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Cerumen was found to be a promising alternative specimen for the detection of drugs. In a pilot study, drugs of abuse were identified at a higher detection rate and a longer detection window in cerumen than in urine. In this study, cerumen from subjects was analyzed after they ingested the designer stimulant 4-fluoroamphetamine (4-FA) in a controlled manner. Methods: Twelve subjects ingested placebo and 100 mg of 4-FA. Five of them were also given 150 mg of 4-FA in 150 mL Royal Club bitter lemon drink at least after 7 days. Cerumen was sampled using cotton swabs at baseline, 1 h after the ingestion of the drug and at the end of the study day (12 h). After extraction with ethyl acetate followed by solid-phase extraction, the extracts were analyzed using liquid chromatography coupled with tandem mass spectrometry (LC–MS/MS). Results and discussion: In the cerumen of all 12 subjects, 4-FA was detected 12 h after its ingestion; in most subjects, cerumen was detected after 1 h of ingestion, ranging from 0.06 to 13.90 (median 1.52) ng per swab. The detection of 4-FA in cerumen sampled 7 days or more after the first dose suggested a long detection window of cerumen. Conclusions: Cerumen can be successfully used to detect a single drug ingestion even immediately after the ingestion when a sufficient amount of cerumen is used.
Stickstoff (NO), Kohlenmonoxid (CO) und Schwefelwasserstoff (H2S) gehören zur Gruppe der Gasotransmitter. Dabei handelt es sich um kleine gasförmige Signalmoleküle, welche innerhalb des Körpers gebildet werden und dort wichtige physiologische Funktionen bei der Regulation der Apoptose, der Proliferation, der Entzündungsreaktion und der Genexpression übernehmen. Aufgrund ihrer Membranpermeabilität ist die Wirkung der Gasotransmitter nicht an die Interaktion mit spezifischen membranständigen Rezeptoren gebundenen. Je nach Organ, Gewebe und Konzentration können diese Mediatoren unterschiedliche Prozesse beeinflussen und teils sogar gegenteilige Wirkungen hervorrufen.H2S beispielsweise kann im Verlauf der Leukozytenadhäsion im Epithelium anti-inflammatorisch, bei Brandwunden oder rheumatischen Erkrankungen jedoch pro-inflammatorisch wirken. Im Kreislaufsystem hingegen bewirkt H2S durch die Aktivierung von ATP-abhängigen K+-Kanälen und die damit zusammenhängende Vasorelaxion der glatten Muskelzellen einen eindeutig protektiven Effekt.
H2S kann je nach Substrat und Zelltyp durch eines von 3 Enzymen gebildet werden. Die Cystathionin-γ-Lyase (CSE) und die Cystathionin-β-Synthase (CBS) nutzen L-Cystein als Substrat für die Synthese von H2S. Das dritte H2S-bildende Enzym, die 3-Mercaptopyruvate Sulfurtransferase (3-MST) verwendet α-Ketoglutarat als Substrat, welches zuvor von der Cystein-Aminotransferse (CAT) aus L-Cystein synthetisiert wurde. Während die beiden Enzyme CSE und CBS im Zytosol der Zelle zu finden sind, ist die 3-MST hauptsächlich in den Mitochondrien der Zelle zu finden. Im Gegensatz zur CBS, welche eher ein konstitutiv exprimiertes Protein ist, wird die Expression der CSE auf der Transkriptionsebene durch u.a. Entzündungsmediatoren wie TNF-α oder Wachstumsfaktoren wie PDGF-BB induziert.
Ein Ziel der Arbeit war es, die Wirkung von H2S bei der Wundheilung, bei entzündlichen glomerulären Erkrankungen der Niere und beim Schlaganfall zu untersuchen. Für diesephänotypische Analysen stand ein Knockoutmodell für die CSE zur Verfügung.
Zudem wurden in dieser Arbeit Untersuchungen mit einem Knockoutmodell für das zytoskeletäre Protein durchgeführt. Bei Clp36 (PDLIM1) handelt es sich um ein PDLIM-Protein (PDZ and LIM domain protein),welches durch die Gasotransmitter NO und H2S auf transkriptioneller und translationaler Ebene reguliert wird ist und aufgrund seiner Assoziation mit dem Zytoskelett dynamische Vorgänge der Zelle moduliert. Es ist bereits bekannt, dass Clp36 ein negativer Regulator des Glykoprotein VI (GPVI), welches eine wichtige Rolle bei der Aktivierung von Thrombozyten spielt, ist.
Beide Knockoutmodelle wurden in murinen Mesangiumzellen der Niere und in Krankheitsmodellen der Haut (kutane Wundheilung)und des Gehirns (Schlaganfall mit dem MCAO-Modell) analysiert.
Neben nicht signifikanten Effekten im MCAO-Modell, konnten sowohl Effekte des CSE-, als auch des CLP36-KOs auf die Migration und Proliferation und im Falle der CSE auch auf die Adhäsion der murinen Mesangiumzellen beobachtet werden. Die Depletion von Clp36 führte zu einer Verringerung der Migrations- und einer Erhöhung der Proliferationsrate, wohingegen die Depletion der CSE zu einer Erhöhung der Migrations-, Proliferations- und Adhäsionsrate führte. Die vielversprechendsten Ergebnisse konnten im Tiermodell der kutanen Wundheilung generiert werden. Untersucht wurde die Expression der H2S-produzierenden Enzyme CSE, CBS und 3-MST. Alle drei Enzyme zeigten im Tiermodell keine transkriptionelle Regulation und blieben auch während der akuten Entzündungsphase und der proliferativen Phase der Wundheilung unverändert. Es konnte jedoch gezeigt werden, dass die Expression der CSE in der späten Phase der Wundheilung signifikant anstieg, wenn die Proliferation innerhalb des Granulationsgewebes und der Neoepidermis geringer wurde. Die Vermutung, dass H2S in dieser Phase eine wichtige Rolle spielt, konnte durch die Analyse der CSE-KO Mäuse bekräftigt werden, da dort der Verlust der CSE offenbar durch die CBS kompensiert wurde.
In immunhistochemischen Untersuchungen konnten insbesondere follikuläre Keratinozyten der Neo-Epidemis als Quelle der CSE-Expression identifiziert werden. Durch in-vitro Studien auf mRNA und Proteinebene in HaCaT Zellen wurde gezeigt, dass H2S die Keratinozyten-Differenzierung beeinflusst. Der langsam freisetzendeH2S-Donor GYY4137 konnte in humanen Keratinozyten zu einer signifikanten Erhöhung der Ca2+- induzierten Expression der frühen Keratinozyten-Differenzierungsmarker Cytokeratin 10 (CK10) und Involucrin (IVN) beitragen.
Im Laufe dieser Arbeit konnte der molekulare Mechanismus hinter diesen Beobachtungen noch nicht geklärt werden.
Durch weitere Versuche meiner Arbeitsgruppe konnte jedoch gezeigt werden, dass die GYY4137-abhängige Induktion der CK10-Expression durch eine verstärkte Bindung der RNA-Polymerase II an den CK10 Promotor zustande kommt.
Im Rahmen dieser Arbeit sollte der tonische BZR-Signalweg im Burkitt Lymphom näher untersucht werden. Ziel war die Identifizierung von Zielstrukturen, die für die Zellen essentiell für die Aufrechterhaltung des tonischen Signalwegs sind und gleichzeitig die Viabilität der Zellen fördern. Durch die Identifizierung noch unbekannter Zielstrukturen wäre man in der Lage, neue Behandlungsstrategien zu entwickeln oder bereits bestehende zu optimieren. Des Weiteren sollte die Signaltransduktion in der B-ALL, die über einen Vorläufer des BZRs, dem prä-BZR vermittelt wird, hinsichtlich eines tonischen Überlebenssignals untersucht werden.
Durch massenspektrometrische Analysen der tonischen BZR-Signaltransduktion im Burkitt Lymphom, die für die Viabilität der Zellen essentiell ist und die Ergebnisse eines Inhibitorscreens konnte HSP90 als potenzielle neue Zielstruktur im Burkitt Lymphom identifiziert werden.
So konnte gezeigt werden, dass Burkitt-Lymphom-Zellen nach Inhibition der Chaperonfunktion von HSP90 durch zwei auf dem Markt bereits verfügbare Inhibitoren einen Zellzyklusarrest erfahren, der letztlich zur Apoptose der Zellen führt. Dieser Effekt wurde auf einen Verlust des (tonischen) BZR-Signals zurückgeführt, der überwiegend durch den aktiven lysosomalen Abbau von SYK nach HSP90-Inhibition zustande kommt. Demnach führte die Überexpression einer HSP90-resistenten Variante von SYK (TEL-SYK) zu einer Aufhebung der apoptotischen Effekte nach HSP90-Inhibition. Zudem wurde SYK als Interaktionspartner von HSP90 (HSP90-Klientprotein) im Burkitt Lymphom und die für die Interaktion essentielle Phosphorylierungsstelle (pY197 in HSP90α bzw. pY192 in HSP90β) identifiziert bzw. validiert.
Das therapeutische Potenzial der HSP90-Inhibitoren im Burkitt Lymphom offenbarte sich ferner durch den Vergleich der Wirkungseffektivität in gesunden B-Zellen mit der in Tumorzellen. So zeigten HSP90-Inhibitoren eine erhöhte Affinität zu Tumorzellen. Bei verwendeten Konzentrationen der Inhibitoren, die bereits eine apoptotische Wirkung in Tumorzellen hervorriefen, waren gesunde B-Zellen resistent.
In der B-ALL konnte durch den Knockdown von CD79a und der Inhibition von SYK eine tonische Antigenrezeptor-Signalleitung identifiziert werden, die wie im Burkitt Lymphom über den PI3K/AKT-Signalweg vermittelt wird. Durch die Kombination der im Rahmen dieser Arbeit gewonnen Erkenntnisse und weiterführende Analysen (wie zum Beispiel durch Inhibitor- oder CRISPR/Cas-Screens) kann so eine Identifizierung von potenziellen Zielstrukturen mit therapeutischem Nutzen in der B-ALL erfolgen.
Currently, a wide variety of complex non-oral dosage forms are entering the global healthcare market. Although many assays have been described in recent research, harmonized procedures and standards for testing their in vitro performance remain widely unexplored. Among others, dialysis-based techniques such as the Pharma Test Dispersion Releaser are developed for testing the release of drugs from nanoparticles, liposomes, or extracellular vesicle preparations. Here, we provide advanced strategies and practical advice for the development and validation of dialysis-based techniques, including documentation, analysis, and interpretation of the raw data. For this purpose, key parameters of the release assay, including the hydrodynamics in the device at different stirring rates, the selectivity for particles and molecules, as well as the effect of excipients on drug permeation were investigated. At the highest stirring rate, a more than twofold increase in the membrane permeation rate (from 0.99 × 10−3 to 2.17 × 10−3 cm2/h) was observed. Additionally, we designed a novel computer model to identify important quality parameters of the dialysis experiment and to calculate error-corrected release profiles. Two hydrophilic creams of diclofenac, Voltaren® Emulgel, and Olfen® gel, were tested and provide first-hand evidence of the robustness of the assay in the presence of semisolid dosage forms.
Catecholaminergic polymorphic ventricular tachycardia (CPVT) is an inherited disturbance of the heart rhythm (arrhythmia) that is induced by stress or that occurs during exercise. Most mutations that have been linked to CPVT are found in two genes, i.e., ryanodine receptor 2 (RyR2) and calsequestrin 2 (CASQ2), two proteins fundamentally involved in the regulation of intracellular Ca2+ in cardiac myocytes. We inserted six CPVT-causing mutations via clustered regularly interspaced short palindromic repeats (CRISPR)-Cas9 into unc-68 and csq-1, the Caenorhabditis elegans homologs of RyR and CASQ, respectively. We characterized those mutations via video-microscopy, electrophysiology, and calcium imaging in our previously established optogenetic arrhythmia model. In this study, we additionally enabled high(er) throughput recordings of intact animals by combining optogenetic stimulation with a microfluidic chip system. Whereas only minor/no pump deficiency of the pharynx was observed at baseline, three mutations of UNC-68 (S2378L, P2460S, Q4623R; RyR2-S2246L, -P2328S, -Q4201R) reduced the ability of the organ to follow 4 Hz optogenetic stimulation. One mutation (Q4623R) was accompanied by a strong reduction of maximal pump rate. In addition, S2378L and Q4623R evoked an altered calcium handling during optogenetic stimulation. The 1,4-benzothiazepine S107, which is suggested to stabilize RyR2 channels by enhancing the binding of calstabin2, reversed the reduction of pumping ability in a mutation-specific fashion. However, this depends on the presence of FKB-2, a C. elegans calstabin2 homolog, indicating the involvement of calstabin2 in the disease-causing mechanisms of the respective mutations. In conclusion, we showed for three CPVT-like mutations in C. elegans RyR a reduced pumping ability upon light stimulation, i.e., an arrhythmia-like phenotype, that can be reversed in two cases by the benzothiazepine S107 and that depends on stabilization via FKB-2. The genetically amenable nematode in combination with optogenetics and high(er) throughput recordings is a promising straightforward system for the investigation of RyR mutations and the selection of mutation-specific drugs.
ABC transporters fulfill diverse physiological functions in different cellularlocalizations ranging from the plasma membrane to intracellular membranouscompartments. Several ABC transporters have been spotted in the endolyso-somal system, which consists of endosomes, autophagosomes, lysosomes, andlysosome-related organelles. In this review, we present an overview of lysoso-mal ABC transporters including ABCA2, ABCA3, ABCA5, ABCB6,ABCB9, and ABCD4, discussing their trafficking routes, putative substrates,potential physiological functions, and associated diseases. In addition, weoffer a critical evaluation of the literature linking ABC transporters to lyso-somal drug sequestration, examining pitfalls associated with in vitro modelsof drug resistance.
Additive manufacturing or 3D printing as an umbrella term for various materials processing methods has distinct advantages over many other processing methods, including the ability to generate highly complex shapes and designs. However, the performance of any produced part not only depends on the material used and its shape, but is also critically dependent on its surface properties. Important features, such as wetting or fouling, critically depend mainly on the immediate surface energy. To gain control over the surface chemistry post-processing modifications are generally necessary, since it′s not a feature of additive manufacturing. Here, we report on the use of initiator and catalyst-free photografting and photopolymerization for the hydrophilic modification of microfiber scaffolds obtained from hydrophobic medical-grade poly(ε-caprolactone) via melt-electrowriting. Contact angle measurements and Raman spectroscopy confirms the formation of a more hydrophilic coating of poly(2-hydroxyethyl methacrylate). Apart from surface modification, we also observe bulk polymerization, which is expected for this method, and currently limits the controllability of this procedure.
NMR structure calculation using NOE-derived distance restraints requires a considerable number of assignments of both backbone and sidechains resonances, often difficult or impossible to get for large or complex proteins. Pseudocontact shifts (PCSs) also play a well-established role in NMR protein structure calculation, usually to augment existing structural, mostly NOE-derived, information. Existing refinement protocols using PCSs usually either require a sizeable number of sidechain assignments or are complemented by other experimental restraints. Here, we present an automated iterative procedure to perform backbone protein structure refinements requiring only a limited amount of backbone amide PCSs. Already known structural features from a starting homology model, in this case modules of repeat proteins, are framed into a scaffold that is subsequently refined by experimental PCSs. The method produces reliable indicators that can be monitored to judge about the performance. We applied it to a system in which sidechain assignments are hardly possible, designed Armadillo repeat proteins (dArmRPs), and we calculated the solution NMR structure of YM4A, a dArmRP containing four sequence-identical internal modules, obtaining high convergence to a single structure. We suggest that this approach is particularly useful when approximate folds are known from other techniques, such as X-ray crystallography, while avoiding inherent artefacts due to, for instance, crystal packing.
Alzheimer’s Disease (AD) is a progressive and irreversible neurodegenerative disorder, characterized by the accumulation of abeta-amyloid aggregates, which triggers tau hyperphosphorylation and neuronal loss. While the precise mechanisms underlying neurodegeneration in AD are not entirely understood, it is known that loss of proteostasis is implicated in this process. Maintaining neuronal proteostasis requires proper transfer RNA (tRNA) modifications, which are crucial for optimal translation. However, research into tRNA epitranscriptome in AD is limited, and it is not yet clear how alterations in tRNA modifying enzymes and tRNA modifications might contribute to disease progression. Here, we report that expression of the tRNA modifying enzyme ELP3 is reduced in the brain of AD patients and amyloid AD mouse models, suggesting ELP3 is implicated in proteostasis dysregulation observed in AD. To investigate the role of ELP3 specifically in neuronal proteostasis impairments in the context of amyloid pathology, we analyzed SH-SY5Y neuronal cells carrying the amyloidogenic Swedish familial AD mutation in the APP gene (SH-SWE) or the wild-type gene (SH-WT). Similarly to the amyloid mouse models, SH-SWE exhibited reduced levels of ELP3 which was associated with tRNA hypomodifications and reduced abundance, as well as proteostasis impairments. Furthermore, the knock-down of ELP3 in SH-WT recapitulated the proteostasis impairments observed in SH-SWE cells. Importantly, the correction of tRNA deficits due to ELP3 reduction rescued and reverted proteostasis impairments of SH-SWE and SH-WT knock-down for ELP3, respectively. Additionally, SH-WT exposed to the secretome of SH-SWE or synthetic amyloid aggregates recapitulate the SH-SWE phenotype, characterized by reduced ELP3 expression, tRNA hypomodification and increased protein aggregation. Taken together, our data suggest that amyloid pathology dysregulates neuronal proteostasis through the reduction of ELP3 and tRNA modifications. This study highlights the modulation of tRNA modifications as a potential therapeutic avenue to restore neuronal proteostasis in AD and preserve neuronal function.
Macrophages respond to the Th2 cytokine IL-4 with elevated expression of arachidonate 15-lipoxygenase (ALOX15). Although IL-4 signaling elicits anti-inflammatory responses, 15-lipoxygenase may either support or inhibit inflammatory processes in a context-dependent manner. AMP-activated protein kinase (AMPK) is a metabolic sensor/regulator that supports an anti-inflammatory macrophage phenotype. How AMPK activation is linked to IL-4-elicited gene signatures remains unexplored. Using primary human macrophages stimulated with IL-4, we observed elevated ALOX15 mRNA and protein expression, which was attenuated by AMPK activation. AMPK activators, e.g. phenformin and aminoimidazole-4-carboxamide 1-β-d-ribofuranoside inhibited IL-4-evoked activation of STAT3 while leaving activation of STAT6 and induction of typical IL-4-responsive genes intact. In addition, phenformin prevented IL-4-induced association of STAT6 and Lys-9 acetylation of histone H3 at the ALOX15 promoter. Activating AMPK abolished cellular production of 15-lipoxygenase arachidonic acid metabolites in IL-4-stimulated macrophages, which was mimicked by ALOX15 knockdown. Finally, pretreatment of macrophages with IL-4 for 48 h increased the mRNA expression of the proinflammatory cytokines IL-6, IL-12, CXCL9, and CXCL10 induced by subsequent stimulation with lipopolysaccharide. This response was attenuated by inhibition of ALOX15 or activation of AMPK during incubation with IL-4. In conclusion, limiting ALOX15 expression by AMPK may promote an anti-inflammatory phenotype of IL-4-stimulated human macrophages.
The accumulation and distribution of characteristic secondary products in the different organs of an Aloe plant (A. succotrina Lam.) were studied by high performance liquid chromatography for the first time. In the leaves of the Aloe plant, only anthrone-C-glycosyls of the 7-hydroxyaloin type and, for the first time in plant material, the free anthraquinone 7-hydroxyaloeemodin were found. In contrast to previous reports on the distribution of secondary products in Aloe plants, anthrone-C-glycosyls were also detected in flowers, bracts and the inflorescence axis of the species examined. Aloesaponol I, a tetrahydroanthracene aglycone, was only present in the underground organs and in the stem. The 2-alkylchromone-C-glucosyl aloeresin B showed no specific occurrence as it was found in every type of organ. Based on these results and the findings of recent studies on Aloe roots and flowers, a distribution scheme of polyketide types in the Aloe plant was established. It suggests a separate and independent anthranoid metabolism for underground Aloe organs and stem on the one hand, and for leaves and inflorescence organs on the other hand. In the latter structures anthranoid metabolism seems to be additionally compartmentalized as the anthranoid pro files of inflorescence organs and leaves differ in two points relevant to anthranoid biosynthe sis: firstly, the occurrence of anthrone aglycones and secondly, the individual content of corresponding anthrone-C-glucosyl diastereomers.
Bacteria are true artists of survival, which rapidly adapt to environmental changes like pH shifts, temperature changes and different salinities. Upon osmotic shock, bacteria are able to counteract the loss of water by the uptake of potassium ions. In many bacteria, this is accomplished by the major K+ uptake system KtrAB. The system consists of the K+-translocating channel subunit KtrB, which forms a dimer in the membrane, and the cytoplasmic regulatory RCK subunit KtrA, which binds non-covalently to KtrB as an octameric ring. This unique architecture differs strongly from other RCK-gated K+ channels like MthK or GsuK, in which covalently tethered cytoplasmic RCK domains regulate a single tetrameric pore. As a consequence, an adapted gating mechanism is required: The activation of KtrAB depends on the binding of ATP and Mg2+ to KtrA, while ADP binding at the same site results in inactivation, mediated by conformational rearrangements. However, it is still poorly understood how the nucleotides are exchanged and how the resulting conformational changes in KtrA control gating in KtrB is still poorly understood.
Here,I present a 2.5-Å cryo-EM structure of ADP-bound, inactive KtrAB, which for the first time resolves the N termini of both KtrBs. They are located at the interface of KtrA and KtrB, forming a strong interaction network with both subunits. In combination with functional and EPR data we show that the N termini, surrounded by a lipidic environment, play a crucial role in the activation of the KtrAB system. We are proposing an allosteric network, in which an interaction of the N termini with the membrane facilitates MgATP-triggered conformational changes, leading to the active, conductive state.
Gram-negative bacteria maintain an intrinsic resistance mechanism against entry of noxious compounds by utilizing highly efficient efflux pumps. The E. coli AcrAB-TolC drug efflux pump contains the inner membrane H+/drug antiporter AcrB comprising three functionally interdependent protomers, cycling consecutively through the loose (L), tight (T) and open (O) state during cooperative catalysis. Here, we present 13 X-ray structures of AcrB in intermediate states of the transport cycle. Structure-based mutational analysis combined with drug susceptibility assays indicate that drugs are guided through dedicated transport channels toward the drug binding pockets. A co-structure obtained in the combined presence of erythromycin, linezolid, oxacillin and fusidic acid shows binding of fusidic acid deeply inside the T protomer transmembrane domain. Thiol cross-link substrate protection assays indicate that this transmembrane domain-binding site can also accommodate oxacillin or novobiocin but not erythromycin or linezolid. AcrB-mediated drug transport is suggested to be allosterically modulated in presence of multiple drugs.
Der Natrium-abhängige Kaliumkanal Slack (KNa1.1, Slo2.2, KCNT1) nimmt eine Schlüsselrolle in der Regulation neuronaler Erregbarkeit ein, indem er die Ausbildung und Feuerungsfrequenz von Aktionspotentialen kontrolliert. Sowohl in Mäusen als auch in Menschen wird Slack besonders hoch in nicht-peptidergen C-Faser-Neuronen exprimiert. Wissenschaftliche Erkenntnisse der letzten Jahre konnten die Beteiligung von Slack-Kanälen in der Signalverarbeitung neuropathischer Schmerzen, aber auch in verschiedenen Arten von Pruritus, feststellen. Dabei zeigen Slack-defiziente Mäuse ein verstärktes mechanisches Schmerzverhalten nach einer peripheren Nervenverletzung und ein erhöhtes Kratzverhalten in akuten Juckreiz-Modellen. Das als Slack-Aktivator identifizierte trizyklische Neuroleptikum Loxapin zeigt sowohl analgetische als auch antipruritische Effekte in Mäusen, jedoch ist sein klinischer Einsatz auf Grund schwerwiegender antipsychotischer Nebenwirkungen limitiert. Basierend auf Loxapins Leitstruktur wurden daher in dieser Arbeit neue Slack-Aktivatoren mit einem verbesserten pharmakologischen Profil designed und ihr Potential für die Therapie von Schmerzen sowie akutem und chronischem Pruritus in vivo untersucht.
Two main types of methods are used in gene therapy: integrating vectors and nuclease-based genome engineering. Nucleases are site-specific and are efficient for knock-outs, but inefficient at inserting long DNA sequences. Integrating vectors perform this task with high efficiency, but their insertion occurs at random genomic positions. This can result in transformation of target cells, which leads to severe adverse events in a gene therapy context. Thus, it is of great interest to develop novel genome engineering tools that combine the advantages of both technologies. The main focus of this thesis is on generating such a targetable integrating vector.
The integrating vector used in this project is the Sleeping Beauty (SB) transposon, a DNA transposon characterized by high activity across a wide range of cells. The SB transposase was combined with an RNA-guided Cas9 nuclease domain. This nuclease component was meant to direct transposase integration to specific targets defined by RNAs. The SB transposase was fused to cleavage-inactivated Cas9 (dCas9) to tether it to the target sites. In addition, adapter proteins consisting of dCas9 and domains non-covalently interacting with SB transposase or the SB transposon were generated. All constituent domains of these fusion proteins were tested in enzymatic assays and almost all enzymatic activities could be verified.
Combining the fusion protein dCas9-SB100X with a gRNA binding a sequence from the AluY repetitive element resulted in a weak, but statistically significant enrichment around sites bound by the gRNA. This enrichment was ca. 2-fold and occurred within a 300 bp window downstream of target sites, or within the AluY element.
Targeting with adapter proteins and targeting of other targets (L1 elements or single-copy targets) did not result in statistically significant effects. Single-copy targets tested included the HPRT gene and three specifically selected GSH targets that were known to be receptive to SB insertions. The combination with a more sequence-specific transposase mutant also failed to increase specificity to a level allowing targeting of single-copy loci. Genome-wide analysis of insertions however demonstrated, that dCas9-SB100X has a different insertion profile than SB100X, regardless of the gRNA used.
As low efficiency of retargeting is likely a consequence of the high background activity of the SB100X transposase in the fusion constructs, a SB mutant with reduced DNA affinity, SB(C42), was generated. For this mutant, transposition activity was partly dependent on a dCas9 domain being supplied with a multi-copy target gRNA, specifically a 2-fold increase in the presence of a AluY-directed gRNA. Whether using this mutant results in improved targeting remains to be determined.
In a side project, an attempt was made to direct SB insertions to ribosomal DNA by fusing the transposase to a nucleolar protein. This fusion transposase partially localized to nucleoli and insertions catalyzed by this transposase were found to be enriched in nucleolus organizer regions (NORs) and nucleolus-associated domains (NADs).
The aim of a second side project was increasing the ratio between homology-directed repair (HDR) and non-homologous end-joining (NHEJ) at Cas9-mediated double-strand breaks (DSBs). To achieve this, Cas9 was fused to DNA-interacting domains and corresponding binding sequences were fused to the homology donors. While an increased HDR/NHEJ ration could be observed for the fusion proteins, it was not dependent on the presence on the binding sequences in the donor molecules.
Adaptormoleküle zur Rekrutierung von Transkriptionsfaktoren oder miRNAs an nicht native Bindestellen
(2020)
Die Kontrolle der Genexpression ist eines der großen Ziele der chemischen Biologie. Gemäß dem klassischen Dogma der Molekularbiologe verläuft der Fluss der genetischen Information über die Transkription von DNA zur messenger RNA (mRNA) und durch die Translation von mRNA zu Proteinen. Auch wenn der ursprünglichen Formulierung dieses Dogmas verschiedene Aspekte hinzugefügt wurden, bleibt die Kernaussage unverändert. Eine Störung der Genexpression ist in vielen Fällen die Ursache für schwerwiegende Erkrankungen. Klassische Therapeutika, die im Allgemeinen aus kleinen Molekülen bestehen, können pathogene Proteine spezifisch binden und inhibieren. Allerdings greifen diese Wirkstoffe am Ende der Produktionskette ein und nicht alle Proteine können adressiert werden. Im Gegensatz dazu könnte ein Eingriff auf der Ebene der Transkription oder Translation die Expression der pathogenen Proteine auf ein normales Maß senken oder ganz verhindern. Als entscheidende Regulatoren der Genexpression stellen Transkriptionsfaktoren (TFs) einen interessanten Angriffspunkt zur Kontrolle der Transkription dar. TFs können über den Kontakt zu weiteren Proteinen die RNA Polymerase II rekrutieren und so die Transkription starten. Für die Translation ist die Halbwertszeit der mRNA ein entscheidender Faktor. Die Lebensdauer wird durch eine Vielzahl an Proteinen und micro RNAs (miRNAs) reguliert. MiRNAs sind kurze Oligonukleotide, die in Argonautproteine eingebaut werden können. Die daraus resultierenden RNA-induced silencing complexes (RISCs) sind in der Lage, den Abbau der mRNA einzuleiten. Sowohl TFs als auch RISCs besitzen dabei Nukleinsäure-bindende Untereinheiten, die mit spezifische Sequenzen assoziieren. In gewisser Weise ist die molekulare Erkennung der Nukleinsäuren vergleichbar mit einer Postsendung, die aufgrund der Adresse korrekt zugestellt wird. Um in diesem Bild des täglichen Lebens zu bleiben: Bei einem Wechsel des Wohnorts ist es üblich, einen Nachsendeauftrag zu stellen. Dabei wird die alte Anschrift auf den Postsendungen mit einem neuen Adressetikett überklebt und die Zustellung erfolgt an den neuen Wohnort. Das zentrale Thema dieser Dissertation ist, dieses „Umetikettieren“ auch auf TFs und RISCs zu übertragen. Hierbei ist es notwendig, die Nukleinsäure-bindenden Untereinheiten der Komplexe, also die „alte Adresse“, vollständig zu blockieren und gleichzeitig eine hohe Affinität zu einer neuen Sequenz zu erzeugen. Hierzu könnten bifunktionale Adaptormoleküle verwendet werden.
Die Adaptoren für die Rekrutierung von TFs müssen in der Lage sein, sowohl die doppelsträngige DNA (dsDNA) als auch einen TF zu binden (Abbildung I). Dabei sollte eine Selbstbindung des Adaptors vermieden werden. In dieser Arbeit wurde der TF Sp1 als Ziel gewählt, da er an GC-reiche dsDNAs bindet. Dies ermöglicht die Wahl einer AT- oder GA reichen DNA-Sequenz als Ziel der Umleitung, wodurch eine Selbstbindung des Adaptors minimiert werden sollte. Zur Erkennung der DNA war geplant, Pyrrol-Imidazol-Polyamide (PIPs), triplexbildende Oligonukleotide (TFOs) oder pseudokomplementäre PNAs einzusetzen. Für Letztere war es möglich, eine neue Syntheseroute zu einem Fmoc geschützten Thiouracil-Monomer zu entwerfen. Dabei konnte eine selektive Alkylierung an der N1-Position des Thiouracils durchgeführt werden. Auf Basis der PIPs und der TFOs wurden jeweils verschiedene Adaptoren entworfen, deren Bindung zu ihren Zielen mit Band-Shift-Experimenten und im Fall der PIPs zusätzlich mit fluoreszenzbasierten Pulldown-Experimenten gezeigt wurde. Im Rahmen dieser Versuche zeigte sich, dass die PIP-basierten Systeme deutlich besser an die Zielsequenzen banden als die TFO-basierten Adaptoren. Das Konjugat K5a besaß hierbei die besten Eigenschaften. Weiterhin konnte mit diesem Adaptor in Pulldown-Experimenten gezeigt werden, dass Sp1 auf eine nicht kanonische AT-reiche Bindestelle umgeleitet wurde. Im Anschluss konnte das Sp1 in Western-Blots detektiert werden. Des Weiteren ließ sich zeigen, dass K5a in einem HeLa Lysat über mehrere Stunden stabil war und somit eine Anwendung in Zellkulturexperimenten möglich sein sollte.
Für die Rekrutierung der RISCs war lediglich eine Erkennung zweier einzelsträngiger RNA-Abschnitte notwendig. Hierzu wurden zwei LNAs oder LNA/DNA-Mixmere verwendet, die über einen Linker verknüpft waren (Abbildung I). Als Folge dieses Aufbaus mussten die beiden Adaptorhälften orthogonal sein, da eine Selbstbindung des Adaptors leichter als bei den TF-Adaptoren auftreten konnte. Diese Adaptoren wurden mit Band-Shift- und fluoreszenzbasierten Pulldown-Experimenten auf ihre Fähigkeit, eine Cy5-gelabelte miRNA auf eine Ziel-RNA umzuleiten, überprüft. Es konnte beobachtet werden, dass all-LNA Adaptoren sehr viele off-target-Effekt aufwiesen, welche die Umleitung von miRNAs verhinderte. Im Gegensatz dazu konnten mit DNA/LNA-Mixmeren eine vollständige Umleitung von miRNA-Modellen beobachtet werden. Es war ebenfalls möglich, spezifische RISCs aus HeLa-Lysaten mit unterschiedlichen Adaptoren in Pulldown-Experimenten zu isolieren und in nachfolgenden Western-Blots zu detektieren. Nachdem gezeigt war, dass eine Umleitung in vitro gelang, sollte die Funktion der Adaptoren in Zellkulturexperimenten geprüft werden. Allerdings konnten in diesen Versuchen keine eindeutigen Ergebnisse erhalten werden, sodass die biologische Relevanz der RISC-Umleitung bislang noch nicht bestätigt werden konnte.
Lysosomes are major degradative organelles that contain enzymes capable of breaking down proteins, nucleic acids, carbohydrates, and lipids. In the last decade, new discoveries have traced also important roles for lysosomes as signalling hubs, affecting metabolism, autophagy and pathogenic infections. Therefore, maintenance of a healthy lysosome population is of utmost importance to the cell to respond to both stress conditions and also homeostatic signalling. For example, for minor perturbations to the lysosomal membrane, the cell activates repair processes which seal membrane nicks. For more extensive damage, autophagy is activated to remove damaged organelles from the cell. on the other hand, during pathogen invasion host cells have also evolved mechanisms to hijack the endolysosomal pathway to facilitate their own growth and replication in host cells.
The first part of the thesis work focuses on a lysosomal regeneration program which is activated under conditions where the entire lysosomal pool of the cell is damaged. Upon extensive membrane damage induced by the lysosomotropic drug LLOMe, the cell activates a regeneration pathway which helps in the formation of new functional lysosomes by recycling damaged membranes. I have identified the molecules important for this novel pathway of lysosomal regeneration and showed how the protein TBC1D15 orchestrates this process to regenerate functional organelles from completely damaged membrane masses in the first 2 hours following lysosomal membrane damage. This process resembles the process of auto- lysosomal reformation (ALR)- involving the formation of lysosomal tubules which are extended along microtubules and cleaved in a dynamin2 dependent manner to form proto-lysosomes which develop into fully functional mature lysosomes. These lysosomal tubules are closely associated with ATG8 positive autophagosomal membranes and require ATG8 proteins to bind to the lysophagy receptor LIMP2 on damaged membranes. This process is physiologically important under conditions of crystal nephropathy where calcium oxalate crystals induce damage to lysosomal membranes in nephrons in kidney disease.
The second part of the thesis shows how the endolysosomal system of the cell is hijacked by the bacteriaLegionella pneumophila. During Legionella infection the formation of conventional ATG8 positive autophagosomes are blocked due to the protease activity of the bacterial effector protein RavZ which cleaves lipidated ATG8 proteins from autophagosomal membranes. The SidE effectors of Legionella modify STX17 and SNAP29 by the process of non-canonical ubiquitination called phosphoribose-linked serine ubiquitination (PR-Ub). These proteins are essential for the formation of the autophagosomal SNARE complex which is used for fusion of the autophagosome with the lysosome. Upon Legionella infection, PR-UB of STX17 aids in formation of autophagosome-like replication vacuoles. ThesevacuolesdonotfusewiththelysosomebecauseSNAP29isalsoPR-Ubmodified. PR-UbofSTX17 and SNAP29 sterically blocks the formation of the autophagosomal-SNARE complex thereby preventing fusion of the autophagosome with the lysosome. As a result, Legionella can replicate in autophagosome- like vacuoles which do not undergo lysosomal degradation. In absence of PR-Ub modified STX17, bacterial replication is compromised when measured by bacterial replication assays in lung epithelial (A549) cells.
Taken together, this thesis highlights two important aspects of the autophagy-lysosomal system- how it responds to extensive membrane damage and its importance in Legionella pneumophila infection. Extensive damage to lysosomal membranes triggers a rapid regeneration process to partially restore lysosomal function before the effects of TFEB dependent lysosomal biogenesis becomes apparent. On the other hand, Legionella pneumophila infection segregates the lysosomes from the rest of the endo-lysosomal system by blocking autophagosome-lysosome fusion. Though lysosomes remain active, they are incapable of degrading pathogens since pathogen containing vacuoles do not fuse with the lysosome.
Background and Purpose: Activation of hepatic thyroid hormone receptor β (THR-β) is associated with systemic lipid lowering, increased bile acid synthesis, and fat oxidation. In patients with non-alcoholic steatohepatitis (NASH), treatment with THR-β agonists decreased hepatic steatosis and circulating lipids, and induced resolution of NASH. We chose resmetirom (MGL-3196), a liver-directed, selective THR-β agonist, as a prototype to investigate the effects of THR-β activation in mice with diet-induced obesity (DIO) and biopsy-confirmed advanced NASH with fibrosis.
Experimental Approach: C57Bl/6J mice were fed a diet high in fat, fructose, and cholesterol for 34 weeks, and only biopsy-confirmed DIO-NASH mice with fibrosis were included. Resmetirom was administered at a daily dose of 3 mg·kg−1 p.o., for 8 weeks. Systemic and hepatic metabolic parameters, histological non-alcoholic fatty liver disease (NAFLD) activity and fibrosis scores, and liver RNA expression profiles were determined to assess the effect of THR-β activation.
Key Results: Treatment with resmetirom did not influence body weight but led to significant reduction in liver weight, hepatic steatosis, plasma alanine aminotransferase activity, liver and plasma cholesterol, and blood glucose. These metabolic effects translated into significant improvement in NAFLD activity score. Moreover, a lower content of α-smooth muscle actin and down-regulation of genes involved in fibrogenesis indicated a decrease in hepatic fibrosis.
Conclusion and Implications: Our model robustly reflected clinical observations of body weight-independent improvements in systemic and hepatic metabolism including anti-steatotic activity.
The composition of cellular membranes is extremely complex and the mechanisms underlying their homeostasis are poorly understood. Organelles within a eukaryotic cell require a non-random distribution of membrane lipids and a tight regulation of the membrane lipid composition is a prerequisite for the maintenance of specific organellar functions. Physical membrane properties such as bilayer thickness, lipid packing density and surface charge are governed by the lipid composition and change gradually from the early to the late secretory pathway. As the endoplasmic reticulum (ER) is situated at the beginning of the cells secretory pathway, it has to accept and accommodate a great variety and quantity of secretory and transmembrane proteins, which enter the ER on their way to their final cellular destination. Secretory proteins can be translocated into the lumen of the ER co- or posttanslationally and membrane proteins are being inserted and released into the ER membrane. In the oxidative milieu of the ER-lumen, supported by a variety of chaperones, proteins can fold into their native form.
If the folding capacity of the ER-lumen is exceeded, an accumulation of mis- or unfolded proteins in the lumen of the ER occurs, consequently triggering the unfolded protein response (UPR). This highly conserved program activates a wide-spread transcriptional response to restore protein folding homeostasis. In fact, 7 – 8% of all genes in the yeast Saccharomyces cerevisiae (S. cerevisiae) are regulated by the UPR. The mechanism underlying the activation of the UPR by protein folding stress has been investigated thoroughly in the last decades and many of its mechanistic details have been elucidated. Recently, it became evident that aberrant lipid compositions of the ER membrane, collectively referred to as lipid bilayer stress, are equally potent in activating the UPR. The underlying molecular mechanism of this membrane-activated UPR, however, remained unclear.
This study focuses on the UPR in S. cerevisiae and characterizes the inositol requiring enzyme 1 (Ire1) as the sole UPR sensor in S. cerevisiae. Active Ire1 forms oligomers and, collaboratively with the tRNA ligase Rlg1, splices immature mRNA of the transcription factor HAC1, which results in the synthesis of mature HAC1 mRNA and the production of the active Hac1 protein, which binds to UPR-elements in the nucleus and activates the expression of UPR target genes. Here, the combination of in vivo and in vitro experiments is being used, which is supplemented by molecular dynamics (MD) simulations performed by Roberto Covino and Gerhard Hummer (MPI for Biophysics, Frankfurt), aiming to identify the molecular mechanism of Ire1 activation by lipid bilayer stress. This study focuses on the analysis of the juxta- and transmembrane region of Ire1. Bioinformatic analyses revealed a putative ER-lumenal amphipathic helix (AH) N-terminally of and partially overlapping with the transmembrane helix (TMH). This predicted AH contains a large hydrophobic face, which inserts into the ER membrane, forcing the TMH into a tilted orientation within the membrane. The resulting unusual architecture of Ire1’s AH and TMH constitutes a unique structural element required for the activation of Ire1 by lipid bilayer stress.
To investigate the function of the AH in the physiological context, different variants of Ire1 were produced under the control of their endogenous promoter and from their endogenous locus. The functional role of the AH was tested, by disrupting its amphipathic character by the introduction of charged residues into the hydrophobic face of the AH. The role of a conserved negative residue between the TMH and the AH (E540 in S. cerevisiae) was tested by substituting it by a unipolar, polar, or positively charged residue. These variants were intensively characterized using a series of assays:
This thesis provides evidence that the AH is crucial for the function of Ire1: Mutant variants with a disrupted (F531R, V535R) or otherwise modified AH (E540A) exhibited a lower degree of oligomerization and failed to catalyze the splicing of the HAC1 mRNA as the Wildtype control. Likewise, the induction of PDI1, a target gene of the UPR, was greatly reduced in mutants with a disrupted or defective AH. These data revealed an important functional role of the AH for normal Ire1 function.
An in vitro system was established to analyze the membrane-mediated oligomerization of Ire1. This system enabled the isolated functional analysis of the AH and TMH during Ire1 activation by lipid bilayer stress. A fusion construct, coding for the maltose binding protein (MBP) from Escherichia coli (E. coli), N-terminally to the AH and TMH of Ire1 was produced. The heterologous production in E. coli, the purification and reconstitution of this minimal sensor of Ire1 in liposomes was established as part of this study. To analyze the oligomeric status of the minimal sensor in different lipid environments, continuous wave electron paramagnetic resonance (cwEPR) spectroscopic experiments were performed. These experiments revealed that the molecular packing density of the lipids had a significant influence of the oligomerization of the spin-labeled membrane sensor: increasing packing densities resulted in sensor oligomerization. The AH-disruptive F531R mutant, in which the amphipathic character of the AH was destroyed, showed no membrane-sensitive changes in its oligomerization status.
Thus, the activation of Ire1 by lipid bilayer stress is achieved by a membrane-based mechanism. According to the current model, the AH induces a local membrane compression by inserting its large hydrophobic face into the membrane. As membrane thickness and acyl chain order are interconnected, this compression simultaneously results in an increased local disordering of lipid acyl chains. Supporting MD simulations performed by Roberto Covino and Gerhard Hummer revealed that the bilayer compression is significantly more pronounced in a densely packed lipid environment, than in a lipid environment of lower lipid packing density. Hence, the energetic cost of the local compression increases with the packing density of the membrane, but is compensated for by the oligomerization of Ire1. This minimization of energetic cost induced by the membrane deformation of Ire1 forms the basis for the activation of Ire1 by lipid bilayer stress.
The enzyme acetyl-CoA carboxylase (ACC) plays a crucial role in fatty acid metabolism. In recent years, ACC has been recognized as a promising drug target for treating different diseases. However, the role of ACC in vascular endothelial cells (ECs) has been neglected so far. To characterize the role of ACC, we used the ACC inhibitor, soraphen A, as a chemical tool, and also a gene silencing approach. We found that ACC1 was the predominant isoform in human umbilical vein ECs as well as in human microvascular ECs and that soraphen A reduced the levels of malonyl-CoA. We revealed that ACC inhibition shifted the lipid composition of EC membranes. Accordingly, membrane fluidity, filopodia formation, and migratory capacity were reduced. The antimigratory action of soraphen A depended on an increase in the cellular proportion of PUFAs and, most importantly, on a decreased level of phosphatidylglycerol. Our study provides a causal link between ACC, membrane lipid composition, and cell migration in ECs. Soraphen A represents a useful chemical tool to investigate the role of fatty acid metabolism in ECs and ACC inhibition offers a new and valuable therapeutic perspective for the treatment of EC migration-related diseases.