Biologische Hochschulschriften (Goethe-Universität; nur lokal zugänglich)
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Respiration is one of the key processes of energy transduction used by the cell. It consists of two components: electron transfer and ATP production. The electron transfer chain converts the energy released from several biochemical redox reactions into an electrochemical proton gradient across membranes. This stored energy is used as the driving force for the production of ATP by the ATP synthase. The mitochondrial electron transfer chain contains four major protein complexes called complexes I-IV, with counting starting at the lower side of the redox potentials. It has been discussed for a long time how these protein complexes are organized in the membranes. Do they diffuse freely in the membrane? Alternatively, do they form a supercomplex built up of several neighboring complexes? The evidence supporting the free diffusion mode is that both electron transfer intermediates (cytochrome c and quinone) behave as “pool”. However, respiratory supercomplexes have been detected in membranes from bacteria, fungi, yeast, plant and animal during the last decade, and sometimes the respiratory complexes are only stable inside a supercomplex. Therefore, the idea of supercomplex formation has become more popular. The argument that the supercomplex arises from solubilization and is a detergent artifact could be rejected because: 1) supercomplexes can be isolated from many organisms in an active form; 2) supercomplexes have been proven to stabilize the individual complexes in some cases; 3) supercomplexes can be very stable after chromatographic isolation in some cases....
Biochemical and functional analysis of the ubiquitin binding properties of the NF-κB regulator NEMO
(2012)
Posttranslationale Modifikationen regulieren wesentliche Eigenschaften von Proteinen, wie z. B. Lokalisation, Konformation, Aktivität, Stabilität und Interaktionsfähigkeit. Eine besondere Form der Proteinmodifikation ist die Ubiquitylierung, bei der das kleine Protein Ubiquitin mit seinem C-Terminus kovalent an ein Substratprotein gebunden wird.
Die am besten untersuchte Funktion der Ubiquitylierung ist die Markierung eines Substrates für den Abbau durch das Proteasom. In den letzten Jahren wurde jedoch entdeckt, dass Ubiquitylierung in vielen Bereichen der Zelle eine wichtige Rolle spielt. Dazu gehören der Transport von Vesikeln, die Reparatur von DNA-Schäden und zelluläre Signalübertragung. Ubiquitin kann verschieden-artige Ketten bilden, indem ein Ubiquitin an eines der sieben Lysine (K6, K11, K27, K29, K33, K48, K63) oder den N-Terminus eines anderen gebunden wird. Diese unterschiedlichen Kettentypen regulieren verschiedene Prozesse. Z. B. dienen K48-verknüpfte Ubiquitinketten als Signal für den proteasomalen Abbau, wohingegen über K63 verknüpfte Ketten hauptsächlich eine Rolle bei Signalübertragungen spielen.
Die meisten Funktionen die durch Ubiquitylierung reguliert werden, werden durch Ubiquitinrezeptoren vermittelt, die eine Ubiquitinbindedomäne (UBD) besitzen. Manche UBDs binden selektiv nur einen Ubiquitinkettentyp und sind somit in der Lage gezielt Prozesse regulieren zu können, indem sie nur durch diesen speziellen Kettentyp aktiviert werden.
Das Protein NEMO ist ein Ubiquitinrezeptor, dessen UBD UBAN selektiv bestimmte Ubiquitinketten bindet. NEMO spielt eine zentrale Rolle bei der Aktivierung der Transkriptionsfaktorfamilie NF-κB, indem es den IKK-Kinasekomplex reguliert. Dieser Kinasekomplex sorgt durch die Phosphorylierung des NF-κB-Inhibitors IκBα für dessen proteasomalen Abbau, wodurch schließlich NF-κB aktiviert wird. Die NF-κB-Aktivierung kann u. a. durch den TNF-Rezeptor (TNFR) induziert werden. Am aktivierten TNFR werden viele Proteine durch verschiedene Ubiquitinketten modifiziert. Bisher wurde angenommen, dass die spezifische Bindung von NEMO an K63-verknüpfte Ubiquitinketten ausschlaggebend für die Aktivierung von IKK ist. Jedoch spielen lineare Ubiquitinketten, die über den N-Terminus verknüpft sind, auch eine wichtige Rolle bei der Aktivierung von NF-κB und die UBAN von NEMO hat eine sehr hohe Affinität zu linearen Ubiquitinketten.
Um die genauen Vorgänge zu verstehen, die zur Aktivierung von NF-κB am TNFR führen, ist es nötig, zu analysieren, welche Proteine mit welchen Ubiquitinketten modifiziert werden und welche Ubiquitinrezeptoren daran binden.
In dieser Studie sollte detailliert untersucht werden, mit welchen Ubiquitin-ketten NEMO bevorzugt interagiert. Dazu wurden in vitro-Bindungsstudien mit bakteriell aufgereinigtem NEMO und verschiedenen Ubiquitinketten durchgeführt. Des Weiteren sollte geprüft werden, wie die Bindung von NEMO an bestimmte Ubiquitinketten die Aktivierung von NF-κB reguliert.
Dabei ergab sich, dass sowohl NEMO in voller Länge, als auch die UBAN, bevorzugt mit linearen Ubiquitinketten interagieren, wohingegen die Interaktion von NEMO mit anderen Ubiquitinketten relativ schwach ist. Ausgehend von einer Kristallstruktur eines Komplexes aus der NEMO-UBAN und linearem di-Ubiquitin, wurden NEMO-Mutanten generiert, die seletkiv die Bindung von NEMO an lineare Ubiquitinketten verhindern, während die schwache Bindung von NEMO an längere K63-verknüpfte Ketten erhalten blieb. Um die Relevanz der Interaktion von NEMO mit linearen Ubiquitinketten für die Aktivierung von NF κB zu überprüfen, wurden diese NEMO-Mutanten dann verwendet um Zellen die kein NEMO exprimieren zu rekonstituieren. Nach Stimulation dieser Zellen mit TNFα wurde NF-κB kaum aktiviert, womit gezeigt werden konnte, dass NEMO gezielt an lineare Ubiquitinketten binden muss, um NF-κB zu aktivieren. Zusätzlich zu seiner Rolle bei der Aktivierung von NF-κB ist NEMO ein wichtiger Inhibitor der durch den TNFR induzierten Apoptose. In dieser Studie wurde gezeigt, dass diese Apoptoseinhibierung abhängig von der Bindung von NEMO an lineare Ubiquitinketten ist, da die Zellen die NEMO-Mutanten exprimierten, die keine linearen Ketten binden können, durch Apoptose starben, währen Wildtyp-Zellen überlebten.
Zusammenfassend konnte in dieser Studie gezeigt werden, dass NEMO bevorzugt und mit vergleichsweise hoher Affinität an lineare Ubiquitinketten bindet und dass diese spezifische Bindung wichtig für die Inhibierung von TNFR-induzierter Apoptose sowie für die Aktivierung von NF-κB ist.
Hepatitis C virus (HCV) assembly and production is closely linked to lipid metabolism. Indeed, lipid droplets (LD) have been shown to serve as a platform for HCV assembly. To investigate the effect of HCV on the host cell proteome, 2D-gelelectrophoresis with subsequent MALDI-TOF mass spectrometry of HCV replicating and the corresponding control cells were done. Based on this analysis, it was found out that HCV-replicating Huh7.5 cells revealed lower amounts of TIP47 (tail interacting protein of 47kD) compared to HCV-negative cells. TIP47, a cytoplasmic sorting factor, has been shown to be associated with lipid droplets. As it is known that HCV-replication and assembly takes place at the so called ”membranous web” that is composed of LDs and rearranged ER-derived membranes, it was tempting to investigate the role of TIP47 in HCV life-cycle. Western blot analysis did reveal that overexpression of TIP47 in HCV replicating Huh7.5 cells leads to decreased amounts of the HCV core protein while the levels of non-structural protein (NS)5A and intracellular HCVgenomes are increased. Moreover, in TIP47 overproducing cells higher amounts of infectious HCV particles are secreted. Vice versa, inhibition of TIP47 expression by siRNA results in a decreased level of intracellular NS5A, increased amounts of intracellular core and less infectious viral particles in the supernatant. In addition, complete silencing of TIP47 by lentiviral transduction abolishes HCV replication that can be restored by transfection of these cells with a TIP47 expression construct. It has been shown recently that apoE binds to NS5A and that this interaction plays an important role for the HCV life cycle (Benga et al., 2010). The C-terminal part of TIP47 harbours a 4 helix bundle motif and displays high homology to the N-terminus of apoE. Therefore, we investigated the interaction of NS5A and TIP47. Confocal double immunofluorescence microscopy revealed that a fraction of NS5A colocalizes with TIP47. Coimmunoprecipitation experiments and a yeast-two-hybrid screening confirmed the interaction between NS5A and TIP47 and deletion of the N-terminal-TIP47-PAT domain abolishes this interaction. From this we conclude that the TIP47-NS5A interaction is required for virus morphogenesis. Moreover, TIP47 can bind to Rab9 and this is relevant for targeting the viral particle out of the cell. In accordance to this, TIP47 was identified to be associated to the viral particle. Mutants of TIP47 that fail to bind Rab9 reveal lower amounts and a changed distribution of the HCV core protein. Furthermore, we could see that the core staining colocalizes with subcellular structures that were identified as autophagosomes using a p62-specific antibody which is a specific autophagosome-marker. Based on this, we hypothized that destruction of the Rab9 binding domain misdirects the viral particle towards the lysosomal compartment.
For the first time it could be shown that TIP47 interacts with NS5A and is associated to the viral particle, therefore plays a crucial role for the virus morphogenesis and secretion of the viral article.
Taken together, these results indicate that TIP47 is an essential cellular factor for the life cycle of HCV Abstract and might be used as target for antiviral treatment, e.g. by targeting the NS5A-TIP47 interaction, based on small molecules that mimic the NS5A-specific sequence that binds to TIP47 which might result in a competition of the TIP47/NS5A interaction.
The universal biological energy currency adenosine triphosphate (ATP) is synthesized by the F1Fo-ATP synthase in most living organisms. The overall structure and function of F-type ATPases is conserved in the different organisms. The F1Fo-ATP synthase consist of two domains; the soluble F1 complex has the subunit stoichiometry α3β3γδε and the membrane embedded Fo complex consists of subunits ab2c10-15 in its simplest form found in bacteria. F1 and Fo both function as reversible rotary motors that are connected by a central stalk (γε) and a peripheral stalk (b2δ).
For ATP synthesis, the electrochemical energy formed by a proton or sodium ion gradient is required. The ion translocation across the Fo subcomplex induces torque in the motor part of the enzyme (cnγε), which causes conformational changes in the α3β3 domain leading to ATP synthesis from ADP and inorganic phosphate (Pi) catalyzed in the β-subunits. ATP hydrolysis causes a reverse torque in the Fo subcomplex triggering uphill ion translocation from cytoplasm to periplasm, and the enzyme functions as an ion pump.
The ATP synthesis mechanism is well understood, since several high-resolution structures of F1 are available. In contrast, the ion translocation mechanism across the membrane, mediated by the Fo subcomplex, is not understood in its structural detail.
Subunit a and the c-ring form an ion pathway, but subunit b is needed to form an active ion translocation pathway in both H+- and Na+-dependent systems. Several high-resolution structures of c-rings have provided insights in the ion translocation mechanism. The different ion translocation models based on biochemical, biophysical and structural analysis are in agreement in the fact that ions are translocated through a periplasmic ion access pathway in subunit a to the middle of the membrane and there to the binding site of a c-subunit. After almost a whole rotation of the c-ring the ion returns into the a-c interface, where it can be released to the cytoplasm. In the different models the cytoplasmic access pathway has been proposed to be located in subunit a, at the a-c interface or within the c-ring. The driving force of torque generation has been proposed to be the pH gradient or membrane potential. Several biochemical studies show that a conserved arginine in helix four of subunit a (R226 in Ilyobacter tartaricus or R210 in Escherichia coli)plays a critical role in the ion translocation. The arginine has been proposed to function as an electrostatic separator between the cytoplasmic and periplasmic pathways and as a mediator of the ion exchange into the c-ring ion-binding site.
Structural data of a related enzyme (V1Vo-ATPase from Thermus thermophilus) has provided insight into the helical arrangement of the ion translocating subunits I and Lring (related to subunit a and the c-ring). These structures indicated a small interface between subunit I and the L-ring, and two four-helix bundles in the N-terminal domain of subunit I were proposed to build the periplasmic and cytoplasmic ion pathways. To comprehend the ion-translocation and torque generation mechanism in F1Fo-ATP synthase, structural data of an intact a-c complex is needed.
The goal of this work was to obtain structural data of subunit a, most preferably in a complex with the c-ring or additionally with subunit b. Therefore, a new purification procedure for the I. tartaricus Fo-subcomplex, heterologously expressed in E. coli cells, was established. The purified Fo was characterized biochemically and by Laserinduced liquid bead ion desorption mass spectrometry (LILBID-MS). These analyses showed that pure and completely assembled Fo containing all its subunits in the correct stoichiometry (ab2c11) was obtained. The purified Fo complex was stable at 4°C for several months and at room temperature in the presence of lipids for several weeks. A lipid analysis was performed by thin-layer chromatography (TLC) to investigate the qualitative lipid composition of I. tartaricus whole lipid extract and various I. tartaricus F1Fo isolates. The whole lipid extract contained PC, PG and PE lipids and probably cardiolipin. PC, PG and PE lipids were bound to wild type I. tartaricus F1Fo, whereas recombinant I. tartaricus F1Fo did not have any bound lipids, but was able to bind the synthetic lipids POPC and POPG if they were provided during the purification.
For subsequent structural studies the purified Fo was subjected to two-dimensional (2D) crystallization trials. Vesicles and sheets tightly packed with protein and crystals with a rare plane group for I. tartaricus c11 (p121) were obtained. The c-ring was visible in the CCD images, and immunogold-labeling revealed the presence of the His-tagged a-subunit in the reconstituted vesicles. Furthermore, atomic force microscopy (AFM) imaging showed protein densities next to the c-rings, which protruded less from the membrane (0.4±0.1 nm) than the c-ring (0.7±0.1 nm). These protein densities presumably belonged to subunit a.
Cryo-electronmicroscopy (cryo-EM) was used to collect data of the p121 crystals and a merged projection density map was calculated to 7.0 Å resolution. The unit cell of the crystals (81 × 252 Å) contained two asymmetric units with three c-rings in each and next to the c11-rings new prominent densities were visible. In each extra density up to 7 transmembrane helices were visible, belonging to the stator subunit a and/or subunit b. To elucidate whether there are conserved elements in the three extra densities non-crystallographic averaging was applied using a single-particle approach.
Six possible arrangements for the c-rings and the extra densities were identified and used for the averaging. The extra densities were enhanced only in one of the possible arrangements. The average showed a four-helix bundle and a fifth helix in close proximity to the c-ring. Two more helices were present in each position but their position was ambivalent. The data obtained in this work provides the first insight in the helical arrangement in the a-c interface of F1Fo-ATP synthase.
The tumor suppressor programmed cell death 4 (Pdcd4) exerts its function by inhibiting protein translation initiation. Specifically, it displaces the scaffold protein eukaryotic initiation factor 4G (eIF4G) from its binding to the eukaryotic initiation factor 4A (eIF4A). Thereby, Pdcd4 inhibits the helicase activity of eIF4A, which is necessary for the unwinding of highly structured 5’ untranslated regions (UTRs) of messenger RNAs (mRNAs) often found in oncogenes like c-myc to make them accessible for the translation machinery and subsequent protein production. Overexpression of Pdcd4 inhibits tumorigenesis in vitro and in vivo and inversely, Pdcd4 knockout mice show enhanced tumor formation. In line, Pdcd4 is lost in various tumor types and proposed as prognostic factor in colon carcinomas. Unlike most other tumor suppressors that are rendered nonfunctional by mutations (e.g., p53), Pdcd4 loss is not attributable to mutational inactivation. It is regulated via translational repression by microRNAs and increased degradation of the protein under tumor promoting, inflammatory conditions and mitogens. Specifically, proteasomal degradation of Pdcd4 is controlled by p70 S6 Kinase (p70S6K)-mediated phosphorylation in its degron sequence (serines 67, 71 and 76). Stimulation of the PI3K-AKT-mTOR pathway by growth factors, hormones and cytokines initiates p70S6K activity. Phosphorylated Pdcd4 is subsequently recognized by the E3 ubiquitin ligase beta-transducin repeats-containing protein (β-TrCP) and marked with a polyubiquitin tail to be detected by the 26S proteasome for degradation. β-TrCP represents the substrate specific recognition subunit of the ubiquitin ligase complex responsible for protein-protein interaction with Pdcd4 as substrate for ubiquitin transfer and subsequent proteasomal disassembly.
The first part of the present work aimed at identifying novel stabilizers of the tumor suppressor Pdcd4 in a high throughput screen (HTS). As assay design, a fragment of Pdcd4 from amino acid 39 to 91, containing the phosphorylation sensitive degron sequence, was fused to a luciferase reporter gene construct. Stable expression of this Pdcd4(39-91)luciferase (Pdcd4(39-91)luc) fusion protein in HEK 293 cells served as read-out for the Pdcd4 protein amount to be detected in a high throughput compatible cell-based assay. Loss of Pdcd4(39-91)luc was induced by treatment with 12-O-
tetradecanoylphorbol-13-acetate (TPA), a phorbolester, which activates the PI3K signaling cascade leading to degradation of Pdcd4. The cut-off for hit definition was set at >50% activity in rescuing the Pdcd4(39-91)luc signal from TPA-induced degradation. Activity was calculated relative to the difference of DMSO- and TPA-treated cells (ΔDMSO-TPA = RLUDMSO-RLUTPA). Initial screening of a protein kinase inhibitor library (PKI) revealed hit substances expected to show Pdcd4 stabilizing activity by inhibition of kinases involved in Pdcd4 downregulation, e.g., the mTOR inhibitor rapamycin, the PI3K inhibitors wortmannin and LY294002 and the PKC inhibitors GF 109203X and Ro 31-8220.
The Molecular Targets Laboratory (MTL) of the National Cancer Institute (NCI) in Frederick, USA, hosts one of the largest collections of crude natural product extracts as well as a big substance libraries from pure synthetic sources. Screening of over 15 000 pure compounds and over 135 000 natural product extracts identified 46 pure and 42 extract hits as Pdcd4 stabilizers. For nine synthetic and six natural product derived compounds (after bioassay-guided fractionation), dose-dependent activities for recovering the TPA-induced Pdcd4(39-91)luc loss defined IC50s in the low micromolar range. Most importantly, these compounds were confirmed to stabilize endogenous Pdcd4 protein levels from forced degradation as well. This result proved the assay design to be highly representative for endogenous cellular mechanisms regulating Pdcd4 protein stability. The next step was to stratify the hit substances according to their likely mechanism of action to be located either up- or downstream of the p70S6K-mediated phosphorylation of Pdcd4. Therefore, phosphorylation of S6, as proto-typical p70S6K target, was analyzed and uncovered two natural derived compounds to influence p70S6K activity. Four substances did not affect p70S6K phosphorylation activity and were therefore considered to stabilize Pdcd4 by acting downstream, i.e. on the β-TrCP-mediated proteasomal degradation.
In the second part of this work, one of these compounds, namely the sesquiterpene lactone erioflorin, isolated by bioassay-guided fraction from the active extract of Eriophyllum lanatum, Asteraceae, was further characterized in detail with respect to its molecular mechanism of action. Erioflorin dose-dependently protected both Pdcd4(39-91)luc and endogenous Pdcd4 protein from TPA-induced degradation with IC50s of 1.28 and 2.64 μM, respectively. Pdcd4 stabilizing activity was maximal at 5 μM erioflorin. Up to this concentration, erioflorin was verified not to inhibit p70S6K activity. In addition, it was observed that erioflorin rescued Pdcd4(39-91)luc from both, wild type and constitutively active p70S6K-mediated downregulation. Only wild type p70S6K was inhibitable by the mTOR inhibitor rapamycin which served as an upstream acting control. To study the next section of Pdcd4 regulation, i.e. recognition by the E3 ubiquitin ligase β-TrCP, Pdcd4(39-91)luc and endogenous Pdcd4 were immunoprecipitated from whole cell extracts with the corresponding antibodies. In this key experiment, treatment with TPA increased overexpressed β-TrCP binding to both and this coimmunoprecipitation could be strongly reduced by erioflorin treatment. This result strongly pointed to an inhibitory mechanism of the β-TrCP specific binding to Pdcd4 by erioflorin. In addition, erioflorin disrupted the binding of in vitro transcribed/translated β-TrCP to Pdcd4 in an in vitro interaction assay to exclude nonspecific intracellular signals. Furthermore, polyubiquitination of Pdcd4 was decreased by erioflorin treatment as well. To clarify questions regarding specificity of erioflorin for the E3 ubiquitin ligase β-TrCP, stability of another important β-TrCP target was explored, i.e. the tumor suppressor inhibitor of kappa B alpha (IκBα). Indeed, the tumor necrosis factor alpha (TNFα)-mediated loss of IκBα could be prevented by erioflorin cotreatment. On the other hand, the E3 ubiquitin ligase von Hippel Lindau protein (pVHL) was left unaffected as its target hypoxia inducible factor 1 alpha (HIF-1α) could not be stabilized from oxygen-dependent degradation by erioflorin treatment. These results argued strongly for erioflorin being a specific inhibitor of β-TrCP-mediated protein degradation. Functional consequences of erioflorin treatment were investigated by observing its influence on the transcriptional activities of the transformation marker activator protein 1 (AP-1, an indirect downstream target of Pdcd4) and nuclear factor κB (NF-κB which is directly inhibited by IκBα). Indeed, erioflorin showed significant inhibition of AP-1 and NF-κB reporter constructs at 5 μM, a concentration for which an impact on cell viability was excluded. Finally to characterize the significance of erioflorin in a cell-based tumorigenesis assay, the highly invasive colon carcinoma cell line RKO was tested in a two dimensional migration assay. Erioflorin was discovered to significantly lower cell migration in a wound closure assay.
In conclusion, development of a high throughput compatible cell-based reporter assay successfully identified novel substances from pure synthetic and natural product derived background as potent stabilizers of the tumor suppressor Pdcd4. In addition, this work aimed at elucidating the detailed mechanism of action of the sesquiterpene lactone erioflorin from Eriophyllum lanatum, Asteraceae. Erioflorin was discovered to inhibit the E3 ubiquitin ligase β-TrCP, thereby preventing protein degradation of tumor suppressors like Pdcd4 and IκBα. This may offer the possibility to more specifically target protein degradation and generate less adverse side effects by blocking a particular E3 ubiquitin ligase compared to general proteasome inhibition.
The adaptive immune system protects against daily infections and malignant transformation. In this, the translocation of antigenic peptides by the transporter associated with antigen processing (TAP) into the ER lumen is an essential step in the antigen presentation by MHC I molecules. The heterodimeric ATP-binding cassette transporter (ABC) TAP consist of the two halftransporters TAP1 and TAP2. Each monomer contains an N-terminal transmembrane domain (TMD) and a conserved C-terminal nucleotide-binding domain (NBD). Together, the TMDs build the translocation core and the NBDs bind and hydrolyze ATP, energizing the peptide transport. TAP features an asymmetry in the two ATP-binding sites that are built of several conserved motifs. One motif is the D-loop with the consensus sequence SALD. The highly conserved aspartate of the D-loop of TAP1 reaches into the canonic ATP-binding site and contacts the Walker A motif and the H-loop of the opposite NBD, while the Asp of D-loop of TAP2 is part of the non-canonic ATP-binding site.
To examine this ABC transport complex in mechanistic detail, a purification and reconstitution procedure was established with the function of TAP being preserved. The heterodimeric TAP complex was purified via a His10-tag at TAP1 in a 1:1 ratio of the subunits. Nucleotide binding to the purified transporter was elucidated by tryptophan quenching assays and the affinity constants for MgADP and MgATP were determined to be 1.0 μM and 0.7 μM, respectevely. In addition, the TAP complex shows strict coupling between peptide binding and ATP hydrolysis, revealing no basal ATPase activity in the absence of peptides. Furthermore, TAP was reconstituted into proteoliposomes and the activity was tested by peptide transport and ATP hydrolysis. Interestingly, the kinetic parameters of the transporter in the reconstituted state are comparable to the data gained for TAP in microsomes.
To characterize the functional importance of the D-loop, D-loop mutants of either TAP1 or TAP2 were analyzed. Strikingly, TAP containing a mutated D-loop in TAP1 (D674A) shows an ATP-hydrolysis independent peptide translocation. Accordingly, the MHC I surface expression is similar to the wildtype situation. However, the same mutation in TAP2 (D638A) results in an ATPase dependent peptide transport similar to wildtype, whereas TAP containing mutations in both subunits leads to an inactive transporter. Although all D-loop mutants showed no altered peptide binding activity, the TAP1 mutant is inactive in peptide-stimulated ATPase activity. Strikingly, ATP or ADP binding is strictly required for the peptide translocation. Experiments carried out in proteoliposomes demonstrate that wildtype TAP can export peptides against their gradient when low peptide concentrations are offered. In contrast, the D674A mutant can facilitate peptide translocation along their concentration gradient in the two directions. At high peptide concentrations, TAP is trapped in a transport incompetent state induced by trans-inhibition. In conclusion, a TAP mutant that uncouples solute translocation from ATP hydrolysis was created. Since this passive substrate movement is strictly dependent on binding of ATP or ADP, an active transporter was turned into a “nucleotide-gated facilitator”.
In a cysteine cross-linking approach the conformational changes of TAP during peptide transport and the flexibility of the nucleotide binding domains were examined. Single cysteines were introduced in the D-loops of TAP1 and TAP2. Cross-linking by copper-phenantroline (CuPhe) was possible for all combinations. However, by adding ATP, ADP or peptide to the TAP complex no differences in the cross-linking efficiency were detected. By CuPhe cross-linking TAP was trapped in a conformation, in which the peptide binding site was not accessible. To complete a transport cycle, a flexibility of at least 17.8 Å of the NBDs is needed, since TAP cross-linked by CuPhe (2.0 Å) or bismaleimidoethane (BMOE, 8.0 Å) was transport inactive but when TAP was cross-linked by 1,11-bismaleimido-triethyleneglycol (BM[PEG]3, 17.8 Å) transport activity was preserved.
5-Lipoxygenase (5-LO) catalyzes the two initial steps in the biosynthesis of leukotrienes, a group of inflammatory lipid mediators derived from arachidonic acid. Here, the regulation of 5-LO mRNA expression by alternative splicing and nonsense-mediated mRNA decay (NMD) was investigated. In the present study, the identification of two truncated transcripts and four novel 5-LO splice variants containing premature termination codons (PTC) was reported. The characterization of one of the splice variants, 5-LOΔ3, revealed that it is a target for NMD since knockdown of the NMD factors UPF1, UPF2 and UPF3b in the human monocytic cell line Mono Mac 6 (MM6) altered the expression of 5-LOΔ3 mRNA up to 2-fold in a cell differentiation-dependent manner suggesting that cell differentiation alters the composition or function of the NMD complex. In contrast, the mature 5-LO mRNA transcript was not affected by UPF knockdown. Thus, the data suggest that the coupling of alternative splicing and NMD is involved in the regulation of 5-LO gene expression.
RT-PCR analysis of different cell types revealed the existence of a large number of 5-LO splice variants. The most interesting splice variants were observed in BL41-E95A cells, which give a raise to novel 5-LO protein isoforms. This leads to the hypothesis of a novel regulatory mechanism in which the dimerization of 5-LO with 5-LO isoforms might regulate the 5-LO activity.
The 5-LO protein expression was reduced on translational level in UPF1 knock down cells, suggesting that UPF1 has a positive influence on 5-LO translation. Therefore, a mass spectrometry based proteomics study was started to identify compartment specific protein expression changes upon UPF1 knockdown in differentiated and undifferentiated MM6 cells. The proteomics analysis demonstrated that the knockdown of UPF1 results in numerous protein changes in the microsomal fraction (~ 21%) but not in the soluble fraction (< 1%). Western blot data confirmed the trend of the proteomics analysis. This data suggest that UPF1 is a critical gene expression regulator in a compartment specific way. During differentiation by TGFβ and calcitriol the majority of UPF1 regulated proteins was adjusted to normal level. It appears that that not only the NMD mechanism alters its composition during differentiation. Also the gene expression regulation on translational level by UPF1 seems to be also cell differentiation dependent. An interesting group of UPF1 target genes represent the downregulated proteins. qRT-PCR analysis of randomly chosen genes revealed no effect on mRNA expression upon UPF1 knockdown, suggesting that UPF1 positively influences the translation of these genes. Computational sequence analysis identified a conserved C-rich sequence which might be a hnRNP E2-binding site. hnRNP E2 has been characterized as a translational repressor in myeloid cells. Western blot analysis revealed a differentiation independent up regulation of hnRNP E2 by UPF1 knockdown. Additionally, microRNA-328 (miR-328) has been described as an RNA decoy modulating hnRNP E2 regulation. Due to this, stem loop qRT-PCR showed an up regulation of miR-328 in TGFβ and calcitriol differentiated MM6 cells. Based on this data we suggest a model in which downregulation of UPF1 increases hnRNP E2 expression, leading to translation inhibition. During differentiation, miRNA-328 is upregulated thereby competing with hnRNP E2 leading to an efficient translation
Die 5-Lipoxygenase (5-LO) ist eines der Schlüsselenzyme der Leukotrienbiosynthese. Sie katalysiert zunächst die Umsetzung der freigesetzten Arachidonsäure(AA) zu 5-Hydroperoxyeicosatetraensäure (5-HpETE), in einem zweiten Reaktionsschritt wandelt sie diese in Leukotrien A4 (LTA4) um. Leukotriene sind potente Entzündungsmediatoren und spielen eine wichtige Rolle bei entzündlichen und allergischen Reaktionen. Außerdem wird die Beteiligung an verschiedenen Krebsarten kontrovers diskutiert.
Sie besteht aus 673AS, ist 78 kDa schwer und gliedert sich wie alle bisher bekannten Lipoxygenasen in eine N-terminale C2-ähnliche, regulatorische Domäne(AS 1–114) (C2ld), die für die Membran- und Calciumbindung sowie die Interaktion mit dem Coactosin-like Protein (CLP) verantwortlich ist, und in eine C-terminale, katalytische Domäne (AS 121–673), die das Nicht-Häm-gebundene Eisen im aktiven Zentrum trägt. Ein weiteres Strukturmerkmal sind zwei ATP-Bindungsregionen, eine befindet sich in der C2ld (AS 73–83), die andere auf der katalytischen Domäne (AS 193–209), das molare Verhältnis von 5-LO zu ATP konnte dabei auf 1:1 festgelegt werden [167].
Bereits 1982 wurde in einer Veröffentlichung von Parker et al. beschrieben, dass 5-LO aus Rattenzellen in Gegenwart von Calcium auf einer Gelfiltration dimerisieren kann [204], 2008 schließlich wurde von Aleem et al. publiziert, dass humane 12-LO aus Thrombozyten Dimere bilden kann [219]. Somit konnte es möglich sein, dass auch die humane 5-LO zur Dimerisierung fähig ist.
Zunächst wurde aufgereinigtes Enzym mit nativer Gelelektrophorese und anschließender Coomassiefärbung oder Western Blot untersucht, dabei konnten mehrere Banden pro Bahn detektiert werden. Um dieses Phänomen weiter zu untersuchen, wurde im Anschluss eine Gelfiltration etabliert; da die C2ld der 5-LO recht hydrophob ist, war es nötig, 0,5% T20 zum Elutionspuffer PBS/EDTA zuzusetzen, da das Enzym ansonsten unspezifisch mit dem Säulenmaterial interagiert und für seine Größe zu spät eluiert hätte. In Anwesenheit von T20 eluierte 5-LO in zwei getrennten Peaks, die exakt zu den vorher mit Referenzproteinen bestimmten Elutionsvolumina des Monomers und Dimers passten. Weiter wurde getestet, ob niedermolekulare Substanzen einen Einfluss auf das Dimerisierungsverhalten haben, allerdings konnte weder durch Ca2+noch durch ATP eine Verstärkung der Dimerisierung beobachtet werden. Dahingegen konnte, nach Vorinkubation mit GSH und Diamid, das alleinige Monomer auf der Gelfiltration nachgewiesen werden, nach Vorinkubation nur mit Diamid, lag das gesamte Protein ausschließlich als Dimer vor. Durch Gelelektrophorese mit oder ohne Zusatz von ß-Mercaptoethanol und LILBID-MS konnte die Ausbildung von intermolekularen Disulfidbrücken bestätigt werden. Ein Bindungsassay mit radioaktivem 35S-GSH konnte die kovalente Bindung des GSH an die 5-LO bestätigen. Quantifizierungsstudien mit Ellmans Reagens zeigten, dass mindestens eins der Oberflächencysteine mit GSH modifiziert wurde. Die von der Gelfiltration erhaltenen Fraktionen wurden auf enzymatische Aktivität getestet und in allen 5-LO-haltigen Fraktionen konnte Aktivität gefunden werden. Leider war es nicht möglich, eine Aussage darüber zu treffen, ob das Mono- oder das Dimer aktiver war. Es liegt offenbar in einem Fließgleichgewicht vor, da erneute Injektion des Monomerpeaks im bekannten Elutionsprofil aus zwei Peaks resultierte. Außerdem führt die Anwesenheit von 0,5% T20 während des Aktivitätstests zu einer Hemmung des Enzyms und weniger detektierbaren 5-LO-Produkten; es fiel vor allem auf, dass so gut wie keinerlei trans- und epitrans-LTB4, die nicht-enzymatischen Zerfallprodukte der 5-HpETE, nachzuweisen waren. Betrachtet man die Struktur der 5-LO, so findet man zehn Cysteine an der Oberfläche; die Cysteine 159, 300, 416 und 418 liegen dabei in einem Interface. Mutiert man diese Cysteine zu Serinen, so verschwindet der Dimer-induzierende Effekt des Diamids, wohingegen die Mutante weiterhin glutathionylierbar bleibt. Interessanterweise zeigt diese Mutante auch eine wesentlich weniger ausgeprägte Hemmung durch T20. Um eine Aussage treffen zu können, ob auch 5-LO aus humanen Zellen Dimere bilden kann, wurde 5-LO-haltiger S100 aus polymorphkernigen Leukozyten (PMNL) untersucht. Dabei konnte mit Western Blot und einem Aktivitätsnachweis gezeigt werden, dass die 5-LO in einem breiten Bereich von der Gelfiltration eluiert. Das deutet darauf hin, dass sie in PMNL ebenfalls dimerisiert vorliegen kann. In Gegenwart von Ca2+kam es zu einer Verschiebung der 5-LO zu höhermolekularen Gewichten, wobei dieses Phänomen nicht bei S100 aus transformierten E.coli auftrat, was auf einen gerichteten Komplex nach Calciuminduktion in PMNL hindeutet.
Außerdem wurde im Rahmen dieser Arbeit der Bindemodus von Sulindac an die 5-LO mittels Crosslinking untersucht. Dabei konnte gezeigt werden, dass konzentrationsabhängig der einfache Komplex aus 5-LO und CLP abnimmt, dafür aber ein hochmolekularer Komplex, der beide Enzyme enthält, entsteht. Weder das Prodrug Sulindac noch der weitere Metabolit Sulindacsulfon oder andere Inhibitoren, die ebenfalls an der C2ld angreifen sollen, zeigten diesen Effekt. Leider konnte nicht weiter geklärt werden, was diesen Effekt verursacht, allerdings liegt die Vermutung nahe, dass es zu einer Aggregation kommt. Weitere Untersuchungen könnten wichtige Hinweise auf das Design von neuen Arzneistoffen bringen, um selektivere und damit nebenwirkungsärmere Inhibitoren zu finden.