The fields of RNA modification and RNA damage both exhibit a plethora of non-canonical nucleoside structures. While RNA modifications have evolved to improve RNA function, the term RNA damage implies detrimental effects. Based on stable isotope labelling and mass spectrometry, we report the identification and characterisation of 2-methylthio-1,N6-ethenoadenosine (ms2 ϵA), which is related to 1,N6-ethenoadenine, a lesion resulting from exposure of nucleic acids to alkylating chemicals in vivo. In contrast, a sophisticated isoprene labelling scheme revealed that ms2 ϵA biogenesis involves cleavage of a prenyl moiety in the known transfer RNA (tRNA) modification 2-methylthio-N6-isopentenyladenosine (ms2 i6 A). The relative abundance of ms2 ϵA in tRNAs from translating ribosomes suggests reduced function in comparison to its parent RNA modification, establishing the nature of the new structure in a newly perceived overlap of the two previously separate fields, namely an RNA modification damage.
AbstractDie Bereiche RNA‐Modifikation und RNA‐Schaden weisen beide eine Vielzahl nicht‐kanonischer Nukleosidstrukturen auf. Während sich RNA‐Modifikationen zur Verbesserung der RNA‐Funktion entwickelt haben, impliziert die Bezeichnung RNA‐Schaden negative Auswirkungen. Auf Grundlage der Markierung mit stabilen Isotopen und Massenspektrometrie berichten wir von der Identifizierung und Charakterisierung von 2‐Methylthio‐1,N6‐ethenoadenosin (ms2ϵA), welches mit 1,N6‐Ethenoadenin, einer Läsion, die durch Exposition von Nukleinsäuren gegenüber alkylierenden Chemikalien in vivo entsteht, verwandt ist. Im Gegensatz dazu zeigte ein ausgefeiltes Konzept zur Isopren‐Markierung, dass die Biogenese von ms2ϵA die Spaltung eines Prenylrests in der bekannten transfer‐RNA (tRNA)‐Modifikation 2‐Methylthio‐N6‐isopentenyladenosin (ms2i6A) beinhaltet. Die relative Häufigkeit von ms2ϵA in tRNAs von translatierenden Ribosomen lässt eine verminderte Funktionalität im Vergleich zur ursprünglichen RNA‐Modifikation vermuten, wodurch die Natur der neuen Struktur in einer neu wahrgenommenen Überschneidung der beiden zuvor getrennten Bereiche, nämlich ein RNA‐Modifikationsschaden, begründet wird.
AATF is a central regulator of the cellular outcome upon p53 activation, a finding that has primarily been attributed to its function as a transcription factor. Recent data showed that AATF is essential for ribosome biogenesis and plays a role in rRNA maturation. AATF has been implicated to fulfil this role through direct interaction with rRNA and was identified in several RNA-interactome capture experiments. Here, we provide a first comprehensive analysis of the RNA bound by AATF using CLIP-sequencing. Interestingly, this approach shows predominant binding of the 45S pre-ribosomal RNA precursor molecules. Furthermore, AATF binds to mRNAs encoding for ribosome biogenesis factors as well as snoRNAs. These findings are complemented by an in-depth analysis of the protein interactome of AATF containing a large set of proteins known to play a role in rRNA maturation with an emphasis on the protein-RNA-complexes known to be required for the generation of the small ribosomal subunit (SSU). In line with this finding, the binding sites of AATF within the 45S rRNA precursor localize in close proximity to the SSU cleavage sites. Consequently, our multilayer analysis of the protein-RNA interactome of AATF reveals this protein to be an important hub for protein and RNA interactions involved in ribosome biogenesis.
Abstract Sensing of nucleic acids for molecular discrimination between self and non-self is a challenging task for the innate immune system. RNA acts as a potent stimulus for pattern recognition receptors including in particular human Toll-like receptor 7 (TLR7). Certain RNA modifications limit potentially harmful self-recognition of endogenous RNA. Previous studies had identified the 2′-O-methylation of guanosine 18 (Gm18) within tRNAs as an antagonist of TLR7 leading to an impaired immune response. However, human tRNALys3 was non-stimulatory despite lacking Gm18. To identify the underlying molecular principle, interferon responses of human peripheral blood mononuclear cells to differentially modified tRNALys3 were determined. The investigation of synthetic modivariants allowed attributing a significant part of the immunosilencing effect to the 2′-O-methylthymidine (m5Um) modification at position 54. The effect was contingent upon the synergistic presence of both methyl groups at positions C5 and 2’O, as shown by the fact that neither Um54 nor m5U54 produced any effect alone. Testing permutations of the nucleobase at ribose-methylated position 54 suggested that the extent of silencing and antagonism of the TLR7 response was governed by hydrogen patterns and lipophilic interactions of the nucleobase. The results identify a new immune-modulatory endogenous RNA modification that limits TLR7 activation by RNA.
Recently discovered new chemical entities in RNA modifications have involved surprising functional groups that enlarge the chemical space of RNA. Using LC-MS, we found over 100 signals of RNA constituents that contained a ribose moiety in tRNAs from E. coli. Feeding experiments with variegated stable isotope labeled compounds identified 37 compounds that are new structures of RNA modifications. One structure was elucidated by deuterium exchange and high-resolution mass spectrometry. The structure of msms2 i6 A (2-methylthiomethylenethio-N6-isopentenyl-adenosine) was confirmed by methione-D3 feeding experiments and by synthesis of the nucleobase. The msms2 i6 A contains a thioacetal, shown in vitro to be biosynthetically derived from ms2 i6 A by the radical-SAM enzyme MiaB. This enzyme performs thiomethylation, forming ms2 i6 A from i6 A in a first turnover. The new thioacetal is formed by a second turnover. Along with the pool of 36 new modifications, this work describes a new layer of RNA modification chemistry.
AbstractDurch kürzlich neu entdeckte Strukturen wurde das Spektrum an funktionellen Gruppen, die die chemische Vielfalt von RNA‐Modifikation definieren, überraschend erweitert. Durch die Verwendung von LC‐MS war es uns möglich, über hundert Signale von RNA‐Komponenten, die eine Ribose‐Einheit enthielten, in tRNAs von E. coli zu detektieren. Durch Fütterungsexperimente mit stabilen isotopenmarkierten Verbindungen wurden 37 Verbindungen identifiziert, die neue RNA‐Modifikationen darstellen. Eine der 37 Strukturen konnte durch den Einsatz von Deuterium‐Austausch‐Experimenten sowie hochauflösender Massenspektrometrie aufgeklärt werden. Die Struktur von msms2i6A (2‐Methylthiomethylenethio‐N6‐isopentenyladenosin) wurde durch Methion‐D3‐Fütterungsexperimente und schließlich durch die Synthese der Nukleobase bestätigt. Die Modifikation msms2i6A enthält ein Thioacetal, dessen Biosyntheese wir in vitro durch das Radikal‐SAM‐Enzym MiaB aus ms2i6A nachstellen konnten. Dieses Enzym führt eine Thiomethylierung durch und generiert aus i6A in einer ersten Umsetzung ms2i6A. Das neu entdeckte Thioacetal wird durch eine zweite Umsetzung generiert, bei dem nun Wasserstoff aus der zuvor eingeführten Methylgruppe abstrahiert wird. Thioacetale sind in der Naturstoffchemie äußerst selten und diese Reaktion stellt zudemeinen neuartigen enzymatischen Mechanismus für ihre Bildung dar. In Verbindung mit dem Pool von 36 weiteren neuen Modifikationen beschreibt diese Arbeit eine neue Ebene in der RNA‐Modifikationschemie.
Die RNA-Modifizierung ist wie Naturstoffchemie an einem Biopolymergerüst. Durch eine sorgfältige Suche basierend auf Flüssigchromatographie-Massenspektrometrie wurden nun RNA-Modifikationen mit Thioacetalstruktur identifiziert. M. Helm und Mitarbeiter zeigen in ihrer Zuschrift auf S. 8019, dass diese funktionelle Gruppe, die in der Natur sehr selten vorkommt, durch ein radikalisches SAM-Enzym gebildet wird, das zwei aufeinanderfolgende Thiomethylierungen am selben RNA-Rest durchführt.
The detection and quantification of methylated RNA can be beneficial to understand certain cellular regulation processes such as transcriptional modulation of gene expression, immune response, or epigenetic alterations. Therefore, it is necessary to have methods available, which are extremely sensitive and accurate, for instance liquid chromatography-tandem mass spectrometry (LC-MS/MS). Here, we describe the preparation of RNA samples by enzymatic hydrolysis and the subsequent analysis of ribonucleosides by LC-MS/MS via NLS (Neutral loss scan) and DMRM (Dynamic multiple reaction monitoring). Also, we provide variations of these methods including chromatographic techniques and different kinds of quantification.
The analysis of RNA modifications is of high importance in order to address a wide range of biological questions. Therefore, a highly sensitive and accurate method such as liquid chromatography-tandem mass spectrometry (LC-MS/MS) has to be available. By using different LC-MS/MS procedures, it is not only possible to quantify very low amounts of RNA modifications, but also to detect probably unknown modified nucleosides. For these cases the dynamic multiple reaction monitoring and the neutral loss scan are the most common techniques. Here, we provide the whole workflow for analyzing RNA samples regarding their modification content. This includes an equipment list, the preparation of required solutions/enzymes and the creation of an internal standard or nucleoside stocks for internal or external calibration. Furthermore, we describe the preparation of RNA samples for the subsequent LC-MS/MS analysis and the corresponding analysis process.
Microbial nucleic acids have been described as important activators of human innate immune responses by triggering so-called pattern recognition receptors (PRRs) that are expressed on innate immune cells, including plasmacytoid dendritic cells and monocytes. Although host and microbial nucleic acids share pronounced chemical and structural similarities, they significantly differ in their posttranscriptional modification profile, allowing the host to discriminate between self and nonself. In this regard, ribose 2'-O-methylation has been discovered as suppressor of RNA-induced PRR activation. Although 2'-O-methylation occurs with higher frequencies in eukaryotic than in prokaryotic RNA, the immunosuppressive properties of 2'-O-methylated nucleotides may be misused by certain bacteria as immune evasion mechanism. In the course of identifying inhibitory RNA modifications, our groups have synthesized and comparatively analyzed a series of differentially modified RNAs, so-called modivariants, for their immune stimulatory capacities. In this chapter, we will detail the protocols for the design and synthesis of RNA modivariants by molecular cut-and-paste techniques (referred to as molecular surgery) and describe testing of their immune stimulatory properties upon transfection into peripheral blood mononuclear cells.
Nucleoside methylations and other nucleic acid modifications have recently encountered a surge in interest, prompted, among other things, by the detection of methylation and active demethylation of DNA and mRNA by similar mechanisms. In DNA, deoxycytidine methylation by Dnmt enzymes generates 5-methyldeoxycytidine,1 an important epigenetic mark that typically causes inactivation of transcription of the methylated promoter region. Recent exciting developments have shown that these marks are not concrete-cast, but can be actively removed by the oxidative action of TET enzymes,2 which generate, through a series of 2-electron oxidations, first hydroxymethylcytidine (hm5C), then formyldeoxycytidine (f5C),3 and finally carboxydeoxycytidine (ca5C), which may eventually regenerate deoxycytidine by decarboxylation. The apparent functional homolog in mRNA is m6A, which appears to reduce translation efficiency. Here, too, the methylation can be removed by TET-related enzymes generating first hydroxymethyladenosine (hm6A), then formyladenosine (f6A).4,5,6 Also, the presence of 5-methylcytidine in mRNA has been reported early on, and has recently raised renewed interest, although its function is as yet unclear and putative conversion into hydroxymethylcytidine is yet to be demonstrated.32 These developments are enhanced by the development of highly sensitive detection methods7,8 including the adaptation of the so-called bisulfite sequencing from DNA, where it is well established,9 to RNA, where its application has significantly contributed to the present high level of interest.10,11,12 However, bisulfite sequencing alone does not yield unassailable results13,14 and we have thus looked to expand the limits of detection of m5C in both DNA and RNA by LC-MS/MS. Here we report a straightforward regimen that provides values for the limit of quantification (LOQ) in the triple digit attomol range. Its application to presumed negative controls, namely synthetic oligonucleotides, surprisingly detected significant amounts of m5C in both types of synthetic nucleic acids.