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Biology subjects

Kistler, R.

Publications and source records attributed to Kistler, R..

2 recordsLinked to original sources

Cytosine base editing workflow for quality-controlled multiplex-knockout hiPSC lines

Dissecting polygenic disease mechanisms requires human cell models that harbour multiple targeted genetic modifications in a defined background. However, generating and rigorously validating such models remains difficult. We developed a cytosine base editing workflow to generate multiplex-knockout (KO) human induced pluripotent stem cell (hiPSC) lines. First, we assessed six cytosine base editor (CBE) variants and selected evoBE4max. We then combined sgRNA-guided introduction of premature termination codons and splice-site mutations with fluorescence-based enrichment. This yielded a median on-target C-to-T editing efficiency of 77.5% (range, 27.0-86.5%) across six loci. We generated single-, double-, and triple-KO hiPSC lines for endolysosomal Ca{superscript 2} signalling components (OCaR2, TPC1, TPC2) and confirmed loss-of-function at transcript and protein levels. We performed extensive quality control, including pluripotency assessment, SNP-array karyotyping, and whole-genome sequencing, which indicated minimal guide-directed off-target editing. We further extended multiplex editing to ORAI Ca{superscript 2} channel paralogs. This framework supports scalable production of quality-controlled multiplex-KO hiPSC lines.

genetics↗

Comprehensive analysis of nonsense-mediated mRNA decay targets and activity in cardiomyocytes

Nonsense-mediated mRNA decay (NMD) serves as a mechanism to suppress the expression of mutant alleles containing premature termination codons, limit the expression of aberrantly spliced transcript isoforms, and control the expression of numerous regular genes. While the principles by which NMD recognizes target transcripts are well understood, much less is known about the range of mRNAs subject to NMD in tissues and specialized cell types. Here we describe the landscape of genes whose expression is controlled by NMD in cardiomyocytes derived from human induced pluripotent stem cells (iPSC-CM), using small read RNA sequencing in combination with a potent inhibitor of SMG1, a kinase essential for NMD. We find that NMD targets are highly conserved between iPSC-CM lines derived from two healthy individuals. Beyond gene level analysis, we identify individual exon and intron RNA sequences that strongly accumulate upon SMG1 inhibition. Using the cardiac NMD targets identified at gene, exon and intron level, we then demonstrate reduced NMD efficiency upon knockdown of two essential NMD factors, UPF1 and UPF2, in iPSC-CM. Our analysis demonstrates that quantifying the transcriptome-wide response to SMG1 inhibition represents a highly sensitive approach to assess global activity of the NMD pathway.

molecular biology↗