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Osteopontin levels in human milk are related to maternal nutrition and infant health and growth
(2021)
Background: Osteopontin (OPN) is a glycosylated phosphoprotein found in human tissues and body fluids. OPN in breast milk is thought to play a major role in growth and immune system development in early infancy. Here, we investigated maternal factors that may affect concentrations of OPN in breast milk, and the possible associated consequences for the health of neonates. Methods: General characteristics, health status, dietary patterns, and anthropometric measurements of 85 mothers and their babies were recorded antenatally and during postnatal follow-up. Results: The mean concentration of OPN in breast milk was 137.1 ± 56.8 mg/L. Maternal factors including smoking, BMI, birth route, pregnancy weight gain, and energy intake during lactation were associated with OPN levels (p < 0.05). Significant correlations were determined between body weight, length, and head circumference, respectively, and OPN levels after one (r = 0.442, p = < 0.001; r = −0.284, p = < 0.001; r = −0.392, p = < 0.001) and three months (r = 0.501, p = < 0.001; r = −0.450, p = < 0.001; r = −0.498, p = < 0.001) of lactation. A negative relation between fever-related infant hospitalizations from 0–3 months and breast milk OPN levels (r = −0.599, p < 0.001) was identified. Conclusions: OPN concentrations in breast milk differ depending on maternal factors, and these differences can affect the growth and immune system functions of infants. OPN supplementation in infant formula feed may have benefits and should be further investigated.
The Mycobacterium tuberculosis tyrosine-specific phosphatase MptpA and its cognate kinase PtkA are prospective targets for anti-tuberculosis drugs as they interact with the host defense response within the macrophages. Although both are structurally well-characterized, the functional mechanism regulating their activity remains poorly understood. Here, we investigate the effect of post-translational oxidation in regulating the function of MptpA. Treatment of MptpA with H2O2/NaHCO3, mimicking cellular oxidative stress conditions, leads to oxidation of the catalytic cysteine (C11) and to a conformational rearrangement of the phosphorylation loop (D-loop) by repositioning the conserved tyrosine 128 (Y128) and generating a temporarily inactive preclosed state of the phosphatase. Thus, the catalytic cysteine in the P-loop acts as a redox switch and regulates the phosphatase activity of MptpA.
Glutathione has long been suspected to be the primary low molecular weight compound present in all cells promoting the oxidative protein folding, but twenty years ago it was found “not guilty”. Now, new surprising evidence repeats its request to be the “smoking gun” which reopens the criminal trial revealing the crucial involvement of this tripeptide.
Reactive oxygen species (ROS) are involved in various signalling mechanisms. Redox homeostasis is important in cancer cells, since they are dependent on upregulated antioxidant defence pathways to cope with elevated ROS levels. Therefore, targeting the antioxidant defence system and/ or increasing ROS to a lethal level may be a feasible strategy to counteract cancer cell progression.
Acute lymphoblastic leukaemia (ALL) is the most frequent malignant childhood cancer, displaying on one side resistance to cell death induction and on the other side elevated ROS levels. Therefore, inducing ferroptosis, a ROS- and iron-dependent cell death pathway might be useful to trigger cell death in ALL as a novel treatment strategy. In the first study of this thesis we observed that RSL3, a glutathione (GSH) peroxidase 4 (GPX4) inhibitor, triggered ROS accumulation and lipid peroxidation which contributed to ferroptotic cell death. These observations were based on suppression of RSL3 stimulated cell death using different ferroptosis inhibitors like Ferrostatin-1 (Fer-1), Liproxstatin-1 (Lip-1), as well as iron chelator Deferoxamine (DFO) and the vitamin E derivate α-Tocopherol (α-Toc). RSL3-triggered ROS and lipid peroxide production were also inhibited through Fer-1 and α-Toc. Furthermore, lipoxygenases (LOX) were activated upon RSL3 stimulation and contributed to ferroptotic cell death in ALL as well. Selective inhibition of LOX with the 12/15-LOX inhibitor Baicalein and the pan-LOX inhibitor nordihydroguaiaretic acid (NDGA) abolished RSL3-induced ROS production, lipid peroxidation and cell death. In addition, RSL3 induced lipid peroxide-dependent ferroptotic cell death in FAS-associated Death Domain (FADD)-deficient, death receptor-induced apoptosis resistant cells, demonstrating that ferroptosis might circumvent apoptosis resistance.
The second part of the study revealed that RSL3 and Erastin (Era), a GSH-depleting agent, inhibiting the cystine/glutamate antiporter system xc- and ferroptosis inducer, cooperated with the Smac mimetic BV6 to trigger cell death in ALL cells. RSL3/BV6 and Era/BV6 combination-induced cell death was dependent on ROS accumulation, but independent of caspases and key modulators of necroptosis. RSL3/BV6-treated ALL cells exhibited classical features of ferroptotic cell death with iron-dependency, ROS accumulation and lipid peroxidation which was diminished through either pharmacological inhibition (Fer-1, DFO, α-Toc) or genetic inhibition by overexpressing GPX4. Interestingly, Era/BV6-induced cell death in ALL cells was independent of iron but dependent on ROS accumulation, since α-Toc rescued from Era/BV6-triggered ROS production, lipid peroxidation and cell death. Moreover, inhibition of lipid peroxide formation through the addition of Fer-1 or by overexpressing GPX4 failed to rescue from Era/BV6-triggered cell death, even if Era/BV6-stimulated lipid peroxidation was diminished. Likewise, Fer-1 protected from RSL3/BV6-, but not from Era/BV6-generated ROS production, leading to the assumption that other ROS besides lipid-based ROS contributed to cell death in Era/BV6-treated cells. In summary, while RSL3/BV6 induced ferroptosis in ALL, Era/BV6 stimulated a ROS dependent cell death, which was neither dependent on iron nor caspases or receptor-interacting protein (RIP) kinase 1 nor 3. Additionally, using Erastin alone did not trigger ferroptotic cell death in ALL. Finally, with these two studies we tried to unravel the molecular pathway of ferroptosis by using RSL3 and Erastin as well described ferroptosis stimulators. Here, we demonstrate the possibility of a novel treatment strategy to reactivate programmed cell death by impeding redox homeostasis in ALL.
Since ALL failed to induce ferroptosis upon Erastin treatment, we investigated in the third part of this thesis a new model system to induce ferroptosis upon Erastin and RSL3 exposure. Previous studies revealed that rhabdomyosarcoma (RMS) cells might be susceptible to oxidative stress-induced compounds. To this end, we used Erastin as a prototypic ferroptosis stimulus and GSH-depleting agent and demonstrated that GSH depletion, ROS and lipid ROS accumulation contributed to cell death. Additionally, Fer-1, Lip-1, DFO, lipophilic vitamin E derivate α-Toc and GSH, a cofactor of GPX4, protected from Erastin stimulated ROS accumulation, lipid peroxidation and cell death. Also, the use of a broad spectrum protein kinase C (PKC) inhibitor Bisindolylmaleimide I (Bim1), a PKCα and ß selective inhibitor Gö6976 and siRNA-mediated knockdown of PKCα suppressed Erastin-mediated cell death in RMS. Moreover broad spectrum nicotinamide-adenine dinucleotide phosphate (NADPH) oxidase (NOX) inhibitor Diphenyleneiodonium (DPI) and a more selective NOX1/4 isoform inhibitor GKT137831 abrogated Erastin-generated ROS formation, lipid peroxidation and cell death. With this, we demonstrate that RMS are vulnerable to ferroptotic cell death and investigated the molecular mechanism of ferroptosis by unravelling that PKC and NOX could have a pivotal role in ROS-mediated ferroptosis signalling in RMS. In this regard, ferroptosis inducers may act as a possible novel treatment strategy for RMS, especially those with poor clinical outcome.
Neuropathic pain, a form of chronic pain, is a steadily rising health problem due to health costs and increasing numbers of patients. Neuropathic pain conditions arise upon metabolic disorders, infections, chemotherapeutic treatment, trauma or nerve injury. Especially nerve injury induced neuropathic pain is characterized by spontaneous or ongoing pain due to neuroimmune interactions. Thereby, inflammatory mediators, released by the injured nerve, recruit to and activate immune cells at the site of injury. Those mediators further activate transient receptor potential vanilloid 1 (TRPV1), a known channel involved in pain perception, or bind to G-protein coupled receptors (GPCR) in peripheral nerve endings. The following activated second messenger signaling pathways lead to sensitization of TRPV1. One of those GPCRs is G2A.
The overall aim of this thesis was to investigate the role of G2A in nerve-injury induced neuropathic pain. For this, the common mouse model of nerve-injury induced neuropathic pain, the spared-nerve injury, was used. As measurements with dynamic plantar aesthesiometer showed, G2A-deficiency leads to reduced mechanical hypersensitivity. Upon analysis with FACS, ELISA and Luminex a reduced number of macrophages and neutrophils at the injured nerve, as well as less inflammatory mediators (TNFα, IL-6, VEGF) in G2A-deficient animals was observed. In dorsal root ganglia (DRGs) there was only a reduced number of macrophages and less IL-12 observed in G2A-deficient animals. Additionally, in wild-type mice, G2A agonist 9-HODE was elevated at the injured nerve, as a LC-MS/MS analysis showed.
To investigate the underlying pathways of G2A-9-HODE signaling, a proteom screen was performed. This screen revealed upregulation of multiple proteins involved in migration in wild-type macrophages. Additionally, Ca-Imaging and transwell migration assays showed that the G2A antagonist G2A11, had desensitizing effects on DRG neurons and inhibited macrophage migration.
Overall, the results suggest that loss of G2A has dual effects. On the one hand loss of G2A is antinociceptive. On the other hand, G2A-deficiency leads to reduced inflammation, suggesting G2A as promising target in treatment of neuropathic pain. Here, an antagonist had inhibitory effects on the migration and the sensitization.
A highly diastereoselective one-pot synthesis of the 1,3-diamino-2-alcohol unit bearing three continuous stereocenters is described. This method utilizes 2-oxyenamides as a novel type of building block for the rapid assembly of the 1,3-diamine scaffold containing an additional stereogenic oxygen functionality at the C2 position. A stereoselective preparation of the required (Z)-oxyenamides is reported as well.
Since the early 2000s, nucleic acid aptamers have gained considerable attention of life science communities. This is in particular due to the fact that aptamers are known to function as artificial riboswitches, which presents an efficient way to regulate gene expression. A promising candidate is the tetracycline-binding RNA aptamer (TC-aptamer) since the TC-aptamer is known to function in vivo and exhibits a very high affinity towards its ligand tetracycline (TC) (Kd = 800 pM at 10mM Mg2+). Although a highly resolved crystal structure exists in the ligand bound state, questions related to dynamics cannot be answered with X-ray crystallography. In this work, pulsed electron paramagnetic resonance (EPR) spectroscopy was used to study different biochemical and structural aspects of the TC-aptamer.
On the one hand, pulsed hyperfine spectroscopy was used to study the binding of TC via Mn2+ to the TC-aptamer at lower and thus more physiological divalent metal ion concentrations. In a first step, a protocol for the relatively new pulsed hyperfine technique electron-electron double resonance detected NMR (ELDORdetected NMR or just EDNMR) was developed for Q-band frequencies (34 GHz). After a successful verification of the EDNMR technique at Q-band frequencies on Mn2+ model complexes ([Mn(H2O)6]2+ and Mn-DOTA), two dimensional hyperfine techniques were used to confirm the formation of a ternary RNA-Mn2+- TC complex at physiological divalent metal ion concentrations. Correlation signals between 13C (13C-labeled TC) and 31P (from the RNA backbone) to the same Mn2+ electron spin were detected with 2D-EDNMR and triple hyperfine correlation spectroscopy (THYCOS).
On the other hand, pulsed electron-electron double resonance (PELDOR) spectroscopy on a doubly nitroxide-labeled TC-aptamer was used to investigate the conformational rearrangement upon ligand binding and how the conformational flexibility is affected by different Mg2+ concentrations. The Çm spin label was used as a nitroxide spin probe. Due to its rigidity and low degree of internal flexibility, the Çm spin label yields very narrow distance distributions and pronounced orientation selection (OS). As a consequence, the width of the distance distributions can be used to draw conclusions about the conformational flexibility of the spin-labeled helices. Analysis of the distance distributions showed that at high Mg2+ concentrations, the TC-aptamer is in its folded state, irrespective of the fact if TC is present or absent. Orientation selective PELDOR revealed that the orientation of the spin-labeled helices in frozen solution is the same as in the crystal structure. First Mn2+-nitroxide pulsed electron electron double resonance (PELDOR) measurements on a singly nitroxide-labeled and Mg2+/Mn2+-substituted TCaptamer at different Mn2+ concentrations in the presence and absence of TC gave insight into the affinities of the additional divalent metal ion binding sites of the TC-aptamer.
The lysosomal ABC transporter associated with antigen processing-like (TAPL, ABCB9) acts as an ATP-dependent polypeptide transporter with broad length selectivity. To characterize in detail its substrate specificity, a procedure for functional reconstitution of human TAPL was developed. By intensive screening of detergents, ideal solubilization conditions were evolved with respect to efficiency, long term stability, and functionality of TAPL. TAPL was isolated in a two-step procedure with high purity and, subsequently, reconstituted into proteoliposomes. The peptide transport activity of reconstituted TAPL strongly depends on the lipid composition. With the help of combinatorial peptide libraries, the key positions of the peptides were localized to the N- and C-terminal residues with respect to peptide transport. At both ends, TAPL favors positively charged, aromatic, or hydrophobic residues and disfavors negatively charged residues as well as asparagine and methionine. Besides specific interactions of both terminal residues, electrostatic interactions are important, since peptides with positive net charge are more efficiently transported than negatively charged ones.
The transporter associated with antigen processing (TAP) plays a key role in the adaptive immune response by pumping antigenic peptides into the endoplasmic reticulum for subsequent loading of major histocompatibility complex class I molecules. TAP is a heterodimer consisting of TAP1 and TAP2. Each subunit is composed of a transmembrane domain and a nucleotide-binding domain, which energizes the peptide transport. To analyze ATP hydrolysis of each subunit we developed a method of trapping 8-azido-nucleotides to TAP in the presence of phosphate transition state analogs followed by photocross-linking, immunoprecipitation, and high resolution SDS-PAGE. Strikingly, trapping of both TAP subunits by beryllium fluoride is peptide-specific. The peptide concentration required for half-maximal trapping is identical for TAP1 and TAP2 and directly correlates with the peptide binding affinity. Only a background level of trapping was observed for low affinity peptides or in the presence of the herpes simplex viral protein ICP47, which specifically blocks peptide binding to TAP. Importantly, the peptide-induced trapped state is reached after ATP hydrolysis and not in a backward reaction of ADP binding and trapping. In the trapped state, TAP can neither bind nor exchange nucleotides, whereas peptide binding is not affected. In summary, these data support the model that peptide binding induces a conformation that triggers ATP hydrolysis in both subunits of the TAP complex within the catalytic cycle.
Paul Ehrlich's concept of the magic bullet, by which a single drug induces pharmacological effects by interacting with a single receptor has been a strong driving force in pharmacology for a century. It is continually thwarted, though, by the fact that the treated organism is highly dynamic and the target molecule(s) is (are) never static. In this article, we address some of the factors that modify and cause the mobility and plasticity of drug targets and their interactions with ligands and discuss how these can lead to unexpected (lack of) effects of drugs. These factors include genetic, epigenetic, and phenotypic variability, cellular plasticity, chronobiological rhythms, time, age and disease resolution, sex, drug metabolism, and distribution. We emphasize four existing approaches that can be taken, either singly or in combination, to try to minimize effects of pharmacological plasticity. These are firstly, to enhance specificity using target conditions close to those in diseases, secondly, by simultaneously or thirdly, sequentially aiming at multiple targets, and fourthly, in synchronization with concurrent dietary, psychological, training, and biorhythm‐synchronizing procedures to optimize drug therapy.
RNA ist vor allem als Vermittler von Erbinformationen bekannt. Doch neben der Translation in Proteine ist sie auch maßgeblich an regulatorischen Prozessen in der Zelle beteiligt. So kommen in vielen Organismen Argonautenproteine vor, die zusammen mit microRNA einen Komplex bilden, der in der Lage ist, mRNA zu spalten oder auf andere Weise deren Translation zu unterdrücken. Da die Deregulierung von microRNA bei verschiedenen Krankheiten wie Krebs, Parkinson oder Alzheimer auftritt, wurden in dieser Arbeit Alkylanzien entwickelt, die zur besseren Inhibierung von microRNA beitragen sollen.
Als Alkylierungsmittel wurden ortho-Chinonmethide verwendet, die zunächst in geschützter Form synthetisiert wurden und nach Aktivierung mit einer Nukleobase reagieren können. Für die Erkennung der miRNA-Sequenz wurden diese zu einem Konjugat mit Peptid-Nukleinsäuren (PNAs) verbunden. Es wurden zwei Arten von Chinonmethid-Präkursoren hergestellt: Mit o Nitrobenzyl photolabil geschützte, die sich mit Licht der Wellenlänge 365 nm aktivieren lassen, und über ein Disulfid geschützte, die mithilfe eines Reduktionsmittels aktiviert werden. Die photolabil geschützten Derivate lassen sich damit gezielt örtlich und zeitlich aktivieren. Vom reduktiv aktivierbaren Präkursor wurden drei Derivate mit sterisch unterschiedlichen Resten am Disulfid (Benzyl-, Isopropyl- oder tert-Butyl-Rest) hergestellt, die einen Einfluss auf die Kinetik der Entschützung haben. Diese Derivate können nach Eintritt in eine Zelle durch die dort vorherrschende hohe Glutathion-Konzentration aktiviert werden, während sie extrazellulär unreaktiv sind.
Zunächst wurde die Kinetik eines photolabil geschützten Konjugats ohne RNA untersucht. Hier kommt es nach Bestrahlung zur Selbstalkylierung, bei der die Nukleobasen der PNA angegriffen werden. Bei 37 °C erfolgte dies mit einer Halbwertszeit von 0.43 h unter Annahme einer Reaktion 1. Ordnung. Die Kinetik der Alkylierung der komplementären RNA ließ sich durch zwei parallel ablaufende Reaktionen 1. Ordnung abbilden. Die Schnelle hatte eine Halbwertszeit von 0.42 h und die Langsame 11 h mit einer Ausbeute von 73 % nach 168 h. Bei Bestrahlung des Konjugats und erst anschließender Zugabe der RNA wurde ebenfalls eine Halbwertszeit von 11 h bei einer einzelnen Reaktionen 1. Ordnung erhalten. Dies lässt sich mit der Reversibilität mancher Reaktionsprodukte erklären. Die schnelle Reaktion entspricht der direkten Reaktion des Chinonmethids mit der RNA, die langsame entsteht durch Umlagerung von reversiblen Addukten.
Die Analyse der RNA-Alkylierung erfolgte mithilfe von denaturierender Polyacrylamid-Gelelektrophorese, bei der in Abhängigkeit der Gel-Temperatur scheinbar unterschiedliche Kinetiken gemessen wurden. Dies ist ebenfalls eine Folge der Reversibilität. Bei 57 °C kann ein Teil der Bindungen zwischen RNA und den Konjugaten brechen und es wird am Anfang der Reaktion eine geringere Ausbeute gemessen als bei 25 °C Geltemperatur. Die Ausbeute nach 168 h änderte sich jedoch nicht, da im Verlauf der Reaktion die reversiblen Addukte in irreversible umgewandelt werden.
Mit miRNA-20a als Ziel wurden mit einem 10mer Konjugat zunächst nur 13 % Ausbeute nach 72 h und mit einem 15mer Konjugat 41 % nach 75 h erreicht. Durch internen Einbau des Chinonmethid-Präkursors in die PNA, sodass es einem Adenosin der RNA gegenübersteht, konnte die Ausbeute auf 75 % nach 72 h gesteigert werden, da Adenosin bevorzugt alkyliert wird.
Bei den reduktiv aktivierbaren Chinonmethid-Präkursoren waren alle synthetisierten Konjugate in Puffer ohne Glutathion (GSH) stabil. Die Reihenfolge der Reaktionsgeschwindigkeit der Disulfidspaltung war bei 0.5 mM und 10 mM GSH: Benzyl > Isopropyl > tert-Butyl. Die Halbwertszeit bei 10 mM GSH betrug weniger als 5 min (Benzyl-Konjugat) bis 2 h (t Butyl Konjugat). Jedoch bildeten sich mit allen Konjugaten bei 10 mM GSH auch Addukte mit GSH.
Die Reaktivitätsreihenfolge blieb bei der Alkylierung von RNA erhalten. Allein das Benzyl-Konjugat erreichte bei einer GSH-Konzentration von 0.5 mM schon die gleiche Reaktionsgeschwindigkeit wie das photolabil geschützte Chinonmethid. Bei 10 mM GSH erreichten die Derivate zwar nach wenigen Stunden ihre maximale Ausbeute, diese betrug jedoch nur 23 % (tert-Butyl-Konjugat) bis 43 % (Benzyl-Konjugat), da die Chinonmethide auch durch GSH als Nukleophil abgefangen werden.
Mit einem Konjugat, das ein photolabiles Chinonmethid sowie Biotin trägt, wurde ein Fluoreszenzpulldown mit Cy5-markierter RNA durchgeführt. Hier zeigte die bestrahlte Probe eine deutlich höhere Fluoreszenz (6.8x), als eine unbestrahlte Vergleichsprobe. Bei einem Pulldown-Versuch mit miRNA-20a bzw. mit RISCs aus HeLa-Zelllysat konnte das Argonautenprotein jedoch nicht eindeutig mittels Westernblot nachgewiesen werden.
Anhand des reduktiv aktivierbaren Benzyl-Konjugats konnte gezeigt werden, dass sich das Konjugat in Zelllysat zersetzt und nur ein Teil zu Addukten mit Nukleobasen reagiert. Die Ursache wurde in der hydrolyselabilen Abgangsgruppe gesehen, sodass weitere photolabil geschützte Derivate mit Dimethylamino-, Trimethylammonium-, Pivaloylester- und Benzoylestergruppe synthetisiert wurden. Von diesen war nur das Benzoylester-Konjugat in der Lage, RNA mit 72 % Ausbeute nach 48 Stunden zu alkylieren. Zudem war es für mindestens 1 h in Zelllysat stabil.
The photodynamic inactivation of nucleic acids with pyronin, methylene blue, thiopyronin and furocoumarines has been studied. The template efficiency of DNA in RNA-Polymerase reaction was found to be decreased after the treatment of DNA with these compounds. However, the magnitude of their inhibiting capacity varied from one compound to the other. Psoralen and thiopyronin were found to be the most active inhibitors followed by xanthotoxin and methylene blue respectively. At a lower temperature the inhibiting capacity of thiopyronin was considerably decreased but that of psoralen remained nearly unaffected. We have also tried to show evidence for a complimentary code in t-RNA through a specific destruction of guanine with thiopyronin.
The phospholipid bilayers are the primary constituents of the membrane in living cells in which lipids are hold together in bilayer leaflets through a combination of different forces into the liquid crystalline (Lα) phase. Despite their thin fragile formations, the phospholipid bilayers are responsible for performing a variety of important tasks in the cells, some of which are carried out directly by the lipid bilayers and some by various integral proteins embedded within the bilayers. There have been continues efforts over the past decades to replicate the compound biophysical properties of living cell membranes in model lipid bilayers.
An important question remains unanswered: is it possible to replicate physical properties under “non-equilibrium” conditions as found in cell membranes in model lipid bilayers? In almost all previous studies, the model lipid bilayers were under static conditions – for instance, at zero lateral pressure. However, in living organisms, the cell membranes are involved in continuous (nonequilibrium) exchange and (or) transport of lipid species with the surrounding environment which consequently leads them to experience continuous lateral pressure variations. One suitable in vitro approach is to spatiotemporally control the model lipid bilayers over a time period during which they can be spatially stimulated at a level compatible to that found under in vivo conditions. This can be achieved with high spatiotemporal resolution by making lipids light-dependent through implementation of azobenzene photoswitch in their structures.
In this study, a specific azobenzene containing photolipid (AzoPC) is integrated into POPE:POPG bilayers (POPE: 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphoethanolamine, POPG: 1-palmitoyl-2-oleoyl-sn-glycero-3-phospho-(1'-rac-glycerol)) at ~14 mol% to construct a photo responsive model bilayers entitled as photoliposomes. Magic angle spinning solid-state NMR spectroscopy (MAS-NMR) at high field (850 MHz) is the measurement technique of choice by which it is possible to pursue the dynamics (fluidity) of the bulk lipids within the photoliposomes at atomistic resolution. It is shown that the AzoPCs undergo an efficient trans-to-cis isomerization (~85%) within the photoliposomes as the result of UV light absorption, and thermally relax back to the trans state during a period of ~65 h under the MAS measurement conditions. The order parameter measurements based on the C−H dipolar couplings reveal that the non-equilibrium cis-to-trans thermal isomerization impact of AzoPC on the fluidity of the bulk lipid is highly localized – the fluidity perturbations originate from specific order parameter changes in the middle section of the bulk lipid acyl chains. Further 1H NOESY measurements confirm the hypothesis that the azoswitch topologies in either cis and trans conformer of the photolipid is the key parameter in localized alteration of the C−H order parameters along the bulk lipid acyl chains.
Diacylglycerol kinase (DgkA) from E. coli is an enzyme responsible for the phosphorylation of diacylglycerol to phosphatidic acid, at the expense of adenosine triphosphate. Structurally, DgkA is a homo oligomer composed of three symmetric 14 kDa protomers, each of which has three transmembrane helices and one surface helix. Upon embedding within the photoliposomes, it is shown that DgkA enhances the AzoPC localization impact on the fluidity of the bulk lipids. In this regard, the results of a series of statistical simulations of lipid lateral diffusions along the bilayer leaflets in presence and absence of embedded proteins are accompanied with those of experimentally measured based upon which it is justified that membrane proteins markedly limit lipid lateral diffusions in the bilayers. In case of the DgkA proteo-liposomes with lipid-to-protein ratio of 50, it is estimated that the diffusion coefficient of lipids is above 2-fold lower compared to that of the protein free liposomes.
The cis-to-trans AzoPC isomerization and its following consequence in localized alteration of the bulk lipid fluidity is further investigated on the structural dynamics and enzymatic functionality of the embedded DgkA within the proteo-photoliposomes. It is revealed that DgkA structural dynamics are perturbated in a multi-scale, complex manner. The dynamics of residues located in different regions of DgkA changes with the light-induced AzoPC isomerization, but their time courses differ from residue to residue. For example, 29Ala, a residue on the hinge between the surface helix and membrane helix-1, exhibits the steepest time-dependent cross peak intensity changes in time-resolved NCA spectra. The impact of the lasting membrane fluidity perturbation on the enzymatic functionality of the embedded DgkA is subsequently measured which demonstrates a significant variation under cis- and trans-AzoPC conformations within the proteo-photoliposomes.
In dieser Arbeit wird sowohl das Potenzial von molekularen Photoschaltern als lichtempfindliche Komponenten für photopharmakologische Anwendungen als auch das von künstlichen RNA-Aptameren als regulatorische Schalteinheiten für die Entwicklung von funktionellen Riboschaltern untersucht. Verschiedene wesentliche Aspekte beider Anwendungs-felder wurden eingehend einzeln untersucht und die beiden Schaltsysteme schließlich durch das Design eines synthetischen RNA-Aptamers kombiniert, dessen Ligandbindung durch licht-induzierte Isomerisierung seines Photoschalterliganden reguliert werden kann.
Molekulare Photoschalter wie Azobenzole und Spiropyrane haben sich als vielversprechende photochemische Werkzeuge erwiesen, um lichtgesteuert reversible und biochemisch nutzbare Effekte erzeugen. Spiropyrane bergen aufgrund der drastischen Veränderungen ihrer molekularen Eigenschaften infolge der Photoisomerisierung zum Merocyanin (MC) ein enormes Anwendungs-potenzial. Von den hier untersuchten wasserlöslichen Pyridin- (Py-) und Nitro-BIPS-Derivaten zeigt insbesondere die Py-BIPS-Verbindung 2 ein außerordentlich vielseitiges Verhalten. Im Vergleich zu anderen Vertretern dieser Photoschalterklasse wird ein deutlich höherer MC-Anteil von etwa 50% thermisch innerhalb von wenigen Minuten akkumuliert. Durch lichtinduzierten Ringschluss zum reinen Spiropyran (SP) und thermische Wiederherstellung des Gleichgewichts, kann diese hohe Schaltamplitude über mehrere Zyklen ohne signifikante Zersetzung beibehalten werden. Der Einsatz von schädlichem UV-Licht kann somit vermieden werden, was zusätzlich sehr vorteilhaft für einen möglichen Einsatz in einem biochemischen Kontext ist.
Verbindung 2 weist zudem mehrere Protonierungsstellen auf, die ihr in Abhängigkeit des pH-Wertes faszinierende photosaure Eigenschaften verleihen. Das einfach protonierte HMC Isomer ermöglicht eine lichtstimulierte reversible Kontrolle des pH-Wertes in einem Bereich von etwa 4,5 bis 7,5, mit möglichen pH-Sprüngen von bis zu 1,5 Einheiten. Durch transiente Absorptionsstudien wurde ein Mechanismus für die Protonenfreisetzung nachgewiesen, der lediglich auf der Veränderung des pKs-Wertes der N-protischen Position infolge des lichtinduzierten Ringschlusses beruht. Im Gegensatz dazu wird das phenolische Proton des doppelt protonierten HMCH Isomers innerhalb von 1-2 Pikosekunden nach Anregung aus dem angeregten Zustand an das Lösemittel übertragen. Durch eingehende Ultrakurzzeitmessungen der Freisetzung des phenolischen Protons, konnten die protonierten Spezies der Py- und Nitro-Merocyanine als Superphotosäuren etabliert werden. Sie können somit als ultraschnelle Auslöser für protonenvermittelte Prozesse eingesetzt werden, die zu den fundamentalsten Reaktionen in der Natur gehören.
Was potenzielle pharmakologische Zielsysteme betrifft, so dürfte RNA eine große Zukunft bevorstehen, da sie einfach zu synthetisieren ist und Zugang zu verschiedenen Ebenen zellulärer Regulationsmechanismen bietet. Insbesondere RNA-Aptamere, die in der Lage sind, niedermolekulare Liganden mit außergewöhnlich hoher Affinität und Spezifität zu binden, sind für die Entwicklung von künstlichen Riboschaltern hoch interessant. Während künstliche Aptamere für beliebige Liganden durch einen in vitro Selektionsprozess generiert werden können, ist nicht zur Gänze geklärt warum nur wenige von ihnen als aktive in vivo Riboschalter funktionieren. Die vorliegenden Ergebnisse zeigen die Bedeutung der konformationellen Aptamerdynamik während der Ligandenbindung für das Regulationspotential. Die Mg2+-abhängigen Bindungsstudien des hochfunktionellen Tetrazyklin (TC) -Aptamers zeigen, dass zweiwertige Kationen nicht nur für die korrekte Vorfaltung des Aptamers wichtig sind, sondern auch an der Ligandenbindung und RNA-Strukturanpassung selbst beteiligt sein können. Nach der Assoziation von TC an die Bindungstasche pflanzt sich eine Konformationsanpassung zur entfernten Dreifachhelixregion fort, wo Mg2+ zusätzlich für die Ausbildung endgültig gebundenen Zustandes benötigt wird.
Neben dem Einfluss von Mg2+, zeigen zeitaufgelöste Ligandenbindungsstudien von drei Ciprofloxacin (CFX) -Aptameren eine klare Korrelation zwischen der Kinetik des Struktur-anpassungsschrittes der RNA an den Liganden und dem beobachteten Regulationspotenzial in parallel durchgeführten in vivo Assays. Es wird geschlussfolgert, dass eine beschleunigte und irreversible RNA-Anpassung auf eine Konformationsänderung hindeutet, die ausgeprägt genug ist, um eine Aktivität als Riboschalter zu ermöglichen. Diese Erkenntnisse werden durch die berichteten Ligandenbindungskinetiken von anderen künstlichen Aptameren und auch von natürlichen Riboschaltern bestätigt und sollten weitreichende Implikationen für die Optimierung von Selektionsprotokollen für funktionelle Aptamere haben.
Schließlich wird ein lichtempfindliches RNA-Aptamer vorgestellt, dessen Ligand auf dem Antibiotikum Chloramphenicol (Cm) basiert, welches synthetisch mit einem Azobenzolfragment versehen wurde (azoCm). Durch systematische Optimierung von in vitro Selektionsprotokollen und die erfolgreiche Implementierung eines Belichtungsschrittes zur Isomerisierung des Liganden konnten Aptamere erhalten werden, die spezifisch an die trans-Form von azoCm binden. Bindungsaffinitätsstudien bestätigen diese Selektivität und durch Zirkulardichroismusstudien konnte zudem eine lichtinduzierte reversible Dissoziation des von cis-azoCm gezeigt werden. Damit wird hier eine erfolgreiche Entwicklungsstrategie für lichtabhängige RNA-Aptamer – Ligandsysteme dargelegt, welche wiederum fundamental neuartige Ansätze für die Erschließung lichtstimulierter biologischer Regulationswege zugänglich machen.