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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.
Background and Purpose: The cyclic nucleotides cAMP and cGMP are ubiquitous second messengers regulating numerous biological processes. Malfunctional cNMP signalling is linked to diseases and thus is an important target in pharmaceutical research. The existing optogenetic toolbox in Caenorhabditis elegans is restricted to soluble adenylyl cyclases, the membrane-bound Blastocladiella emersonii CyclOp and hyperpolarizing rhodopsins; yet missing are membrane-bound photoactivatable adenylyl cyclases and hyperpolarizers based on K+ currents.
Experimental Approach: For the characterization of photoactivatable nucleotidyl cyclases, we expressed the proteins alone or in combination with cyclic nucleotide-gated channels in muscle cells and cholinergic motor neurons. To investigate the extent of optogenetic cNMP production and the ability of the systems to depolarize or hyperpolarize cells, we performed behavioural analyses, measured cNMP content in vitro, and compared in vivo expression levels.
Key Results: We implemented Catenaria CyclOp as a new tool for cGMP production, allowing fine-control of cGMP levels. We established photoactivatable membrane-bound adenylyl cyclases, based on mutated versions (“A-2x”) of Blastocladiella and Catenaria (“Be,” “Ca”) CyclOp, as N-terminal YFP fusions, enabling more efficient and specific cAMP signalling compared to soluble bPAC, despite lower overall cAMP production. For hyperpolarization of excitable cells by two-component optogenetics, we introduced the cAMP-gated K+-channel SthK from Spirochaeta thermophila and combined it with bPAC, BeCyclOp(A-2x), or YFP-BeCyclOp(A-2x). As an alternative, we implemented the B. emersonii cGMP-gated K+-channel BeCNG1 together with BeCyclOp.
Conclusion and Implications: We established a comprehensive suite of optogenetic tools for cNMP manipulation, applicable in many cell types, including sensory neurons, and for potent hyperpolarization.
We investigated the folding kinetics of G-quadruplex (G4) structures by comparing the K+-induced folding of an RNA G4 derived from the human telomeric repeat-containing RNA (TERRA25) with a sequence homologous DNA G4 (wtTel25) using CD spectroscopy and real-time NMR spectroscopy. While DNA G4 folding is biphasic, reveals kinetic partitioning and involves kinetically favoured off-pathway intermediates, RNA G4 folding is faster and monophasic. The differences in kinetics are correlated to the differences in the folded conformations of RNA vs. DNA G4s, in particular with regard to the conformation around the glycosidic torsion angle χ that uniformly adopts anti conformations for RNA G4s and both, syn and anti conformation for DNA G4s. Modified DNA G4s with 19F bound to C2′ in arabino configuration adopt exclusively anti conformations for χ. These fluoro-modified DNA (antiTel25) reveal faster folding kinetics and monomorphic conformations similar to RNA G4s, suggesting the correlation between folding kinetics and pathways with differences in χ angle preferences in DNA and RNA, respectively.
The assembly of a specific polymeric ubiquitin chain on a target protein is a key event in the regulation of numerous cellular processes. Yet, the mechanisms that govern the selective synthesis of particular polyubiquitin signals remain enigmatic. The homologous ubiquitin-conjugating (E2) enzymes Ubc1 (budding yeast) and Ube2K (mammals) exclusively generate polyubiquitin linked through lysine 48 (K48). Uniquely among E2 enzymes, Ubc1 and Ube2K harbor a ubiquitin-binding UBA domain with unknown function. We found that this UBA domain preferentially interacts with ubiquitin chains linked through lysine 63 (K63). Based on structural modeling, in vitro ubiquitination experiments, and NMR studies, we propose that the UBA domain aligns Ubc1 with K63-linked polyubiquitin and facilitates the selective assembly of K48/K63-branched ubiquitin conjugates. Genetic and proteomics experiments link the activity of the UBA domain, and hence the formation of this unusual ubiquitin chain topology, to the maintenance of cellular proteostasis.
Lead-optimization strategies for compounds targeting c-Myc G-quadruplex (G4) DNA are being pursued to develop anticancer drugs. Here, we investigate the structure-activity- relationship (SAR) of a newly synthesized series of molecules based on the pyrrolidine-substituted 5-nitro indole scaffold to target G4 DNA. Our synthesized series allows modulation of flexible elements with a structurally preserved scaffold. Biological and biophysical analyses illustrate that substituted 5-nitroindole scaffolds bind to the c-Myc promoter G-quadruplex. These compounds downregulate c-Myc expression and induce cell-cycle arrest in the sub-G1/G1 phase in cancer cells. They further increase the concentration of intracellular reactive oxygen species. NMR spectra show that three of the newly synthesized compounds interact with the terminal G-quartets (5′- and 3′-ends) in a 2 : 1 stoichiometry.
Medicinal plants represent a big reservoir for discovering new drugs against all kinds of diseases including inflammation. In spite the large number of promising anti-inflammatory plant extracts and isolated components, research on medicinal plants proves to be very difficult. Based on that background this review aims to provide a summarized insight into the hitherto known pharmacologically active concentrations, bioavailability, and clinical efficacy of boswellic acids, curcumin, quercetin and resveratrol. These examples have in common that the achieved plasma concentrations were found to be often far below the determined IC50 values in vitro. On the other hand demonstrated therapeutic effects suggest a necessity of rethinking our pharmacokinetic understanding. In this light this review discusses the value of plasma levels as pharmacokinetic surrogates in comparison to the more informative value of tissue concentrations. Furthermore the need for new methodological approaches is addressed like the application of combinatorial approaches for identifying and pharmacokinetic investigations of active multi-components. Also the physiological relevance of exemplary in vitro assays and absorption studies in cell-line based models is discussed. All these topics should be ideally considered to avoid inaccurate predictions for the efficacy of herbal components in vivo and to unlock the “black box” of herbal mixtures.
Metabolic syndrome (MetS) is a highly prevalent disease cluster worldwide. It requires polypharmacological treatment of the single conditions including type II diabetes, hypertension, and dyslipidemia, as well as the associated comorbidities. The complex treatment regimens with various drugs lead to drug-drug interactions and inadequate patient adherence, resulting in poor management of the disease. Multi-target approaches aim at reducing the polypharmacology and improving the efficacy. This review summarizes the medicinal chemistry efforts to develop multi-target ligands for MetS. Different combinations of pharmacological targets in context of in vivo efficacy and future perspective for multi-target drugs in MetS are discussed.
Therapeutic oligonucleotides interact with a target RNA via Watson-Crick complementarity, affecting RNA-processing reactions such as mRNA degradation, pre-mRNA splicing, or mRNA translation. Since they were proposed decades ago, several have been approved for clinical use to correct genetic mutations. Three types of mechanisms of action (MoA) have emerged: RNase H-dependent degradation of mRNA directed by short chimeric antisense oligonucleotides (gapmers), correction of splicing defects via splice-modulation oligonucleotides, and interference of gene expression via short interfering RNAs (siRNAs). These antisense-based mechanisms can tackle several genetic disorders in a gene-specific manner, primarily by gene downregulation (gapmers and siRNAs) or splicing defects correction (exon-skipping oligos). Still, the challenge remains for the repair at the single-nucleotide level. The emerging field of epitranscriptomics and RNA modifications shows the enormous possibilities for recoding the transcriptome and repairing genetic mutations with high specificity while harnessing endogenously expressed RNA processing machinery. Some of these techniques have been proposed as alternatives to CRISPR-based technologies, where the exogenous gene-editing machinery needs to be delivered and expressed in the human cells to generate permanent (DNA) changes with unknown consequences. Here, we review the current FDA-approved antisense MoA (emphasizing some enabling technologies that contributed to their success) and three novel modalities based on post-transcriptional RNA modifications with therapeutic potential, including ADAR (Adenosine deaminases acting on RNA)-mediated RNA editing, targeted pseudouridylation, and 2′-O-methylation.
Fatty acid and polyketide synthases (FASs and PKSs) synthesize physiologically and pharmaceutically important products by condensation of acyl building blocks. The transacylation reaction catalyzed by acyl transferases (ATs) is responsible for the selection of acyl-CoA esters for further processing by FASs and PKSs. In this study, the AT domains of different multidomain (type I) PKS systems are kinetically described in their substrate selectivity, AT−Acyl carrier protein (ACP) domain-domain interaction and enzymatic kinetic properties. We observe that the ATs of modular PKSs, intricate protein complexes occurring in bacteria and responsible for the biosynthesis of bioactive polyketides, are significantly slower than ATs of mammalian FASs, reflecting the respective purpose of the biosynthetic pathways within the organism and their metabolic context. We further perform a mutational study on the kinetics of the AT−ACP interaction in the modular PKS 6-deoxyerythronolide B synthase (DEBS) and find a high plasticity in enzyme properties, which we explain by a high plasticity in AT−ACP recognition. Our study enlarges the understanding of ATs in its molecular properties and is similarly a call for thorough AT-centered PKS engineering strategies.
Mit 71 Millionen chronisch erkrankten Patienten im Jahr 2015 stellt die chronische Hepatitis C-Virusinfektion eine wichtige Ursache für Zirrhose, Leberdekompensation und Leberkrebs dar.
Eine grundlegende Eigenschaft des Hepatitis C-Virus (HCV) ist die Biogenese modifizierter intrazellulärer Membranen. Das dabei aus dem endoplasmatischen Reticulum (ER) gebildete, sogenannte membranöse Netz (MW, membranous web) dient im Rahmen des HCV-Lebenszyklus als Gerüst für die Assemblierung eines Multi-Protein-Replikase-Komplexes. Das MW wird durch virale nicht-strukturelle Proteine wie NS5A induziert.
Das Multidomänen-Metalloprotein NS5A ist über seine verschiedenen Domänen sowohl bei der Replikation am MW als auch bei der viralen Assemblierung und Freisetzung in der Nähe von Lipidtropfen (LD, lipid droplet) maßgeblich beteiligt. Seine N-terminale amphipathische Helix (AH) spielt dabei über die vermittelte Assoziation von NS5A mit Membranen eine wichtige Rolle. Damit verbundene spezifische Lipidinteraktionen von NS5A unterliegen molekularen Umstrukturierungen, die benötigt werden, um NS5A für seine
verschiedenen Aufgaben im viralen Lebenszyklus anzupassen. Es liegen zwar Röntgen-strukturmodelle von Domäne 1-Dimeren und NMR-Strukturen zur AH vor, allerdings keine experimentellen Strukturen des NS5A-Proteins vollständiger Länge (NS5A fl) in seinem natürlichen Lipidmilieu. Trotz der essentiellen Bedeutung von NS5A für den HCV-Lebens-zyklus und langjähriger Forschung ist bisher nur wenig zur molekularen Funktionsweise von NS5A bekannt.
Dennoch konnten durch Screening hochpotente NS5A-Inhibitoren entdeckt und weiterentwickelt werden. NS5A-Inhibitoren tragen als direkt wirkende antivirale Arzneimittel(DAA, direct-acting antiviral) entscheidend zum Therapieerfolg bei der Behandlung der Hepatitis C bei. Trotz ihrer Bedeutung in der Therapie und intensiver Forschung ist der Wirk-mechanismus von NS5A-Inhibitoren bisher ungeklärt. Eine durch NS5A-Inhibitoren
induzierte intrazelluläre Umverteilung von NS5A und das ausschließliche Auftreten von Resistenz-assoziierten Mutationen (RAM) nahe der NS5A-Lipid-Interaktionsbereiche weisen jedoch auf einen Effekt der Inhibitoren auf die Lipid-NS5A-Interaktion hin.
Als grundlegende Hypothese dieser Arbeit wurde somit vermutet, dass abhängig vom NS5A umgebenden Lipidmilieu (MW oder LD) spezifische Lipid-Protein-Interaktionen Einfluss auf die Struktur und Funktion von NS5A nehmen und NS5A-Inhibitoren über eine Inhibition dieser Interaktionen wirken. Polyphosphoinositide (PPI) könnten dabei als Lipidinteraktionspartner eine besondere Rolle spielen, da sie bedeutend für die Membran-Kennzeichnung verschiedener Zellkompartimente sind und auch die Funktion von Membranproteinen regulieren können. Eine Interaktion von NS5A mit PtdIns(4,5)P2 wurde bereits publiziert.
Um basierend auf der postulierten Hypothese die mechanistischen Details im Wechselspiel von NS5A und intrazellulären Membranen sowie den dabei möglichen Effekt von
NS5A-Inhibitoren zu untersuchen, musste zunächst NS5A in ausreichender Menge, Reinheit und Qualität rekombinant hergestellt werden. Hierfür wurde ein entsprechendes Protokoll zur Proteinexpression durch Baculovirus-vermittelte Expression in Sf9-Insektenzellen und Strep-Tactin-Reinigung für das full length Protein und trunkierte Varianten etabliert.
In Kooperation mit einem Partner konnte unter Verwendung von giant unilamellar vesicles (GUVs) und konfokaler Mikroskopie gezeigt werden, dass unser full length Protein die Struktur von Membranen verändert (Membran-Remodellierung).
Die Stabilität des gereinigten Proteins und damit Effekte auf die Proteinfaltung wurden mittels Thermal shift assay (TSA) untersucht und dabei auch Effekte des NS5A-Inhibitors
Daclatasvir (DCV) und des Metall-Chelators EDTA überprüft. Die Bindung des Inhibitors hatte einen stabilisierenden Effekt auf die Proteinstruktur zur Folge.
Potentielle Interaktionsmuster mit Membranlipiden wurden mit Hilfe eines Protein lipid overlay assays (PLOA) detektiert. Zusätzlich zum in der Literatur bereits beschriebenen
Interaktionspartner PtdIns(4,5)P2 konnten weitere Lipid-Bindungspartner für NS5A identifiziert werden. Dabei legen die gewonnenen Daten nahe, dass die Interaktion über die Domäne 1 von NS5A vermittelt wird, wobei die Domänen 2 und 3 die Affinität zu den Lipidbindungspartnern erhöht, aber nicht das Phospholipid-Bindungsmuster verändert.
DCV hatte im PLOA keine qualitativen Auswirkungen auf das Lipid-Bindungsmuster. Die Lipidinteraktionen wurden mittels eines Liposomen-Rekonstitutionsmodells validiert.
In silico konnten basierend auf verfügbaren, experimentellen Strukturdaten und einem dynamischen Modell drei Cluster basischer Aminosäuren in NS5A-D1-AH als mögliche
PPI-Bindungsstellen identifiziert werden. Basierend auf dem Strukturmodell wurde eine Mutationsstrategie zur Charakterisierung der potentiellen PPI-Bindungsstellen entwickelt.
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