CRISPR/dCas9-mediated tuning of DMPK transcription reveals a quantitative relationship between toxic repeat RNA expression and MBNL1 activity in myotonic dystrophy.
Aug 2026· Human Molecular Genetics· Vol 35 17· 0 citations
Medicine
TL;DR
It is demonstrated that expanded DMPK transcript levels modulate free MBNL1 concentration and alternative splicing in a dose-dependent manner, underscoring the central role of repeat RNA expression in DM1 pathogenesis.
Abstract
Myotonic dystrophy type 1 (DM1) is caused by (CUG)n-expanded DMPK transcripts that sequester the splicing factor MBNL1 in the nucleus, resulting in widespread splicing abnormalities. Although significant progress has been made in understanding DM1 pathogenesis, the contribution of DMPK transcript levels to disease severity, and the variability of these levels across cell types, tissues, and patients, remains poorly understood. To investigate this in a quantitative manner, we developed isogenic human immortalized myoblast models with inducible modulation of DMPK RNA levels using CRISPR activation (CRISPRa) and interference (CRISPRi) guided by synthetic sgRNAs. CRISPRa elevated DMPK RNA levels by more than three-fold, intensifying MBNL1-dependent splicing defects. In contrast, CRISPRi reduced DMPK RNA expression by approximately 80%, partially rescuing splicing abnormalities. These changes were validated by visualizing (CUG)n foci using RNA FISH. Lowering DMPK transcript levels increased the availability of free nucleoplasmic MBNL1, whereas upregulation further depleted MBNL1, reinforcing the central role of MBNL1 sequestration in repeat RNA toxicity. Our findings demonstrate that expanded DMPK transcript levels modulate free MBNL1 concentration and alternative splicing in a dose-dependent manner, underscoring the central role of repeat RNA expression in DM1 pathogenesis. These models provide a powerful platform for dissecting variability in DMPK expression and for defining the therapeutic thresholds required for effective DMPK knockdown, thereby offering critical insights for the design and evaluation of DMPK and MBNL1-directed therapeutic strategies.
These results implicate perturbed gene expression and pathways that may contribute to the severe phenotypes in LMNA-R541C and suggest several drug classes including multiple cardiac glycosides as potential targeted therapeutic candidates to be explored.
Thomas E. Keller, Ci Koehring, Brett W. Higgins et al.· bioRxiv· 0 citations
Myotonic dystrophy type 1 (DM1) is a multisystemic autosomal dominant disorder caused by the expansion of an unstable CTG•CAG repeat in the DMPK gene. This study examined whether differential expression of DNA repair genes in three different tissues from the same DM1 patient contributed to tissue-specific somatic instability of the repeat tract. RNA-Seq was used to quantify expression levels of eight DNA repair genes (MSH2, MSH3, MSH6, MLH1, MLH3, PMS2, LIG1, and FAN1). Results indicate that the expression levels varied significantly across tissues, with no inter-tissue correlations, suggesting independent regulation and patient-specific differences. Somatic expansion of the repeat tract in blood and muscle was effectively predicted by a complex ePALxAge interaction, while in muscle it was further influenced by MSH3 and PMS2 gene expression, confirming their role as tissue-specific genetic modifiers in DM1. Although only marginally significant, muscle expression of PMS2 and FAN1 appeared to affect age-at-onset: higher FAN1 expression was associated with reduced somatic expansion and later onset. Our findings also suggest a complex competitive balance between promoters and stabilizers of repeat instability, shaping muscle expansion dynamics and potentially modifying clinical onset. Overall, these results indicate that certain DNA repair genes exert stronger, tissue-dependent effects on somatic instability. We confirm that MSH3, PMS2, and FAN1 act as key modifiers not only of somatic expansion, especially in skeletal muscle, but also of DM1 severity. Although RT-qPCR data might be required to validate some of these results, these genes therefore represent promising therapeutic targets for modulating disease progression.
Melissa Palma-Jiménez, Lisbeth Ramirez-Carvajal, Hailey Olafson et al.· DNA Repair· 0 citations
The CRISPR strategy shows compelling evidence as a therapeutic approach targeting PE in cancer and other human diseases as well as the preferential advantages of CRISPR over the antisense technology recently developed targeting the PE of EZH2.
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M. Santafé, I. Hernández, D. Mazzeo et al.· bioRxiv· 0 citations
This chapter outlines a comprehensive methodology for the design, assembly, and functional assessment of CRISPR/dCas9 systems optimized for tomato to investigate pathogen-associated responses.
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