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.
Abstract
Neural activity-dependent translation is essential for synaptic plasticity and diverse brain functions. Translation involves not only canonical main open reading frames (mORFs) but also upstream ORFs (uORFs), which may regulate mORF expression. However, due to technical limitations, systematic investigation of activity-dependent uORFs and mORFs in brain tissues remains challenging. Here, we developed a ribosome tagging and purification strategy that bypasses the prolonged turnover of ribosomal proteins, enabling ribosome profiling with one-hour temporal resolution after neural stimulation. Applying this strategy to mouse hippocampal slices undergoing long-term potentiation, we identify hundreds of activity-induced mORFs and uORFs, including a previously unknown uORF from Egr1. We demonstrate that this Egr1-uORF translation is tightly regulated by neuronal activity, and its encoded peptide interacts with peroxisomal machinery, suggesting a potential link between synaptic stimulus and peroxisome biology. This study provides a useful technique and resources for deciphering molecular mechanisms underlying activity- and translation-dependent brain functions in health and disease. Investigation of activity-dependent protein synthesis selectively in activated neurons has long been a challenge. Here, the authors developed a technique to avoid the translational background from inactive neurons and uncovered previously unknown activity-dependent alternative translation with functional implication, such as the uORF of Egr1.
DCP2, encoding a major mRNA decapping enzyme, is identified as a previously unrecognized ISR-induced transcript and it is shown that translational induction of DCP2 depends on an overlapping ORF whose conserved 3′ region, corresponding to a ribosome pausing site, acts as a potent inhibitory element.
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.
H. Wu, Yu Cheng, Isaiah D. Kaufman et al.· bioRxiv· 0 citations
There is increasing evidence that translation is not limited to annotated protein-coding genes. Ribosome profiling sequencing, mass spectrometry-based proteomics, and immunopeptidomics have identified the productive translation of non-canonical open reading frames (ORFs). This suggests that the functional proteome includes not only conserved proteins but also proteins hidden in non-coding RNAs and de novo proteins. Some of these translated products are functional peptides, while others may be non-functional, potentially arising from evolutionary events. Several non-canonical ORF-encoded peptides have been found to regulate multiple physiological and pathological functions, particularly in cancer, immunity, and inflammation, indicating that they have potential as biomarkers and novel therapeutic targets. To better understand the diversity of functional peptides and translated non-canonical ORFs based on existing data, we summarize their classification according to transcriptional features and supporting evidence, including non-canonical ORFs located in ncRNAs and canonical mRNAs. This review provides a concise summary of the origin, discovery methods, and classification of non-canonical ORFs. It offers insights into the origins and functions of non-canonical ORF-encoded peptides from an evolutionary perspective, while also exploring the biological functions and regulatory mechanisms of these non-canonical ORF-encoded hidden proteins in tumorigenesis and progression.
Jiang-Xue Li, Yanxia Qin, Zhao Li et al.· Experimental and molecular p...· 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.
The potential role of ribonucleoprotein-based transport as a primary mechanism driving circRNA localization is explored and how such spatial distribution influences synaptic plasticity and post-transcriptional gene regulation is examined.
Nicolò Salvi, M. Morlando· Non-Coding RNA· 0 citations