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- Biochemie und Chemie (41) (remove)
The detailed mechanism of the 20 S proteasome from Thermoplasma acidophilum is unknown. Substrates are degraded processively to small fragments without the release of intermediates, but the basis for this unique degradation mode remains obscure. The proteasome is a molecular machine, but how the different nanocompartments interplay and whether more than one substrate can be treated simultaneously has not been elucidated yet. To address these questions we had to disable the functionality of one aperture in order to dissect whether the other pore can compensate for the loss. As it is challenging to introduce mutations solely around one pore aperture of the highly symmetrical construct, we chose a novel approach by unique orientation of the proteasome at interfaces. For this purpose we purified recombinant 20 S proteasomes, where hexahistidine tags were fused either around the entrances or at the sides. According to electron microscopic studies we immobilized these constructs uniformly either end-on or side-on at metal-chelating interfaces (lipid vesicles, lipid monolayers and self-assembled thiol monolayers). Degradation of small fluorogenic peptides and large proteins like casein was analyzed. Small substrates were degraded with comparable activity by free and immobilized proteasomes, irrespective of their orientation. Thus it can be assumed that peptides can pass the sealed entrance of the 'dead-end' proteasome. However, larger substrates like fluorescently labeled casein were processed near the temperature optimum by side-on immobilized and soluble proteasomes with threefold activity compared to end-on immobilized proteasomes. Hence it can be concluded that one pore is sufficient for substrate entry and product release. In other words, the pore and antechamber can fulfil a triple function in the import and unwinding of substrates and the egress of products. With means of surface plasmon resonance the exact substrate/proteasome stoichiometry could be determined to ~1 for 'dead-end' proteasomes and ~2 for side-on immobilized (active and inactive) proteasomes. Most importantly, a fit with the Hill equation revealed positive cooperativity for side-on immobilized (Hill coefficient ~2) in contrast to end-on immobilized proteasomes (Hill coefficient ~1). Thus in case of soluble proteasomes two substrates bind presumably in opposite antechambers with positive cooperativity. The off-rate of casein as substrate is twofold for the active side-on immobilized proteasome in comparison to the end-on immobilized proteasome. The exact 2:1 stoichiometry of the off-rates equals the ratio of exit pathways amenable in case of side-on orientated versus 'dead-end' immobilized proteasomes. Thus crevices along the cylindrical body of the 20 S proteasome seem not to participate in the egress of small products. An inactive proteasome mutant displays a concentration-dependent off-kinetic against casein. Accordingly, the off-rate of the bisubstrate:proteasome complex can be attributed around half the value of the monosubstrate:proteasome complex. Consequently, substrates exit the inactive proteasome via the route of access due to obstruction of the trans side with an entering substrate. Hence the active proteasomes have to chop substrates down to small fragments prior to release through both pores. Thus the processive degradation mode might result from positive binding cooperativity. The on-rate constants for casein suggested that substrate association represents a two-step process comprising a rate-limiting translocation step and a fast binding step. As fluorescence cross-correlation revealed that two substrates can be co-localized in the proteasome and bind successively with increasing affinity (KD,1 = 8 µM versus KD,2 = 700 nM), an allosteric transition in the proteasome can be assumed. Combining our results with the data from other research groups led to a mechanistic model for the 20 S proteasome. Accordingly, the first substrate undergoes a slow translocation step, binds in the antechamber and diffuses subsequently to the catalytic centers, where it is degraded. By switching on the catalytic activity, the pores at both termini are dilated via conformational changes. Hence entry of the second substrate into the proteasome is facilitated due to omission of the rate-determining translocation step. The second substrate is either accommodated in the antechamber before it is processed (alternating degradation) or, most probably, is directly threaded into the central cavity (simultaneous degradation). As effusing peptides compete with entering proteins for binding in the antechamber, the pores are kept in an open state. After finishing digestion the pores are closed and a new degradation cycle can be reinitiated. In summary, substrate association with the proteasome underlies an ordered alternating binding mechanism in contrast to the random mode of degradation. Thus the two-stroke engine offers the advantage of speeding up degradation without enhancing complexity.
Die Translokation von gelösten Stoffen über zelluläre Membranen ist ein essentieller biologischer Prozess, der durch eine Vielfalt an integralen Membranproteinen vermittelt wird. Diese sind in den selektiven Austausch verschiedenster Stoffe bzw. Teilchen involviert und ermöglichen somit die Kommunikation zwischen den einzelnen Zellkompartimenten untereinander bzw. mit der extrazellulären Umgebung. Eine der größten Familien paraloger Proteine, die den vektoriellen Transport von Substanzen über Zellmembranen katalysieren, stellen die ATP‐binding cassette (ABC)‐Transporter dar. Mitglieder dieser Proteinfamilie sind in allen bisher untersuchten Organismen von Prokaryoten bis hin zu höheren Eukaryoten vertreten und übernehmen essentielle Funktionen in einer Vielzahl von zellulären Abläufen. ABC‐Transporter zeichnen sich durch eine breite Substratdiversität aus, d.h. sie energetisieren unter ATP‐Verbrauch die Translokation zahlreicher, strukturell und chemisch unterschiedlicher Substanzen wie Zucker, Lipide, Ionen, Aminosäuren, Proteine oder auch zelltoxische Stoffe. In Bakterien können sie sowohl als Importproteine fungieren, welche hauptsächlich die Aufnahme von Nährstoffen vermitteln, als auch als Exportproteine, deren Hauptaufgabe es ist, zelltoxische Substanzen aus der Zelle heraus zu schleusen. Eukaryotische ABC‐Transporter sind sowohl in der Plasmamembran als auch in den intrazellulären Membranen zu finden – beispielsweise in denen des Endoplasmatischen Retikulums, des Golgi Apparats, der Lysosomen, der Peroxisomen und der Mitochondrien. Sie fungieren als Exportproteine und sind z.B. an der Ionen‐Homöostase, der Antigenprozessierung, der Insulinfreisetzung oder am Cholesterol‐ und Lipidtransport beteiligt. ...
Das humane Zytomegalievirus (HCMV) gehört zur Familie der beta-Herpesviridae. Bis zu 80% menschlichen Bevölkerung sind weltweit mit dem Virus infiziert. Nach einer meist asymptotischen Erstinfektion persistiert HCMV lebenslang in seinem Wirtsorganismus. Im Laufe der Evolution wurden von einigen Herpesviren verschiedene Strategien entwickelt, um der Antigenprozessierung und damit der zellulären Immunantwort zu entgehen. Das HCMV-Protein US6 blockiert die Antigenpräsentation via MHC I. US6 ist ein ER-ständiges Typ I Transmembranglykoprotein bestehend aus einer Signalsequenz, einer ER-luminalen Domäne, einer Transmembranhelix und einem kurzen zytoplasmatischen C-Terminus. US6 inhibiert den TAP-abhängigen Peptidtransport aus dem Zytoplasma in das ER-Lumen. Im Rahmen dieser Arbeit wurde die ER-luminale Domäne von US6 bestehend aus der Primärsequenz 20-146 heterolog in E. coli exprimiert und aus inclusion bodies rückgefaltet. Das rückgefaltete Protein erwies sich als Monomer (15,6 kDa). Die in der ER-luminalen Domäne befindlichen acht Cysteine bilden ein intramolekulares Netzwerk aus vier Disulfidbrücken. Zur Aufklärung des molekularen Inhibitionsmechanismus von US6(20-146) wurden verschiedene in vitro TAP-Funktions-Assays angewendet. Die Bindung von US6 an die ER-luminalen Bereiche von TAP blockiert die ATP-Bindung in den zytoplasmatischen NBD des Transporters. Die Peptid- und ADP-Bindung von TAP ist nicht beeinflusst, durch die Inhibition der ATP-Bindung wird jedoch die Peptid-induzierte ATP-Hydrolyse unterbunden. Für die Inhibitionsreaktion konnte ein halbmaximaler Inhibitionskoeffizient (IC50) von 1 µM ermittelt werden. Für die inhibitorische Aktivität von US6 sind die C-terminalen Aminosäuren 126-139 der ER-luminalen Domäne von US6 verantwortlich. Die innerhalb dieser Region befindlichen Aminosäuren Cys127, Cys129, D130, W134 und R138 wurden gegen Serin bzw. Alanin ersetzt. Dies hatte keine Auswirkung auf die Aktivität von US6(20-146). Auch ist der N-Terminus von US6 nicht essentiell für die Aktivität.
Rezeptortyrosinkinasen der Familie der epidermalen Wachstumsfaktorrezeptoren (EGFR) sind in vielen Krebsarten dereguliert und ursächlich an der malignen Transformation beteiligt. Da die Aktivierung vom Rezeptor ausgehender Signaltransduktionskaskaden auf spezifischen Protein-Protein-Interaktionen basiert, kann durch gezielte Interferenz mit diesen Interaktionen das proliferative Signal ausgeschaltet und das Tumorwachstum angehalten werden. Für diese gezielte Interferenz wurde in der vorliegenden Arbeit das Peptid-Aptamer-System eingesetzt, mittels dem Peptide, die in ein Gerüstprotein inseriert sind, aufgrund ihrer Affinität zu einem Zielprotein selektiert werden können. Drei Peptid-Aptamere (KDI1, KDI3, KDI4), die spezifisch mit dem EGF-Rezeptor interagieren, konnten isoliert werden. lntrazelluläre Expression von Peptid-Aptamer KDI1 oder Einbringung des bakteriell exprimierten Peptid-Aptamers KDI1 mittels einer Proteintransduktionsdomäne führte zu reduzierter EGF-abhängiger Proliferation und Transformation. Durch Interferenz des Aptamers mit dem EGF-Rezeptor war die EGF-induzierte Phosphorylierung von Tyrosin 845, 1068 und 1148, sowie die Aktivierung von p46 Shc und STAT3 reduziert. Daher wurde gefolgert, dass das Peptid-Aptamer die EGF-abhängige Rekrutierung der zytoplasmatischen Kinase c-Src an den Rezeptor inhibiert. Durch Fusion einer zusätzlichen Domäne wie der SOCS-Box-Domäne konnte den Peptid-Aptameren eine zusätzliche inhibitorische Funktion gegeben werden. Hierbei handelt es sich um eine Domäne, die spezifisch Kontakt mit E3-Ubiquitin-Ligasen aufbauen kann. Es konnte gezeigt werden, dass durch Transduktion eines solchen Peptid-Aptamers der Rezeptor spezifisch ubiquitinyliert und damit degradiert wird. Das Peptid-Aptamer-System eignet sich somit dazu, Inhibitoren für vorgegebene Zielmoleküle zu isolieren, die sowohl in der Grundlagenforschung als auch in der Tumortherapie Anwendung finden können.
Characterization of mouse NOA1 : subcellular localizaion, G-Quadruplex binding and proteolysis
(2013)
Mitochondria contain their own protein synthesis machinery with mitoribosomes that are similar to prokaryotic ribosomes. The thirteen proteins encoded in the mitochondrial genome are members of the respiratory chain complexes that generate a proton gradient, which is the electromotoric force for ATP synthesis.
NOA1 (Nitric Oxide Associated Protein-1) is a nuclear encoded GTPase that positively influences mitochondrial respiration and ATP production. Although a role in mitoribosome assembly was assigned to NOA1 the underlying molecular mechanism is poorly understood. This work shows that the multi-domain protein NOA1 serves multiple purposes for the function of mitochondria. NOA1 is a dual localized protein that makes a detour through the nucleus before mitochondrial import. The nuclear shuttling is mediated by a nuclear localization signal and the now identified nuclear export signal. SELEX (Systemic Evolution of Ligands by Exponential Enrichment) analysis revealed a G-quadruplex binding motif that characterizes NOA1 as ribonucleoprotein (RNP). G-quadruplex binding was coupled to the GTPase activity and increased the GTP hydrolysis rate. The sequence of localization events and the identification of NOA1 being a RNP lead to the discussion of an alternative import pathway for RNPs into mitochondria. The short-lived NOA1 contains ClpX recognition motifs and is specifically degraded by the mitochondrial matrix protease ClpXP. NOA1 is the first reported substrate of ClpXP in higher eukaryotes and augments the contribution of the ClpXP protease for mitochondrial metabolism. To assess the direct action of NOA1 on the mitoribosome co-sedimentation assays were performed. They showed that the interaction of NOA1 and the mitoribosome is dependent on the GTPase function and the nascent peptide chain. In vitro, NOA1 facilitated the membrane insertion of newly translated and isotope labeled mitochondrial translation products into inverted mitochondrial inner membrane vesicles. In conclusion, NOA1 is a G-quadruplex-RNP that acts as mitochondrial membrane insertion factor for mtDNA-encoded proteins.
This thesis provides a comprehensive model of the molecular function of NOA1 and is the basis for future research. The identification of NOA1 as ClpXP substrate is a major contribution to the field of mitochondrial research.
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.
ABCB9 is a peptide transporter belonging to the ATP-binding cassette (ABC) transporter subfamily B. Due to its high sequence identity to the transporter associated with antigen processing (TAP) the protein was named TAP-like (TAPL). The primary aim of this PhD thesis was the functional characterization of the TAPL transport complex. Despite the lack of TAPL function in the classical MHC class I pathway an involvement of TAPL in antigen presentation was still suggested. Apart from the crucial role of TAP for peptide delivery into the ER, TAP-independent translocation pathways in professional antigen presenting cells (pAPC) have been proposed, but not identified so far. Remarkably, TAPL mRNA and protein expression is strongly induced during differentiation of monocytes to immature and mature dendritic cells. This result was confirmed in the promonocytic cell line THP-1, which was used as a model system for monocyte to macrophage differentiation. By using quantitative immunofluorescence microscopy and subcellular fractionation, TAPL was detected in the lysosomal compartment co-localizing with the lysosome associated membrane protein 2 (LAMP-2) thus excluding the ER-localization formerly reported. Furthermore, by in vitro assays, a TAPL-specific and ATPdependent translocation of peptides into isolated lysosomes was demonstrated. Hence, TAPL is a candidate mediating peptide transport in alternative antigen presentation pathways in pAPCs. The presence of an extra N-terminal transmembrane domain (TMD0) lacking sequence homology to any known protein distinguishes TAPL from most other ABC transporters of its subfamily. By dissecting the TAPL translocation complex into its four putative transmembrane helices containing TMD0 and the core complex, distinct functions to the core complex and TMD0 were assigned. The core-TAPL complex composed of six predicted transmembrane helices and the nucleotide-binding domain (NBD) was expressed transiently in HeLa or stably in Raji cells. Crude membranes containing core-TAPL showed the same peptide transport activity as wt-TAPL demonstrating that the six core helices and the NBD are sufficient for peptide transport. This result also shows that the core transport complex is correctly targeted to and assembled in the membrane. Strikingly, in contrast to the wt transporter, the core complex localizes only partially to lysosomes and is mistargeted to the plasma membrane as observed by immunofluorescence microscopy and confirmed biochemically by cell surface biotinylation. Thus, a crucial role for TMD0 in proper subcellular targeting can be postulated. The vast majority of biological processes are mediated by protein complexes, hence characterization of such protein-protein-interactions is essential for understanding protein function on the cellular level. To identify interaction partners of TAPL, the transporter was isolated by tandem affinity purification. By tandem mass spectrometry the membrane proteins LAMP-1 and LAMP-2 were deciphered as specific proteins interacting with wt-TAPL. Notably, core-TAPL lacks these interactions indicating a role for TMD0 in recruiting other proteins. These results were verified for endogenous TAPL by co-immunoprecipitation. Using cells deficient in LAMP-1 and/or in LAMP-2 an escort function for the LAMP proteins was excluded. Very importantly, the physiological function of the LAMP-1and LAMP-2 interaction with TAPL is an increase in stability, since in their absence half-life of TAPL is drastically reduced.
Innerhalb des adaptiven Immunsystems spielt der Major Histocompatibility Complex (MHC)-Klasse I-Weg der Antigenpräsentation eine essenzielle Rolle bei der Erkennung und Zerstörung Virus-infizierter Zellen. Ein grundlegender Schritt innerhalb dieses Prozesses ist die Translokation endogener Peptide durch den transporter associated with antigen processing (TAP) in das ER-Lumen. Der TAP-Transporter ist zusammen mit verschiedenen Chaperonen und weiteren Faktoren in einem Peptidbeladungskomplex (PLC) assoziiert. Insbesondere Herpesviren, die durch eine lebenslange Persistenz im Wirt und wiederkehrende Reaktivierung unter Stresssituationen gekennzeichnet sind, interferieren direkt mit dem PLC und dem TAP-Transporter. Das varicellovirale Typ-I-Membranprotein UL49.5 inhibiert den TAP-Komplex, wobei das Protein des Rinderherpesvirus (Bovines Herpesvirus 1, BHV-1) zusätzlich die proteasomale Degradation verschiedener Komponenten des PLCs einleitet. Dieser Mechanismus wird durch die C-terminale Domäne des UL49.5-Proteins vermittelt und ist von keinem anderen Virusprotein bekannt. Welche Aminosäuren des Virusproteins jedoch für diese Inhibition und Degradation essenziell sind, wurde bisher nicht aufgeklärt. Ziel der vorliegenden Doktorarbeit war es, die Funktionsweise des BHV-1 UL49.5-Proteins zu verstehen und insbesondere zu analysieren, welche Bereiche des Proteins für die proteasomale Degradation des TAP-Komplexes verantwortlich sind. Das UL49.5-Protein wurde im Rahmen der vorliegenden Arbeit erfolgreich in Insektenzellen und in HeLa-Zellen exprimiert. Mittels Coimmunpräzipitation (Co-IP) wurde daraufhin die Bindung verschiedener UL49.5-Varianten an den TAP-Komplex analysiert. Unterstützt wurden diese Daten durch einen in vivo Interaktionsscreen (BiFC) und in vitro translatiertes UL49.5. Hierbei stellte sich heraus, dass das UL49.5-Protein in Abwesenheit sämtlicher Komponenten des Immunsystems an beide Untereinheiten des TAP-Transporters bindet. Die Bindung erfolgt sowohl an vollständige TAP-Untereinheiten als auch an den sogenannten coreTAP-Komplex, der nur die inneren sechs Transmembranhelices besitzt. Weiterhin wurden systematisch verkürzte UL49.5-Varianten generiert, um wichtige Reste für TAP-Inhibition und proteasomale Degradation zu identifizieren. Interessanterweise sind weder die N-terminale noch die C-terminale Domäne von UL49.5 für die Bindung an den TAP-Komplex zwingend notwendig. Die Bindung an den TAP-Transporter wird demnach über die Transmembrandomäne von UL49.5 vermittelt. Mit Hilfe von Peptidtransport-Analysen wurde die inhibitorische Aktivität verschiedener UL49.5-Mutanten eingehend untersucht. Zusätzlich wurde eine Untersuchung der MHC I-Oberflächenexpression in transient transfizierten HeLa-Zellen etabliert. In diesen Zellen wurde nach Sortierung eine drastisch reduzierte TAP-Konzentration nachgewiesen, die auf proteasomale Degradation des TAP-Komplexes zurückzuführen war. Die Untersuchung von C-terminal verkürzten UL49.5-Mutanten zeigte, dass die letzten zwei C-terminalen Aminosäuren essenziell für die Induktion der TAP-Degradation sind. Die C-terminale Domäne von UL49.5 konnte jedoch, nach Übertragung auf andere Proteine, keine proteasomale Degradation des TAP-Komplexes einleiten. Demnach ist ein weiterer Bereich des Proteins für diesen Prozess zwingend notwendig. Erstaunlicherweise waren auch N-terminal verkürzte UL49.5-Proteine deutlich in ihrer inhibitorischen Funktion beeinträchtigt. Bereits nach der Deletion von 10 N-terminalen Aminosäuren war das Protein nicht mehr in der Lage, eine proteasomale Degradation des TAP-Komplexes einzuleiten. Demnach spielt auch die ER-luminale Domäne von UL49.5 eine wichtige Rolle bei der UL49.5-induzierten TAP-Degradation. Somit wurde ein bisher noch nicht beschriebener neuartiger Inhibitionsmechanismus für das BHV-1 UL49.5-Protein entdeckt. Nach Bindung von UL49.5 über die Transmembrandomäne an beide Untereinheiten des TAP-Transporters scheint die ER-luminale Domäne von UL49.5 ein Signal über die ER-Membran an die zytoplasmatische Domäne zu übertragen, die dann die proteasomale Degradation des TAP-Komplexes einleitet. Es konnte im Rahmen dieser Doktorarbeit erstmals gezeigt werden, dass additive Effekte eines sehr kleinen Virusproteins auf zwei unterschiedlichen Seiten der ER-Membran zu einer proteasomalen Degradation eines sehr großen Membran-Komplexes führen.
The adaptive immune system of jawed vertebrates is based on recognition and elimination of cells that are either invaded by intracellular pathogens or malignantly transformed. One essential component of these processes is the cell surface presentation of antigenic peptides via major histocompatibility complex (MHC) class I molecules to cytotoxic T-cells (CTLs). Cells degrade defective ribosomal products and misfolded or unwanted proteins by the ubiquitin-proteasome pathway. The resulting degradation products are recognized and translocated by the transporter associated with antigen processing (TAP) into the endoplasmic reticulum (ER) lumen, where they are loaded onto MHC I molecules. Assembled peptide-MHC complexes are then shuttled by the secretory pathway to the cell surface for antigen presentation to CTLs, leading in the case of viral infection or malignant transformation to lysis and apoptosis of the target cell. Due to the fact that the TAP complex represents a key control point within the antigen presentation pathway, several viruses have evolved sophisticated strategies to evade immune surveillance by interfering with TAP function.
Detailed studies of the TAP mechanism or its viral inhibition have been severely impeded by difficulties in expressing sufficient amounts of functional heterodimeric TAP complex. Thus, the overexpression of TAP in the methylotrophic yeast Pichia pastoris was established for functional analysis of this important ABC complex. Biomass production was scaled up by fermentation using classical batch and feed methods. Extensive screening of optimal solubilization and purification conditions allowed the isolation of the heterodimeric transport complex. Notably, only the very mild detergent digitonin preserved TAP function. Hereby, the optimal solubilization and purification strategy yielded in 30 mg TAP transporter per liter culture. Remarkably, the protein amount was 50-fold increased compared to previously described expression/purification in cultured insect cells.
The high yield and quality of TAP produced in P. pastoris allowed an extensive analysis of substrate binding and transport kinetics of the transport complex in the membrane, its solubilized and purified state, as well as the reconstituted state. Thereby, a strong and direct effect of the lipid bilayer on ATP hydrolysis and peptide transport was discovered. These important results were extended further by successful functional reconstitution of the antigen translocation machinery in different lipid environments. For the first time, a stimulation of the transport activity by phosphatidylinositol (PI) and phosphatidylethanolamine (PE) was observed, whereas cholesterol was identified as an inhibitor of TAP activity.
Purification of TAP and subsequent thin-layer chromatography (TLC)/liquid chromatography Fourier transform-mass spectrometry (LC FT-MS) fingerprinting of residual lipids exhibited specifically associated glycerophospholipids; mainly PC, PE, and PI species. Strikingly, these lipids not only represent the primary class of phospholipids of the ER but were also shown to be essential for functional reactivation of delipidated, and thus inactive, TAP. The results demonstrate that transport of antigenic peptides by the ABC transporter TAP strictly requires specific glycerophospholipids.
In addition to the biochemical characterization of heterologous produced TAP, the soluble domain of the viral inhibitor US6 from human cytomegalovirus was expressed in E. coli. Optimization of the purification and refolding strategy yielded in functional protein, with a 35-fold increased protein amount compared to previous purification procedures. Protein activity was analyzed by specific inhibition of ATP binding to TAP. Furthermore, high protein yields allowed detailed investigation of TAP-dependent spatial and mechanistic separation of MHC I restricted cross-presentation in professional antigen presenting cells (pAPC).
By translocating proteasomal degradation products into the endoplasmic reticulum (ER) for loading of major histocompatibility complex (MHC) class I molecules, the ATP binding cassette (ABC) transporter associated with antigen processing (TAP) plays a pivotal role in the adaptive immunity against infected or malignantly transformed cells. A key question regarding the transport mechanism is how the inter-domain communication and conformational dynamics of the TAP complex are connected during the peptide transport. To identify residues involved in this processes, 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 study, the peptide sensor and transmission interface have been identified. This region aligns with the cytosolic loop 1 (CL1) of Sav1866 and MsbA. Based on a number of experimental data and the homology to the bacterial ABC exporter Sav1866, we constructed a 3D structural model of the core TAP complex. According to this model, the CL1 and CL2 of TAP1 are extended cytosolic loops connecting the transmembrane helices (TMH) 2 and 3, and TMH4 and 5 respectively, and contact both nucleotide binding domains (NBDs) of the opposite subunit. In contrast to exporters, the cytosolic loop (named L-loop) of BtuCD importer is much shorter, and contacts only one NBD. The data confirm that the CL1 of TAP1 functions as signal transducer in ABC exporters, because it does not interfere with substrate binding but with substrate transport. The peptide contact site identified herein is restructured during the ATP hydrolysis cycle. Importantly, TAP showed a structural change trapped in the ATP hydrolysis transition state, because direct contact between peptide and CL1 is abolished. By cysteine scanning, the most conserved residues within CL1 were identified, which disrupted the tight coupling between peptide binding and transport. Together with Val-288, these residues are essential in sensing the bound peptide and inter-domain signal transmission. To characterize the molecular architecture of CL1, a convenient and minimally perturbing approach was used, which combined cysteine substitution in the CL1 region and determination of accessibility to thiol specific compounds with different properties. These studies revealed that the N-terminal region of CL1 has a good accessibility for hydrophilic (iodoacetamidofluorescein, IAF) and amphiphilic probes (BODIPY maleimide, BM), whereas the C-terminal region is accessible for hydrophobic probe (coumarin maleimide, CM). Kinetic studies of fluorescence labeling suggest that this region displayed a different accessibility to probes when the protein undergoes distinct conformations (e. g. nucleotide free state), thereby reflecting conformational transitions. Fluorescence labeling with BM induces a lost of peptide transport, whereas the peptide binding remains unaffected. These results indicate that covalent modifications of the CL1 residues influenced the inter-domain communication between transmembrane domain (TMD) and NBD. The X-loop is a recently discovered motif in the NBD of ABC exporters, which stays in close contact to the CLs. Moreover, because the X-loop precedes the ABC signature motif, it probably responds to ATP binding and hydrolysis and may transmit conformational changes to the CLs. By substitution of the highly conserved Glu-602 of TAP2 with residues that have different chemical properties, it was shown for the first time that the X-loop is a functional important element, which plays an key role in coupling substrate binding to downstream events in the transport cycle. We further verified domain swapping in the TAP complex by cysteine cross-linking. The TAP complex can be reversibly arrested either in a binding or translocation incompetent state by cross-linking of the X-loop to CL1 or CL2, respectively. These results resolve the structural arrangement of the transmission interface and point to different functions of the cytosolic loops in substrate recognition, signaling and transport.