Aug 2026· Proceedings of the National Academy of Sciences of the United States of America· Vol 123 34, pp.
e2610782123
· 0 citations· 82 references
Medicine
TL;DR
A single uORF in KCNQ2 is identified that is highly repressive of protein translation and it is demonstrated that mutations disabling the uORF start codon enhance synthesis of encoded potassium channels and weaken ribosome engagement at the uORF.
Abstract
Upstream open reading frames (uORFs) within the 5'-untranslated region (5'-UTR) of messenger RNA transcripts can regulate protein translation. Despite widespread prevalence within the human genome, they remain unidentified for many clinically relevant genes. A gene frequently associated with neonatal-onset epilepsy is KCNQ2, which encodes a neuronal voltage-gated potassium channel subunit that functions to dampen neuronal excitability. Heterozygous loss-of-function pathogenic KCNQ2 variants are known to cause a range of neurodevelopmental disorders and epileptic encephalopathies, but there remains an unmet clinical need for patients harboring these variants. We identified a single uORF in KCNQ2 that is highly repressive of protein translation and demonstrated that mutations disabling the uORF start codon enhance synthesis of encoded potassium channels. Additionally, we show that adenine base editing of the uORF start codon can weaken ribosome engagement at the uORF and enhance translation of the protein in a neuron-like cell line. This study establishes a previously underexplored regulatory feature for KCNQ2 and highlights the importance of understanding uORFs for clinically relevant genes, both for assessing disease risk and therapeutic potential.
A ribosome tagging and purification strategy is developed that bypasses the prolonged turnover of ribosomal proteins, enabling ribosome profiling with one-hour temporal resolution after neural stimulation, and uncovered previously unknown activity-dependent alternative translation with functional implication, such as the uORF of Egr1.
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The molecular regulatory networks of CELF4 and its mechanisms across multisystem diseases are reviewed, the current status and limitations of clinical translation are discussed, and future research on diagnostic biomarkers and therapeutic strategies targeting this protein is guided.
Qingsong Wang, Wenlong Yue, D. Lin et al.· Frontiers in Molecular Biosc...· 0 citations
It is demonstrated that ouORF translation regulates alternative translation initiation to control the balance between chloroplast and cytosolic protein isoforms, and establishes ouORFs as a versatile class of translational regulatory elements that coordinate both protein abundance and protein diversity.
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3′UTR-mediated translational control is proposed as an evolutionarily conserved mechanism for the maintenance of cell-type-specific proteostasis for the maintenance of cell-type-specific protein synthesis in neurons.
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Sarah Lewandowski, L. Pommerening, S. Chakrabarti· TIBS -Trends in Biochemical...· 0 citations
It is shown that PTC location critically determines not only NMD efficiency and its variability across cells, but also the spectrum of resulting protein products, including truncated proteins arising from premature termination, full-length proteins generated through translational readthrough, and N-terminally truncated isoforms produced by downstream reinitiation.