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Pitsch, J. W.

Publications and source records attributed to Pitsch, J. W..

2 recordsLinked to original sources

Exon-skipping and genetic compensation due to biallelic mutations in the neurodevelopmental disease gene LNPK

Homozygous loss-of-function mutations in LNPK, the gene encoding the endoplasmic reticulum-associated protein lunapark, have previously been linked to an autosomal recessive neurodevelopmental syndrome. Here, we describe an individual harboring compound heterozygous predicted splice site mutations with an overall matching phenotype. In cultured fibroblasts, these mutations result in a dearth of transcript and severe loss of protein, thereby establishing their likely pathogenicity. The underlying reduction in gene expression is due to the activation of the nonsense-mediated decay (NMD) pathway as a consequence of exon-skipping rather than intron retention, leading to aberrant transcripts. We further demonstrate that LNPK is subject to genetic compensation, as both cells from the affected individual and her mother exhibit a significant increase in transcript compared to a control cell line when treated with an inhibitor of NMD. Together, this report describes novel disease-causing variants in LNPK and reveals their impact on transcription and mRNA stability.

genetics↗

CREPE (CREate Primers and Evaluate): a computational tool for large-scale primer design and specificity analysis

Polymerase chain reaction (PCR) is ubiquitous in biological research labs, as it is a fast, flexible, and cost-effective technique to amplify a DNA region of interest. However, manual primer design can be an error-prone and time-consuming process depending on the number and composition of target sites. While Primer3 has emerged as an accessible tool to solve some of these issues, additional computational pipelines are required for appropriate scaling. Moreover, this does not replace the manual confirmation of primer specificity (i.e., the assessment of off-targets). To overcome the challenges of large-scale primer design, we fused the functionality of Primer3 and In-Silico PCR (ISPCR); this integrated pipeline, CREPE (CREate Primers and Evaluate), performs primer design and specificity analysis through a custom evaluation script for any given number of target sites at scale. Its final output summarizes the lead forward and reverse primer pair for each target site, a measure of the likelihood of binding to off-targets, and additional information to aid decision-making. We provide this through a customized workflow for targeted amplicon sequencing (TAS) on a 150bp paired-end Illumina platform. Experimental testing showed successful amplification for more than 90% of primers deemed acceptable by CREPE.

genetics↗