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Published on: March 7, 2019
Nonsense suppression therapies in human genetic diseases
Patrícia Martins-Dias1,2, Luísa Romão3,4
1Department of Human Genetics, Instituto Nacional de Saúde Doutor Ricardo Jorge, Av. Padre Cruz, 1649-016, Lisbon, Portugal.
Abstract:
About 11% of all human disease-associated gene lesions are nonsense mutations, resulting in the introduction of an in-frame premature translation-termination codon (PTC) into the protein-coding gene sequence. When translated, PTC-containing mRNAs originate truncated and often dysfunctional proteins that might be non-functional or have gain-of-function or dominant-negative effects. Therapeutic strategies aimed at suppressing PTCs to restore deficient protein function-the so-called nonsense suppression (or PTC readthrough) therapies-have the potential to provide a therapeutic benefit for many patients and in a broad range of genetic disorders, including cancer. These therapeutic approaches comprise the use of translational readthrough-inducing compounds that make the translational machinery recode an in-frame PTC into a sense codon. However, most of the mRNAs carrying a PTC can be rapidly degraded by the surveillance mechanism of nonsense-mediated decay (NMD), thus decreasing the levels of PTC-containing mRNAs in the cell and their availability for PTC readthrough. Accordingly, the use of NMD inhibitors, or readthrough-compound potentiators, may enhance the efficiency of PTC suppression. Here, we review the mechanisms of PTC readthrough and their regulation, as well as the recent advances in the development of novel approaches for PTC suppression, and their role in personalized medicine.
Insights
Nonsense mutations cause disease by creating premature stop codons (PTCs). Readthrough therapies aim to suppress PTCs, but nonsense-mediated decay (NMD) reduces their effectiveness. Combining PTC readthrough with NMD inhibition enhances therapeutic potential.
Area of Science:
- Genetics
- Molecular Biology
- Pharmacology
Background:
- Nonsense mutations, responsible for 11% of genetic diseases, introduce premature translation-termination codons (PTCs).
- PTCs lead to truncated, often non-functional proteins, causing various genetic disorders, including cancer.
- Current therapeutic strategies focus on nonsense suppression (PTC readthrough) to restore protein function.
Purpose of the Study:
- To review the mechanisms of PTC readthrough and its regulation.
- To discuss recent advances in developing novel PTC suppression approaches.
- To explore the role of these therapies in personalized medicine.
Main Methods:
- Review of existing literature on nonsense suppression and NMD.
- Analysis of translational readthrough-inducing compounds.
- Investigation of NMD inhibitors and readthrough-compound potentiators.
Main Results:
- PTC readthrough therapies offer potential benefits for numerous genetic disorders.
- Nonsense-mediated decay (NMD) degrades PTC-containing mRNAs, limiting readthrough efficiency.
- Inhibiting NMD can enhance the efficacy of PTC readthrough therapies.
Conclusions:
- PTC readthrough and NMD inhibition represent a promising strategy for genetic disease treatment.
- These approaches hold significant potential for personalized medicine applications.
- Further development of novel PTC suppression methods is crucial.
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