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Retroviral vectors are powerful tools in clinical gene therapy as they integrate permanently into the target cell genome and thus guarantee long-term expression of transgenes. Therefore, they belong to the most frequently used application platforms in clinical gene therapy involving a broad range of different target cells and tissues. However, stable genomic integration of retroviral vectors can be oncogenic, as reported in several animal models and in clinical trials. In particular, γ-retroviral vectors, which derive from naturally mutagenic γ-retroviruses, integrate semirandomly into the host genome with regard to the target sequence, but have a preference for regions of active transcription and regulatory elements of transcriptionally active genes. The integration can result in overexpression of adjacent genes or disruption of ‘target’ gene expression. Moreover, γ-retroviral integration can cause modified transcripts and proteins through alternative or aberrant splicing or through premature termination of transcription.
Initially, the event of insertional mutagenesis and subsequent induction of leukemia by the genotoxicity of a γ-retroviral vector was described in a mouse model after genetic modification of hematopoietic stem cells (HSCs). Vector-related activation and overexpression of the oncogene ecotropic viral integration site-1 (Evi1) fostered clonal outgrowth and leukemogenesis. Additional genotoxic events of γ-retroviral vectors were observed in clinical HSC gene therapy trials for X-linked severe combined immune deficiency (SCID-X1), chronic granulomatous disease (X-CGD), and Wiskott-Aldrich Syndrome (WAS). But, genotoxicity induced by γ-retroviral vectors has never been described in clinical gene therapy trials involving adoptive transfer of genetically modified mature T lymphocytes. This fact is surprising, since T cells are long-lived and have a high capacity of self-renewal.
In a previous study, the susceptibility towards oncogenic transformation of mature T cells and HSCs after genetic modification was compared. It could be demonstrated that T-cell receptor (TCR)-polyclonal mature T cells are far less prone to transformation after γ-retroviral transfer of (proto-)oncogenes in vivo than HSCs. Additional experiments revealed that TCR-oligoclonal (OT-I and P14) mature T cells are transformable in the same setting and give rise to mature T-cell lymphomas (MTCLs).
In the present thesis, the susceptibility of mature T cells towards insertional mutagenesis was investigated. Within the first part of the thesis, retroviral integration sites (RISs) from 33 murine MTCLs were retrieved and subsequently analyzed in terms of integration pattern, detection of common integration sites (CIS) and gene ontology (GO). As these bioinformatic results demonstrated that insertional mutagenesis most likely contributed to mature T-cell lymphomagenesis, the susceptibility of mature T cells was directly assessed in a mouse model. Therefore, murine TCR-oligoclonal OT-I T cells were transduced with an enhanced green fluorescent protein (EGFP) encoding γ-retroviral vector and gene-modified T cells were transplanted into RAG1-/- mice. After 16 months, including one round of serial transplantation, a case of MTCL emerged. Tumor cells were characterized by CD3, CD8, TCR and ICOS expression. Integration site analysis via ligation-mediated polymerase chain reaction (LM-PCR) revealed a proviral insertion in the Janus kinase 1 (Jak1) gene. Subsequent overexpression of Jak1 could be demonstrated on transcriptional and protein level. Furthermore, T-cell lymphoma cells were characterized by an activated Jak/STAT-pathway as signal transducer and activator of transcription 3 (STAT3) was highly phosphorylated. The overexpression of Jak1 was causally implicated in tumor growth promotion as specific pharmacological inhibition of Jak1 using Ruxolitinib significantly prolonged survival of mice transplanted with these Jak1-activated tumor cells. A concluding systematic metaanalysis of available gene expression data on human mature T-cell lymphomas/leukemias confirmed the relevance of Jak/STAT overexpression in sporadic human T-cell tumorigenesis.
This was the first reported case of an insertional mutagenesis event in mature T cells in vivo. Thus, the results obtained in this thesis underline the importance of long-term monitoring of genetically modified T cells in vivo and the evaluation of vector toxicology and safety in T-cell based gene therapies. In particular, the transduction of T cells with a recombinant TCR or CAR (chimeric antigen receptor) bears a risk enhancement, as normal T-cell homeostasis is perturbed besides the general risk of insertional mutagenesis.
Structural determinants for substrate specificity of the promiscuous multidrug efflux pump AcrB
(2013)
Opportunistic Gram-negative pathogens such as Escherichia coli, Klebsiella pneumoniae, Acinetobacter Baumanii and Pseudomonas aeruginosa are becoming more and more multiresistant against many commonly available antibiotics [39, 40]. An important resistance mechanism of Gram-negative bacteria is the efflux of noxious compounds by tripartite systems [39, 41-44]. The best studied and most clinically relevant tripartite system is the AcrA-AcrB-TolC system of Escherichia coli, where substrate recognition and energy transduction takes place in the inner membrane protein AcrB. AcrB has a remarkably huge substrate spectrum and can recognize structurally diverse molecules, such as hexan in contrast to erythromycin, as its substrates [45]. Therefore, overproduction of the tripartite system can render a Gram-negative pathogen resistant against multiple antibiotics at once. The mechanisms of how AcrB is able to recognize such an enormous spectrum of molecules as substrates, without compromising its specificity (e.g. by neglecting essential compounds like lipids or gluclose as its susbtates), remained puzzling. Structural insight into substrate specificity was so far limited to two co-crystal structures of AcrB, where minocycline and doxorubicin, respectively, were identified bound to an internal binding pocket of AcrB. This binding pocket is particularly deeply buried into internal parts of the T monomer of AcrB and was, therefore, denoted deep binding pocket (DBP). Analysis of several AcrB co-crystal structures with substrate molecules bound to the DBP [4, 23, 25] indicated that the substrate promiscuity involved multisite binding modes within the DBP. Multisite binding modes, where different substrate molecules can bind to slightly different positions and orientations to the same binding pocket, is a common feature of multidrug recognizing proteins such as QacR or BmrR [27-29]. Nevertheless, AcrB's substrate spectrum is much broader than substrate spectra of most other multidrug recognizing proteins. Therefore, it is likely that additional mechanisms are involved in mediating the observed high substrate promiscuity of AcrB. In our recently published high-resolution AcrB/doxorubicin co-crystal structure (pdb entry: 4DX7 [23]) we were able to identify two additional substrate binding pockets in the L monomer of AcrB: i) the access pocket (AP), with an opening towards the periplasm, and ii) a putative binding site in a groove between transmembrane helices 8 and 9 (TM8/TM9 groove), accessible from the lipid layer of the inner membrane. Both binding pockets are likely to be access sites for substrates towards AcrB. Furthermore, each of the binding pockets are possibly specialized to recognize a specific subset of the entire substrate spectrum of AcrB, i.e. highly hydrophobic substrates (e.g. n-dodecyl-ß-d-maltoside or sodium dodecylsulfate) might access AcrB towards the TM8/TM9 groove and water soluble substrates (e.g. berberine) might access AcrB towards the AP. Since substrates will accumulate in the membrane or the periplasm according to their hydrophilic or hydrophobic nature, substrates will be "pre-selected" by the medium, rather than by the protein itself, and guided to their appropriate access site. This process is proposed to be called "medium- mediated pre-selection". The AcrB/doxorubicin co-crystal structure (pdb entry: 4DX7 [23]) furthermore revealed that the AP and DBP are in next neighborhood to each other and are separated by a switch loop. This switch loop adopts distinct conformations in the L, T and O monomers. Specific switch loop conformations are strongly involved in coordinating the selective occupation of both binding pockets, the AP and the DBP. The conformation of the switch loop in the L monomer (L-switch loop) opens the AP and closes the DBP, whereas the conformation of the switch loop in the T monomer (T-switch Loop) opens the DBP and closes the AP. An analysis of all asymmetric AcrB structures indicated that the L-switch loop is able to adopt multiple distinct conformations, whereas the conformation of T-switch loop remained largely congruent in all crystal structures. Moreover, each distinct switch loop conformation, observed in co-crystal structures of AcrB with occupied AP [4, 23], was perfectly adapted to the bound substrate molecule. Therefore, the putatively flexible switch loop is likely to act as an adaptive module and mediates a high binding pocket plasticity without altering the global protein structure. This binding mode is called adaptor-mediated binding mechanism, where an flexible adaptive module (like the switch loop) is able to adapt the surface shape of an binding pocket to different substrate molecules. Furthermore, structural and biochemical analyses of an AcrB G616N variant, revealed the involvement of specific switch loop conformations in the substrate specificity of AcrB. A substitution of G616, located on the switch loop, to N616 was able to alter the conformation of the switch loop exclusively in the L monomers of AcrB, whereas the switch loop conformations in T and O monomers remained congruent to the conformations observed in crystal structures of wildtype AcrB. Moreover, cells producing the AcrB G616N and MexB, both bearing the G616N amino acid substitution, exhibited a reduced resistance against certain substrates, whereas the resistance against most other substrates remained on the level of wildtype AcrB. Correlations of the phenotypes with minimal projection areas, a novel 2-spatiodimensional parameter which approximates the size of a substrate molecule, revealed that AcrB variants with a G616N substitution have a reduced efflux activity for exclusively large substrate molecules. The rejection of large substrates is most likely connected with altered L-switch loop conformations....
This work presents a biochemical, functional and structural characterization of Aquifex aeolicus F1FO ATP synthase obtained using both a native form (AAF1FO) and a heterologous form (EAF1FO) of this enzyme.
F1FO ATP synthases catalyze the synthesis of ATP from ADP and inorganic phosphate driven by ion motive forces across the membrane and therefore play a key cellular function. Because of their central role in supporting life, F1FO ATP synthases are ubiquitous and have been remarkably conserved throughout evolution. For their biological importance, F1FO ATP synthases have been extensively studied for many decades and many of them were characterized from both a functional and a structural standpoint. However, important properties of ATP synthases – specifically properties pertaining to their membrane embedded subunits – have yet to be determined and no structures are available to date for the intact enzyme complex. Therefore, F1FO ATP synthases are still a major focus of research worldwide. Our research group had previously reported an initial characterization of AAF1FO and had indicated that this enzyme presents unique features, i.e. a bent central stalk and a putatively heterodimeric peripheral stalk. Based on such a characterization, this enzyme revealed promising for structural and functional studies on ATP synthases and became the focus of this doctoral thesis. Two different lines of research were followed in this work.
First, the characterization of AAF1FO was extended by bioinformatic, biochemical and enzymatic analyses. The work on AAF1FO led to the identification of a new detergent that maintains a higher homogeneity and integrity of the complex, namely the detergent trans-4-(trans-4’-propylcyclohexyl)cyclohexyl-α-D-maltoside (α-PCC). The characterization of AAF1FO in this new detergent showed that AAF1FO is a proton-dependent, not a sodium ion-dependent ATP synthase and that its ATP hydrolysis mechanism needs to be triggered and activated by high temperatures, possibly inducing a conformational switch in subunit γ. Moreover, this approach suggested that AAF1FO may present unusual features in its membrane subunits, i.e. short N-terminal segments in subunits a and c with implications for the membrane insertion mechanism of these subunits.
Investigating on these unique features of A. aeolicus F1FO ATP synthase could not be done using A. aeolicus cells, because these require a harsh and dangerous environment for growth and they are inaccessible to genetic manipulations. Therefore, a second approach was pursued, in which an expression system was created to produce the enzyme in the heterologous host E. coli. This second approach was experimentally challenging, because A. aeolicus F1FO ATP synthase is a 500-kDa multimeric membrane enzyme with a complicated and still not entirely determined stoichiometry and because its encoding genes are scattered throughout A. aeolicus genome, rather than being organized in one single operon. However, an artificial operon suitable for expression was created in this work and led to the successful production of an active and fully assembled form of Aquifex aeolicus F1FO ATP synthase. Such artificial operon was created using a stepwise approach, in which we expressed and studied first individual subunits, then subcomplexes, and finally the entire F1FO ATP synthase complex. We confirmed experimentally that subunits b1 and b2 form a heterodimeric subcomplex in the E. coli membranes, which is a unique case among ATP synthases of non-photosynthetic organisms. Moreover, we determined that the b1b2 subcomplex is sufficient to recruit the soluble F1 subcomplex to the membranes, without requiring the presence of the other membrane subunits a and c. The latter subunits can be produced in our expression system only when the whole ATP synthase is expressed, but not in isolation nor in the context of smaller FO subcomplexes. These observations led us to propose a novel mechanism for the assembly of ATP synthases, in which first the F1 subcomplex attaches to the membrane via subunit b1b2, and then cring and subunits a assemble to complete the FO subcomplex. Furthermore, we could purify the heterologous ATP synthase (EAF1FO) to homogeneity by chromatography and electro-elution. Enzymatic assays showed that the purified form of EAF1FO is as active as AAF1FO. Peptide mass fingerprinting showed that EAF1FO is composed of the same subunits as AAF1FO and all soluble and membrane subunits could be identified. Finally, single-particle electron microscopy analysis revealed that the structure of EAF1FO is identical to that of AAF1FO. Therefore, the EAF1FO expression system serves as a reliable platform for investigating on properties of AAF1FO.
Specifically, in this work, EAF1FO was used to study the membrane insertion mechanism of rotary subunit c. Subunits c possess different lengths and levels of hydrophobicity across species and by analyzing their N-terminal variability, four phylogenetic groups of subunits c were distinguished (groups 1 to 4). As a member of group 2, the subunit c from A. aeolicus F1FO ATP synthase is characterized by an N-terminal segment that functions as a signal peptide with SRP recognition features, a unique case for bacterial F1FO ATP synthases. By accurately designing mutants of EAF1FO, we determined that such a signal peptide is strictly necessary for membrane insertion of subunit c and we concluded that A. aeolicus subunit c inserts into E. coli membranes using a different pathway than E. coli subunit c. Such a property may be common to other ATP synthases from extremophilic organisms, which all cluster in the same phylogenetic group.
In conclusion, the successful production of the fully assembled and active F1FO ATP synthase from A. aeolicus in E. coli reported in this work provides a novel genetic system to study A. aeolicus F1FO ATP synthase. To a broader extent, it will also serve in the future as a solid reference for designing strategies aimed at producing large multi-subunit complexes with complicated stoichiometry.
C-Typ Lektin-ähnliche Rezeptoren (CTLRs) auf Lymphozyten des Immunsystems modulieren deren Effektorfunktionen wie Zytotoxizität oder Zytokinsekretion. Die Gene dieser Immunrezeptoren befinden sich in einer definierten genomischen Region, dem Natürlichen Killer Genkomplex (NKC), welcher im Menschen auf Chromosom 12 und in der Maus auf Chromosom 6 lokalisiert ist. Namensgebend für diesen Gencluster ist die erste Beschreibung von CTLRs auf Natürlichen Killerzellen (NK-Zellen), den Effektorlymphozyten des angeborenen Immunsystems. Einige NKC-kodierte CTLR, insbesondere Vertreter der C-Typ Lektin Familie 2 (CLEC2)-Rezeptorfamilie, werden jedoch auch in nicht-lymphozytären Zellen (z.B. humanes KACL in Keratinozyten, Maus Clr-f in Darmepithelzellen) vorgefunden und in Zusammenhang mit einer gewebsspezifischen Immunüberwachung gebracht. Bemerkenswerterweise sind die Lymphozytenassoziierten Rezeptoren dieser CLEC2-Proteine ebenso CTLRs, welche zudem eng benachbart zu den CLEC2-Proteinen im NKC kodiert sind, sodass es sich um genetisch gekoppelte Rezeptor-Liganden-Paare mit immunologischer Funktion handelt.
Zu Beginn der vorliegenden Arbeit richtete sich das Interesse auf ein bislang uncharakterisiertes Mitglied der CLEC2-Proteinfamilie (CLEC2L), das jedoch außerhalb des NKC und in unmittelbarer Nachbarschaft zu einem weiteren und ebenso uncharakterisierten CTLR (KLRG2) kodiert ist. Im Unterschied zu anderen Mitgliedern der CLEC2-Familie ist CLEC2L (wie auch KLRG2) in Säugetieren hochkonserviert. Im Rahmen dieser Arbeit wurde der Frage nachgegangen, ob CLEC2L wie andere Mitglieder der CLEC2-Proteinfamilie eine gewebsspezifische Expression aufweist, mit einem genetisch gekoppelten CTLR, d. h. mit KLRG2, interagiert und funktionell in Verbindung mit dem Immunsystem gebracht werden kann. Ziel dieser Arbeit war es somit, eine detaillierte Expressions- und Funktionsstudie zu CLEC2L durchzuführen.
Mittels quantitativer Echtzeit-PCR und in situ Hybridisierung konnte CLEC2L-RNA im humanen und Maus-Gehirn nachgewiesen werden. Da die Mengen dort das Expressionsniveau in anderen Organen bei Weitem überstiegen, wurde das CLEC2L-kodierte Protein als BACL (engl. Brain-Associated C-type Lectin) neu benannt. Ektop exprimiertes BACL bildet ähnlich wie viele andere CLEC2-Mitglieder ein disulfid-verknüpftes Homodimer auf der Zellmembran von Säugetierzellen. Um die endogene Proteinexpression dieses gehirnassoziierten „Waisen"-Rezeptors zu charakterisieren, wurde die BACL-Ektodomäne rekombinant produziert und als Immunogen zur Herstellung BACLspezifischer Antikörper eingesetzt. Mit diesen Antikörpern und einer Kombination immunologischer Techniken wie Immunhistochemie, Immunfluoreszenz und Immunpräzipitation konnte die Präsenz von BACL auf humanen und Maus-Neuronen des Gehirns mit einer besonders ausgeprägten Expression in Purkinje-Zellen zum ersten Mal gezeigt werden. Neben dem Gehirn wurden andere Bereiche des Nervensystems, darunter Spinalganglien und Retina, auf die Expression des BACL-Proteins untersucht. Hierbei konnte mittels Immunfluoreszenz und hochauflösender konfokaler Mikroskopie gezeigt werden, dass BACL mit Neuronenmembranen assoziiert ist. Die durchflusszytometrische Analyse von in vitro kultivierten Neurosphären untermauerte die Expression von endogenem BACL als membranständiges Oberflächenprotein.
Diverse Ansätze zur Identifizierung von Interaktionspartnern von BACL erbrachten letztlich keine eindeutigen Ergebnisse. KLRG2 wurde ursprünglich aufgrund seiner benachbarten genomischen Lokalisation als möglicher Rezeptor von BACL favorisiert, jedoch konnten weder Reporterassays noch durchflusszytometriebasierte Bindungsanalysen eine Interaktion dieser beiden Proteine aufzeigen. Auch die aus den massenspektrometrischen Analysen von humanen und Maus BACL-Immunpräzipitaten erhaltenen Kandidatenproteine konnten letztendlich nicht als Interaktionspartner von BACL eindeutig verifiziert werden.
Eine mögliche immunologische Bedeutung von BACL in vivo wurde im Rahmen von Tumorimplantationsexperimenten mit BACL-exprimierenden Tumorzellen untersucht. Hierbei wurde das Tumorwachstum von BACL- mit Kontroll-Transfektanten in C57BL/6 Mäusen verglichen. Der beobachtete Effekt des verlangsamten Tumorwachstums nach BACL-Überexpression war jedoch nicht auf BACL-Erkennung durch Lymphozyten zurückzuführen, wie anhand von immundefizienten Rag1-k.o. und NOD-SCID-gammak.o. Mäusen gezeigt werden konnte.
Insgesamt liefert diese Arbeit die Erstbeschreibung des bislang uncharakterisierten CTLRs BACL. Das Protein teilt strukturelle Merkmale mit Mitgliedern der CLEC2-Familie, unterscheidet sich jedoch deutlich durch (i) seine hohe Konservierung in Säugetieren, (ii) seine Kodierung außerhalb des NKC und (iii) seine pan-neuronale Expression. Die Erkenntnis, dass BACL in Maus- und in humanen Neuronen exprimiert wird, wirft die Frage nach seiner funktionellen Relevanz auf. Als Membranprotein könnte es eine wichtige Rolle in der neuronalen Kommunikation und bei zellulären Kontakten spielen. Die Frage nach der Funktion von BACL wird in zukünftigen Forschungsarbeiten zu klären sein.
Plants absorb sunlight via photosynthetic pigments and convert light energy intochemical energy in the process of photosynthesis. These pigments are mainly bound to antenna protein complexes that funnel the excitation energy to the photosynthetic reaction centres. The peripheral antenna of plant photosystem II (PSII) consists of the major light-harvesting complex of PSII (LHC-II) and the minor LHCs CP29, CP26 and CP24. Light intensity can change frequently and plants need to adapt to high-light conditions in order to avoid photodamage. When more photons are absorbed than can be utilised by the photosynthetic machinery, excessive excitation energy is dissipated as heat by short-term adaptation processes collectively known as non-photochemical quenching (NPQ). A decrease in PSII antenna chlorophyll (Chl) fluorescence yield and a reduction in the average Chl fluorescence lifetime are associated with NPQ. The main component of NPQ is the so-called energy-dependent quenching (qE), and it is triggered by the rapid drop in thylakoid lumenal pH resulting from the plant’s photosynthetic activity. This process is thought to take place at the PSII antenna complexes, which therefore not only capture and transfer light energy but are also involved in balancing the energy flow. The decrease in lumenal pH acivates the enzyme violaxanthin de-epoxidase (VDE), which converts the xanthophyll violaxanthin (Vio) into zeaxanthin (Zea) in the xanthophyll cycle. In addition, the PSII subunit PsbS was discovered to be essential for qE by screening qE-deficient Arabidopsis thaliana mutants. This membrane protein is considered a member of the LHC superfamily, which also includes LHC-II and the minor LHCs. Previous studies on PsbS isolated either from native source or refolded in vitro have produced inconsistent results on its pigment binding capacity. Interestingly, a pH-dependent change in the quaternary structure of PsbS under high light conditions has been reported. This observed dimer-tomonomer transition very likely follows the protonation of lumenal glutamates upon the drop in pH and is accompanied by a change in PSII supercomplex localisation. PsbS dimers are preferentially found in association with the PSII core, whereas PsbS monomers co-localise with LHC-II.Despite the identification of !pH, Zea and PsbS as key players in qE, both the nature of the quencher(s) as well as the underlying molecular mechanism leading to excess energy dissipation still remain unknown. Several models have been put forward to explain the reversible switch in the antenna from an energy-transmitting to a quenched state. Proposals include a simple pigment exchange of Vio for Zea, and aggregation or an internal conformational change of LHC-II. Charge transfer (CT)quenching in the minor LHCs or quenching by carotenoid dark state (Car S1)-Chl interactions have also been suggested. However, none of these qE models has so far been capable of accommodating all the physiological observations and available experimental data. Most importantly, the function of PsbS remains an enigma. A recent qE model suggested that monomerisation of PsbS enables the protein to transiently bind a carotenoid and form a quenching unit with a Chl of a PSII LHC. In view of the various proposed qE mechanisms, this thesis aimed at understanding the interplay of the different qE components and the contribution of the PSII subunits LHC-II, the minor LHCs and PsbS to qE. The initial approach was to investigate the properties of the PSII subunits in the most simple in vitro model system, namely in detergent solution. For this purpose, LHC-II was isolated either from native source or refolded from recombinantly produced protein. Investigation of the minor LHCs and PsbS required heterologous expression and refolding. In addition, experiments were performed on aggregated LHC-II. Aggregates of LHC-II have been used as a popular model system for qE because they exhibit highly quenched Chl fluorescence. At the final stage of this doctoral work, a more sophisticated model system to approximate the thylakoid membrane was developed by reconstitution of the PSII subunits LHC-II and PsbS into liposomes. This system not only allowed for investigation of these membrane proteins in their native environment, but also for mimicking the xanthophyll cycle by distribution of Zea within the membrane as well as !pH by outside buffer exchange. The role of Zea in qE was first investigated with detergent solubilised antenna proteins. The requirement of this xanthophyll for qE is well-known, but the specific contribution to the molecular quenching mechansim is unclear. Previous work had shown that replacement of Vio for Zea in LHC-II was not sufficient to induce Chl fluorescence quenching in Zea-LHC-II, as suggested by the so-called molecular gearshift mechanism. However, by means of selective two-photon excitation spectroscopy, an increase in electronic interactions between Car S1 and Chls was observed for LHC-II upon lowering the pH of the detergent buffer. Electronic Car S1-Chl coupling became even stronger when Zea-LHC-II was probed. The extent of Car S1-Chl coupling correlated directly with the extent of Chl fluorescence quenching, in a similar way as observed previously in live plants under high-light conditions. However, very similar results were obtained with LHC-II aggregates. This implied that the increase in electronic interactions and fluorescence quenching was independent of Zea and low pH. Further experiments on aggregates of LHC-II Chl mutants indicated that the targeted pigments were also not essential for the observed effects. It is proposed that the same molecular mechanism causes an increase in electronic Car S1-Chl interactions and Chl fluorescence quenching in Zea-LHC-II at low pH as well as in aggregated LHC-II. Most likely, surface exposed pigments form random quenching centres in both cases. On the other hand, it was possible that Zea could act as a direct quencher of excess excitation energy in the minor LHCs. However, enrichment of refolded CP29, CP26 and CP24 with Zea did not lead to a change in the Chl excited state lifetime. Formation of a carotenoid radical cation, previously implied in CT quenching, was also not observed, although artificial generation of such a radical cation was principally possible as shown for CP29. During the course of this work, a study reporting the formation of Zea radical cations in minor LHCs was published. Therefore, Zea-enriched minor LHCs were again investigated on the experimental apparatus used in the reported study. Indeed, the presence of at least one carotenoid radical cation for each minor complex was detected. It is suggested that either the preparation method of incubating the refolded minor LHCs with Zea in contrast to refolding the complexes with only Zea and lutein causes the observed differences or that the observed spectral radical cation signatures are due to experimental artifacts. While the experiments with LHC-II and the minor LHCs gave useful insights into the putative qE mechanism, the quencher site and the mode of action of Zea could still not be unambiguously identified. Most importantly, these studies could not explain the function of the qE keyplayer PsbS. Therefore, the focus of the work was shifted to PsbS protein production, purification and characterisation. In view of inconsistent reports on the pigment binding capacity of this PSII subunit, refolding trials with and without photosynthetic pigments were conducted. The formation of a specific pigmentprotein complex typical for other LHCs was not observed and neither was the earlier reported “activation” of Zea for qE by binding to this protein. Nevertheless, PsbS refolded without pigments displayed secondary structure content in agreement with previous studies, indicating pigment-independent folding. Reconstitution of pigmentfree, refolded PsbS into liposomes confirmed that the protein is stable in the absence of pigments. Zea distributed in PsbS-containing liposomes also showed no spectral alteration that would indicate its “activation”. With the ability to reconstitute PsbS, it was then possible to proceed to modelling qE in a proteoliposome system. For this purpose, PsbS was co-reconstituted with LHC-II, which has been reported to interact with PsbS. One-photon excitation (OPE) and two-photon excitation (TPE) spectroscopy measurements were performed on LHC-II- and LHC-II/PsbS-containing liposomes. This enabled both quantification of Chl fluorescence quenching as well as determination of the extent of electronic Car S1-Chl interactions. The effect of Zea was investigated by incorporating it in the proteoliposome membrane. It was shown that Zea alone was not able to induce significant Chl fluorescence quenching when only LHC-II was present. However, when LHC-II and PsbS were co-reconstituted, pronounced Chl fluorescence quenching and an increase in electronic Car S1-Chl interactions were observed and both effects were enhanced when Zea was present. Western blot analysis indicated the presence of a LHC-II/PsbS-heterodimer in these proteoliposomes. In addition to the OPE and TPE measurements, the average Chl fluorescence lifetime was determined in detergent-free buffer at neutral pH and directly after buffer exchange to low pH. No significant changes in the average lifetime were observed for LHC-II proteoliposomes when either Zea was present or after exchange for low pH buffer. This indicated that Zea alone cannot act as a direct quencher, which concurs with the OPE measurements. Moreover, the complex was also properly reconstituted as no aggregation or significant Chl fluorescence quenching were observed. The average lifetime was not significantly affected in LHC-II/PsbS-proteoliposomes, independent of Zea or pH. However, a shortlived component in the presence of a long-lived component was not resolvable with the time resolution of the fluorescence lifetime apparatus.
Implications for qE model systems and the in vivo quenching mechanism are discussed based on the experiments in detergent solution, on LHC-II aggregates and with the proteoliposome model system.
ATP synthases are multi-subunit membrane enzymes, which utilize the energy stored in a transmembrane electrochemical ion gradient to produce adenosine-5´-triphosphate (ATP), the universal energy carrier in biological systems. Research on these important enzymes goes back more than 50 years and has produced innumerable studies. The F-type ATP synthase consists of two functionally distinct, but tightly coupled subcomplexes, the water-soluble F1 and the membrane-embedded Fo complex. In its simplest form, F1 consists of five different subunits with a stoichiometry of α 3β3γδε, and harbors three catalytic centers in the α 3β3-headpiece, while Fo consists of three different subunits in a stoichiometry of ab2cn, where n varies between 8 to 15 depending on the species. From a mechanistic standpoint, the complex can also be divided into two different units, namely a stator, α3β3δ-ab2, and a rotor, γε-cn. The enzyme utilizes the energy stored in a transmembrane electrochemical gradient of protons, or in some cases Na+, to drive ATP synthesis. In particular, the downhill translocation of these ions across the Fo complex drives rotation of the γε-cn unit, which is then transduced to the active centers, catalyzing the phosphorylation of adenosine-5`-diphosphate (ADP) with inorganic phosphate (Pi), and the release of ATP....
In mitochondria, biogenesis of oxidase is a crucial process involving the participation of an array of assembly factors. Studying the process of biogenesis in eukaryotes is highly complicated due to the presence and partaking of two genetic systems. Employing a bacterial model such as Paracoccus denitrificans that utilizes only one genetic system enables easy studying of the assembly process. The aa3 cytochrome c oxidase of P. denitrificans shows high structural and functional homology to its mitochondrial counterpart despite its simple subunit composition. The assembly of the core subunits I and II that house the active redox centers (heme a, and heme a3.CuB centre in subunit I; and the binuclear CuA centre in subunit II) along with the chaperons responsibly for their incorporation form the crux of this work. This work concentrates particularly on CtaG, a chaperone previously speculated to be involved in the delivery of copper to the CuB center in subunit I. As the full length structure of CtaG or its structural homologues have not been solved, attempts were made to obtain high-diffracting crystals of CtaG by heterologously expressing it in E. coli. Growth media, expression strains and induction parameters were some of the conditions screened in order to obtain optimal yield. Additives, pH and detergent were screened to yield a homogeneous preparation of CtaG. Crystallization trials were conducted by employing the sitting drop, vapour diffusion, method and later the bicelles were employed. Preliminary crystals obtained were further optimized employing seeding, detergent and additives, to improve diffraction. The diffraction improved from 30 Å to 15 Å. BN PAGE (Blue Native Polyacrylamide Gel Electrophoresis) analysis and cross-linking studies were undertaken to decipher the oligomeric condition of CtaG. Both the methods indicate that the protein is a dimer under native conditions. To study the importance of CtaG in the process of oxidase assembly, two deletion mutants were obtained from the lab; one with only ctaG deleted and the other with ctaG and most of the upstream ORF. The effect of the deletion was assayed on the assembly and activity of oxidase. The deletion mutants showed residual activity of approx. 20 %, while displaying a very low heme signal (both in membranes and in purified COX). In order to exclude polar effects arising due to gene manipulation, complementation strains were prepared, reintroducing ctaG alone into both the deletion strains. Complementation strains, where only ctaG was deleted and re-introduced assayed for COX activity showed a restoration in activity to approx. 70 %. Further, calculating the heme:protein ratio, the deletion strains displayed a value of 7 nmol/mg of oxidase which was increased to wild type levels of 16 nmol/mg in the complementation strains. To further confirm the absence of the copper in subunit I, total reflection X-ray fluorescence spectroscopy analysis was carried out, which showed a decrease in the copper content in the deletion strain, restored on complementation. The strain lacking in the ORF and ctaG when complemented with ctaG alone illustrated no increase in activity or heme signal in comparison to that of the deletion strain. These point at a possible role for ORF in the assembly of COX, which is still absent in the complementation strains. To further characterize the ORF, a series of bioinformatical analysis was carried out, the results from which were insufficient to characterize the ORF conclusively. In order to enlist the proteins involved in the biosynthesis of COX, two independent approaches were employed. Two-dimensional gel examinations of solubilised membranes from untreated and cross-linked cells were analyzed by Western blotting. The CtaG-COX interaction was observed in untreated membranes, which was additionally strengthened by cross-linking. To further confirm this association, pull-down assays were done employing protein A coated magnetic beads coated with different antibodies and incubated with solubilised membranes derived from untreated or cross-linked cells. The elutions were assayed by Western blotting and confirmed for the CtaG-COX interaction. These fractions were further analysed by mass spectrometry to identify other chaperons involved in biogenesis of oxidase. Along with CtaG, I also noticed Sco, Surf1c and other factors involved in the recruitment and transport of heme (CtaB, CtaA, and Ccm proteins). Interestingly, protein components of both ribosomal subunits and protein translocation factors were observed, which indicated a co-translational approach for co-factor insertion into COX.
Heme-copper oxidases (HCOs) are the terminal enzymes of the aerobic respiratory chain in the inner mitochondrial membrane or the plasma membrane in many prokaryotes. These multi-subunit membrane protein complexes catalyze the reduction of oxygen to water, coupling this exothermic reaction to the establishment of an electrochemical proton gradient across the membrane in which they are embedded. The energy stored in the electrochemical proton gradient is used e.g. by the FOF1-ATP synthase to generate ATP from ADP and inorganic phosphate. The superfamily of HCOs is phylogenetically classified into three major families: A, B and C. The A-family HCOs, represented by the well-studied aa3-type cytochrome c oxidases (aa3-CcOs), are found in mitochondria and many bacteria. The B-family of HCOs contains a number of bacterial and archaeal oxidases. The C-family comprises only the cbb3-type cytochrome c oxidase (cbb3-CcO) and is most distantly related to the mitochondrial respiratory oxidases.
Funktionalisierung mikro- und nanostrukturierter Oberflächen zur spezifischen Proteinimmobilisierung
(2014)
Die vollständige Sequenzierung des humanen Genoms zu Beginn dieses Jahrtausends leitete einen Boom der Genomik ein, in deren Anfangszeiten man sich jedoch vor einer großen Herausforderung sah. Aufgrund der selbst bei einfachen Organismen großen Anzahl kodierender Gene und auch vor dem Hintergrund ständig wachsender Datenbanken mit immer neuen vollständig sequenzierten Arten, stellten sich genetische Analysen mit klassischen Methoden als zu zeit- und kostenaufwändig heraus. Die Entwicklung sog. DNA-Chips – feste Substrate, die mehre zehn- bis hunderttausend verschiedene Oligonukleotide tragen und die parallele Durchführung einer großen Anzahl von genetischen Analysen in sehr kurzer Zeit bei vergleichsweise geringen Kosten erlaubten – lösten dieses Problem. Analog hierzu werden Protein-Chips ähnlich gute Erfolgsaussichten in der Proteomik beschieden. Der Aufbau eines Protein-Chips ist dem eines DNA-Chips sehr ähnlich, allerdings sind die Anforderungen, die für eine funktionale Immobilisierung von Proteinen an eine Substratoberfläche gestellt werden, ungleich höher. Es muss gewährleistet sein, dass durch die Verankerung auf dem Substrat die native Struktur der Proteine nicht zerstört wird, dass die immobilisierten Proteine in einer Orientierung vorliegen, in der wichtige Merkmale, wie Bindungsmotive, aktive Zentren usw. weiterhin zugänglich sind und dass unspezifische Proteinadsorptionen auf ein Minimum reduziert werden. Ziel dieser Arbeit war es, ein Konzept für eine Protein-Chip-Plattform zu entwickeln, welches diese Voraussetzungen erfüllt.
Einleitend wird die Erarbeitung eines Assays zur Analyse einer Antikörper-Antigenwechselwirkung mittels Oberflächenplasmonresonanz-(SPR)-spektroskopie dargestellt. Da diese Technik ebenfalls eine native Immobilisierung von Proteinen auf einem festen Substrat erfordert, stellt sie eine Vorform der Protein-Chip-gestützten Analyse dar. Dem entsprechend werden an SPR-Oberflächen ähnliche Anforderungen gestellt wie an Protein-Chips. In der Etablierungsphase des SPR-Assays wurden zunächst grundlegende Parameter wie die Immobilisierungs- und Regenerationsbedingungen optimiert. Anschließend wurde überprüft, ob Antigen und Antikörper unter den gewählten Versuchsbedingungen noch miteinander interagieren konnten und die Wechselwirkung zwischen beiden Proteinen nicht beeinträchtig wurde. Hauptziel des SPR-Assays war die Überprüfung der Bindeaktivität verschiedener Chargen des Antikörpers im Vergleich zu einer Referenz-Charge unter Berücksichtigung eines möglichen Einflusses der Lagerzeit. Als Ergebnis konnte zwar eine geringe Abnahme der Bindungsaktivität beobachtet werden, welche eindeutig mit der Lagerzeit korrelierte, ein signifikanter Unterschied zwischen den zu vergleichenden Chargen war jedoch nicht erkennbar.
Der weitaus größere Teil der in dieser Dissertation beschriebenen Ergebnisse betrifft die Konzeption neuer Protein-Chip-Architekturen. In Zusammenarbeit mit der Arbeitsgruppe um Armin Gölzhäuser von der Universität Bielefeld wurde eine Protein-Chip-Plattform erarbeitet, für deren Herstellung Nitrobiphenyl-(NBPT)-Monolagen auf Gold mit Hilfe chemischer Lithographie im Mikro bzw. Nanomaßstab strukturiert wurden. Die Strukturen wurden anschließend mit multivalenten NTA-Verbindungen funktionalisiert, sodass Proteine mit His-Tag spezifisch darauf verankert werden konnten. Die wichtigsten Vorteile dieses Systems sind eine hohe Bindungsstabilität der immobilisierten Proteine, eine aufgrund der weiten Verbreitung des His-NTA-Systems leichte Verfügbarkeit His-getaggter Proteine sowie die Erhaltung ihres nativen Zustandes bei gleichzeitig uniformer Orientierung auf der Substratoberfläche. Nachdem zunächst die grundsätzliche Machbarkeit der Strukturierung und Funktionalisierung gezeigt wurde, folgte eine eingehende Charakterisierung der einzelnen Fertigungsschritte per Rasterkraftmikroskopie (AFM) und SPR-Spektroskopie, um diese anschließend weiter zu optimieren. So konnte die Proteinresistenz in den Bereichen zwischen den Mikro- bzw. Nanostrukturen, in denen keine Proteine binden sollten, deutlich verbessert werden. Zusätzlich wurde die Effizienz der Oberflächenfunktionalisierung gesteigert, sodass eine höhere Immobilisierungsdichte möglich war. Die Funktionalität des verbesserten Protein-Chips wurde mittels AFM und konfokaler Fluoreszenzmikroskopie (CLSM) überprüft. Es konnte eine hochspezifische und stabile, aber gleichzeitig reversible Bindung His-getaggter Proteine auf dem Protein-Chip gezeigt werden. Die bis dahin nass-chemisch durchgeführten Fertigungsschritte wurden in der Folge ins Hochvakuum übertragen, um die Herstellung dieser Protein-Chips mittels Gasphasenabscheidung zu ermöglichen. Als Ergebnis dieser Arbeiten konnten proteinresistente EG3-Monolagen allein durch Gasphasendeposition generiert werden. Bis auf die Funktionalisierung mit trisNTAs konnten im Rahmen dieser Arbeit sämtliche Fertigungsschritte in die Gasphase übertragen werden. Protein-Chips, die auf diese Art hergestellt worden waren, hatten in Hinsicht auf Bindungsspezifität und -stabilität ebenso gute Eigenschaften wie Protein-Chips aus der klassischen nass-chemischen Fertigung. Zusätzlich wurde parallel zu diesen Arbeiten ein neuer Ansatz zur Strukturierung und trisNTA-Funktionalisierung von EG3-SAMs erarbeitet.
Ein zweiter Protein-Chip-Prototyp sollte durch orthogonale Funktionalisierung von nano-strukturierten Glasoberflächen mit Polyenthylenglykol (PEG) und multivalenten Chelatoren hergestellt werden. CLSM-Untersuchten ergaben zunächst, dass dieser Ansatz der orthogonalen Funktionalisierung nicht gelang, da auf den Goldstrukturen nur wenig Protein zu binden schien, während in den vermeintlich proteinresistenten PEG-Bereichen eine vergleichsweise große Menge His-getaggter Proteine adsorbierte. Nach einer Reihe von Versuchen stand fest, dass sich die Verfahren zur Funktionalisierung mit PEG und bisNTA-Thiolen gegenseitig störten. Die PEGylierung verhinderte die anschließende Ausbildung einer dicht-gepackten bisNTA-SAM, was zwar durch vorheriges Aufbringen einer Schutz-SAM aus Undecylthiolen gemildert, aber nicht vollständig verhindert werden konnte. Die anschließende Funktionalisierung der Nanostrukturen mit bisNTA-Thiolen führte wiederum zur Dotierung der PEG-Schicht mit bisNTA-Thiolen, sodass diese Schicht ihre Proteinresistenz verlor. Da dieser ungewollte Prozess seine Ursache in der zweistufigen PEGylierungsreaktion hatte und dieser auch durch verschiedenste Block-Verfahren nicht vollständig verhindert werden konnte, wurde ein alternatives, einstufiges PEGylierungsverfahren getestet. Dieses hatte eine deutliche Verbesserung der Oberflächeneigenschaften zur Folge. Einerseits zeigten die Glasbereiche nun eine sehr gute Proteinresistenz, zum Anderen hatte das neue PEGylierungsverfahren keine negativen Auswirkungen auf die Ausbildung von bisNTA-SAMs. Mittels CLSM konnte auf Mikrostrukturen eine hochspezifische Proteinbindung beobachtet werden, während die PEGylierten Glasbereiche frei von Proteinen blieben. Interessanterweise konnte auf entsprechend funktionalisierten Nanostrukturen jedoch keine Proteinbindung nachgewiesen werden. Hierfür sind mehrere Ursachen denkbar, zu deren Klärung es weiterer Untersuchungen bedarf.
Disturbances in lipid metabolism are responsible for many chronic disorders, such as type 2 diabetes and atherosclerosis. Regulation of lipid metabolism occurs by activated transcription factors peroxisome proliferator-activated receptor δ (PPARδ) and liver X receptor α (LXRα) mediating transcription of different target genes involved in regulation of fatty acid uptake and oxidation or cellular cholesterol homeostasis. This is especially relevant for the macrophages, since pathways regulated by PPARδ and LXRα affect foam cell formation, a process driving the progression of atherosclerotic lesion. AMP-activated protein kinase (AMPK) plays a central role in energy homeostasis in every type of eukaryotic cell, but its role in human macrophages, particularly with regard to lipid metabolism, is not precisely defined yet. Thus, I investigated the impact of AMPK activity on PPARδ and LXRα and the expression of their target genes involved in fatty acid oxidation (FAO) and cholesterol metabolism.
As PPARδ has been described as a potential target for prevention and treatment of several disorders and AMPK as interesting drug target for diabetes and metabolic syndrome, the aim of the first part of my studies was to investigate their interaction in primary human macrophages. Completing the first challenge successfully, I was able to establish a lentiviral transduction system for constitutively active AMPK (consisting of a truncated catalytic AMPKα1 subunit bearing an activating T198D mutation) in primary human macrophages.
Using genome-wide microarray analysis of gene expression, I demonstrate FAO as the strongest affected pathway during combined AMPKα1 overexpression and PPARδ activation.
The most influenced genes were validated by quantitative PCR as well as by Western analysis. I found that AMPK increases the expression of FAO-associated genes targeted by PPARδ. Corroborating the results obtained using AMPKα1 overexpression, PPARδ target gene expression was increased not only by PPARδ agonist GW501516, but also by pharmacological allosteric AMPK activator A-769662. Additional enhancement of target gene mRNA expression was achieved upon co-activation of PPARδ and AMPK. Silencing PPARδ expression increased basal expression of target genes, confirming the repressive nature of ligand-free PPARδ, abolishing the increased target gene expression upon AMPK or PPARδ activation. Measurements of triglyceride contents of human macrophages incubated with VLDL following PPARδ activation demonstrated a reduction of intracellular triglyceride accumulation in cells, which may reflect the enhancement of fat catabolism.
In the second part of my studies, I concentrated on the regulation of cholesterol transporter ATP-binding cassette transporter A1 (ABCA1) expression by AMPK. ABCA1 facilitates
cholesterol efflux from macrophages thus, preventing atherosclerosis progression. For the first time, AMPK implication in the regulation of the ABCA1 pathway could be presented. Both AMPK overexpression and activation lead to significantly increased ABCA1 expression, whereas AMPKα1 knock-down strongly reduced this effect. Besides, I was able to prove an enhanced activity of ABCA1 during AMPK activation in human THP-1 macrophages by measuring cholesterol efflux into apolipoprotein AI-containing medium.
Previous findings showed regulation of ABCA1 by LXRα. I confirmed these results by silencing experiments indicating an essential role of LXRα in ABCA1 regulation pathway.
Here, ABCA1 mRNA as well as protein expression were positively mediated by LXRα. LXRα activation elevated ABCA1 levels, whereas its silencing down-regulated this effect.
Interestingly, ABCA1 was found to be regulated only by LXRα and not through LXRα. At the same time, knock-down of PPARδ, -γ or -δ, which may be also involved in the regulation of LXR/ABCA1 axis, did not influence the activation of ABCA1 expression by an AMPK activator. To confirm that LXRE on Abca1 promoter is essential for ABCA1 regulation, I performed luciferase reporter assay using constructs based on Abca1 promoter with or without LXRE mutation. Mutation of LXRE abolished reporter activity, whereas AMPK activation increased luciferase activity of wild-type LXRE construct. Furthermore, I demonstrate AMPK-dependent LXRα binding to the LXRE site of Abca1 promoter using the method of chromatin immunoprecipitation. AMPK activation significantly increased, whereas silencing of AMPK significantly attenuated LXRα binding, indicating AMPK as one of the most important regulators of ABCA1 expression.
In summary, I provided an evidence for AMPK involvement into lipid and cholesterol metabolism in human macrophages showing the regulation of PPARδ and LXRα target genes. The understanding of AMPK and PPARδ interaction allows the development of new approaches for treatment of metabolic syndrome and related diseases. Increased FAO during the activation of both proteins may exhibit better therapeutic benefit. On the other hand, I have shown the impact of AMPK activation on ABCA1 via LXRα up-regulation leading to increased cholesterol efflux in human macrophages for the first time. These findings thus may impact future improving of anti-atherosclerosis therapies.