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Beyond Canonical Neoantigens: Emerging Technologies for Identification of Noncanonical Antigens and Implications for Personalized Cancer Vaccines.

Over the past decade, advances in sequencing technologies and computational pipelines enabled the development of personalized cancer vaccines (PCVs). Current PCV strategies primarily target cancer neoantigens generated by non-synonymous DNA mutations, which can result in altered amino acid sequences capable of eliciting tumor-specific immune responses. More recently, a distinct class of tumor-specific antigens (TSA), termed noncanonical or cryptic antigens, has emerged as an additional source of immunogenic targets. Unlike canonical neoantigens, noncanonical antigens typically cannot be identified by tumor/normal whole-exome sequencing, as they do not arise from classical DNA mutations. Instead, they are often associated with less well recognized and/or aberrant processes in the pathways from DNA to human leukocyte antigen (HLA)-presented peptides. Examples include transposable elements, circular RNA, translation of alternative open reading frames and/or long non-coding RNA, among others. Emerging evidence suggests that noncanonical antigens represent a substantial portion of the tumor-specific immunopeptidome and, similar to canonical neoantigens, are absent during thymic selection and can evade central tolerance and elicit T cell responses. Technological advances have increasingly facilitated the identification of noncanonical antigens. Long-read RNA sequencing reveals noncanonical transcripts by improving transcriptome assembly, while ribosome profiling provides genome-wide maps of actively translated regions, facilitating the discovery of peptides from aberrant translation events. Specialized molecular approaches enable enrichment and sequencing of circular RNAs, and immunopeptidomics using mass spectrometry allows for direct characterization of HLA-presented peptides. Together, these technological advances have led to an increasing interest in prioritizing and targeting noncanonical antigens in the next generation of PCVs. This review provides an overview of the diverse origins of TSAs beyond classical neoantigens and discusses emerging approaches that may enable the integration of these antigens in future clinical trials.

circular RNA↗

Sequence analysis of adenovirus DNA: complete nucleotide sequence of the spliced 5' noncoding region of adenovirus 2 hexon messenger RNA.

The complete nucleotide sequence of the 5' noncoding region of the adenovirus 2 hexon messenger RNA has been established by sequence analysis of reverse transcripts. Such transcripts were generated by extension of specific single-stranded DNA primers with reverse transcriptase after hybridization to purified hexon mRNA. The total length of the 5' noncoding region was determined to be 240 nucleotides, of which the spliced tripartite leader sequence contributes 202 nucleotides including the terminal m7G. The sizes of the different segments of the tripartite leader were estimated by comparing the established mRNA sequence with the genomic sequences for the first and third leader segments, and were found to be 42 nucleotides for the first segment, 71 nucleotides for the second and 89 nucleotides for the third. The estimates are ambiguous, however, due to the presence of tandemly repeated sequences at both ends of the intervening sequence between the third leader segment and the body of the hexon mRNA. The sequence of the leader allows the formation of hydrogen-bonded interactions with the 3' end of 18S ribosomal RNA near the capped 5' end and also close to the initiator AUG.

Adenoviruses, Human↗

Interaction of hepatitis A virus (HAV) precursor proteins 3AB and 3ABC with the 5' and 3' termini of the HAV RNA.

RNA secondary structures within the terminal nontranslated regions of entero- and rhinoviral genomes interact specifically with viral nonstructural proteins and are required in cis for viral RNA replication. Here we show that recombinant hepatitis A virus (HAV) polypeptide 3ABC specifically interacts in vitro with secondary RNA structures formed at both the 5' and 3' terminus of the viral genome. Similar to protein 3AB, HAV 3ABC bound to the 3' terminal RNA structure which did not interact with the mature proteinase 3C. In contrast to 3AB, 3ABC interacted with RNA stem-loop IIa and combinations of individual secondary structure elements of the 5' noncoding region. RNA binding of the precursor polypeptide 3ABC was 50 times stronger than that of 3AB and 3C, implicating a specific role of this stable processing intermediate in viral genome replication.

3C Viral Proteases↗

RNA chaperone activity of protein components of human Ro RNPs.

Ro ribonucleoprotein (RNP) complexes are composed of one molecule of a small noncoding cytoplasmic RNA, termed Y RNA, and the two proteins Ro60 and La. Additional proteins such as hnRNP I, hnRNP K, or nucleolin have recently been shown to be associated with subpopulations of Y RNAs. Ro RNPs appear to be localized in the cytoplasm of all higher eukaryotic cells but their functions have remained elusive. To shed light on possible functions of Ro RNPs, we tested protein components of these complexes for RNA chaperone properties employing two in vitro chaperone assays and additionally an in vivo chaperone assay. In these assays the splicing activity of a group I intron is measured. La showed pronounced RNA chaperone activity in the cis-splicing assay in vitro and also in vivo, whereas no activity was seen in the trans-splicing assay in vitro. Both hnRNP I and hnRNP K exhibited strong chaperone activity in the two in vitro assays, however, proved to be cytotoxic in the in vivo assay. No chaperone activity was observed for Ro60 in vitro and a moderate activity was detected in vivo. In vitro chaperone activities of La and hnRNP I were completely inhibited upon binding of Y RNA. Taken together, these data suggest that the Ro RNP components La, hnRNP K, and hnRNP I possess RNA chaperone activity, while Ro60-Y RNA complexes might function as transporters, bringing other Y RNA binding proteins to their specific targets.

Autoantigens↗

Antisense RNA complementary to 3' coding and noncoding sequences of creatine kinase is a potent inhibitor of translation in vivo.

Antisense RNA is a potentially powerful tool for creating dominant negative mutations, but one of the limitations of this strategy has been the relative inefficiency of antisense transcripts in blocking target gene expression. To identify more effective target sequences, helper-free retrovirus-mediated gene transfer was used to introduce antisense RNAs complementary to multiple functional regions of the human creatine kinase B (CK-B) mRNA into U937 cells. Antisense RNA complementary to the last third of the coding and all of the noncoding regio of this mRNA is highly effective; one or two antisense transcripts is sufficient to block the expression of one CK-B mRNA. In contrast, antisense RNA from which sequences complementary to the last 17 codons and all the 3' noncoding region have been deleted has no effect on CK-B expression. Neither antisense RNA alters the abundance of the target message, processing of the primary transcript, egress of the CK-B message from the nucleus, or the polysome profile of CK-B mRNA in sucrose gradients. These results point to a direct effect of the antisense transcript on translation and suggest that this effect may be explained at least in part by an inhibition of elongation or termination as a consequence of the duplex formed in the distal coding and/or 3' noncoding region.

Blotting, Northern↗

Activity of HDV ribozymes to trans-cleave HCV RNA.

AIM: To explore whether HDV ribozymes have the ability to trans-cleave HCV RNA. METHODS: Three HDV genomic ribozymes were designed and named RzC1, RzC2 and RzC3. The substrate RNA contained HCV RNA 5'-noncoding region and 5'-fragment of C region (5'-NCR-C). All the ribozymes and HCV RNA 5'-NCR-C were obtained by transcription in vitro from their DNA templates, and HCV RNA 5'-NCR-C was radiolabelled at its 5'-end. Under certain pH, temperature, appropriate concentration of Mg(2+) and deionized formamide, these ribozymes were respectively or simultaneously mixed with HCV RNA 5'-NCR-C and reacted for a certain time. The trans-cleavage reaction was stopped at different time points, and the products were separated with polyacrylamide gel electrophoresis (PAGE), displayed by autoradiography. Percentage of trans-cleaved products was measured to indicate the activity of HDV ribozymes. RESULTS: RzC1 and RzC2 could trans-cleave 26 % and 21.8 % of HCV RNA 5'-NCR-C under our reaction conditions with 2.5 mol.L(-1) deionized formamide respectively. The percentage of HCV RNA 5'-NCR-C trans-cleaved by RzC1, RzC2 or combined usage of the three ribozymes increased with time, up to 24.9 %, 20.3 % and 37.3 % respectively at 90 min point. Almost no product from RzC3 was observed. CONCLUSION: HDV ribozymes are able to trans-cleave specifically HCV RNA at certain sites under appropriate conditions, and combination of several ribozymes aiming at different target sites can trans-cleave the substrate more efficiently than using only one of them.

Base Sequence↗

Prevalence and significance of hepatitis C virus (HCV) viremia in HCV antibody-positive subjects from various populations.

Hepatitis C virus (HCV) infection is currently assessed by detection of antibodies to HCV with immunoassays. However, in the absence of an in vitro system to isolate the virus, or an immunoassay to identify HCV antigen in blood, an ongoing acute or chronic HCV infection can be diagnosed only by detection of HCV RNA by polymerase chain reaction. We used a reverse transcription-nested polymerase chain reaction to detect an HCV 5' noncoding viral RNA sequence in serum specimens collected from anti-HCV-positive individuals belonging to different risk groups and compared the results with those obtained with a prototype recombinant immunoblot assay (Chiron HCV SIA prototype recombinant immunoblot assay [RIBA]) containing four different viral peptides (c22, c33c, c100, and NS5). The prevalence of HCV viremia ranged from 25.9% in HCV antibody-positive blood donors to 92% in HCV antibody-positive hemophiliacs. Elevated alanine aminotransferase values in HCV antibody-positive patients were clearly associated with viremia. Ninety-six percent of HCV RNA-positive patients reacted to two viral antigens or more, compared with only 64% of HCV RNA-negative patients. Contrary to previous reports, HCV viremia was not associated with either the presence or the absence of a particular antibody specificity. The newly introduced NS5 peptide did not improve the sensitivity or specificity of the RIBA. Although 20% of the patients in our study whose sera reacted to all of the antigens were HCV RNA negative, the positive predictive value of a RIBA considered positive by the manufacturer (two or more bands), was rather high (78%) and may allow suspicion of viremia in EIA2 enzyme-linked immunosorbent assay-positive patients.

Alanine Transaminase↗

Sense and antisense Foxl2 transcripts in mouse.

FOXL2 is a forkhead transcription factor involved in eyelid development and in the development and adult function of the ovary in mammals. In mouse, we have previously suggested the existence of two mRNA isoforms of Foxl2 that result from an alternative polyadenylation. In this study, we characterize in depth the structure and expression of these two variants. We also describe an antisense transcript that overlaps the whole Foxl2 transcription unit. This antisense transcript, called Foxl2OS (for opposite strand), yields several isoforms resulting from alternative splicing. No significant coding region was found in the Foxl2OS sequence. Foxl2OS displays a pattern of expression very similar to that of Foxl2 in the gonads during development and at the adult age. RNA FISH experiments show that both transcripts are expressed in the same cells at the same time. We suggest that Foxl2OS is a noncoding antisense RNA that may be involved in the regulation of Foxl2. All in all our results provide new insights about the organization of the murine Foxl2 locus. This might help us understand its regulation and function.

Alternative Splicing↗

Participation of 5'-terminal leader sequences in in vitro translation of Rous sarcoma virus RNA.

The cell-free translation of genome RNA from Rous sarcoma virus was examined following hybridization to selected fragments of viral DNA. Single-stranded fragments, generated by t-RNATrp primed transcription of 70 S RNA from the Schmidt-Ruppin D strain, were isolated and purified by electrophoresis. These included DNA complementary to the 5'-terminal 101 nucleotides (DNA100) of virion 38 S RNA and a collection of prematurely terminated transcripts which lack the complement to the extreme 5'-terminal 7-20 nucleotides (DNA less than 100). In addition, DNA encompassing the viral leader sequences was purified from a cloned copy of proviral DNA. Under hybrid-arrested translation conditions, the leader DNA as well as DNA100 inhibited translation of all protein products generated from the 70 S RNA, while hybridization to the shorter transcripts (DNA less than 100) did not affect in vitro protein synthesis. All single-stranded DNAs were shown to hybridize with equal efficiency to viral RNA under hybrid-arrested translation conditions and inhibition of protein synthesis by DNA100 was concentration-dependent. These results document the participation of noncoding leader RNA in Rous sarcoma virus protein synthesis and demonstrate that a free, single-stranded 5' terminus is necessary for cell free translation of 70 S RNA.

Animals↗

Functional analysis of the noncoding regions of the Uukuniemi virus (Bunyaviridae) RNA segments.

The role of the variable portion of the noncoding regions (NCRs) of the three Bunyaviridae RNA segments (L, M, S) in transcription, replication, and packaging was studied using the recently developed plasmid-driven RNA polymerase I minigenome system for Uukuniemi (UUK) virus, genus Phlebovirus (11), as a model. Comparison of the different segments showed that all NCRs were sufficient to mediate transcription/replication of a minigenome but demonstrated decreased promoter strength in the order M > L > S. Chimeric minigenomes with flanking NCRs from different genome segments revealed that the number of total base pairs within the inverted, partially complementary ends was important for transcription and replication. Point mutations increasing the base-pairing potential produced increased reporter expression, indicating that complementarity between the 5' and 3' ends is crucial for promoter activity. The role of the intergenic region (IGR) located between the two open reading frames of the ambisense UUK virus S segment was analyzed by inserting this sequence element downstream of the reporter genes. The presence of the IGR was found to enhance reporter expression, demonstrating that efficient transcription termination, regulated by the IGR, is important for optimal minigenome mRNA translation. Finally, genome packaging efficacy varied for different NCRs and was strongest for L followed by M and S. Strong reporter gene activity was still observed after seven consecutive cell culture passages, indicating a selective rather than random genome-packaging mechanism. In summary, our results demonstrate that the NCRs from all three segments contain the necessary signals to initiate transcription and replication as well as packaging. Based on promoter strength, M-segment NCRs may be the preferred choice for the development of reverse genetics and minigenome rescue systems for bunyaviruses.

Animals↗

Northern Blotting: Protocols for Radioactive and Nonradioactive Detection of RNA.

Northern blotting is a common technique in RNA biology, allowing to detect and quantify RNAs of interest following separation by gel electrophoresis, transfer to a membrane, and hybridization of specific anti-complementary labelled probes. In this chapter, we describe our protocol for efficient RNA extraction from yeast, separation on agarose gel, and capillary transfer to a membrane. We provide two different methods for strand-specific detection of several types of RNAs using oligonucleotide probes, the first using radioactive 32P-labelled probes, the second based on nonradioactive digoxigenin-labelled probes.

Blotting, Northern↗

An internal 5'-noncoding region required for translation of poliovirus RNA in vitro.

A truncated poliovirus RNA that contains the entire 5'-noncoding region as well as some capsid protein-coding sequences was produced from cloned cDNA inserted into an SP6 transcription vector and subsequently was translated in a mixed rabbit reticulocyte-HeLa cell lysate. Deletions or modifications of regions of the 5'-noncoding sequences had significant effects upon the efficiency of translation. The presence of a 60-nucleotide sequence located at positions 567 to 627 appeared to be essential for active ribosome binding and translation of this uncapped RNA.

Cell-Free System↗

Low abundance of telomerase in yeast: implications for telomerase haploinsufficiency.

Telomerase is an RNA-dependent reverse transcriptase that maintains telomeric DNA at a species-specific equilibrium length. To determine an upper limit for the number of telomerase molecules in a Saccharomyces cerevisiae cell, we have established real-time RT-PCR assays to quantify the noncoding telomerase RNA, TLC1. We find that the number of TLC1 molecules in a haploid yeast cell is approximately 29, less than the number of chromosome ends (64) in late S-phase. Wild-type diploid cells contain approximately 37 telomerase RNAs, while diploids heterozygous for a null tlc1 allele have half the wild-type amount, approximately 19 TLC1 molecules. For comparison, there are approximately 480 molecules of the U2 snRNA per haploid cell. We show that a biological consequence of this low level of telomerase is haploinsufficiency: A TLC1/tlc1Delta heterozygote maintains shorter telomeres. A dominant-negative telomerase RNA, with a deletion of the template for telomeric DNA synthesis, further demonstrates that yeast telomere length is sensitive to telomerase dosage. Sixfold overexpression of tlc1Deltatemplate establishes a new telomere length set point, approximately 160 bp shorter than wild type. Removing telomerase protein-interaction sites from the tlc1Deltatemplate RNA mitigates the dominant-negative effect, suggesting that the tlc1Deltatemplate RNA competes with wild-type TLC1 for a limited supply of telomerase proteins or for telomeres. Because yeast telomerase is tethered at chromosome ends, the finding that it may be outnumbered by its telomeric DNA substrates provides a new perspective for interpreting the results of telomere maintenance studies.

Base Sequence↗

Hepatitis C virus RNA in blood donor sera detected by the polymerase chain reaction: comparison with supplementary hepatitis C antibody assays.

The low specificity of screening ELISAs for antibodies to hepatitis C virus in blood donors has called for confirmatory tests. Two types of supplementary antibody assays are available, recombinant immunoblot assays (RIBA-1 and RIBA-2) and an antibody consumption test referred to as a neutralization assay. Amplification of viral nucleic acid by the polymerase chain reaction (PCR) provides an antibody independent mode of detecting viral infection. We applied reverse transcription-double PCR to detect an HCV 5'-noncoding viral RNA sequence in serum specimens and compared PCR findings with confirmatory antibody tests. This study includes sera from 37 blood donors found positive by the Ortho anti-HCV (C100-3) ELISA out of 14,591 donations. Of the 37 positive sera, 8 were positive by RIBA-1 and 1 further by RIBA-2. Seven of the RIBA positive sera contained HCV RNA by PCR. Among the 8 indeterminate and the 21 negative donor sera by RIBA-1, no PCR positive serum was found. The 37 anti-HCV positive donor sera identified by Ortho ELISA were also tested by Abbott anti-HCV (C100-3) ELISA whereby 22 were positive. Of these 22 sera plus 1 further with ELISA OD just below cutoff, 8 were positive by the "neutralization assay," (Abbott Laboratories, North Chicago, IL, USA) and 6 of these, including the borderline serum, were PCR positive. One of the two neutralizable but PCR negative sera was RIBA positive and the other was indeterminate. However, one ELISA (Abbott Laboratories) positive (OD 1.99) serum was not neutralizable but nevertheless contained HCV RNA by PCR.(ABSTRACT TRUNCATED AT 250 WORDS)

Blood Donors↗

[Sequence, necessary for initiating RNA synthesis, in the 3'-noncoding region of the classical swine fever virus genome].

Classical swine fever virus (CSFV) is the causative agent of swine fever, which represents an economically important disease in hogs. We previously made a prediction about the recognition sites of replication initiation of CSFV by using the information content method, and it was predicted that the 21 nucleotides located at 3' end of the CSFV genome 3'UTR were essential to CSFV replication. In this paper, we experimentally studied these 21 nucleotides by site-directed mutagenesis. It was found that the 3'UTRs with the 21 nucleotides had the function of initiating RNA synthesis, while the 3'UTRs without the 21 nucleotides did not. The 21 nucleotides alone, without the rest of 3'UTR, were able to initiate RNA synthesis, though with a slump. It was demonstrated that the 21 nucleotides were essential to the replication of CSFV genome. The other part of 3'UTR was also required for sufficient RNA synthesis. It is highly likely that the 21 nucleotides were the necessary site for the CSFV genome replication initiation, and that the elements required for sufficient RNA synthesis were in the other part of 3'UTR. It was assumed that the CSFV replicase bound to the site and initiated the replication of the CSFV genome. In the 21 nucleotides, it was found that the mutation of position 216 and destruction of the 3' terminus in the 3'UTR precluded initiation of RNA synthesis, that the mutation of position 212 did not affect the capacity for initiation of RNA synthesis but attenuated the synthesis of RNA. Among the four mutants of 3'UTR at position 219, three produced the 3'UTR without initiation of RNA synthesis, and the other one produced the 3'UTR with initiation of less RNA synthesis. Therefore, it could be concluded that T216 was the most important while T212 was the least important, and that G219 and C228 were also important for RNA synthesis. The normal base component within the 21 nucleotides was essential to sufficient RNA synthesis.

3' Untranslated Regions↗

Xenopus transcription factor IIIA forms a complex of covalent character with 5S DNA.

The 5S gene-specific transcription factor TFIIIA forms an exceptionally stable complex with the internal promoter of the 5S RNA gene. Approximately 1 to 5% of TFIIIA-DNA or deoxyoligonucleotide complexes are stable to harsh denaturation conditions and can be resolved by electrophoresis in the presence of SDS. These complexes are resistant to acidic conditions (0.1 N HCl, 55 degrees C, 2h) suggesting that the interaction may be through a covalent bond. Complex formation does not result in DNA strand scission and studies of the chemical sensitivity of the complex suggest that the TFIIIA-DNA linkage may be through a phosphoramidate bond. Covalent complexes are formed with both the noncoding (RNA-like) and coding strands of the internal control region. The predominant sites of TFIIIA-DNA adducts have been mapped to the 3' end of the 5S gene internal control region, the region previously shown to exhibit essential guanine and phosphate contacts with TFIIIA.

Animals↗

The DELAYED ABAXIAL TRICHOMES Helitron has dual functions in vegetative and pollen development in Arabidopsis thaliana.

Transposons drive genetic diversity and evolution by altering the genomic landscape over time. Here, we describe DELAYED ABAXIAL TRICHOMES (DAB), a Helitron/RC transposable element in Arabidopsis thaliana that has a role in vegetative phase change and gametogenesis. A genome-wide association study (GWAS) for the timing of abaxial trichome development (an adult leaf trait) in A. thaliana revealed a conserved haplotype of polymorphisms within DAB that delays abaxial trichome production. CRISPR-Cas9-induced deletions of DAB are gametophytic pollen-lethal, indicating that this locus is also required for pollen production. DAB produces 24-nucleotide siRNAs with sequence complementarity to genes involved in embryogenesis, gametogenesis, and seed development. DAB also impacts the expression of ARGONAUTE genes, genes involved in RNA-directed DNA methylation (RdDM), as well as genes in several key genetic pathways. This global effect on gene expression suggests that DAB may have functions beyond those identified in this study.

Arabidopsis↗

Interaction of poly(rC) binding protein 2 with the 5' noncoding region of hepatitis A virus RNA and its effects on translation.

Utilization of internal ribosome entry segment (IRES) structures in the 5' noncoding region (5'NCR) of picornavirus RNAs for initiation of translation requires a number of host cell factors whose distribution may vary in different cells and whose requirement may vary for different picornaviruses. We have examined the requirement of the cellular protein poly(rC) binding protein 2 (PCBP2) for hepatitis A virus (HAV) RNA translation. PCBP2 has recently been identified as a factor required for translation and replication of poliovirus (PV) RNA. PCBP2 was shown to be present in FRhK-4 cells, which are permissive for growth of HAV, as it is in HeLa cells, which support translation of HAV RNA but which have not been reported to host replication of the virus. Competition RNA mobility shift assays showed that the 5'NCR of HAV RNA competed for binding of PCBP2 with a probe representing stem-loop IV of the PV 5'NCR. The binding site on HAV RNA was mapped to nucleotides 1 to 157, which includes a pyrimidine-rich sequence. HeLa cell extracts that had been depleted of PCBP2 by passage over a PV stem-loop IV RNA affinity column supported only low levels of HAV RNA translation. Translation activity was restored upon addition of recombinant PCBP2 to the depleted extract. Removal of the 5'-terminal 138 nucleotides of the HAV RNA, or removal of the entire IRES, eliminated the dependence of HAV RNA translation on PCBP2.

Binding Sites↗