0000000000894563

AUTHOR

Kathrin Thüring

showing 11 related works from this author

Analysis of RNA modifications by liquid chromatography–tandem mass spectrometry

2016

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…

0301 basic medicineChromatographyChemistrySelected reaction monitoringMs analysisRNATandem mass spectrometryMass spectrometryModified nucleosidesGeneral Biochemistry Genetics and Molecular BiologyHighly sensitive03 medical and health sciences030104 developmental biologyTandem Mass SpectrometryLiquid chromatography–mass spectrometryHumansRNARNA Processing Post-TranscriptionalMolecular BiologyChromatography LiquidMethods
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LC-MS Analysis of Methylated RNA

2017

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 kind…

0301 basic medicineChemistryRNA methylationSelected reaction monitoringRNA03 medical and health sciences030104 developmental biology0302 clinical medicineBiochemistryLiquid chromatography–mass spectrometryEnzymatic hydrolysisGene expressionMethylated DNA immunoprecipitationEpigenetics030217 neurology & neurosurgery
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Bioconjugation of Small Molecules to RNA Impedes Its Recognition by Toll-Like Receptor 7

2017

A fundamental mechanism of the innate immune system is the recognition, via extra- and intracellular pattern recognition receptors, of pathogen-associated molecular patterns. A prominent example is represented by foreign nucleic acids, triggering the activation of several signaling pathways. Among these, the endosomal toll-like receptor 7 (TLR7) is known to be activated by single stranded RNA (ssRNA), which can be specifically influenced through elements of sequence structure and posttranscriptional modifications. Furthermore, small molecules TLR7 agonists (smTLRa) are applied as boosting adjuvants in vaccination processes. In this context, covalent conjugations between adjuvant and vaccine…

0301 basic medicineMessenger RNAGene knockdownToll-like receptormRNAImmunologyPattern recognition receptorRNATLR7BiologyMolecular biologyCell biology03 medical and health sciencessmall molecules030104 developmental biologysiRNAclick chemistryNucleic acidImmunology and Allergytoll-like receptorimmunostimulationbioconjugateSingle-Stranded RNAOriginal ResearchFrontiers in Immunology
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Urmylation and tRNA thiolation functions of ubiquitin-like Uba4·Urm1 systems are conserved from yeast to man

2015

AbstractThe ubiquitin-like protein Urm1 from budding yeast and its E1-like activator Uba4 have dual roles in protein urmylation and tRNA thiolation pathways. To study whether these are conserved among eukaryotes, we used gene shuffles to replace the yeast proteins by their human counterparts, hURM1 and hUBA4/MOCS3. As judged from biochemical and genetical assays, hURM1 and hUBA4 are functional in yeast, albeit at reduced efficiencies. They mediate urmylation of the peroxiredoxin Ahp1, a known urmylation target in yeast, and support tRNA thiolation. Similar to hUBA4, yeast Uba4 itself is modified by Urm1 and hURM1 suggesting target overlap between eukaryal urmylation pathways. In sum, our st…

Saccharomyces cerevisiae ProteinsUba4 (hUBA4/MOCS3)Saccharomyces cerevisiaeBiophysicstRNA thiolationSaccharomyces cerevisiaeBiochemistryUbiquitin-like urmylationRNA TransferUbiquitinStructural BiologyAnticodonGeneticsHumansUbiquitinsMolecular BiologyProtein urmylationGeneUrm1 (hURM1)Conserved SequenceSequence Homology Amino AcidbiologyActivator (genetics)TRNA thiolationCell Biologybiology.organism_classificationNucleotidyltransferasesYeastBiochemistrySulfurtransferasesbiology.proteinPeroxiredoxinHeLa CellsFEBS Letters
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Variable presence of 5-methylcytosine in commercial RNA and DNA

2015

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 formyldeoxycytid…

Bisulfite sequencingSaccharomyces cerevisiaeBiologyMass Spectrometrychemistry.chemical_compoundTranscription (biology)Escherichia coliMethylated DNA immunoprecipitationmodified nucleosideMolecular BiologyOligonucleotideRNADNACell BiologyRNA modificationMolecular biology5-MethylcytosinechemistryBiochemistry5-MethylcytosineNucleic acidRNADNA modificationDNAResearch PapermethylcytosineChromatography LiquidRNA Biology
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Dynamic modulation of Dnmt2-dependent tRNA methylation by the micronutrient queuine

2015

Dnmt2 enzymes are cytosine-5 methyltransferases that methylate C38 of several tRNAs. We report here that the activities of two Dnmt2 homologs, Pmt1 from Schizosaccharomyces pombe and DnmA from Dictyostelium discoideum, are strongly stimulated by prior queuosine (Q) modification of the substrate tRNA. In vivo tRNA methylation levels were stimulated by growth of cells in queuine-containing medium; in vitro Pmt1 activity was enhanced on Q-containing RNA; and queuine-stimulated in vivo methylation was abrogated by the absence of the enzyme that inserts queuine into tRNA, eukaryotic tRNA-guanine transglycosylase. Global analysis of tRNA methylation in S. pombe showed a striking selectivity of Pm…

RNA Transfer AspTRNA modificationGuanineMethyltransferaseTRNA methylationbiologyQueuosineQueuineMethylationbiology.organism_classificationMethylationchemistry.chemical_compoundRNA TransferchemistryBiochemistrySchizosaccharomycesTransfer RNAGeneticsRNADictyosteliumDNA (Cytosine-5-)-MethyltransferasesMicronutrientsPentosyltransferasesSchizosaccharomyces pombe ProteinsSchizosaccharomycesNucleic Acids Research
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Next‐Generation Sequencing‐Based RiboMethSeq Protocol for Analysis of tRNA 2′‐O‐Methylation

2017

Analysis of RNA modifications by traditional physico‐chemical approaches is labor  intensive,  requires  substantial  amounts  of  input  material  and  only  allows  site‐by‐site  measurements.  The  recent  development  of  qualitative  and  quantitative  approaches  based  on   next‐generation sequencing (NGS) opens new perspectives for the analysis of various cellular RNA  species.  The  Illumina  sequencing‐based  RiboMethSeq  protocol  was  initially  developed  and  successfully applied for mapping of ribosomal RNA (rRNA) 2′‐O‐methylations. This method also  gives excellent results in the quantitative analysis of rRNA modifications in different species and  under varying growth condi…

0301 basic medicine2 -O-methylationSaccharomyces cerevisiaelcsh:QR1-502Biochemistrylcsh:MicrobiologyDNA sequencingdeleted strain03 medical and health sciences[SDV.BBM.GTP]Life Sciences [q-bio]/Biochemistry Molecular Biology/Genomics [q-bio.GN] deleted strainTrmH 2′‐O‐methylationMolecular BiologytRNAIllumina dye sequencingRiboMethSeq TRM3Genetics RiboMethSeq030102 biochemistry & molecular biologybiologytRNA; 2′‐O‐methylation; RiboMethSeq; high‐throughput sequencing; deleted strain;  TrmH; TRM32'-O-methylationRNAhigh-throughput sequencing[SDV.BBM.BM]Life Sciences [q-bio]/Biochemistry Molecular Biology/Molecular biologyMethylation  TrmHRibosomal RNAbiology.organism_classification030104 developmental biology high‐throughput sequencingTRM3Transfer RNA
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Absolute Quantifizierung nicht‐kodierender RNA‐Spezies mittels Mikroskala‐Thermophorese

2019

ChemistryGeneral MedicineAngewandte Chemie
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Absolute quantification of noncoding RNA by microscale thermophoresis

2019

Abstract Accurate quantification of the copy numbers of noncoding RNA has recently emerged as an urgent problem, with impact on fields such as RNA modification research, tissue differentiation, and others. Herein, we present a hybridization‐based approach that uses microscale thermophoresis (MST) as a very fast and highly precise readout to quantify, for example, single tRNA species with a turnaround time of about one hour. We developed MST to quantify the effect of tRNA toxins and of heat stress and RNA modification on single tRNA species. A comparative analysis also revealed significant differences to RNA‐Seq‐based quantification approaches, strongly suggesting a bias due to tRNA modifica…

tRNA stabilityRNA UntranslatedAbsolute quantificationRNA Quantification | Hot PaperComputational biology010402 general chemistry01 natural sciencesCatalysis[SDV.BBM.GTP]Life Sciences [q-bio]/Biochemistry Molecular Biology/Genomics [q-bio.GN]RNA modification540 ChemistryhybridizationComputingMilieux_MISCELLANEOUS010405 organic chemistryChemistryMicroscale thermophoresisCommunicationRNA[SDV.BBM.BM]Life Sciences [q-bio]/Biochemistry Molecular Biology/Molecular biologyGeneral ChemistryRibosomal RNANon-coding RNAmicroscale thermophoresisCommunications0104 chemical sciencesTissue DifferentiationTransfer RNA570 Life sciences; biologyfluorescenceRNA quantification
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Absolute and relative quantification of RNA modifications via biosynthetic isotopomers

2014

In the resurging field of RNA modifications, quantification is a bottleneck blocking many exciting avenues. With currently over 150 known nucleoside alterations, detection and quantification methods must encompass multiple modifications for a comprehensive profile. LC-MS/MS approaches offer a perspective for comprehensive parallel quantification of all the various modifications found in total RNA of a given organism. By feeding (13)C-glucose as sole carbon source, we have generated a stable isotope-labeled internal standard (SIL-IS) for bacterial RNA, which facilitates relative comparison of all modifications. While conventional SIL-IS approaches require the chemical synthesis of single mod…

Carbon IsotopesTandem Mass SpectrometryEscherichia coli500 Natural sciences and mathematicsMethods OnlineRNANucleosides500 NaturwissenschaftenReference Standards13PseudouridineChromatography LiquidNucleic Acids Research
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Variable presence of 5-methylcytosine in commercial RNA and DNA

2015

5-methylcytosine (m5C, mC) is a naturally occurring nucleoside modification in both RNA and DNA. Its presence in DNA is a widely accepted epigenetic mark for transcription inactivation. In RNA, its appearance in different coding as well as non-coding RNA implies multiple functions, with regulation of gene expression as a common denominator. Here we report on the serendipitous discovery of m5C in synthetic oligonucleotides, which prompted a systematic quantification in synthetic DNA and RNA of academic as well as of commercial origin. For both types of oligonucleotides, m5C was identified by comparison of fragmentation pattern and retention time with authentic standards by highly sensitive L…

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