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Targeted Next-generation Sequencing and Bioinformatics Pipeline to Evaluate Genetic Determinants of Constitutional Disease
Published on: April 4, 2018
Molecular defect of PKD1 gene resulting in abnormal RNA processing in a Thai family
N Rungroj1, W Thongnoppakhun, K Vareesangthip
1Department of Research and Development, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok, Thailand.
Insights
Autosomal dominant polycystic kidney disease (ADPKD) is caused by PKD1 gene mutations. A 20-bp deletion in intron 43 causes abnormal splicing, leading to a shorter PKD1 transcript and aiding in molecular diagnosis.
Area of Science:
- Genetics
- Molecular Biology
- Nephrology
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) is a common inherited kidney disorder.
- Mutations in the PKD1 gene are the primary cause of ADPKD.
Purpose of the Study:
- To investigate the molecular basis of abnormal PKD1 transcript processing in a family with ADPKD.
- To identify the genetic defect responsible for the observed splicing abnormality.
Main Methods:
- Long RT-PCR and nested PCR were used to analyze PKD1 transcripts.
- Splicing analysis identified exon 43 skipping.
- Intronic deletion analysis and genetic linkage studies were performed.
Main Results:
- A 20-bp deletion in intron 43 was identified as the cause of abnormal splicing, leading to the omission of exon 43.
- This resulted in an in-frame deletion of 97 amino acids in the polycystin-1 protein.
- The intronic deletion segregated with the disease in the family and could be used for molecular diagnosis.
Conclusions:
- A specific intronic deletion in the PKD1 gene can cause aberrant mRNA splicing and contribute to ADPKD pathogenesis.
- Direct detection of this intronic deletion provides a reliable method for molecular diagnosis of ADPKD in affected families.
Abstract:
Autosomal dominant polycystic kidney disease (ADPKD) is a common human autosomal disorder caused mainly by mutations of the PKD1 gene. In analysis of PKD1 transcripts by long RT-PCR and nested PCR procedures, we observed PKD1-cDNA fragments from three ADPKD siblings from the same family with a size approximately 250 base pairs (bp) shorter than normal. Further investigations showed that the PKD1 transcripts from these patients had been abnormally processed, the nucleotide sequence of exon 43 containing 291 nt was missing from the transcripts, which would result in an abnormal polycystin-1 with an in-frame deletion of 97 amino acids. This splicing defect did not result from a mutation that disrupted the splice donor or acceptor sites adjacent to exon 43 or the branch sites in flanking introns but was most likely due to 20-bp deletion observed in intron 43. The intronic deletion was present in 8 affected members but absent in 11 unaffected members, corresponding with the results of genetic linkage analysis using 5 polymorphic markers in the PKD1 region. Molecular diagnosis of PKD1 in this family could, therefore, be carried out by genomic DNA amplification to directly detect the PKD1 intronic deletion.
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