540 Chemie und zugeordnete Wissenschaften
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Translational riboswitches are cis-acting RNA regulators that modulate the expression of genes during translation initiation. Their mechanism is considered as an RNA-only gene-regulatory system inducing a ligand-dependent shift of the population of functional ON- and OFF-states. The interaction of riboswitches with the translation machinery remained unexplored. For the adenine-sensing riboswitch from Vibrio vulnificus we show that ligand binding alone is not sufficient for switching to a translational ON-state but the interaction of the riboswitch with the 30S ribosome is indispensable. Only the synergy of binding of adenine and of 30S ribosome, in particular protein rS1, induces complete opening of the translation initiation region. Our investigation thus unravels the intricate dynamic network involving RNA regulator, ligand inducer and ribosome protein modulator during translation initiation.
Oligonucleotide-based therapeutics have made rapid progress in clinical treatment of a variety of disease indications. Since most therapeutic oligonucleotides serve more than just one function and tend to have a prolonged lifetime, spatio-temporal control of these functions would be desirable. Photoswitches like azobenzene have proven themselves as useful tools in this matter. Upon irradiation, the photoisomerization of the azobenzene moiety causes destabilization in adjacent base pairs, leading to a decreased hybridization affinity. Since the way the azobenzene is incorporated in the oligonucleotide is of utmost importance, we synthesized locked azobenzene C-nucleosides and compared their photocontrol capabilities to established azobenzene C-nucleosides in oligonucleotide test-sequences by means of fluorescence-, UV/Vis-, and CD-spectroscopy.
The SARS-CoV-2 nucleocapsid (N) protein is crucial for the highly organized packaging and transcription of the genomic RNA. Studying atomic details of the role of its intrinsically disordered regions (IDRs) in RNA recognition is challenging due to the absence of structure and to the repetitive nature of their primary sequence. IDRs are known to act in concert with the folded domains of N and here we use NMR spectroscopy to identify the priming events of N interacting with a regulatory SARS-CoV-2 RNA element. 13C-detected NMR experiments, acquired simultaneously to 1H detected ones, provide information on the two IDRs flanking the N-terminal RNA binding domain (NTD) within the N-terminal region of the protein (NTR, 1–248). We identify specific tracts of the IDRs that most rapidly sense and engage with RNA, and thus provide an atom-resolved picture of the interplay between the folded and disordered regions of N during RNA interaction.
SARS-CoV-2 contains a positive single-stranded RNA genome of approximately 30 000 nucleotides. Within this genome, 15 RNA elements were identified as conserved between SARS-CoV and SARS-CoV-2. By nuclear magnetic resonance (NMR) spectroscopy, we previously determined that these elements fold independently, in line with data from in vivo and ex-vivo structural probing experiments. These elements contain non-base-paired regions that potentially harbor ligand-binding pockets. Here, we performed an NMR-based screening of a poised fragment library of 768 compounds for binding to these RNAs, employing three different 1H-based 1D NMR binding assays. The screening identified common as well as RNA-element specific hits. The results allow selection of the most promising of the 15 RNA elements as putative drug targets. Based on the identified hits, we derive key functional units and groups in ligands for effective targeting of the RNA of SARS-CoV-2.
2D NOESY plays a central role in structural NMR spectroscopy. We have recently discussed methods that rely on solvent-driven exchanges to enhance NOE correlations between exchangeable and non-exchangeable protons in nucleic acids. Such methods, however, fail when trying to establish connectivities within pools of labile protons. This study introduces an alternative that also enhances NOEs between such labile sites, based on encoding a priori selected peaks by selective saturations. The resulting selective magnetization transfer (SMT) experiment proves particularly useful for enhancing the imino–imino cross-peaks in RNAs, which is a first step in the NMR resolution of these structures. The origins of these enhancements are discussed, and their potential is demonstrated on RNA fragments derived from the genome of SARS-CoV-2, recorded with better sensitivity and an order of magnitude faster than conventional 2D counterparts.
In der vorgelegten kumulativen Arbeit wurden strukturelle und funktionale Untersuchungen an Nukleinsäuren durchgeführt, hauptsächlich, aber nicht ausschließlich unter Verwendung von NMR-Spektroskopie (Kernspin Resonanzspektroskopie) als Analysemethode. Die untersuchten Biomoleküle umfassten kleinere und größere biologisch relevante RNAs sowie einen artifiziellen DNA G-Quadruplex. Hierbei konnten Ergebnisse im Bereich der Bestimmung der molekularen Struktur, der Aufklärung der biologischen Funktion und der Wirkstoffentwicklung gewonnen werden, die in sechs verschiedenen Publikationen dargelegt sind, an deren Erstellung der Autor maßgeblich oder hauptverantwortlich beteiligt war. Des Weiteren wird in einem mehrgliedrigen Einleitungssegment auf den Stand der aktuellen Forschung in den jeweiligen Teilgebieten eingegangen.
NMR spectroscopy is a potent method for the structural and biophysical characterization of RNAs. The application of NMR spectroscopy is restricted in RNA size and most often requires isotope‐labeled or even selectively labeled RNAs. Additionally, new NMR pulse sequences, such as the heteronuclear‐detected NMR experiments, are introduced. We herein provide detailed protocols for the preparation of isotope‐labeled RNA for NMR spectroscopy via in vitro transcription. This protocol covers all steps, from the preparation of DNA template to the transcription of milligram RNA quantities. Moreover, we present a protocol for a chemo‐enzymatic approach to introduce a single modified nucleotide at any position of any RNA. Regarding NMR methodology, we share protocols for the implementation of a suite of heteronuclear‐detected NMR experiments including 13C‐detected experiments for ribose assignment and amino groups, the CN‐spin filter heteronuclear single quantum coherence (HSQC) for imino groups and the 15N‐detected band‐selective excitation short transient transverse‐relaxation‐optimized spectroscopy (BEST‐TROSY) experiment.
Basic Protocol 1: Preparation of isotope‐labeled RNA samples with in vitro transcription using T7 RNAP, DEAE chromatography, and RP‐HPLC purification
Alternate Protocol 1: Purification of isotope‐labeled RNA from in vitro transcription with preparative PAGE
Alternate Protocol 2: Purification of isotope‐labeled RNA samples from in vitro transcription via centrifugal concentration
Support Protocol 1: Preparation of DNA template from plasmid
Support Protocol 2: Preparation of PCR DNA as template
Support Protocol 3: Preparation of T7 RNA Polymerase (T7 RNAP)
Support Protocol 4: Preparation of yeast inorganic pyrophosphatase (YIPP)
Basic Protocol 2: Preparation of site‐specific labeled RNAs using a chemo‐enzymatic synthesis
Support Protocol 5: Synthesis of modified nucleoside 3′,5′‐bisphosphates
Support Protocol 6: Preparation of T4 RNA Ligase 2
Support Protocol 7: Setup of NMR spectrometer for heteronuclear‐detected NMR experiments
Support Protocol 8: IPAP and DIPAP for homonuclear decoupling
Basic Protocol 3: 13C‐detected 3D (H)CC‐TOCSY, (H)CPC, and (H)CPC‐CCH‐TOCSY experiments for ribose assignment
Basic Protocol 4: 13C‐detected 2D CN‐spin filter HSQC experiment
Basic Protocol 5: 13C‐detected C(N)H‐HDQC experiment for the detection of amino groups
Support Protocol 9: 13C‐detected CN‐HSQC experiment for amino groups
Basic Protocol 6: 13C‐detected “amino”‐NOESY experiment
Basic Protocol 7: 15N‐detected BEST‐TROSY experiment
We present the rapid biophysical characterization of six previously reported putative G‐quadruplex‐forming RNAs from the 5′‐untranslated region (5′‐UTR) of silvestrol‐sensitive transcripts for investigation of their secondary structures. By NMR and CD spectroscopic analysis, we found that only a single sequence—[AGG]2[CGG]2C—folds into a single well‐defined G‐quadruplex structure. Sequences with longer poly‐G strands form unspecific aggregates, whereas CGG‐repeat‐containing sequences exhibit a temperature‐dependent equilibrium between a hairpin and a G‐quadruplex structure. The applied experimental strategy is fast and provides robust readout for G‐quadruplex‐forming capacities of RNA oligomers.
The combination of high-throughput sequencing and in vivo crosslinking approaches leads to the progressive uncovering of the complex interdependence between cellular transcriptome and proteome. Yet, the molecular determinants governing interactions in protein-RNA networks are not well understood. Here we investigated the relationship between the structure of an RNA and its ability to interact with proteins. Analysing in silico, in vitro and in vivo experiments, we find that the amount of double-stranded regions in an RNA correlates with the number of protein contacts. This relationship —which we call structure-driven protein interactivity— allows classification of RNA types, plays a role in gene regulation and could have implications for the formation of phase-separated ribonucleoprotein assemblies. We validate our hypothesis by showing that a highly structured RNA can rearrange the composition of a protein aggregate. We report that the tendency of proteins to phase-separate is reduced by interactions with specific RNAs.
Nach der Entdeckung und strukturellen Aufklärung des Ribosoms war bekannt, dass neben den Proteinen auch regulatorische RNA Sequenzen für die Steuerung biologischer Prozesse im Organismus verantwortlich sind. Dazu zählt unter anderem das trans-activation responsive element (TAR) aus HIV-1, welches am terminalen 5' Bereich (1-59) aller HIV-1 mRNAs eine identische bulge-loop Struktur ausbildet. Die basale Trans-kription des integrierten HIV Promotors ist in Abwesenheit des viralen trans-activator of transcription (Tat) sehr gering (und abhängig von zellulären Transkriptionsfaktoren). Sobald Tat exprimiert wird, bindet es zusammen mit dem humanen positive trancription elongation factor b (p-TEFb) spezifisch an TAR und aktiviert die Transkriptionsrate des viralen Genoms und die Bildung von volllängen Transkripten drastisch. Die Notwendigkeit der Tat-vermittelten Aktivierung als Grundlage einer funktionierenden HIV Replikation macht dieses System zu einem hoch interessanten Target für eine antivirale HIV Therapie. Basierend auf der Hemmung des Tat/TAR Komplexes wurde in den vergangen Jahren eine Reihe von Verbindungen identifiziert, die zwar in-vitro eine inhibierende Wirkung zeigten, aber keine von ihnen konnte bis jetzt als Therapeutikum Verwendung finden. So wäre die noch ausstehende Entdeckung eines effizienten Tat Antagonisten, der ohne die zelleigene Transkription zu beeinträchtigen eine Reduzierung der Virusreplikation von 80 - 90 % akut infizierter Zellen bewirkt, ein bedeutender Durchbruch in der HIV Forschung. Durch eine längere Behandlung von chronisch infizierten Zellen könnte so die Transkription des viralen Genoms abgeschaltet und dadurch eine Eliminierung latenter HIV Reservoirs ermöglichen werden.
Das Ziel dieser Arbeit war die Entwicklung neuartiger TAR Liganden, zunächst auf Grundlage eines nicht auf Strukturmodellen beruhenden Ligandenscreenings, gefolgt von einem strukturbasierten Ligandendesign. Bei der Suche nach potentiellen Wirkstoffen, beschränkte man die Auswahl der untersuchten Verbindungen auf Guanidin- und Amidinanaloga. Dazu zählten einfache Guanidinderivate mit unterschiedlichen aromatischen Resten sowie heterocyclische Verbindungen, wie Isochinoline, Chinazoline, Perimidine und Phenanthridine. Die Bindungsaffinitäten dieser Wirkstoffkandidaten in Bezug zu TAR wurden über einen FRET Assay nach Matsumoto[1] bestimmt. Eine Auswahl an Verbindungen wurde zudem über eine NMR Titration charakterisiert (AK Schwalbe). Dadurch konnte beobachtet werden, an welcher Position die Liganden mit der TAR RNA in Wechselwirkung treten. Bei diesen Untersuchungen zählten 1,7-
Diaminochinolin (IC50 = 150 µM), 2,4,6-Triaminochinazolin (IC50 = 40 µM) sowie 6,8-Diaminophenanthridin (IC50 = 15 µM) zu den aktivsten Verbindungen.
Um eine Aussage über die Bindungsposen treffen zu können, wurde mittels HF-docking Methoden die Komplexgeometrie energetisch optimiert. Ausgehend von diesen Bindungsmodellen entwickelte man eine Leitstruktur, die als Grundlage eines strukturbasierten Ligandendesigns diente. Im Fokus stand hierbei die Entwicklung einer GC-Basenpaar erkennenden Untereinheit. Mit 3,5-Diamino-9-methyl-3,4,9,10-tetrahydro-1H-pyrrolo[3,4-b]phenanthridin-8(2H)-on (IC50 = 45 µM) konnte ein Ligand identifiziert werden, der im NMR Titrationsexperiment ausschließlich am Basenpaar G26/C39 von TAR eine Verschiebung der Iminoprotonen induzierte. In einem weiteren Projekt versuchte man eine Selektivitätssteigerung durch simultane Adressierung zweier Bindungsstellen zu erreichen. Nachdem im NMR Experiment gezeigt werden konnte, dass 2,4,6-Triaminochinazolin mit hoher Affinität an zwei verschiedenen Bereichen der RNA bindet, wurden eine Reihe dimerer 2,4,6-Triaminochinazolinderivate mit unterschiedlich langen Linkern hergestellt. Mit diesem Ansatz gelang es den hoch affinen Liganden N6,N6'-(1,4-phenylenbis(methylen))bis(chinazolin-2,4,6-triamin) (IC50 = 150 nM) zu identifizieren.