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Published on: May 7, 2020
Diagnosis of patients with mucopolysaccharidosis type II via RNA sequencing
Jie Tang1, Guoying Chang2, Meili Wei3
1Department of Medical Genetics and Molecular Diagnostic Laboratory, Shanghai Children's Medical Center, Shanghai Jiaotong University School of Medicine, Shanghai, China.
Background:
Mucopolysaccharidosis type II (MPS II) is an X-linked recessive lysosomal storage disorder caused by various variants in the IDS gene. It is known that genomic recombinants between IDS and its homologous pseudogene IDSP1 account for a small number of patients, for whom genetic diagnosis usually relies on restriction enzyme digestion at specific loci. Nevertheless, such approach cannot reveal the impact of rearrangements on IDS transcription, which is crucial for the interpretation of the pathogenicity of rearrangement variants.
Methods:
RNA sequencing (RNA-seq) was explored to analyze transcriptional alterations in four male MPS II patients who were negative for Sanger sequencing of the IDS gene. Reverse transcription-polymerase chain reaction and TA clone sequencing were used to validate RNA-seq analysis results. The IDS-IDSP1 recombinant was determined by sequencing the indicated loci in genome.
Results:
Differential expression analysis showed the expression levels of IDS gene in patients were largely reduced compared to the healthy individuals. Differential splicing analysis revealed skipping of exons 8 and 9 of IDS, without any splice-junction defects at the genomic level. In addition, two types of fusion transcripts, IDS_EOLA1 and IDS_EOLA1-DT_EOLA1 were identified by gene fusion analysis. Sequencing of the known rearrangement alleles showed these four patients have the same type of IDS-IDSP1 recombinant.
Conclusion:
We establish an RNA-seq workflow to analyze transcriptional characteristics of IDS gene from multiple perspectives. Our study validates the diagnostic value of RNA-seq in MPS II, including the discovery of transcriptional alterations and the potential to suggest genome-level rearrangements in IDS.
Insights
RNA sequencing effectively diagnoses Mucopolysaccharidosis type II (MPS II) by revealing IDS gene expression changes and identifying IDS-IDSP1 rearrangements, crucial for understanding disease pathogenicity.
Area of Science:
- Genetics
- Molecular Biology
- Biochemistry
Background:
- Mucopolysaccharidosis type II (MPS II) is an X-linked disorder caused by IDS gene variants.
- Genomic recombinants between IDS and its pseudogene IDSP1 affect a subset of patients.
- Current diagnostic methods for rearrangements may not fully assess transcriptional impact.
Purpose of the Study:
- To explore RNA sequencing (RNA-seq) for analyzing transcriptional alterations in MPS II patients.
- To validate RNA-seq's diagnostic value in identifying IDS gene expression and rearrangement impacts.
- To investigate the pathogenicity of rearrangement variants in MPS II.
Main Methods:
- RNA sequencing (RNA-seq) was performed on four male MPS II patients.
- Reverse transcription-polymerase chain reaction and TA clone sequencing validated RNA-seq findings.
- Genomic sequencing identified IDS-IDSP1 recombinants.
Main Results:
- Patients showed significantly reduced IDS gene expression compared to healthy individuals.
- Exon skipping (exons 8 and 9) was observed without genomic splice-junction defects.
- Two fusion transcripts (IDS_EOLA1 and IDS_EOLA1-DT_EOLA1) and a common IDS-IDSP1 recombinant were identified.
Conclusions:
- An RNA-seq workflow was established for comprehensive IDS gene transcriptional analysis.
- RNA-seq is validated as a diagnostic tool for MPS II, detecting transcriptional changes.
- RNA-seq can identify potential genome-level rearrangements in the IDS gene.
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