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The covalent conjugation of ubiquitin-fold modifier 1 (UFM1) to proteins generates a signal that regulates transcription, response to cell stress, and differentiation. Ufmylation is initiated by ubiquitin-like modifier activating enzyme 5 (UBA5), which activates and transfers UFM1 to ubiquitin-fold modifier-conjugating enzyme 1 (UFC1). The details of the interaction between UFM1 and UBA5 required for UFM1 activation and its downstream transfer are however unclear. In this study, we described and characterized a combined linear LC3-interacting region/UFM1-interacting motif (LIR/UFIM) within the C terminus of UBA5. This single motif ensures that UBA5 binds both UFM1 and light chain 3/γ-aminobutyric acid receptor-associated proteins (LC3/GABARAP), two ubiquitin (Ub)-like proteins. We demonstrated that LIR/UFIM is required for the full biological activity of UBA5 and for the effective transfer of UFM1 onto UFC1 and a downstream protein substrate both in vitro and in cells. Taken together, our study provides important structural and functional insights into the interaction between UBA5 and Ub-like modifiers, improving the understanding of the biology of the ufmylation pathway.
Die vorliegende Doktorarbeit beschäftigt sich mit der Untersuchung von molekularen Systemen, die aus mehreren Chromophoren bestehen und über einen Zweiphotonen-Prozess aktiviert werden können.
Die Zweiphotonen-Absorption (2PA) beschreibt die nahezu simultane Absorption zweier Photonen, deren Summe die Energie ergibt, die für den entsprechenden elektronischen Übergang nötig ist. Da für die Anregung somit zwei niederenergetische Photonen benötigt werden, kann für die 2PA Nahinfrarot-Licht (NIR-Licht) verwendet werden, welches eine geringe Phototoxizität aufweist und eine tiefe Gewebedurchdringung ermöglicht. Weiterhin wird durch die intrinsische dreidimensionale Auflösung der 2PA eine hohe Ortsauflösung der Photoaktivierung erzielt.
Photolabile Schutzgruppen (PPGs) bzw. Photocages sind chemische Verbindungen, die der vorübergehenden Maskierung der biologischen Funktion eines (Makro-)Moleküls dienen. Sie können durch Licht geeigneter Wellenlängen abgespalten werden (uncaging), wodurch die Aktivität des geschützten Substrats wiederhergestellt wird. Leider weisen viele der etablierten PPGs schlechte Zweiphotonen-Eigenschaften auf. Um die 2P-Aktivität einer PPG zu erhöhen, kann sie kovalent mit einem guten Zweiphotonen-Absorber verknüpft werden, der bei Bestrahlung das Licht über einen Zweiphotonen-Prozess absorbiert und anschließend mittels Energietransfer auf die photolabile Schutzgruppe überträgt. Dies führt schließlich zur Uncaging-Reaktion.
Im Zuge von Projekt I dieser Dissertation wurde eine solche molekulare Dyade für verbessertes Zweiphotonen-Uncaging bestehend aus einem Rhodamin-Fluorophor als Zweiphotonen-Absorber und einem Rotlicht-absorbierenden BODIPY als photolabile Schutzgruppe hergestellt und charakterisiert. Die Zweiphotonen-Aktivität des Fluorophors wurde mittels TPEF-Messungen (two-photon excited fluorescence) untersucht. Anschließend wurde das Rhodamin an einen 3,5-Distyryl-substituierten BODIPY-Photocage gekuppelt. Der Energietransfer innerhalb dieser Dyade wurde mithilfe von transienter Ultrakurzzeit-Spektroskopie und quantenmechanischen Berechnungen untersucht. Die Freisetzung der Abgangsgruppe para-Nitroanilin (PNA) bei Belichtung der Dyade konnte sowohl nach Einphotonen-Anregung des Rhodamins als auch des BODIPYs mithilfe von UV/vis-Absorptionsmessungen qualitativ nachgewiesen werden.
Da die Uncaging-Reaktion allerdings nicht besonders effektiv war, wurde für die Weiterführung des Projekts ein neuer BODIPY Photocage, der eine verbesserte Photolyse-Effizienz und eine höhere Photostabilität aufwies, verwendet und erneut an einen Rhodamin-Fluorophor geknüpft. Anhand dieser optimierten Dyade konnte die Einphotonen-Photolyse quantifiziert, d.h. eine Uncaging-Quantenausbeute für die Freisetzung von PNA bestimmt werden. Weiterhin wurde beobachtet, dass die Photolyse der Dyade mit einer deutlichen Änderung ihrer Fluoreszenzeigenschaften einherging. Dies ermöglichte einen Nachweis des Zweiphotonen-Uncagings mithilfe eines Fluoreszenzmikroskops. Die Dyaden-Moleküle wurden zur Immobilisierung in Liposomen eingeschlossen und unter dem konfokalen Fluoreszenzmikroskop belichtet. Sowohl nach Einphotonen- als auch nach Zweiphotonen-Anregung der Rhodamin-Einheit konnte die gewünschte Fluoreszenzänderung beobachtet und somit das Uncaging bestätigt werden.
In Projekt II der Dissertation wurde ein photoaktivierbarer Fluorophor (PAF) hergestellt. PAFs liegen in ihrer geschützten Form dunkel vor. Durch die Aktivierung mit Licht können sie Fluoreszenzsignale emittieren. Sie liefern somit ein direktes Feedback über die Lichtverteilung und –intensität innerhalb einer Probe und werden somit unter anderem für die Charakterisierung und Optimierung von Belichtungsapparaturen verwendet. Besonders wünschenswert ist hierbei eine Fluoreszenzaktivierung mit sichtbarem Licht bzw. mit NIR-Licht über einen Zweiphotonen-Prozess.
Im Zuge der Arbeit wurde ein Rhodamin-Derivat synthetisiert, das durch die Anbringung eines DEACM450-Photocages in seine nichtemittierende Form gezwungen wurde. Bei Bestrahlung mit 455 nm konnte die Abspaltung der Cumarin-Schutzgruppe und der damit verbundene Anstieg der Rhodamin-Fluoreszenz beobachtet und eine Uncaging-Quantenausbeute bestimmt werden. Für die Untersuchung der Zweiphotonen-Photolyse wurde der geschützte Fluorophor in einem Hydrogel immobilisiert und unter dem konfokalen Fluoreszenzmikroskop betrachtet werden. Anschließend wurden Fluoreszenzbilder vor und nach Photoanregung von bestimmten Regionen des Hydrogels aufgenommen. Durch das Uncaging der Probe konnten helle, definierte Muster geschrieben und ausgelesen werden. Die Photoaktivierung führte dabei sowohl über die Einphotonen-Anregung mit blauem Licht (488 nm) als auch über die Zweiphotonen-Anregung mit NIR-Licht (920 nm) zur Generierung von stabilen, gleichmäßigen Fluoreszenzmustern mit hohem Kontrast.
Isothermal titration calorimetry (ITC) is a widely used technique for the characterization of protein-protein and protein-ligand interactions. It provides information on the stoichiometry, affinity, and the thermodynamic driving forces of interactions. This chapter exemplifies the use of ITC to investigate interactions between human autophagy modifiers (LC3/GABARAP proteins) and their interaction partners, the LIR motif containing sequences. The purpose of this report is to present a detailed protocol for the production of LC3/GABARAP-interacting LIR peptides using E. coli expression systems. In addition, we outline the design of ITC experiments using the LC3/GABARAP:peptide interactions as an example. Comprehensive troubleshooting notes are provided to facilitate the adaptation of these protocols to different ligand-receptor systems. The methodology outlined for studying protein-ligand interactions will help to avoid common errors and misinterpretations of experimental results.
RcsF, a proposed auxiliary regulator of the regulation of capsule synthesis (rcs) phosphorelay system, is a key element for understanding the RcsC-D-A/B signaling cascade, which is responsible for the regulation of more than 100 genes and is involved in cell division, motility, biofilm formation, and virulence. The RcsC-D-A/B system is one of the most complex bacterial signal transduction pathways, consisting of several membrane-bound and soluble proteins. RcsF is a lipoprotein attached to the outer membrane and plays an important role in activating the RcsC-d-A/B pathway. The exact mechanism of activation of the rcs phosphorelay by RcsF, however, remains unknown. We have analyzed the sequence of RcsF and identified three structural elements: 1) an N-terminal membrane-anchored helix (residues 3-13), 2) a loop (residues 14-48), and 3) a C-terminal folded domain (residues 49-134). We have determined the structure of this C-terminal domain and started to investigate its interaction with potential partners. Important features of its structure are two disulfide bridges between Cys-74 and Cys-118 and between Cys-109 and Cys-124. To evaluate the importance of this RcsF disulfide bridge network in vivo, we have examined the ability of the full-length protein and of specific Cys mutants to initiate the rcs signaling cascade. The results indicate that the Cys-74/Cys-118 and the Cys-109/Cys-124 residues correlate pairwise with the activity of RcsF. Interaction studies showed a weak interaction with an RNA hairpin. However, no interaction could be detected with reagents that are believed to activate the rcs phosphorelay, such as lysozyme, glucose, or Zn(2+) ions.
Hypoxia potentiates palmitate-induced pro-inflammatory activation of primary human macrophages
(2015)
Pro-inflammatory cytokines secreted by adipose tissue macrophages (ATMs) contribute to chronic low-grade inflammation and obesity-induced insulin resistance. Recent studies have shown that adipose tissue hypoxia promotes an inflammatory phenotype in ATMs. However, our understanding of how hypoxia modulates the response of ATMs to free fatty acids within obese adipose tissue is limited. We examined the effects of hypoxia (1% O2) on the pro-inflammatory responses of human monocyte-derived macrophages to the saturated fatty acid palmitate. Compared with normoxia, hypoxia significantly increased palmitate-induced mRNA expression and protein secretion of IL-6 and IL-1β. Although palmitate-induced endoplasmic reticulum stress and nuclear factor κB pathway activation were not enhanced by hypoxia, hypoxia increased the activation of JNK and p38 mitogen-activated protein kinase signaling in palmitate-treated cells. Inhibition of JNK blocked the hypoxic induction of pro-inflammatory cytokine expression, whereas knockdown of hypoxia-induced transcription factors HIF-1α and HIF-2α alone or in combination failed to reduce IL-6 and only modestly reduced IL-1β gene expression in palmitate-treated hypoxic macrophages. Enhanced pro-inflammatory cytokine production and JNK activity under hypoxia were prevented by inhibiting reactive oxygen species generation. In addition, silencing of dual-specificity phosphatase 16 increased normoxic levels of IL-6 and IL-1β and reduced the hypoxic potentiation in palmitate-treated macrophages. The secretome of hypoxic palmitate-treated macrophages promoted IL-6 and macrophage chemoattractant protein 1 expression in primary human adipocytes, which was sensitive to macrophage JNK inhibition. Our results reveal that the coexistence of hypoxia along with free fatty acids exacerbates macrophage-mediated inflammation.
Einfache elektrochemische Methode zur Bestimmung von Chlorit in wässrigen und nicht-wässrigen Systemen Stoffe bzw. Verbindungen, welche nachweislich krebserregend oder fruchtbarkeitsschädigend sind, werden seit Jahren, insbesondere durch die WHO, streng reguliert. Zu diesen Stoffen zählt u. a. Chlorit, welches als Abbauprodukt in Desinfektionsmitteln, Poolwassern und im Rahmen von organischen Oxidationsprozessen vorkommt. Im Rahmen des Projektes sollte eine elektrochemische Methode zu Detektion von Chlorit in wässrigen und organischen Proben entwickelt werden, wobei auf eine Glaskohlenstoffelektrode in Kombination mit Li [NTf]2 im Wässrigen und [Bmpyrr][NTf]2/MeOH im Organischen als Elektrolyten zurückgegriffen wurden.
Bei der Methodenentwicklung wurde auf Differentielle-Puls-Voltammetrie zurückgegriffen, da diese im Vergleich zum Cyclovoltammetrie deutlich empfindlicher ist. Die Methodenvalidierung nach ICH-Guidelines konnte erfolgreich durchgeführt werden Dabei konnte im Wässrigen eine Nachweisgrenze von 0.07 mg L-1 (Organisch: 0.20 mg L-1) erhalten werden. Beide lagen deutlich unter den WHO-Grenzwerten von 0.7 mg L-1. Die Selektivität/Interferenz wurde gegenüber den übrigen Chlor-Spezies getestet; für alle Spezies, außer Hypochlorit, konnten für die Wiederfindungsrate von Chlorit Werte nahe 100% erhalten werden. Die entwickelte Methode konnte erfolgreich auf wässrige (Poolproben, Desinfektionsmittel) und organische Proben (aus Pinnick-Synthesen) angewendet werden. Insbesondere durch die Anwendung im Bereich der Pinnick-Oxidation war der Sensor für mögliche In-Line-Analytik geeignet. Bei den organischen Proben konnte zudem die ionische Flüssigkeit zu 92% zurückgewonnen werden, was den Elektrolyten in Hinblick auf Nachhaltigkeit und Wirtschaftlichkeit noch attraktiver macht.
Entwicklung ionenchromatographischer Methoden zur Detektion von Chloroxo-Spezies
Der Bedarf an schnellen, kostengünstigen Analysemethoden, welche den Vorgaben der einzelnen Behörden weltweit entsprechen, ist in den letzten Jahren enorm gestiegen. Im Rahmen des Projektes sollte eine ionenchromatographische Methode (IC) entwickelt werden, welche neben den Chloroxo-Spezies (Chlorid, Hypochlorit, Chlorit, Chlorat und Perchlorat) auch die bekannten Standardionen (Fluorid, Bromid, Nitrat, Phosphat, Sulfat, Iodid) nachweisbar macht. Zunächst gelang es, die Methodenparameter zu optimieren und so die Chloro-Spezies, außer Hypochlorit, von den übrigen Standardanionen innerhalb von 50 Minuten vollständig zu trennen. Die Methode konnte in der weiteren Entwicklung sogar noch um die Detergenzien-Anionen Acetat, Formiat, Oxalat und Tartrat erweitert werden. (ASupp 7, 45 °C, 0.8 mL min-1, 6 mmol L-1 Na2CO3 / 1 mmol L-1 NaHCO3 + 10% Acetonitril). Auch alle notwendigen Validierungsparameter konnten erfolgreich bestimmt werden. Zuletzt war es möglich, erfolgreich unterschiedliche Realproben zu vermessen.
Da ein Nachweis von Hypochlorit mittels IC nicht möglich war, wurden weitere Anstrengung unternommen, dieses Anion mittels IC-PCR (Nachsäulenderivatisierung) nachzuweisen. Als Detektionsprinzip wurde dabei auf eine Bromat-Nachweis-Methode mittels UV/VIS zurückgegriffen, welche im Rahmen des Projektes angepasst wurde. Da davon ausgegangen werden muss, dass das Hypochlorit mit reaktiven Stellen innerhalb des Säulenmaterials reagiert und somit nicht mehr detektiert werden kann, wurden Passivierungsexperimente an der Vorsäule und Säule für 24 h mit einer Hypochlorit-NaOH-Mischung durchgeführt. Nach 60 Stunden Passivierung konnten erstmals reproduzierbare Ergebnisse bei dem Nachweis von OCl- erhalten werden. Zuletzt konnten erfolgreich fünf unterschiedliche Realproben vermessen und der Hypochlorit-Gehalt mit bisher angewandten Methoden verglichen werden, wobei die erhaltenen Werte in der gleichen Größenordnung lagen.
Entwicklung eines Sensors unter Verwendung der Viologen-Grundstruktur auf metallischen Oberflächen
Früher fanden Viologene und deren Derivate Anwendung im Bereich der Schädlingsbekämpfung und wurden hauptsächlich als Kontaktherbizid verwendet. Mittlerweile hat sich das Anwendungsspektrum der Viologene deutlich verändert, u.a. werden die in organischen Redox-Fluss-Batterien als Elektrolyte eingesetzt. Im Rahmen diesen Projekts wurden mehrere bekannte Viologen-Grundkörper (u. A. Methylviologen (MV)) vollständig elektrochemisch charakterisiert Im Anschluss wurde MV mit unterschiedlichen Ankergruppen (Thiol-, Sulfonat, -Phosphonat-, Carboxylanker) modifiziert und auf metallische Oberfläche (u. A. Gold und Kupfer) abgeschieden mit dem Ziel ein neues Sensor-Motiv für die Analytik zu entwickeln. Der Thiolanker konnte erfolgreich auf Gold, der Carboxylanker erfolgreich auf Kupfer abgeschieden werden. Die anschließenden elektrochemischen Untersuchungen der abgeschiedenen Monolagen ergaben jedoch eine geringe Stabilität der Anker in wässriger und organischer Umgebung, sodass in Zukunft weitere Anstrengungen unternommen werden müssen, die Stabilität des Viologensystems auf der Oberfläche zu verbessern.
Glucokinase (GK) is a key enzyme of glucose metabolism in liver and pancreatic beta-cells, and small molecule activators of GK (GKAs) are under evaluation for the treatment of type 2 diabetes. In liver, GK activity is controlled by the GK regulatory protein (GKRP), which forms an inhibitory complex with the enzyme. Here, we performed isothermal titration calorimetry and surface plasmon resonance experiments to characterize GK-GKRP binding and to study the influence that physiological and pharmacological effectors of GK have on the protein-protein interaction. In the presence of fructose-6-phosphate, GK-GKRP complex formation displayed a strong entropic driving force opposed by a large positive enthalpy; a negative change in heat capacity was observed (Kd = 45 nm, DeltaH = 15.6 kcal/mol, TDeltaS = 25.7 kcal/mol, DeltaCp = -354 cal mol(-1) K(-1)). With k(off) = 1.3 x 10(-2) s(-1), the complex dissociated quickly. The thermodynamic profile suggested a largely hydrophobic interaction. In addition, effects of pH and buffer demonstrated the coupled uptake of one proton and indicated an ionic contribution to binding. Glucose decreased the binding affinity between GK and GKRP. This decrease was potentiated by an ATP analogue. Prototypical GKAs of the amino-heteroaryl-amide type bound to GK in a glucose-dependent manner and impaired the association of GK with GKRP. This mechanism might contribute to the antidiabetic effects of GKAs.
The β-subunits of Na,K-ATPase and H,K-ATPase have important functions in maturation and plasma membrane targeting of the catalytic α-subunit but also modulate the transport activity of the holoenzymes. In this study, we show that tryptophan replacement of two highly conserved tyrosines in the transmembrane domain of both Na,K- and gastric H,K-ATPase β-subunits resulted in considerable shifts of the voltage-dependent E1P/E2P distributions toward the E1P state as inferred from presteady-state current and voltage clamp fluorometric measurements of tetramethylrhodamine-6-maleimide-labeled ATPases. The shifts in conformational equilibria were accompanied by significant decreases in the apparent affinities for extracellular K+ that were moderate for the Na,K-ATPase β-(Y39W,Y43W) mutation but much more pronounced for the corresponding H,K-ATPase β-(Y44W,Y48W) variant. Moreover in the Na,K-ATPase β-(Y39W,Y43W) mutant, the apparent rate constant for reverse binding of extracellular Na+ and the subsequent E2P-E1P conversion, as determined from transient current kinetics, was significantly accelerated, resulting in enhanced Na+ competition for extracellular K+ binding especially at extremely negative potentials. Analogously the reverse binding of extracellular protons and subsequent E2P-E1P conversion was accelerated by the H,K-ATPase β-(Y44W,Y48W) mutation, and H+ secretion was strongly impaired. Remarkably tryptophan replacements of residues in the M7 segment of Na,K- and H,K-ATPase α-subunits, which are at interacting distance to the β-tyrosines, resulted in similar E1 shifts, indicating their participation in stabilization of E2. Thus, interactions between selected residues within the transmembrane regions of α- and β-subunits of P2C-type ATPases exert an E2-stabilizing effect, which is of particular importance for efficient H+ pumping by H,K-ATPase under in vivo conditions.
The Na+/K+-ATPase maintains the physiological Na+ and K+ gradients across the plasma membrane in most animal cells. The functional unit of the ion pump is comprised of two mandatory subunits including the α-subunit, which mediates ATP hydrolysis and ion translocation, as well as the β-subunit, which acts as a chaperone to promote proper membrane insertion and trafficking in the plasma membrane. To examine the conformational dynamics between the α- and β-subunits of the Na+/K+-ATPase during ion transport, we have used fluorescence resonance energy transfer, under voltage clamp conditions on Xenopus laevis oocytes, to differentiate between two models that have been proposed for the relative orientation of the α- and β-subunits. These experiments were performed by measuring the time constant of irreversible donor fluorophore destruction with fluorescein-5-maleimide as the donor fluorophore and in the presence or absence of tetramethylrhodamine-6-maleimide as the acceptor fluorophore following labeling on the M3-M4 or M5-M6 loop of the α-subunit and the β-subunit. We have also used fluorescence resonance energy transfer to investigate the relative movement between the two subunits as the ion pump shuttles between the two main conformational states (E1 and E2) as described by the Albers-Post scheme. The results from this study have identified a model for the orientation of the β-subunit in relation to the α-subunit and suggest that the α- and β-subunits move toward each other during the E2 to E1 conformational transition.
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.
By translocating proteasomal degradation products into the endoplasmic reticulum for loading of major histocompatibility complex I molecules, the ABC transporter TAP plays a focal role in the adaptive immunity against infected or malignantly transformed cells. A key question regarding the transport mechanism is how the quality of the incoming peptide is detected and how this information is transmitted to the ATPase domains. To identify residues involved in this process, we evolved a Trojan horse strategy in which a small artificial protease is inserted into antigenic epitopes. After binding, the TAP backbone in contact is cleaved, allowing the peptide sensor site to be mapped by mass spectrometry. Within this sensor site, we identified residues that are essential for tight coupling of peptide binding and transport. This sensor and transmission interface is restructured during the ATP hydrolysis cycle, emphasizing its important function in the cross-talk between the transmembrane and the nucleotide-binding domains. This allocrite sensor may be similarly positioned in other members of the ABC exporter family.
Biogenesis of mitochondrial cytochrome c oxidase (COX) relies on a large number of assembly factors, among them the transmembrane protein Surf1. The loss of human Surf1 function is associated with Leigh syndrome, a fatal neurodegenerative disorder caused by severe COX deficiency. In the bacterium Paracoccus denitrificans, two homologous proteins, Surf1c and Surf1q, were identified, which we characterize in the present study. When coexpressed in Escherichia coli together with enzymes for heme a synthesis, the bacterial Surf1 proteins bind heme a in vivo. Using redox difference spectroscopy and isothermal titration calorimetry, the binding of the heme cofactor to purified apo-Surf1c and apo-Surf1q is quantified: Each of the Paracoccus proteins binds heme a in a 1:1 stoichiometry and with Kd values in the submicromolar range. In addition, we identify a conserved histidine as a residue crucial for heme binding. Contrary to most earlier concepts, these data support a direct role of Surf1 in heme a cofactor insertion into COX subunit I by providing a protein-bound heme a pool.
Biological membranes are complex and dynamic assemblies of lipids and proteins. Poikilothermic organisms including bacteria, fungi, reptiles, and fish do not control their body temperature and must adapt their membrane lipid composition in order to maintain membrane fluidity in the cold. This adaptive response was termed homeoviscous adaptation and has been frequently studied with a specific focus on the acyl chain composition of membrane lipids. Mass spectrometry-based lipidomics can nowadays provide more comprehensive insights into the complexity of lipid remodeling during adaptive responses. Eukaryotic cells compartmentalize biochemical processes in organelles with characteristic surface properties, and the lipid composition of organelle membranes must be tightly controlled in order to maintain organelle function and identity during adaptive responses. Some highly differentiated cells such as neurons maintain unique lipid compositions with specific physicochemical properties. To date little is known about the sensory mechanisms regulating the acyl chain profile in such specialized cells or during adaptive responses. Here we summarize our current understanding of lipid metabolic networks with a specific focus on the role of physicochemical membrane properties for the regulation of the acyl chain profile during homeoviscous adaptation. By comparing the mechanisms of the bacterial membrane sensors with the prototypical eukaryotic lipid packing sensor Mga2 from Saccharomyces cerevisiae, we identify common operational principles that might guide our search for novel membrane sensors in different organelles, organisms, and highly specialized cells.
We demonstrated previously that 5-lipoxygenase (5-LO), a key enzyme in leukotriene biosynthesis, can be phosphorylated by p38 MAPK-regulated MAPKAP kinases (MKs). Here we show that mutation of Ser-271 to Ala in 5-LO abolished MK2 catalyzed phosphorylation and clearly reduced phosphorylation by kinases prepared from stimulated polymorphonuclear leukocytes and Mono Mac 6 cells. Compared with heat shock protein 27 (Hsp-27), 5-LO was a weak substrate for MK2. However, the addition of unsaturated fatty acids (i.e. arachidonate 1-50 microm) up-regulated phosphorylation of 5-LO, but not of Hsp-27, by active MK2 in vitro, resulting in a similar phosphorylation as for Hsp-27. 5-LO was phosphorylated also by other serine/threonine kinases recognizing the motif Arg-Xaa-Xaa-Ser (protein kinase A, Ca(2+)/calmodulin-dependent kinase II), but these activities were not increased by fatty acids. HeLa cells expressing wild type 5-LO or S271A-5-LO, showed prominent 5-LO activity when incubated with Ca(2+)-ionophore plus arachidonate. However, when stimulated with only exogenous arachidonic acid, activity for the S271A mutant was significantly lower as compared with wild type 5-LO. It appears that phosphorylation at Ser-271 is more important for 5-LO activity induced by a stimulus that does not prominently increase intracellular Ca(2+) and that arachidonic acid stimulates leukotriene biosynthesis also by promoting this MK2-catalyzed phosphorylation.
Malfunction of the actin cytoskeleton is linked to numerous human diseases including neurological disorders and cancer. LIMK1 (LIM domain kinase 1) and its paralogue LIMK2 are two closely related kinases that control actin cytoskeleton dynamics. Consequently, they are potential therapeutic targets for the treatment of such diseases. In the present review, we describe the LIMK conformational space and its dependence on ligand binding. Furthermore, we explain the unique catalytic mechanism of the kinase, shedding light on substrate recognition and how LIMK activity is regulated. The structural features are evaluated for implications on the drug discovery process. Finally, potential future directions for targeting LIMKs pharmacologically, also beyond just inhibiting the kinase domain, are discussed.
Epigenetic control of microsomal prostaglandin E synthase-1 by HDAC-mediated recruitment of p300
(2017)
Nonsteroidal anti-inflammatory drugs are the most widely used medicine to treat pain and inflammation, and to inhibit platelet function. Understanding the expression regulation of enzymes of the prostanoid pathway is of great medical relevance. Histone acetylation crucially controls gene expression. We set out to identify the impact of histone deacetylases (HDACs) on the generation of prostanoids and examine the consequences on vascular function. HDAC inhibition (HDACi) with the pan-HDAC inhibitor, vorinostat, attenuated prostaglandin (PG)E2 generation in the murine vasculature and in human vascular smooth muscle cells. In line with this, the expression of the key enzyme for PGE2 synthesis, microsomal PGE synthase-1 (PTGES1), was reduced by HDACi. Accordingly, the relaxation to arachidonic acid was decreased after ex vivo incubation of murine vessels with HDACi. To identify the underlying mechanism, chromatin immunoprecipitation (ChIP) and ChIP-sequencing analysis were performed. These results suggest that HDACs are involved in the recruitment of the transcriptional activator p300 to the PTGES1 gene and that HDACi prevented this effect. In line with the acetyltransferase activity of p300, H3K27 acetylation was reduced after HDACi and resulted in the formation of heterochromatin in the PTGES1 gene. In conclusion, HDAC activity maintains PTGES1 expression by recruiting p300 to its gene.
Der Fokus der Arbeit liegt auf der Untersuchung von Wechselwirkungen zwischen Molekülen in selbst-anordnenden Monolagen (SAMs) auf Goldoberflächen mittels Rastertunnelmikroskopie und komplementären Methoden wie z.B. Infrarot-Reflektions-Absorptions-Spektro-skopie.
In dieser Arbeit wurde das kürzlich etablierte Konzept von eingebetteten Dipolmomenten in aromatischen, SAM-bildenden Molekülen eingehender untersucht. Das Ausmaß des Dipol-moments und die Größe der SAM-bildenden Moleküle wurden synthetisch variiert und der Einfluss auf die Struktur und elektronischen Eigenschaften der SAMs untersucht. Binäre, gemischte Monolagen aus SAM-bildenden Molekülen mit "entgegen gerichteten", Dipolmomenten wurden hergestellt und charakterisiert. Zur Herstellung der binären, gemischten Monolagen wurden zwei Methoden verwendet: die Monolagen wurden a) aus bereits gemischten Lösungen der Moleküle abgeschieden oder b) eine reine SAM in die Lösung des anderen Moleküls eingelegt, so dass ein Austausch stattfand. Der Vergleich der beiden Methoden ermöglicht Rückschlüsse über die Abscheidungsprozesse. Die Charakterisierung der SAMs dieser Mischungsreihen gab Aufschluss über Eigenschaften wie Packungsdichte, Austrittsarbeit, elektronischen Ladungstransport in Monolagen und Orientierung der Moleküle relativ zur Oberfläche und erlaubte Schlussfolgerungen über die Mischbarkeit und das Ausmaß der Dipolwechselwirkungen der Moleküle in der Monolage. In einem ähnlichen Ansatz zu dem oben beschriebenen Vorgehen wurden Quadrupolwechselwirkungen zwischen SAM-bildenen, Benzol-, Naphtalin- und Anthracenderivaten untersucht. In Mischungsreihen wurden SAMs von nicht- und teilweise (hoch)fluorierten, SAM-bildenden Molekülen auf Goldoberflächen charakterisiert. Die Ergebnisse der Untersuchungen können bei der gezielten Einstellung der elektronischen Eigenschaften in elektronischen Bauteilen wie OFETs Anwendung finden.
In einem weiteren Projekt wurde der Einfluss von polaren Endgruppen auf die in situ Abspaltung von Schutzgruppen an Terphenylthiol-Derivaten untersucht, wobei die Ergebnisse zum Aufbau größerer, aus organischer Elektronik bestehender, Netzwerke verwendet werden können.
The role of USP22 in nucleic acid sensing pathways and interferon-induced necroptotic cell death
(2023)
Every day, living organisms are challenged by internal and external factors that threaten to bring imbalance to their tightly regulated systems and disrupt homeostasis, leading to degeneration, and ultimately death. More than ever, we face the challenge of combating diseases such as COVID-19 caused by infection with the SARS-CoV-2 coronavirus. It is therefore crucial to identify host factors that control antiviral defense mechanisms. In addition, in the fight against cancer, it is becoming increasingly important to identify markers that could be used for targeted therapy to influence cellular processes and determine cell fate.
As a deubiquitylating enzyme, ubiquitin specific peptidase 22 (USP22) mediates the removal of the small molecule ubiquitin, which is post-translationally added to target proteins, thereby regulating several important processes such as protein degradation, activation or localization. Through its deubiquitylating function, USP22 controls several biological processes such as cell cycle regulation, proliferation and cancer immunoresistance by modulating key proteins involved in these pathways. Lately, USP22 was reported to positively regulate TNFα-mediated necroptosis, an inflammatory type of programmed cell death, in various human tumor cell lines by affecting RIPK3 phosphorylation. In addition, USP22 as a part of the Spt-Ada-Gcn5 acetyltransferase (SAGA) transcription complex is known to regulate gene expression by removing ubiquitin from histones H2A and H2B. However, little is known about the role of USP22 in global gene expression.
In this study, we performed a genome-wide screen in the human colon carcinoma cell line HT-29 and identified USP22 as a key negative regulator of basal interferon (IFN) expression. We further demonstrated that the absence of USP22 results in increased STING activity and ubiquitylation, both basally and in response to stimulation with the STING agonist 2'3'-cGAMP, thereby affecting IFNλ1 expression and basal expression of antiviral ISGs. In addition, we were able to establish USP22 as a critical host factor in controlling SARS-CoV-2 infection by regulating infection, replication, and the generation of infectious virus particles, which we attribute in part to its role in regulating STING signaling.
In the second part of the study, we connected the findings of USP22-dependent regulation of IFN signaling and TNFα-induced necroptosis and investigated the role of USP22 during necroptosis induced by the synergistic action of IFN and the Smac mimetic BV6 in caspase-deficient settings. We identified USP22 as a negative regulator of IFN-induced necroptosis, which does not depend on STING expression, but relies on a yet unknown mechanism.
In summary, we identify USP22 as an important regulator of IFN signaling with important implications for the defense against viral infections and regulation of the necroptotic pathway that could be exploited for devising targeted therapeutic strategies against viral infections and related diseases like COVID-19, and advancing precision medicine in cancer treatment.
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.
From the leaf exudate of Aloe lateritia ENGLER the C-glucosyl com pounds homonataloin, aloeresin A and aloesin (synon. aloeresin B) were isolated together with the anthraquinone nataloeem odin-8-methylether and spectroscopically identified. Hom onataloin, widely distributed in Aloe species, was separated into homonataloin A and B by combined TLC and DCCC. In their 1 D and 2D 1H NMR spectra only the shifts of the 2′-hydroxyl protons of both glucosyl residues differ significantly, indicative of 10 S (A) resp. 10 S (B) configurations. In both com pounds the anthrone is in β-position of the D-glucopyranosyl, as determined by the large coupling constants of the anomeric protons. The 13C NMR signals are unambiguously assigned by the use of DEPT, APT and gated-decoupling methods. Only the chemical shifts of C -11 and C -14 show significant differences between both diastereomers due to the adjacent 2′-sugar hydroxyls. The two homonataloins differ mostly in optical rotation and circulardichroism due to different configurations at C - 10 of the anthrone part. The absolute configurations of the diastereomers are determined by correlation of their CD spectra with the CD spectra of the structural analogues 7-hydroxyaloins A and B, which shows that hom onataloin A is the 10 S, 1′S-compound and that homonataloin B has 10 R, 1′S-configuration.