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Lomofungin and dilomofungin: inhibitors of MBNL1-CUG RNA binding with distinct cellular effects
Jason W Hoskins1, Leslie O Ofori2, Catherine Z Chen3
1Department of Neurology, University of Rochester, Rochester, NY 14642, USA.
Abstract:
Myotonic dystrophy type 1 (DM1) is a dominantly inherited neuromuscular disorder resulting from expression of RNA containing an expanded CUG repeat (CUG(exp)). The pathogenic RNA is retained in nuclear foci. Poly-(CUG) binding proteins in the Muscleblind-like (MBNL) family are sequestered in foci, causing misregulated alternative splicing of specific pre-mRNAs. Inhibitors of MBNL1-CUG(exp) binding have been shown to restore splicing regulation and correct phenotypes in DM1 models. We therefore conducted a high-throughput screen to identify novel inhibitors of MBNL1-(CUG)12 binding. The most active compound was lomofungin, a natural antimicrobial agent. We found that lomofungin undergoes spontaneous dimerization in DMSO, producing dilomofungin, whose inhibition of MBNL1-(CUG)12 binding was 17-fold more potent than lomofungin itself. However, while dilomofungin displayed the desired binding characteristics in vitro, when applied to cells it produced a large increase of CUG(exp) RNA in nuclear foci, owing to reduced turnover of the CUG(exp) transcript. By comparison, the monomer did not induce CUG(exp) accumulation in cells and was more effective at rescuing a CUG(exp)-induced splicing defect. These results support the feasibility of high-throughput screens to identify compounds targeting toxic RNA, but also demonstrate that ligands for repetitive sequences may have unexpected effects on RNA decay.
Insights
Researchers screened for compounds to treat myotonic dystrophy type 1 (DM1). They identified lomofungin and its dimer dilomofungin, finding the monomer form more effective in cellular models by avoiding toxic RNA accumulation.
Area of Science:
- Molecular Biology
- Genetics
- Pharmacology
Background:
- Myotonic dystrophy type 1 (DM1) is a genetic neuromuscular disorder caused by expanded CUG repeats in RNA.
- Toxic RNA foci sequester Muscleblind-like (MBNL) proteins, leading to misregulated alternative splicing.
- Inhibiting MBNL1-CUG(exp) binding is a therapeutic strategy for DM1.
Purpose of the Study:
- To identify novel inhibitors of MBNL1-(CUG)12 binding using a high-throughput screen.
- To evaluate the efficacy and cellular effects of identified compounds in DM1 models.
Main Methods:
- High-throughput screening for MBNL1-(CUG)12 binding inhibitors.
- Characterization of lomofungin and its dimer, dilomofungin, in vitro.
- Cellular assays to assess compound effects on CUG(exp) RNA levels and splicing defects.
Main Results:
- Lomofungin was identified as a potent inhibitor; its dimer, dilomofungin, was 17-fold more potent in vitro.
- Dilomofungin increased CUG(exp) RNA in nuclear foci in cells due to reduced RNA turnover.
- Lomofungin (monomer) did not induce CUG(exp) accumulation and effectively rescued splicing defects.
Conclusions:
- High-throughput screening can identify compounds targeting toxic RNA in DM1.
- Ligands targeting repetitive RNA sequences can have unexpected effects on RNA decay.
- Lomofungin, the monomer form, shows therapeutic potential for DM1 by avoiding toxic RNA buildup.
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