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Nonsense Mutations in Rare and Ultra-Rare Human Disorders: An Overview
Emanuele Vitale1, Davide Ricci1, Federica Corrao1
1Department of Biological, Chemical and Pharmaceutical Sciences and Technologies, University of Palermo, Palermo, Italy.
Abstract:
Over 7000 rare diseases have been described, collectively affecting 350 million people worldwide. Most of these conditions result from nonsense mutations, representing approximately 10% of all genetic mutations associated with human inherited diseases. Nonsense mutations convert a sense codon into a premature termination codon (PTC), leading to premature translation termination and the production of truncated, nonfunctional proteins. This results in a loss-of-function phenotype in many genetic disorders, contributing to the disease's severity and progression. The molecular mechanisms of PTC formation involve various genetic alterations, including single-nucleotide changes, frameshifts, and splicing mutations. The nonsense-mediated mRNA decay (NMD) pathway degrades mRNAs containing premature termination codons (PTCs). In contrast, 25% of PTC mRNAs, depending on the PTC position and cellular context, can evade NMD, resulting in the synthesis of truncated proteins. A termination codon during translation is essential for proper protein synthesis, and translational readthrough-a process in which the ribosome bypasses the PTC and reaches the natural stop codon-may restore some level of protein function. The effectiveness of readthrough depends on the surrounding genetic context and the type of amino acid incorporated at the PTC position. This review aims to explore the molecular characteristics of nonsense-related diseases (NRDs), including cystic fibrosis, hemophilia, Fabry disease, choroideremia, Usher syndrome, Shwachman-Diamond syndrome, and certain hereditary neuropathies and cancers.
Insights
Nonsense mutations cause rare diseases by creating faulty proteins. Translational readthrough offers a potential therapeutic strategy to restore protein function in these genetic disorders.
Area of Science:
- Genetics
- Molecular Biology
- Rare Diseases
Background:
- Over 7000 rare diseases affect 350 million people globally.
- Nonsense mutations, causing premature stop codons, account for 10% of inherited diseases.
- These mutations lead to truncated, nonfunctional proteins and loss-of-function phenotypes.
Purpose of the Study:
- To explore the molecular characteristics of nonsense-related diseases (NRDs).
- To review the mechanisms of premature termination codon (PTC) formation and their consequences.
- To discuss translational readthrough as a potential therapeutic approach.
Main Methods:
- Review of scientific literature on nonsense mutations and NRDs.
- Analysis of molecular mechanisms including nonsense-mediated mRNA decay (NMD).
- Examination of translational readthrough processes and influencing factors.
Main Results:
- Nonsense mutations lead to PTCs via various genetic alterations.
- PTC mRNAs can be degraded by NMD or evade it, producing truncated proteins.
- Translational readthrough can potentially restore protein function, depending on context.
Conclusions:
- NRDs result from premature termination codons and subsequent protein truncation.
- Understanding NMD and readthrough mechanisms is crucial for therapeutic development.
- Targeting readthrough offers a promising avenue for treating genetic disorders caused by nonsense mutations.
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