to predict the inheritance of the DMD mutation by their fetus. Overrepresentation of an inherited allele was determined by comparing the allele fraction of 2 phased haplotypes after examining and correcting for the recombination event. RESULTS The carrier status of deletion/duplication and point mutations was detected reliably through using a single targeted massively parallel sequencing platform. Whether the fetus had inherited the DMD mutation was predicted correctly in all 4 families as early as 6 weeks and 5 days of gestation. In one of these, detection of the recombination event and reconstruction of the phased haplotype produced a correct diagnosis. CONCLUSIONS Noninvasive prenatal diagnosis of DMD is feasible using a single targeted massively parallel sequencing platform with tiling design.

Funder

Korea Health Industry Development Institute

Ministry of Health and Welfare

Seoul National University Hospital

Publisher

Oxford University Press (OUP)

Subject

Biochemistry (medical),Clinical Biochemistry

Reference24 articles.

1. Presence of fetal DNA in maternal plasma and serum;Lo;Lancet,1997

2. Clinical applications of maternal plasma fetal DNA analysis: translating the fruits of 15 years of research;Chiu;Clin Chem Lab Med,2013

3. Non-invasive prenatal testing using massively parallel sequencing of maternal plasma DNA: from molecular karyotyping to fetal whole-genome sequencing;Lo;Reprod Biomed Online,2013

4. Committee Opinion No. 545: noninvasive prenatal testing for fetal aneuploidy;American College of Obstetricians and Gynecologists Committee on Genetics;Obstet Gynecol,2012

5. Maternal plasma DNA sequencing reveals the genome-wide genetic and mutational profile of the fetus;Lo;Sci Transl Med,2010

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