Translation of CircRNAs
Translation of CircRNAs
- Research Article
8
- 10.1016/j.ijbiomac.2025.141588
- May 1, 2025
- International journal of biological macromolecules
TransRM: Weakly supervised learning of translation-enhancing N6-methyladenosine (m6A) in circular RNAs.
- Research Article
131
- 10.1002/wrna.1685
- Aug 2, 2021
- WIREs RNA
Functional proteins in the cell are translated from the messenger RNA (mRNA) molecules, constituting less than 5% of the cellular transcriptome. The majority of the RNA molecules in the cell are noncoding RNAs, including rRNA, tRNA, snRNA, piRNA, lncRNA, microRNA, and poorly characterized circular RNAs (circRNAs). Recent studies established that circRNAs regulate gene expression by associating with RNA-binding proteins and microRNAs. With the growing understanding of circRNA functions, a subset of circRNAs has been reported to translate into proteins. Interestingly, the presence of Open Reading Frames (ORFs), N6-methyladenosine (m6A) modifications, and internal ribosomal entry sites (IRES) in the circRNA sequences indicate their coding potential through the cap-independent translation initiation mechanism. The purpose of this review is to highlight the mechanism of circRNA translation and the importance of circRNA-encoded proteins (circ-proteins) in cellular physiology and pathology. Here, we discuss the computational and molecular methods currently utilized to systematically identify translatable circRNAs and the functional characterization of the circ-proteins. We foresee that the ongoing and future studies on circRNA translation will uncover the hidden proteome and their therapeutic implications in human health. This article is categorized under: RNA Methods > RNA Analyses in Cells Regulatory RNAs/RNAi/Riboswitches > Regulatory RNAs Translation > Mechanisms.
- Research Article
130
- 10.1016/j.molmed.2022.03.003
- May 1, 2022
- Trends in Molecular Medicine
Circular RNA translation: novel protein isoforms and clinical significance.
- Research Article
205
- 10.1038/s41467-022-31327-y
- Jun 29, 2022
- Nature Communications
Some circular RNAs (circRNAs) were found to be translated through IRES-driven mechanism, however the scope and functions of circRNA translation are unclear because endogenous IRESs are rare. To determine the prevalence and mechanism of circRNA translation, we develop a cell-based system to screen random sequences and identify 97 overrepresented hexamers that drive cap-independent circRNA translation. These IRES-like short elements are significantly enriched in endogenous circRNAs and sufficient to drive circRNA translation. We further identify multiple trans-acting factors that bind these IRES-like elements to initiate translation. Using mass-spectrometry data, hundreds of circRNA-coded peptides are identified, most of which have low abundance due to rapid degradation. As judged by mass-spectrometry, 50% of translatable endogenous circRNAs undergo rolling circle translation, several of which are experimentally validated. Consistently, mutations of the IRES-like element in one circRNA reduce its translation. Collectively, our findings suggest a pervasive translation of circRNAs, providing profound implications in translation control.
- Research Article
15
- 10.1074/jbc.m112.426981
- May 1, 2013
- Journal of Biological Chemistry
The Drosophila phototransduction cascade terminates in the opening of the ion channel transient receptor potential (TRP) and TRP-like (TRPL). Contrary to TRP, TRPL undergoes light-dependent subcellular trafficking between rhabdomeric photoreceptor membranes and an intracellular storage compartment, resulting in long term light adaptation. Here, we identified in vivo phosphorylation sites of TRPL that affect TRPL stability and localization. Quantitative mass spectrometry revealed a light-dependent change in the TRPL phosphorylation pattern. Mutation of eight C-terminal phosphorylation sites neither affected multimerization of the channels nor the electrophysiological response of flies expressing the mutated channels. However, these mutations resulted in mislocalization and enhanced degradation of TRPL after prolonged dark-adaptation. Mutation of subsets of the eight C-terminal phosphorylation sites also led to a reduction of TRPL content and partial mislocalization in the dark. This suggests that a light-dependent switch in the phosphorylation pattern of the TRPL channel mediates stable expression of TRPL in the rhabdomeres upon prolonged dark-adaptation.
- Research Article
139
- 10.1007/s00018-016-2428-2
- Dec 2, 2016
- Cellular and Molecular Life Sciences
The scanning model for eukaryotic mRNA translation initiation states that the small ribosomal subunit, along with initiation factors, binds at the cap structure at the 5' end of the mRNA and scans the 5' untranslated region (5'UTR) until an initiation codon is found. However, under conditions that impair canonical cap-dependent translation, the synthesis of some proteins is kept by alternative mechanisms that are required for cell survival and stress recovery. Alternative modes of translation initiation include cap- and/or scanning-independent mechanisms of ribosomal recruitment. In most cap-independent translation initiation events there is a direct recruitment of the 40S ribosome into a position upstream, or directly at, the initiation codon via a specific internal ribosome entry site (IRES) element in the 5'UTR. Yet, in some cellular mRNAs, a different translation initiation mechanism that is neither cap- nor IRES-dependent seems to occur through a special RNA structure called cap-independent translational enhancer (CITE). Recent evidence uncovered a distinct mechanism through which mRNAs containing N 6-methyladenosine (m6A) residues in their 5'UTR directly bind eukaryotic initiation factor 3 (eIF3) and the 40S ribosomal subunit in order to initiate translation in the absence of the cap-binding proteins. This review focuses on the important role of cap-independent translation mechanisms in human cells and how these alternative mechanisms can either act individually or cooperate with other cis-acting RNA regulons to orchestrate specific translational responses triggered upon several cellular stress states, and diseases such as cancer. Elucidation of these non-canonical mechanisms reveals the complexity of translational control and points out their potential as prospective novel therapeutic targets.
- Research Article
243
- 10.1093/emboj/16.4.817
- Feb 15, 1997
- The EMBO Journal
Translation initiation in eukaryotes is facilitated by the cap structure, m7GpppN (where N is any nucleotide). Eukaryotic translation initiation factor 4F (eIF4F) is a cap binding protein complex that consists of three subunits: eIF4A, eIF4E and eIF4G. eIF4G interacts directly with eIF4E and eIF4A. The binding site of eIF4E resides in the N-terminal third of eIF4G, while eIF4A and eIF3 binding sites are present in the C-terminal two-thirds. Here, we describe a new eukaryotic translational regulator (hereafter called p97) which exhibits 28% identity to the C-terminal two-thirds of eIF4G. p97 mRNA has no initiator AUG and translation starts exclusively at a GUG codon. The GUG-initiated open reading frame (907 amino acids) has no canonical eIF4E binding site. p97 binds to eIF4A and eIF3, but not to eIF4E. Transient transfection experiments show that p97 suppresses both cap-dependent and independent translation, while eIF4G supports both translation pathways. Furthermore, inducible expression of p97 reduces overall protein synthesis. These results suggest that p97 functions as a general repressor of translation by forming translationally inactive complexes that include eIF4A and eIF3, but exclude eIF4E.
- Research Article
141
- 10.1093/emboj/19.15.4101
- Aug 1, 2000
- The EMBO Journal
Translation initiation in bacteria involves a stochastic binding mechanism in which the 30S ribosomal subunit first binds either to mRNA or to initiator tRNA, fMet-tRNA(f)(Met). Leaderless lambda cI mRNA did not form a binary complex with 30S ribosomes, which argues against the view that ribosomal recruitment signals other than a 5'-terminal start codon are essential for translation initiation of these mRNAs. We show that, in Escherichia coli, translation initiation factor 2 (IF2) selectively stimulates translation of lambda cI mRNA in vivo and in vitro. These experiments suggest that the start codon of leaderless mRNAs is recognized by a 30S-fMet-tRNA(f)(Met)-IF2 complex, an intermediate equivalent to that obligatorily formed during translation initiation in eukaryotes. We further show that leaderless lambda cI mRNA is faithfully translated in vitro in both archaebacterial and eukaryotic translation systems. This suggests that translation of leaderless mRNAs reflects a fundamental capability of the translational apparatus of all three domains of life and lends support to the hypothesis that the translation initiation pathway is universally conserved.
- Research Article
39
- 10.1038/s41598-019-48224-y
- Aug 12, 2019
- Scientific Reports
Circular RNAs (circRNAs) are an emerging class of RNA molecules that have been linked to human diseases and important regulatory pathways. Their functional roles are still under investigation, often hampered by inefficient circRNA formation in and ex vivo. We generated an intron-mediated enhancement (IME) system that—in comparison to previously published methods—increases circRNA formation up to 5-fold. This strategy also revealed previously undetected translation of circRNA, e.g., circRtn4. Substantiated by Western blots and mass spectrometry we showed that in mammalian cells, translation of circRtn4 containing a potential “infinite” circular reading frame resulted in “monomers” and extended proteins, presumably “multimer” tandem repeats. In order to achieve high levels of circRNA formation and translation of other natural or recombinant circRNAs, we constructed a versatile circRNA expression vector—pCircRNA-DMo. We demonstrated the general applicability of this method by efficiently generating two additional circRNAs exhibiting high expression levels. The circRNA expression vector will be an important tool to investigate different aspects of circRNA biogenesis and to gain insights into mechanisms of circular RNA translation.
- Research Article
1
- 10.1158/1538-7445.am2023-lb353
- Apr 14, 2023
- Cancer Research
Cancer immunosurveillance relies on the presentation of peptide antigens on human leuckocyte antigen class I (HLA-I). HLA-I molecules present a diverse array of antigens, known as the “immunopeptidome”, which are recognized by cytotoxic CD8+ T cells. Recent evidence suggests that cryptic peptide antigens derived from non-canonical open reading frames (nuORFs) contribute to the immunopeptidome and drive CD8+ T cell responses. Integrating ribosome profiling (Ribo-seq) with mass spectrometry (MS) analyses has enabled the identification of several cryptic peptides derived from nuORFs including from putative non-coding regions including the 5’UTR, 3’UTR, long non coding RNAs (lncRNAs) and retained introns. Notably, many nuORFs undergo cap-independent translation. Various physiological and pharmacological stressors arrest canonical cap-dependent translation initiation and induce cap-independent translation. However, how this shift in translational dynamics influences the immunopeptidome is unknown. Using lung cancer cell lines, we show that the eIF4A inhibitor silvestrol induces cap-independent translation and reshapes the landscape of nuORF-derived peptide antigens. Silvestrol induced changes in the immunopeptidome strongly contrast with the global translation inhibitor homoharringtonine, which dampens antigen presentation. These observations suggest that the presentation of nuORF antigens in lung cancer is dynamic and tightly controlled by translational dynamics. More broadly, our study provokes reconsideration of translation inhibitors as immunomodulatory drugs that can change the HLA-I antigen repertoire and generate peptides that can act as new targets for cancer immunotherapy. Citation Format: Anika N. Ali, Andrew D. Weeden, Alex M. Jaeger. The switch from cap-dependent to cap-independent translation reshapes the immunopeptidome of lung cancer [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2023; Part 2 (Clinical Trials and Late-Breaking Research); 2023 Apr 14-19; Orlando, FL. Philadelphia (PA): AACR; Cancer Res 2023;83(8_Suppl):Abstract nr LB353.
- Research Article
81
- 10.1016/j.biochi.2019.06.015
- Jun 29, 2019
- Biochimie
How are circRNAs translated by non-canonical initiation mechanisms?
- Research Article
- 10.1002/alz.051144
- Dec 1, 2021
- Alzheimer's & Dementia
Neurofibrillary tangles formed by the microtubule protein tau (MAPT) are the pathologic hallmark of tauopathies, including Alzheimer's disease and ∼1/2 of frontotemporal lobar degeneration (FTLD-Tau) cases. We reported that MAPT forms circular RNAs through back-splicing of exon 12 to either exon 10 or exon 7 (BBA Dis 1864:2753; PMID: 29729314). The MAPT circRNAs require primate-specific Alu elements to form, which might explain their absence in mice. Both MAPT circRNAs lack stop codons and could form multimers of microtubule binding repeats upon translation. In cell culture studies, we used transfected reporter genes that express tau circRNAs with a 3xFlag tag. We tested the effect of FTLD-Tau mutants (K317M and V337M), junction-specific siRNAs and adenosine deaminase acting on RNA (ADAR) enzymes on circRNA translation, evaluated by RNAse protection, Western blots and validated by mass spectrometry. Circular MAPT constructs were readily translated and regulated by endogenous factors including ADAR and customized siRNAs. The circ12->7 RNA contained a single natural occurring start codon. The circRNA is formed and translated when exons 7 and 12 were flanked by authentic tau or heterologous Alu elements. The circ12->10 RNA lacks a natural start codon, but introduction of the FTLD-Tau mutations K317M and V337M induced translation of the circular RNA. The presence of ADAR activity strongly promoted translation of both circRNAs, even in the absence of start codons, possibly by changing an AUA to an AUI start codon (I-inosine). Despite the lack of a stop codon, translation of the circular MAPT RNA products stopped at defined sites, indicating that circular RNAs use stop signals distinct from canonical ones. Our data indicate that MAPT circular RNAs are translated into proteins that could cause tau aggregations relevant to tauopathies. As most FTLD-tau causing mutations are in the regions near the circularizing part of the gene, they could act through regulating circular RNA formation and/or translation. ADAR-dependent upregulation of circTau translations caused by inflammation and/or brain injury could trigger tau pathology via this mechanism. Finally, tau circRNA can be selectively removed using siRNAs. We are assessing the impact of MAPT circRNAs on proteinaceous aggregations.
- Research Article
113
- 10.1038/s12276-024-01220-3
- Jun 1, 2024
- Experimental & Molecular Medicine
Circular RNAs (circRNAs) are covalently closed single-stranded RNAs without a 5′ cap structure and a 3′ poly(A) tail typically present in linear mRNAs of eukaryotic cells. CircRNAs are predominantly generated through a back-splicing process within the nucleus. CircRNAs have long been considered non-coding RNAs seemingly devoid of protein-coding potential. However, many recent studies have challenged this idea and have provided substantial evidence that a subset of circRNAs can associate with polysomes and indeed be translated. Therefore, in this review, we primarily highlight the 5’ cap-independent internal initiation of translation that occurs on circular RNAs. Several molecular features of circRNAs, including the internal ribosome entry site, N6-methyladenosine modification, and the exon junction complex deposited around the back-splicing junction after back-splicing event, play pivotal roles in their efficient internal translation. We also propose a possible relationship between the translatability of circRNAs and their stability, with a focus on nonsense-mediated mRNA decay and nonstop decay, both of which are well-characterized mRNA surveillance mechanisms. An in-depth understanding of circRNA translation will reshape and expand our current knowledge of proteomics.
- Research Article
2
- 10.6100/ir562755
- Nov 18, 2015
- Data Archiving and Networked Services (DANS)
The analysis of polymer interfaces : a combined approach
- Research Article
- 10.3390/biom16010164
- Jan 19, 2026
- Biomolecules
Background: Survivin is an anti-apoptotic protein highly expressed during embryonic development and, in adults, mainly in the gastrointestinal epithelium. Its levels decrease in human gastric tissue and cultured cells upon exposure to Helicobacter pylori gamma-glutamyl transpeptidase (GGT), though the underlying mechanism remains unclear. Objective: We aimed to investigate the role of cap-independent translation driven by the Survivin 5′ untranslated region (5′UTR) in response to H. pylori infection in vitro. Methodology: Human cell lines (AGS, GES-1, HeLa, HEK293T) were used alongside bicistronic and monocistronic (Firefly/Renilla luciferases) reporter assays to assess short and long variants of the Survivin 5′UTR and HIV-1 internal ribosome entry site (IRES) sequences. Additional methods included in vitro transcription/translation, RT-qPCR, agarose gel electrophoresis, Western blotting, coupled/uncoupled translation assays, and siRNA silencing. Results: The short variant of the Survivin 5′ UTR supported cap-independent translation, like the HIV-1 IRES. Notably, H. pylori infection suppressed this translation in a GGT-dependent manner in gastric cells, and a similar reduction was observed following treatment with ATO, a known prooxidant. Conclusion: The Survivin 5′UTR exhibits cap-independent translation activity that is inhibited by H. pylori in a GGT-dependent manner, likely via oxidative stress. This mechanism helps to explain the downregulation of Survivin during gastric infection and indicates that oxidative stress can negatively affect both cellular and viral IRES-mediated translation.