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P2X receptors are ligand (ATP)-gated ion channels that open an intrinsic cation permeable pathway in response to extracellular ATP released from both neuronal and non-neuronal cells. P2X receptors are abundantly distributed and mediate a wide variety of physiological functions, ranging from fast synaptic transmission in the central, peripheral, and enteric nervous system, to proinflammatory cytokine release from immune cells. The primary aim of this work was to elucidate the pathway that leads to the finally assembled trimeric P2X receptors, including the assessment of a possible role of ER chaperones and folding factors in this process. Additionally, the study was conducted to investigate the various ER quality control processes involved in the selection of “properly folded and assembled” P2X receptors that are suitable for the surface expression.
Although in general cells are genetically identical in multicellular organisms, the differential expression of genomic information enables cell type definition and specific organ function. In eukaryotic cells, the DNA is associated with histone and non-histones proteins into a restrictive structure called chromatin. Assembly into chromatin does not only protect and package the linear double stranded DNA into the nucleus but is fundamental for the execution of diverse genetic programs. Posttranslational modifications of histones regulate the accessibility of the DNA to transcription factors and serve as scaffold for binding of regulatory proteins. Nuclear receptors are transcription factors that bind specific target sequences on the DNA and recruit transcriptional coregulators at the promoter. These are able to modify the chromatin structure in an activating or repressing manner. The contribution of corepressors to the biological actions of nuclear receptors has turned out to be essential. Impaired corepressor function can be the cause of endocrine malfunctions, neoplastic diseases or severe developmental abnormalities. To better understand the role of the nuclear receptor corepressor N-CoR the unknown function of the extreme C-terminus was investigated. In this thesis the interaction of N-CoR with the non-POU-domain containing octamer-binding protein Non0/p54nrb, that was found tobe a potential interaction partner in a yeast-two-hybrid screen, was confirmed. This protein contains two RNA recognition motifs (RRM) and is described as a multifunctional protein since it is involved in transcription Initiation as well as in pre-mRNA processing. The RRM1 motif was determined to be essential and sufficient for the interaction with N-CoR. Obtaining dominant negative effect with the Non0/p54nrb RRM1 deletion mutant in functional reporter assays, data support that NonO modulates the capacity of N-CoR to repress and alters the recruitment of N-CoR by nuclear receptors to targeted Promoters. Additional analyses suggest that the N- and C- terminus of N-CoR are involved in intramolecular interactions and that they regulate each other. Taken results together a functional model is proposed that supports the biological relevance of the interaction of N-CoR with NonO and the function of N-CoR C-terminus acting as asensor that evaluates the ratio of corepressors and coactivators in the nuclear receptor environment. N-CoR repressive capacity would be altered by modulating factors like NonO that interacts with N-CoR C-terminus. The mechanism support that splicing and transcription regulation are physically and functionallylinked to ensure the appropriate amount of messager RNA to be transcript and process in response to stimulation intensity and cell context.
One of the central research topics in the field of biophysical chemistry is the structure and function of membrane proteins involved in energy transduction. Both, the aerobic and the anaerobic respiration include electron transfer and proton translocation across the mitochondrial and bacterial membranes. These electron transfer processes lead to changes in oxidation states of cofactors some of which are paramagnetic. Therefore, EPR spectroscopy is the method of choice to obtain electronic and structural information directly related to the function of the respiratory chain proteins. In this work, multifrequency continuous wave (CW) and pulsed EPR spectroscopy has been used to characterize the molybdenum active site of polysulfide reductase (Psr) from the anaerobic bacterium Wolinella succinogenes and the protein-protein complex between cytochrome c oxidase (CcO) and cytochrome c from the aerobic bacterium Paracoccus denitrificans. Molybdenum in Psr-Psr is an enzyme essential for the sulfur respiration of Wolinella succinogenes. Biochemical studies suggested that the active site of this enzyme contains a mononuclear Mo center, which catalyzes the reduction of the substrate polysulfide to sulfide. Until now there is no crystal structure available for Psr. Consequently, current characterizations of this enzyme have to rely on biochemical and spectroscopic investigations. Within the present work, CW and modern pulsed EPR techniques were applied to investigate its catalytically active site. In the first part of this thesis, different redox agents have been used to generate paramagnetic states of Psr. Multifrequency CW-EPR spectroscopy was applied to identify the Mo(V) states. Using simulations of the experimental spectra, three spectroscopically distinct states have been identified based on the Mo hyperfine- and g-tensor values. Comparison of their EPR parameters with those of related enzymes indicated five or six sulfur ligands at the Mo center depending on the state. The state generated by addition of polysulfide is suggested to be the catalytically active form, in which the Mo is coordinated by a sulfur of the polysulfide chain as the sixth ligand. 33S (I = 3/2) labeled polysulfide was prepared to probe the proximity of the polysulfide to the molybdenum center via its hyperfine coupling. 1D-ESEEM and 2D122 HYSCORE spectroscopy was used to detect these hyperfine and quadrupole interactions, which are too small to be observed in conventional CW EPR spectra. To date there has been only one pulsed-EPR study involving a 33S nucleus [Finazzo et.al. 2003]. The reasons are that this nucleus has a high nuclear spin of I = 3/2 and a large nuclear quadrupole moment in addition to the low Larmor frequency. All these make the detection of sulfur and the extraction of structural information demanding. However, analysis of the 2D-data led to a Mo(V) 33S distance in a range of about 2 to 2.5 Å. Mo-S distances found in molybdenum enzymes of the same family are in a range of 1.8 to 2.8 Å suggesting that the 33S is indeed the sixth ligand of the Mo(V) center and demonstrating that polysulfide is the actual substrate for this enzyme. Thus HYSCORE experiments have been proved to be a powerful technique to gain further insight into the active site structures of molybdenum enzymes and the trafficking of substrate atoms during catalysis. Density functional theory (DFT) calculations together with quantitative numerical simulations of the 2D-data will help to obtain more structural details about the molybdenum binding site in Psr. CcO:cytochrome c complex Protein-protein complex formation is an important step in energy conversion biological processes such as respiration and photosynthesis. These protein-protein complexes are involved in long range electron transfer reactions and are known to be of transient nature. Within the bacterial and mitochondrial respiratory electron transport chains such a complex is formed between CcO and cytochrome c. Upon complex formation cytochrome c donates the electrons required for the CcO catalyzed reduction of dioxygen to water. Here, the protein-protein complex formation between CcO and cytochrome c from Paracoccus denitrificans was investigated by pulsed EPR spectroscopy. The idea was to use the relaxation enhancement due to the distance and orientation dependent magnetic dipole-dipole interaction between the paramagnetic centers in the different CcO constructs and cytochromes. Two-pulse electron spin echo experiments were carried out on mixtures of the CuA containing soluble subunit II or the full size CcO with the physiological partner cytochrome c552 or horse heart cytochrome c. Significantly enhanced relaxation of CuA due to specific protein-protein complex formation has been observed in all four cases. In contrast the non-binding cytochrome c1 showed only a very weak relaxation enhancement due to unspecific protein-protein interactions. The echo decays of the slowly relaxing observer spin (CuA of CcO) measured in the absence and presence of the fast relaxing spin (Fe(III) of cytochrome c) permitted the extraction of the pure dipolar relaxation contributions for the different complexes. Measurements at different temperatures proved the dipolar nature of the relaxation enhancement. Furthermore, it was demonstrated experimentally that this approach also works for the full-size CcO, which contains four paramagnetic metal centers, in complex with cytochrome c. Quantitative simulations of the data suggest a broad distribution in distances (2 - 4 nm) and orientations between the CuA and Fe(III) in the complex between CcO and cytochrome c. High-field EPR spectroscopy will be useful to further analyze and prove these complex structures. Within the present work, it has been shown that pulsed relaxation enhancement experiments can be used to investigate the distance and relative orientation between paramagnetic metal centers. Furthermore, it has been demonstrated on a qualitative level, that this method can be used complimentary to other biophysical approaches to study transient electron transfer protein-protein complexes. Finally, within this work it has been proven that this method can be applied also to biological systems where more than two paramagnetic centers are present. This is particularly interesting for supercomplexes between membrane proteins.
The quinol:fumarate reductase (QFR) is the terminal reductase of anaerobic fumarate respiration, the most commonly occurring type of anaerobic respiration. This membrane protein complex couples the oxidation of menaquinol to menaquinone to the reduction of fumarate to succinate. The three-dimensional crystal structure of the QFR from Wolinella succinogenes has previoulsy been solved at 2.2 Å resolution. Although the diheme-containing QFR from W. succinogenes is known to catalyze an electroneutral process, structural and functional characterization of parental and variant enzymes has revealed active site locations which indicate electrogenic catalysis across the membrane. A solution to this apparent controversy was proposed with the so-called “Epathway hypothesis”. According to this, transmembrane electron transfer via the heme groups is strictly coupled to a parallel, compensatory transfer of protons via a transiently established pathway, which is inactive in the oxidized state of the enzyme. Proposed constituents of the E-pathway are the side chain of Glu C180, and the ring C propionate of the distal heme. Previous experimental evidence strongly supports such a role for the former constituent. One aim of this thesis is to investigate by a combination of specific 13C-heme propionate labeling and FTIR difference spectroscopy whether the ring C propionate of the distal heme is involved in redox-coupled proton transfer in the QFR from W. succinogenes. In addition to W. succinogenes, the primary structures of the QFR enzymes of two other e- proteobacteria are known. These are Campylobacter jejuni and Helicobacter pylori, which unlike W. succinogenes are human pathogens. The QFR from H. pylori has previously been established to be a potential drug target, and the same is likely for the QFR from C. jejuni. The two pathogenic species colonize mucosal surfaces causing several diseases. The possibility of studying these QFRs from these bacteria and creating more efficient drugs specifically active for this enzyme depends substantially on the availability of large amounts of high-quality protein. Further, biochemical and structural studies on QFR enzymes from e- proteobacteria species other than W. succinogenes can be valuable to enlighten new aspects or corroborate the current understanding of this class of membrane proteins.
Mitochondial NADH:ubiquinone oxidoreductase (complex I) the largest multiprotein enzyme of the respiratory chain, catalyses the transfer of two electrons from NADH to ubiquinone, coupled to the translocation of four protons across the membrane. In addition to the 14 strictly conserved central subunits it contains a variable number of accessory subunits. At present, the best characterized enzyme is complex I from bovine heart with a molecular mass of about 980 kDa and 32 accessory proteins. In this study, the subunit composition of mitochondrial complex I from the aerobic yeast Y. lipolytica has been analysed by a combination of proteomic and genomic approaches. The sequences of 37 complex I subunits were identified. The sum of their individual molecular masses (about 930 kDa) was consistent with the native molecular weight of approximately 900 kDa for Y. lipolytica complex I obtained by BN-PAGE. A genomic analysis with Y. lipolytica and other eukaryotic databases to search for homologues of complex I subunits revealed 31 conserved proteins among the examined species. A novel protein named “X” was found in purified Y. lipolytica complex I by MALDI-MS. This protein exhibits homology to the thiosulfate sulfurtransferase enzyme referred to as rhodanese. The finding of a rhodanese-like protein in isolated complex I of Y. lipolytica allows to assume a special regulatory mechanism of complex I activity through control of the status of its iron-sulfur clusters. The second part of this study was aimed at investigating the possible role of one of these extra subunits, 39 kDa (NUEM) subunit which is related to the SDRs-enzyme family. The members of this family function in different redox and isomerization reactions and contain a conserved NAD(P)H-binding site. It was proposed that the 39 kDa subunit may be involved in a biosynthetic pathway, but the role of this subunit in complex I is unknown. In contrast to the situation in N. crassa, deletion of the 39 kDa encoding gene in Y. lipolytica led to the absence of fully assembled complex I. This result might indicate a different pathway of complex I assembly in both organisms. Several site-directed mutations were generated in the nucleotide binding motif. These had either no effect on enzyme activity and NADPH binding, or prevented complex I assembly. Mutations of arginine-65 that is located at the end of the second b-strand and responsible for selective interaction with the 2’-phosphate group of NADPH retained complex I activity in mitochondrial membranes but the affinity for the cofactor was markedly decreased. Purification of complex I from mutants resulted in decrease or loss of ubiquinone reductase activity. It is very likely that replacement of R65 not only led to a decrease in affinity for NADPH but also caused instability of the enzyme due to steric changes in the 39 kDa subunit. These data indicate that NADPH bound to the 39 kDa subunit (NUEM) is not essential for complex I activity, but probably involved in complex I assembly in Y. lipolytica.
My graduate thesis is on the "Structural studies of membrane transport proteins". Transporters are membrane proteins that have multiple membrane-spanning a-helices. They are dynamic and diverse proteins, undergoing a large conformational change and transporting wide range of susbtrates. Based on their energy source they can be classified into primary and secondary transport systems. Primary transport systems are driven by the use of chemical (ATP) or light energy, while secondary transporters utilize ion gradients to transport substrates. I began my PhD dissertation on secondary transporters by two-dimensional crystallization and electron crystallographic analysis and recently my focus also has shifted towards 3D crystallization. The following projects constitute my PhD thesis: 1) 2D crystallization of MjNhaP1 and pH induced structural change: MjNhaP1, a Na+/H+ antiporter that is regulated by pH has been implicated in homeostasis of H+ and Na+ in Methanococcus jannaschii, a hyperthermophilic archaeon that grows optimally at 85°C. MjNhaP1 was cloned and expressed in E. coli. Two-dimensional crystals were obtained from purified protein at pH4. Electron cryo-microscopy yielded an 8Å projection map. The map of MjNhaP1 shows elongated densities in the centre of the dimer and a cluster of density peaks on either side of the dimer core, indicative of a bundle of 4-6 membrane-spanning helices. The effect of pH on the structure of MjNhaP1was studied in situ in 2D crystals revealing a major change in density within the helix bundle relative to the dimer interface. This change occurred at pH6 and above. The two conformations at low and high pH most likely represent the closed and open states of the antiporter, respectively. This is the first instance where a conformational change associated with the regulation of a secondary transporter appears to map structurally. Reconstruction of 3D map and high-resolution structure by x-ray crystallography would be necessary to understand the mechanism of ion transport and regulation by pH. 2) 2D crystallization of Proline transporter: Proline transporter (PutP) from E.coli belongs the sodium-solute symporter family that includes disease related sodium dependent glucose and iodide transporter in humans. Sodium and proline are co-transported with a stoichiometry of 1:1. Purified PutP was reconstituted to yield 2D crystals that were hexagonal in nature. The 2D crystals had tendency to stack indicating their willingness to form 3D crystals. A projection map of PutP from negatively stained crystals showed trimeric arrangement of protein. Other members of the SSF family have been shown to be monomers. My analysis of oligomeric state of PutP in detergent by blue native gel indicates a monomer in detergent solution. It is likely that PutP can function as a monomer but at higher concentration and in lipid bilayer it tends to form trimer. 3) Oligomeric state and crystallization of carnitine transporter from E.coli: E.coli carnitine transporter (CaiT) belongs to the BCCT (Betaine, Carnitine and Choline) superfamily that transports molecules with quaternary amine groups. CaiT is predicted to span the membrane 12 times and acts as a L-carnitine/g-butyrobetaine exchanger. Unlike other members in this transporter family, it does not require an ion gradient and does not respond to osmotic stress. Over-expression of the protein yielded ~2mg of protein/L of culture. The structure and oligomeric state of the protein were analyzed in detergent and lipid bilayers. Blue native gel electrophoresis indicated that CaiT was a trimer in detergent solution. Gel filtration and cross-linking studies further support this. Reconstitution of CaiT into lipid bilayers resulted in 2D crystals. Analysis of negatively stained 2D crystals confirmed that CaiT is a trimer in the membrane. Initial 3D crystallization trials have been successful and currently, the crystals diffract to 6Å and are being improved. 4) Monomeric porin OmpG: OmpG is a bacterial outer membrane b-barrel protein. It is monomeric and its size (33kDa) places it as a prime candidate for a structural solution, using the recently developed method of solid state NMR (work in collaboration with Prof.Hartmut Oskinat, FMP, Berlin). A long-term aim would be to study porins as templates for designing nanopores, for DNA sequencing and identification. I have expressed OmpG in inclusion bodies and refolded at an efficiency of >90% into a functional form using detergent. OmpG was then crystallized by 2D crystallization yielding an 8Å projection map whose structure was similar to native protein. In addition, these crystals were used for structure determination by solid state NMR. An initial spectrum of heavy isotopically labeled OmpG has allowed identification of specific amino acid residues including threonine and proline. Additionally, I obtained 3D crystals in detergent that diffract to 5.5Å and are being improved.
The N-terminal domain (matrix protein or MA) of a retroviral Gag polyprotein precursor plays a critical role in several stages of the retrovirus life cycle. MA is involved in the effective membrane targeting, assembly and release of the immature viral particles from the infected cell. In order to understand the structural basis of these functions, the full length MA from Moloney Murine Leukemia Virus (MoMuLV) was purified and the solution structure of the MA MoMuLV was determined by means of heteronuclear high-resolution NMR spectroscopy and compared with that of the X-ray diffraction analysis as well as with the structures of several MA proteins from geterologous viruses. Structural features were also obtained from CD spectroscopy, dynamic light scattering, sedimentation velocity, differential scanning calorimetry and other methods. It was found that the MA MoMuLV globular core (residues 8-98) is comprised of 7 well-defined helices (five alpha-helices and two 310 helices), with the general fold typical for MA proteins from other retroviral species. The N-terminus (residues Met1-Leu7) and the C-terminal proline-rich part (residues Pro103-Tyr131) are not structured in solution. Although MA MoMuLV has a low sequence identity compared with other matrix proteins for which the three-dimensional structure is known, it was shown that its overall topology and pattern of secondary structural units is similar to other retroviral matrix proteins. The monomeric state is observed for the correctly folded MA MoMuLV in a variety of external conditions and protein concentrations, indicating that virion assembly starts with the plasma membrane targeting of the nascent Gag precursor. The denaturation of MA MoMuLV is irreversible and is connected with protein aggregation. For Moloney Murine Leukemia Virus (MoMuLV) a proteolytic processing of the R-peptide (last 16 amino acids from the C-terminus of the Envelope protein (Env)) has been described as a second mode of fusion and activation preceding the receptor contact between the viral particle and the cellular membrane. An interaction between the R-peptide and MA MoMuLV has been proposed, since the R-peptide and MA are localized at the inner part of the membrane. Therefore the interaction between 15N labelled purified MA MoMuLV and synthesized R-peptide has been investigated using high-resolution NMR. It was found that in water solution MA MoMuLV and R-peptide do not form a tight complex, but in a mature virion in the presence of membranes or other protein factors it might be possible. In the case of HIV-1 the cytoplasmic part (EnvC) of the Env protein is much longer than in other retroviruses and again as for MoMuLV little is known about the interaction between EnvC and HIV MA. Hence, the full length HIV MA, and the last 150 amino acids from HIV Env have been subcloned with suitable expression vectors, purified and analysed by native gel electrophoresis, a pull down assay and by high resolution NMR for the purpose to detect the complex formation of EnvC and HIV MA. Finally, after all those experiments, it was found that a stable complex is not formed, but a weak interaction between the two proteins can not be excluded.
Sodium proton antiporters are ubiquitous membrane proteins found in the cytoplasmic and organelle membranes of cells of many different origins, including plants, animals and microorganisms. They are involved in cell energetics, and play primary roles in the homeostasis of intracellular pH, cellular Na+ content and cell volume. Adaptation to high salinity and/or extreme pH in plants and bacteria or in human heart muscles requires the action of such Na+/H+ antiporters. NhaA is the essential Na+/H+ antiporter for pH and Na+ homeostasis (at alkaline pH) in Escherichia coli and many other enterobacteria. NhaA is an electrogenic Na+/H+ antiporter that exchanges 2H+ for 1Na+ (or Li+). NhaA shares with many other prokaryotic and eukaryotic antiporters a very strong dependence on pH. In order to achieve three-dimensional structure of NhaA, the previously described NhaA protein preparation was modified: (i) the wild type bacterial strain (TA16) used for homologous over-expression of NhaA was replaced with a delta nhaA strain (RK20). As a result, the purity and homogeneity of the sample was significantly improved; (ii) the previously two-step purification procedure was shortened to a single step affinity chromatography purification; (iii) a wide-range screening of crystallisation conditions, more than 20,000, was performed; (iv) a Seleno-L-methionine (SeMet) NhaA derivative was produced in order to solve the phases during structure determination. In parallel, attempts of production and crystallisation of co-complexes composed of NhaA and antibody fragments have been made. Four different monoclonal antibodies were available against NhaA. Selected antibody fragments were produced and the stability of the complex analysed. Here, the crystal structure of the pH down-regulated secondary transporter NhaA of Escherichia coli is presented at 3.45 Å resolution. A negatively charged ion funnel opens to the cytoplasm and ends in the middle of the membrane at the putative ion-binding site. There, a unique assembly of two pairs of short helices connected by crossed, extended chains creates a balanced electrostatic environment. A possible mechanism is proposed: the binding of charged substrates causes electric imbalance inducing movements, which allow for a rapid alternating access mechanism. This ion exchange machinery is regulated by a conformational change elicited by a pH signal perceived at the cytoplasmic funnel entry. The structure represents a novel fold that provides two major insights: it reveals the structural basis for the mechanism of Na+/H+ exchange and its unique regulation by pH in NhaA and in many other similar antiporters. Furthermore, it is also important for the understanding of the architecture of membrane proteins in general. However, although many aspects of the ion-translocation mechanism and pH regulation are clarified by the NhaA structure, higher resolution structures with Li+ or Na+ bound are required for understanding the ligand binding and the translocation mechanism at the atomic level. The alkaline pH-induced conformation is essential to further understand the pH-control and proton access to the binding site.
The Na+/proline transporter of E. Coli (PutP) is responsible for the uptake of proline which is subsequently used not only as a carbon and nitrogen source and a constituent of proteins but also as a particularly effective osmoprotectant. However, for a long time there was little known about the single steps in the reaction cycle of this transporter and only few details about its structure-function relationship are available. Aim of the present work was to achieve a deeper understanding about the kinetic properties of the Na+/proline transporter and to get insights into the structure-function relationship of the substrate binding. To answer these questions different techniques were used. By using the novel SSM technique combining the preparation of PutP proteoliposomes it was possible to demonstrate for the first time the electrogenic substrate binding to PutP transporter. Due to rapid solution exchange measurements on the SSM it was additionally possible to obtain time resolved information about the kinetic details of the cytoplasmic substrate binding sites which were not available by previous steady state and equilibrium binding measurements. Pre-steady-state charge translocation was observed after rapid addition of one or both of the cosubstrates Na+ and/or proline to the PutP-WT proteoliposomes adsorbed on the SSM. Thereby it was possible to link the observed electrical signals with the binding activity of PutP. The observed Na+ and/or proline induced charge displacement were assigned to an electrogenic Na+ and/or proline binding process at the cytoplasmic face of the enzyme with a rate constant of k > 50 s-1 proceeding the rate limiting step of the reaction cycle. Furthermore, based on the kinetic analysis of the electrical signals obtained from the measurements of PutP on SSM, the following characteristics of the substrates binding in PutP were deduced: (1) both Na+ and proline can bind individually to the transporter. Under physiological conditions, an ordered binding mechanism prevails; while at sufficiently high concentrations, each substrate can bind in the absence of the other; (2) substrate binding is electrogenic not only for Na+, but also for the uncharged cosubstrate proline. The charge displacement associated with Na+ binding and proline binding is of comparable size and independent of the presence of the respective cosubstrate. In addition, it was concluded that Na+ accesses its binding site through a high-field access channel resulting in a charge translocation, whereas the binding of the electroneutral proline induces a conformation alteration involving the displacement of charged amino acid residue(s) of the protein; (3) Na+ and proline binding sites interact cooperatively with each other by increasing the affinity and/or the speed of binding of the respective cosubstrate; (4) proline binding proceeds in a two step process: low affinity (~ 0.9 mM) electroneutral substrate binding followed by a nearly irreversible electrogenic conformational transition; (5) membrane impermeable PCMBS inhibits both Na+ and proline binding to the inside-out orientated PutP transporter, indicating that rather than selectively blocking a specific binding site, PCMBS probably locks the enzyme in an inactive state. The possible targets for this SH-reagent are cysteines 281 and 344 located close to the cytoplasmic surface of the protein. Beyond it, transient electrical currents of PutP were also observed on the BLM after rapid addition of proline in the presence of Na+. This was possible by combining the conventional BLM technique with high-speed flash-photolysis of caged-proline. Indeed the signals on the BLM indicate the detection of a different underlying reaction process in comparison to the data achieved by the SSM technique. This has paved the way for supplemental information about the reaction cycle since it was possible to assign the flash-photolysis BLM signals to the proline binding step followed by the internalization of Na+ and proline into the liposome. Thereby it was found, that the presence of Na+ is indispensable and the time constant for the process is ~ 63 ms. Moreover, structure-function information about the Na+ and proline binding sites of PutP was obtained by investigating the functionally important amino acid residues Asp55, Gly63 and Asp187 with site-directed mutagenesis and the combined SSM technique. One finding is that the mutated proteins PutP-D55C and PutP-G63C showed no activity on the SSM. Therefore, it can be assumed that either both Asp55 and Gly63 are crucial for the structure of PutP protein, or they are located at or close to the Na+ and proline binding sites. Furthermore, the results obtained from PutP-D187N and PutP-D187C mutants on SSM suggest that Asp187 of PutP is likely to be involved in the Na+ binding at the cytoplasmic side of the backward running carrier. Taken together the results of the present work have substantially broadened the known picture of the Na+/proline transporter PutP thereby several steps of the reaction cycle were elucidated, and moreover, valuable insights into the structure-function relationship of the transporter have become available.
The technique of site-specific fluorescence labelling with Tetramethylrhodaminemaleimide (TMRM) in combination with two electrode voltage-clamp technique (TEVC), an approach that has been named voltage clamp fluorometry (VCF), has been used in this work to study the Na,K-ATPase. The TMRM dye has the ability to attach covalently to cysteine residues and it responds to changes in the hydrophobicity of its local environment. We exploited this property using a construct of the Na-pump in which the native, extracellularly accessible cysteines were removed and cysteine residues were introduced by site-directed mutagenesis in specific positions of the Na-pump. In this way it was possible to detect site-specific conformational rearrangements of the Na-pump in a time-resolved fashion within a native membrane environment. In particular this technique allows to resolve reactions with low electrogenicity that cannot be satisfactorily analyzed with purely electrophysiological techniques and to identify the conformations of the enzyme under specific ionic composition of the measuring buffers. We used VCF to study the influence that several cations like Na+, K+, NMG+, TEA+ and BTEA+ exert on the distribution of the Na,K-ATPase between several enzymatic intermediates and on some of the reactions related to cation transport. To this end we utilized the mutants N790C in the loop M5-M6 and the mutant E307C, T309C, L311C and E312C in the loop M3-M4. From the correspondence of the fluorescence changes with the activation and inhibition of pumping current, by K+ and ouabain respectively, and from the fact that in Na+/Na+ exchange conditions the voltage distribution of charge movement and fluorescence changes evoked by voltage jumps are in reasonable agreement we conclude that through the fluorescence signals measured from these mutants, we can indeed monitor conformational changes linked to transport activity of the enzyme. For the mutants N790 and L311, it was found that the Na+ dependence of the amplitude and kinetics of the fluorescence signal associated with the E1P-E2P transition is in agreement with the prediction of an access channel model describing the regulation of the access of extracellular Na+ to its binding site. In particular for the mutants E307 and T309 it was found that in Na+/Na+ exchange conditions, the conformational change tracked by the fluorescence was much slower than the charge relaxation at hyperpolarized potentials while the kinetics was very similar at depolarized potentials. This implies that at hyperpolarized potentials the conformational change connected to the E1P-E2P transition does not give a large contribution to the electrogenicity of the process which is also consistent with the access channel model. On the mutant N790C it was found that the external pH does not seem to have any effect on the E1P-E2P equilibrium even if it seems to modulate the fluorescence quantum yield of the dye. Fluorescence quenching experiments with iodide and D2O indicate that at hyperpolarized potentials the local environment of the mutant N790C, experiences a small change in the accessibility to water without major changes in the local electrostatic field ...
Nitric oxide (NO) represents a short-lived mediator that pivotally drives keratinocyte movements during cutaneous wound healing. In this study, we have identified p68 DEAD box RNA helicase (p68) from a NO-induced differential keratinocyte cDNA library. Subsequently, we have analyzed regulation of p68 by wound-associated mediators in the human keratinocyte cell line HaCaT. NO, serum, growth factors and pro-inflammatory cytokines were potent inducers of p68 expression in the cells. p68 was constitutively expressed in murine skin, but rapidly down-regulated upon injury. The down-regulation appeared to be transient, as p68 protein expression increased again after the inflammatory phase of repair. However, p68 protein expression did not completely disappear during wound inflammation, as immunohistochemistry and cell fractiona tion analysis revealed a restricted localization of p68 in keratinocyte nuclei of the developing epithelium. In line, cultured human (HaCaT) and murine (PAM 212) keratinocyte cell lines showed a nuclear localization of the helicase. Moreover, confocal microscopy revealed a strong localization of p68 protein within the nucleoli of the keratinocytes. Functional analyses demonstrated that p68 strongly participates in keratinocyte proliferation and gene expression. Keratinocytes that constitutively overexpressed p68 protein were characterized by a marked increase in serum-induced proliferation and vascular endothelial growth factor (VEGF) expression, whereas down-regulation of endogenous p68 using small interfering RNA (siRNA) markedly attenuated serum-induced proliferation and VEGF expression. Altogether, our results suggest a tightly controlled expression and nucleolar localization of p68 in keratinocytes in vitro and during skin repair in vivo that functionally contributes to keratinocyte proliferation and gene expression.
The cytochrome bc1 complex or ubiquinol:cytochrome c oxidoreductase (QCR) catalyses electron transfer from ubiquinol to cytochrome c in respiration and photosynthesis coupled to a vectorial proton transport across the membrane, in which the enzyme resides. In both bacteria and eukaryotic organisms, QCR participates in supramolecular assembly of membrane proteins that comprise the respiratory or photosynthetic chain. In the present work, proton transfer pathways, substrate binding and the supramolecular assembly of the respiratory chain in yeast were probed by structure-based site-directed mutagenesis and characterization of the variants. Both active sites centre P, the place of quinol oxidation, and centre N, where quinone reduction takes place, lack direct access to the bulk solvent necessary for proton release and uptake. Based on the X-ray structure, proton transfer pathways were postulated. Analysis at centre P showed, that E272 and Y132 of cytochrome b are important for QCR catalysis as indicated by increased superoxide production and lowered Cyc1p reductase activity in these variants. Pre-steady state heme reduction kinetics in combination with stigmatellin resistance indicated that charge and length of the side chain at position 272 are crucial for efficient docking of the ISP to form the enzyme substrate complex and for electron bifurcation at centre P. Variants of Y312 and F129, both residues of cytochrome b, showed an increased Km indicating participation of these residues in coordination of ubiquinol or the possible intermediate semiquinone anion radical. F129 proved to be crucial for a functional Q-cycle as indicated by respiratory negative growth phenotype and a lowered H+/e- stoichiometry of F129 variants. At centre N, the postulated CL/K and E/R proton transfer pathways are located at opposite sites of the bound ubiquinone. Variants in the surface residues R218 (cytochrome b) and E52 (Qcr7) of the E/R pathway and E82 (Qcr7) of the CL/K pathway showed instability upon purification indicating an important role of these residues for QCR integrity. The slowed down centre N reduction kinetics in H85 (CL/K), R218 and N208 (both E/R) variant was attributed to a destabilised semiquinone anion consistent with the observed decreased sensitivity towards the site-specific inhibitor antimycin and an increased Km. Variants of residues of both pathway, E82Q and R218M, exhibited a decreased H+/e- stoichiometry indicating a crucial role of both residue for maintaining a working Q-cycle and supporting the proposed protonation of the substrate via the Cl/K and the E/R pathway. Long-range interaction between centre N and centre P were observed by altered reduction kinetics of the high potential chain and increased superoxide production in the centre N variants. The role of the cation-pi-interaction between F230 of Cyt1p and R19 of cytochrome c in binding of the redox carrier to QCR was analysed. In F230L hydrophobic interaction were partially lost as was deduced from the ionic strength dependence of Cyc1p reductase activity and Cycp1 binding, as detected by ionic strength sensitive Kd and Km for Cyc1p. The decreased enzymatic rate of F230W could be explained by a disturbed binding of Cyc1p to the variant enzyme. F230 may influence the heme mid point potential and thereby the electron transfer rate to Cyc1p. Reduction of Cobp via both centre P and centre N was disturbed suggesting an interaction between high and low potential chain. Supramolecular association between QCR and cytochrome c oxidase (COX) in yeast mitochondria was probed by affinity chromatography of a his-tagged QCR in the presence of the mild detergent digitonin. In comparison to purification with laurylmaltoside, the presence of both QCR and COX subunits was detected in the elution fractions by SDS-PAGE, Cyc1p reductase and TMPD oxidase activity assays and immunoblot analysis. The CL-dependent formation of the supercomplex between QCR and COX was analysed by replacement variants in the CL-binding site of QCR in CL containing and CL free environment. With an increasing number of replacements of the three lysines the CL-binding pocket supercomplex formation was not abolished, when CL is present as shown by BN-PAGE analysis. This was supported by the synergetic decrease in enzyme activity for both enzymes upon increased number of replacements. In the CL-free environment, no supracomplex formation was observed for a wildtype CL binding site. By replacements of two lysines in the CL-binding pocket, supercomplex formation could be recovered as revealed by BN-PAGE. This indicates, that CL may serve as a charge neutralizer for the lysines near the presumed interaction domain between complex III and complex IV. The obtained results for centre P provide new information of residues critical for stabilisation of ubiquinol and controlling electron short circuit reactions. The observations for centre N variants clearly support the proposed two proton transfer pathways and the role of the bound phospholipids in centre N kinetics. Variants in the Cyc1p binding site suggest a role for F230 both in Cyc1p binding and electron transfer. Clear interaction between the high and low potential chain in both Cyt1p and centre N variants strongly support long-range interactions in the complex. Studies on the supramolecular association of complex III and complex IV indicate a new role of Cl in stabilising a supracomplex.
Ligands of Iron-Sulphur Cluster N2: In this work the ubiquinone reducing catalytic core of NADH:ubiquinone oxidoreductase (complex I) from Y. lipolytica was studied by a series of point mutations replacing conserved histidines or arginines in the 49-kDa subunit. Although the missing 4th ligand of cluster N2 could not be found in the 49-kDa subunit of complex I, it was clearly demonstrated that iron-sulphur cluster N2 resides directly on the interface between the PSST and 49-kDa subunits. The results presented in this work show that residues in the 49-kDa subunit have strong influence on this redox centre and also on catalytic activity. The strong influence of Arg-141 and His-226 residues in 49-kDa subunit on this cluster can be deducted from complete loss of N2 signals in EPR spectra such as in case of mutants H226A and R141A. In the case of mutant H226M the EPR signal from cluster N2 was shifted and cluster N2 even lost the pH dependence of its redox midpoint potential and became more similar to the other so called 'isopotential' clusters. Specifically in the case of mutants R141M and R141K the characteristic signature of cluster N2 became undetectable in EPR spectra. However, specific dNADH:DBQ oxidoreductase activity that could be inhibited with the specific complex I inhibitors DQA and rotenone was not absolutely abolished but rather reduced. These reductions in complex I activity did not correspond to similar reductions in the specific EPR signal of cluster N2 as it was observed in the His-226 mutant series. No indications could be found that these mutations had modified the magnetic properties of cluster N2, resulting in different EPR spectra. From these observations it could be concluded that both mutants R141K and R141M virtually or entirely lack iron-sulphur cluster N2. The rates in complex I activity could be reconciled with electron transfer theory: After removal of a single redox centre in a chain, electron transfer rates are predicted to be still much faster than steady-state turnover of complex I. These results from mutants R141K, R141M and also the result from mutant H226M that protons are being pumped even if the redox midpoint potential of cluster N2 is not pH dependent questions the prominent role in the catalytic mechanism of complex I that has been ascribed to cluster N2. Histidine 91 and 95 were found to be absolutely essential for activity of complex I since in both mutants complex I was fully assembled and artificial NADH:HAR activity was parental whereas complex I specific dNADH:DBQ activity was abolished. The signal from cluster N2 in EPR spectra was parental for all His-91 and -95 mutants. Mutations at the C-terminal arginine 466 affected ubiquinone affinity and inhibitor sensitivity but also destabilised complex I. All these results provide further support for a high degree of structural conservation between the 49-kDa subunit of complex I and the large subunit of water soluble [NiFe] hydrogenases. Remodelling of Human Pathogenic 49-kDa Mutations in Y. lipolytica: Y. lipolytica has been proven a good system for studying complex I properties and thus also for studying defects that occur in humans. In this work pathogenic mutations in the 49-kDa subunit of complex I were recreated and studied. The P232Q mutant showed non-assembly of complex I and this is probably the cause why this mutation was lethal in patients. The mutants R231Q and S416P were parental for the content, artificial and also specific complex I activity, Km for DBQ and IC50 for DQA. From these results we can conclude that these two residues Arg-228 and Ser-413 in mammalian cells have specific structural importance for the 49-kDa subunit even if they are not directly involved in catalytic process.
Proton-translocating NADH:ubiquinone oxidoreductase (complex I) transports two electrons from NADH to membranal ubiquinone: in this process protons are translocated across the membrane, producing 40% of the total proton gradient between matrix side and intermembrane space. Mitochondrial complex I contains at least 46 subunits in mammals, and has a molecular weight of around 1000 kDa. Electronic microscopy analysis showed that complex I has an L-form, which consists of two domains: a peripheral “arm” (hydrophilic domain) and a membrane “arm” (hydrophobic domain). The peripheral domain, which protrudes into the matrix, contains one non-covalently bound flavin mononucleotide (FMN) and the iron-sulfur clusters N1a, N1b, N2, N3, N4 and N5 as redox active groups. They transport electrons from NADH to ubiquinone. Cluster N2 is supposed to be the immediate electron donor to ubiquinone by virtue of its highest and pH dependent redox midpoint potential (Em,7 –150 mV). The exact location of the tetra-nuclear cluster N2 is still object of discussion. The TYKY and the PSST subunits contain three binding motifs for tetranuclear clusters which are formed by twelve cysteins. In an effort to investigate the “ubiquinone reduction module” of complex I, in the first part of this work site directed mutagenesis of the TYKY and PSST subunits has been carried out. Mutant strains were characterised in terms of complex I content, catalytic activity and EPR signature of cluster N2. The second part of this work was aimed at developing a substrate inducible version of the internal alternative NADH:ubiquinone oxidoreductase (NDH2i). A substrate inducible NDH2i is expected to offer a “switch” between complex I activity dependent (no NDH2i activity) and independent (NDH2i activity) cell growth, by changing between activating and non-activating substrates. This strategy would allow the screening for two types of complex I mutants, which is a prerequisite for realising a random PCR mutagenesis of single subunits of complex I, that allows the production of a high number of point mutations in relatively short time. Y. lipolytica complex I deficiency mutant strains could be easily identified, by virtue of their inability to survive under complex I dependent growth conditions (no NDH2i activity). By this way, amino acids that have an important role for complex I structure or function could be identified by subsequent sequence analysis. Each of the twelve cysteines that form the above mentioned three binding motifs for iron-sulfur cluster have been mutagenised. In mutant mitochondrial membranes, no assembled complex I could be detected. From these data one may conclude that the mutagenised 6 SUMMARY 92 cysteines play an important role for complex I stability, or that are a prerequisite for complex I assembly in Y. lipolytica, but there is not direct evidence indicating that any of the four mutagenised residues acts as a ligand. Two aspartates in the PSST subunit, Asp-99 and Asp-115, were found to be essential for complex I catalytic activity. EPR spectroscopic analysis indicated that the electron transfer to N2 cluster was not blocked and implied that this was not the reason for the loss of catalytic activity. From these data it can be concluded that D99 and D115 play a vital role for complex I NADH:ubiquinone reductase activity, but are not ligands for cluster N2 and that their position is not close enough to the cluster to influence directly its electromagnetic environment. Three mutations, identified in the PSST and TYKY homologous subunits of patients affected with Leigh syndrome (V119M in PSST, P78L and R101H in TYKY) were reconstructed in the obligate aerobic yeast Y. lipolytica. This approach may help to understand the aetiology of the Leigh syndrome, in terms of the ability of complex I to oxidize NADH and to transport electrons. In fact, all three mutations showed effects on electron transport, reducing the VMax by about 50%. Mutant V119M in the PSST subunit, which had a lethal effect in two patients that were homozygous for this mutation, affects a fully conserved residue. Overall, the results from site directed mutagenesis carried out so far support the theory that the “catalytic core ” (N2 cluster and quinone binding site) of complex I has been evolved from the electron transfer module of the [Ni-Fe] hydrogenases. In fact, mutagenesis of residues that are fully conserved between complex I and [Ni-Fe] hydrogenases, showed dramatic effects on complex I in terms of assembly (cysteine mutants) or catalytic activity (D99-D115). Differently, changing aspartate 174 and glutamic acid 185 (not fully conserved, Fig 4.1A) had little or no effect on the Michaelis-Menten parameters and N2 EPR signal. In recent years Y. lipolytica has been developed as a yeast genetic system to study mitochondrial complex I. The present work introduced the promoter for the isocitrate lyase (pICL1) as a useful tool for the substrate selective expression of the internal version of the alternative NADH:ubiquinone oxidoreductase (pICL1-NDH2i). This allows to rescue complex I deficiencies “in vivo” selectively by growth on acetate (or ethanol) medium. The integration of the pICL1-NDH2i construct into the genome of Y. lipolytica and subsequent deletion of nuclear-coded subunits like PSST, TYKY and 49 kDa, would contribute to further develop this organism as a useful genetic model for studying subunits of mitochondrial complex I by site directed mutagenesis.
The cytochrome bc1 complex is a cornerstone in bioenergetic electron transfer chains, where it carries out tasks as diverse as respiration, photosynthesis, and nitrogen fixation. This homodimeric multisubunit membrane protein has been studied extensively for several decades and the enzyme mechanism is described with the modified protonmotive Q cycle. Still, the molecular and kinetic description of the catalytic cycle is not complete and questions remain regarding the bifurcation of electron transfer at the quinol oxidation (Qo) site, substrate occupancy, pathways of proton conduction, and the nature of the Rieske protein domain movement. We used competitive inhibitors to study the molecular architecture at the Qo site with X-ray crystallography. The structure of the enzyme with the substrate analog 5-n-heptyl-6-hydroxy-4,7-dioxobenzothiazole (HHDBT) bound at the Qo site was determined at 2.5 Å resolution. Spectroscopic studies showed that HHDBT is negatively charged when bound at the active site. Mechanistic interpretations from inhibitor binding are in line with single occupancy model for quinol oxidation and structural analysis supports the proposed proton transfer pathway. For functional insight into the enzyme mechanism, redox-sensitive protonation changes were studied by Fourier transform infrared spectroscopy. The protein purification procedure was optimized for less delipidation and the isolated enzyme was more active. Furthermore, two new phospholipids were identified in the X-ray structures, including a cardiolipin. Strikingly, conserved lipid binding cavities were observed in structural comparison with homologous enzymes. The functional role of tightly bound phospholipids will be discussed. Finally, the Qo site is a target for various compounds of agricultural and pharmaceutical importance. Importantly, the X-ray structures permit detailed analysis of the molecular reasons for acquired resistance to and treatment failure of Qo site inhibitors, such as atovaquone, that is used to treat malaria and pneumonia, as discussed herein.
RcsB is a central transcriptional regulator in enteric bacteria involved in exopolysaccharide (EPS) biosynthesis, in cell division, in the expression of osmoregulated genes, and regulates at least 20 other genes and operons. It is a member of a phosphorelay system and signal transfer is mediated by phosphorylation through the RcsC/YojN phosphorelay. RcsB proteins modified with the phosphorylation mimic BeF3- as shown by its conformational changes and DNA binding properties and resulted phosphorylated RcsB derivatives with sufficient stability. Both, the wild type RcsB protein and the mutant RcsBD11A could be modified with BeF3-. Non-phosphorylated RcsB has been shown to bind as a heterodimer with the coinducer RcsA at the conserved RcsAB box in Rcs regulated promoters. In this study, it has been shown that the modification of RcsB by BeF3 - (I) has a negative effect on its homodimerization, (II) abolishes the complex formation of RcsAB with the RcsAB box as shown by the EMSA and SPR technique. All the effects were found to be reversible by increasing the NaF concentration in the assays presumably leading to the formation of the inactive BeF4 2- salt. This hypothesis of RcsB being modified by BeF3- was also supported by other phosphodonors like ATP and acetyl phosphate, both of them showed the same negative effect on DNA binding by RcsAB heterodimer giving evidence that BeF3- could be used as a phosphorylation mimic. In addition, the phosphorylation mimic BeF3- was found to be a better phosphorylating agent than ATP and acetyl phosphate. This is the first evidence that phosphorylation of RcsB might have a negative effect on the activation of RcsAB regulated operons. Autophosphorylation of RcsB proves that it has the ability to take up phosphoryl groups and the mutant protein also become autophosphorylated with less efficiency or stability than the wild type protein. RcsB probably takes up phosphoryl groups through RcsC -> YojN -> RcsB phosphorelay pathway. To study the interaction among the proteins in this pathway, fluorescence spectroscopy, NMR spectroscopy, and an in vivo ß galactosidase assay were performed by using two domains of RcsC (T-RcsC and R-RcsC), HPt domain of the protein YojN, and RcsB. The interactions between R-RcsC/YojN-HPt and YojN-HPt/RcsB supports the proposed pathway of phosphorylating RcsB. RcsB might also be phosphorylated by YojN-HPt that is phosphorylated by other sensor kinase other than RcsC in a cross-talk mechanism. The phosphorylation of RcsB by YojN-HPt probably has the same negative effect on cps induction as obtained with BeF3 - effect on DNA binding by RcsAB heterodimer.
The endothelin B receptor belongs to the rhodopsin-like G-protein coupled receptors family. It plays an important role in vasodilatation and is found in the membranes of the endothelial cells enveloping blood vessels. During the course of this work, the production of recombinant human ETB receptor in yeast, insect and mammalian cells was evaluated. A number of different receptor constructs for production in the yeast P. pastoris was prepared. Various affinity tags were appended to the receptor N-and C-termini to enable receptor detection and purification. The clone pPIC9KFlagHisETBBio, with an expression level of 60 pmol/mg, yielded the highest amount of active receptor (1.2 mg of receptor per liter of shaking culture). The expression level of the same clone in fermentor culture was 17 pmol/mg, and from a 10L fermentor it was possible to obtain 3 kg of cells that contained 20-39 mg of the receptor. For receptor production in insect cells, Sf9 (S. frugiperda) suspension cells were infected with the recombinant baculovirus pVlMelFlagHisETBBio. The peak of receptor production was reached at 66 h post infection, and radioligand binding assays on insect cell membranes showed 30 pmoL of active receptor /mg of membrane protein. Subsequently, the efficiency of different detergents in solubilizing the active receptor was evaluated. N-dodecyl-beta-D-maltoside (LM), lauryl-sucrose and digitonine/cholate performed best, and LM was chosen for further work. The ETB receptor was produced in mammalian cells using the Semliki Forest Virus expression system. Radioligand binding assays on membranes from CHO cells infected with the recombinant virus pSFV3CAPETBHis showed 7 pmol of active receptor /mg of membrane protein. Since the receptor yield from mammalian cells was much lower than in yeast and insect cells, this system was not used for further large-scale receptor production. After production in yeast and insect cells, the ETB receptor was saturated with its ligand, endothelin-1, in order to stabilize its native form. The receptor was subsequently solubilized with n-dodecyl-beta-D-maltoside and subjected to purification on various affinity matrices. Two-step affinity purification via Ni2+-NTA and monomeric avidin proved the most efficient way to purify milligram amounts of the receptor. The purity of the receptor preparation after this procedure was over 95%, as judged from silver stained gels. However, the tendency of the ETB receptor produced in yeast to form aggregates was a constant problem. Attempts were made to stabilize the active, monomeric form of the receptor by testing a variety of different buffer conditions, but further efforts in this direction will be necessary in order to solve the aggregation problem. In contrast to preparations from yeast, the purification of the ETB receptor produced in insect cells yielded homogeneous receptor preparations, as shown by gel filtration analysis. This work has demonstrated that the amounts of receptor expressed in yeast and insect cells and the final yield of receptor, isolated by purification, represent a good basis for beginning 3D and continuing 2D crystallization trials.
The light-harvesting chlorophyll a/b protein complex (LHC-II) is the major collector of solar energy in all plants and it binds about half of the chlorophyll in green plants. LHCII is a trimer in the photosynthetic membrane; each monomer consists of 232 amino acids, binds and orients a minimum of 12 chlorophyll molecules and three caroteinoids (two luteins and one neoxanthin) for light-harvesting and energy transfer. Although, the structure of LHC-II has been determined at 3.4 Å resolution by electron microscopy of two-dimensional crystals (Kühlbrandt et al., 1994), this is not sufficient to allow a complete understanding of the mechanism of energy transfer from LHC-II to the reaction centre, since the effective resolution in the z dimension is 4.9 Å. In fact, the chemical difference between Chl a and Chl b, which has a formyl group instead of the methyl group at the 7-position in the chlorin ring, is too small to be detected at this level of resolution. In addition, the orientation of the chlorophyll tetrapyrroles have not been determined unambiguously. This information is essential for a detailed understanding of the energy transfer within the complex and to the reaction centres of photosystem II and I (PSII and PSI). X-ray crystallography of three dimensional (3D) crystals may yield a more complete structure at high resolution. 3D crystals have been grown from LHC-II isolated from pea leaves using a standard purification procedure (Burke et al., 1978). The thylakoid membranes are solubilised in Triton X-100 and further purified by sucrose gradient ultra centrifugation. The LHC-II fraction is salt precipitated and pellets resuspended at the chlorophyll a/b ratio 2.8 mg/ml in 0.9 % Nonyl-glucoside. Crystals are currently obtained by vapour diffusion in hanging drops. These crystals are thin hexagonal plates, have a fairly large unit cell and diffract quite weakly. The high level of the background is due both to the detergent, necessary for protein solubilisation, and lipids, required for the trimer and crystals formation. However, three data sets, each from one single crystal have been collected up to 3.2 Å resolution over a rotation range of 135°. The crystals were exposed to a very highly collimated and brilliant beam (ID-14 EH1 at ESRF, Grenoble, France) and were kept under a stream of cold nitrogen to prevent radiation damage. Data were successfully integrated using the program XDS by Kabsch (1993). The crystals were found to belong to the space group P6 22 3 and have unit cell dimensions of a=128.45, b=128.45, c=135.32, a= ß=90º, ?=120. The solution of the phase problem was tackled by molecular replacement using, as a search model, the LHC-II structure solved by electron cryo-microscopy studies of twodimensional crystals (Kühlbrandt et al. 1994). Three different programs were tested: the most used AMoRe (Navaza et al., 1994) and the brute force based program Brute (Fujinaga
Zwei der wichtigsten Leistungen eines sich entwickelnden Embryos sind der Aufbau des Blutkreislauf- und des Nervensystems. Beide Systeme sind hierarchisch organisierte Strukturen, deren Verzweigungen nahezu alle Teile des Körpers erreichen. Es gibt eine zunehmende Zahl von Hinweisen darauf, dass ihre Entwicklung eng miteinander verknüpft ist, nach ähnlichen Prinzipien verläuft und verwandte molekulare Mechanismen verwendet. Die Entstehung eines funktionellen vaskulären Netzwerks erfordert Signale, die Prozesse wie die Lenkung und die Verzweigung von Gefäßen in den Zielgeweben kontrollieren. Ähnliche Anforderungen werden an wachsende Axone bei der Knüpfung der Verbindungen des Nervensystems während der Embryonalentwicklung gestellt. Einige der Faktoren, die die Lenkung der Axone kontrollieren, spielen auch eine ähnliche Rolle in der vaskulären Entwicklung. Lenkungsmoleküle, die eine Richtungsinformation vermitteln, sind für die Wegfindung der Axone besonders wichtig. Die größte Familie solcher Lenkungsmoleküle wird durch die Semaphorine gebildet. Semaphorine können in acht Klassen unterteilt werden, deren gemeinsames Merkmal eine konservierte Semaphorin-Domäne ist und die unterschieden werden anhand ihrer Klassen-spezifischen carboxyterminalen Domänen. Die Semaphorin-Familie umfasst sowohl sekretierte als auch membrangebundene Proteine. Die am besten charakterisierten hiervon sind die sekretierten Klasse 3 Semaphorine. Eine Kombination von in vitro und in vivo Ansätzen zeigte, dass die Klasse 3 Semaphorine an der Steuerung der Axon- und Dendritenlenkung, der Bildung von Axonbündeln und der neuronalen Migration während der Entwicklung des Nervensystems beteiligt sind. Sie agieren hauptsächlich als repulsiv wirkende Signale, die Axone aus Regionen ausschließen, von den Geweben weg, in denen sie exprimiert sind. Diese Wirkung wird über die Semaphorin-Domäne vermittelt. Verschiedene Hinweise deuten auf eine Beteiligung von Semaphorinen an der Entwicklung des vaskulären Systems. Sowohl homozygote Sema3a- als auch Sema3c-Mausnullmutanten sterben nach der Geburt aufgrund kardiovaskulärer Defekte. Darüber hinaus binden die Rezeptoren für die Klasse 3 Semaphorine, Neuropilin-1 (Nrp-1) und –2 (Nrp-2), einige Isoformen des vaskulären endothelialen Wachstumsfaktors (Vascular Endothelial Growth Factor, VEGF). Neuropilin-1 und Neuropilin-2-defiziente Mäuse und Neuropilin-1/-2-Doppelmutanten weisen Defekte des Gefäßsystems auf, wie z.B. eine Rückbildung der neuralen Vaskularisierung und Abweichungen in der Entwicklung des Herzens und der großen Gefäße. Die membrangebundenen Semaphorine sind bisher nur wenig untersucht, da zuverlässige in vitro Assays fehlen. Somit ist ein genetischer Ansatz der beste Weg, die physiologische Funktion dieser Proteine zu untersuchen. Aus diesen Gründen war die Zielsetzung dieser Arbeit, durch homologe Rekombination in embryonalen Stammzellen eine Mauslinie herzustellen, die ein Nullallel des membrangebundenen Sema5a-Gens trägt. Für diesen Ansatz wurde ein Mitglied der Klasse 5 Semaphorine gewählt, da es nur zwei Mitglieder dieser Klasse im Mausgenom gibt, die weitgehend komplementäre Expressionsmuster aufweisen. Damit unterscheiden sie sich von den anderen Klassen der Semaphorine, deren Mitglieder stark überlappende Expressionsmuster zeigen. Dies verringert die Wahrscheinlichkeit einer gegenseitigen funktionellen Kompensation nach Mutation eines Gens. Die Klasse 5 Semaphorine sind auch deshalb besonders interessant, da sie die einzigen sind, die sowohl in Vertebraten als auch in Invertebraten vertreten sind. Sie sind gekennzeichnet durch sieben carboxyterminale Typ 1-Thrombospondinmodule (TSP) in ihrer extrazellulären Domäne. TSPs wurden ursprünglich in den Proteinen Thrombospondin 1 und 2 gefunden, in denen sie das Auswachsen von Neuriten verschiedener Nervenzelltypen fördern. Dies lässt vermuten, dass Klasse 5 Semaphorine sowohl inhibierende als auch stimulierende Effekte haben könnten, in dem sie unterschiedliche Rezeptoren mit der Semaphorin-Domäne oder der TSPs aktivieren. Das Expressionsmuster von Sema5A und die bekannte Funktion von Semaphorinen in der Ausbildung neuronaler Verbindungen lassen es sinnvoll erscheinen, bei der Untersuchung der mutanten Tiere den Schwerpunkt auf die Entwicklung des Nerven- und des Gefäßsystems zu legen. Aufgrund technischer Schwierigkeiten konnte innerhalb der Bearbeitungszeit dieser Doktorarbeit nur der Phänotyp des vaskulären Systems untersucht werden. Die Inaktivierung des Sema5a-Gens wurde durch die Verwendung eines ‚Targeting’-Vektors erreicht, welcher die Exone 4 und 5 des Sema5a-Gens durch eine Neomycin-Selektionskassette ersetzte. Aus 144 untersuchten ES-Zellklonen wurden drei ES-Zellinien mit einem rekombinierten Sema5a-Locus identifiziert. Zwei der positiven Klone wurden zur Herstellung einer chimären Maus durch die Morula-Aggregationsmethode verwendet. Mit einem der Klone konnte eine männliche Chimäre erzeugt werden, die nach Kreuzung mit NMRI-Wildtyptieren die Mutation an die Nachkommen weitergab. Der Verlust der Proteinexpression in homozygoten Sema5a-Mutanten wurde durch Westernblot-Analyse von Zellmembranpräparationen homozygoter Embryonen unter Verwendung eines Antikörpers gegen das zytoplasmatische Ende von Sema5A bestätigt. Dieses Ergebnis bestätigte, dass die Deletion des vierten und fünften Exons des Sema5a-Gens ein Nullallel hervorbringt. Nach Verpaarungen heterozygoter Mutanten konnten keine Neugeborenen identifiziert werden, die homozygot für das mutierte Allel waren. Homozygte Mutanten starben zwischen E11,5 und E12,5 der Embryonalentwicklung, der Verlust von Sema5A ist also embryonal letal. Die Morphologie der homozygoten Tiere zeigte keinen offensichtlichen Unterschied zu den heterozygoten Embryonen oder zu Wildtyp-Geschwistern auf. Frühe embryonale Musterbildungsprozesse in Sema5a-Nullmutanten sind also nicht gestört. Ein Tod bei dieser Entwicklungsstufe deutet auf einen Defekt in der Entwicklung des Blutgefäßsystems hin, da die Embryonalstadien zwischen E9 und E13 besonders wichtig für die Ausbildung dieser Gefäße sind und viele Mutationen, die Herz und Blutgefäßen beeinträchtigen, den Tod der Embryonen in diesem Stadium bewirken. Das embryonale Blutgefäßsystem in E10,5 und E11,5 Embryonen wurde durch immunhistochemische Färbungen ganzer Embryonen unter Verwendung eines spezifischen gegen das Platelet Endothelial Cell Adhesion Molecule (PECAM) gerichteten Antikörpers dargestellt, welches in vaskulären Endothelzellen exprimiert ist. Die allgemeine Architektur des Gefäßsystems war in homo- und heterozygoten Mutanten ähnlich und wies weder an E10,5 noch an E11,5 besondere Abweichungen auf. Es wurden bei der Lage und der Anzahl intersomitischer Gefäße, der Entwicklung der dorsalen Aorta oder der Vaskularisierung der Extremitätenanlagen keine Abweichungen festgestellt. Morphologische Defekte konnten jedoch bei E10,5 in den Verästelungen der Blutgefäße detektiert werden, die von den Hauptvenen der Cranialregion abzweigen. Die Verzweigungen waren geringer ausgeprägt als in heterozygoten oder Wildtyp-Vergleichstieren. Insbesondere zeigte sich eine Verringerung der Anzahl sekundärer und tertiärer Verzweigungen. In dem sich entwickelnden Embryo führt die wiederholte Verzweigung von Ästen der Hauptvenen zu einem hierarchisch gegliederten Netzwerk großer Gefäße in der Region des medialen Kopfes. Während die Ausbildung dieses Netzwerkes in den Sema5a-/--Tieren beeinträchtigt ist, erscheint die Organisation der kleinen Gefäße in den mehr dorsal und peripher gelegenen Regionen des Kopfes normal. In heterozygoten und homozygoten Mutanten bilden die kleineren Gefäße ein dicht verzweigtes Netzwerk. Die Verminderung der Komplexität der größeren Gefäße konnte in allen untersuchten Nullmutanten beobachtet werden. Es variierte jedoch die Penetranz des Phänotyps. In allen Fällen war die Anzahl primärer Verzweigungen unverändert, während die Anzahl der sekundären und der tertiären Verzweigungen zu unterschiedlichen Graden reduziert war. Im Gegensatz dazu zeigte sich im Verzweigungsmuster von heterozygoten Mutanten und beim Wildtyp nur eine geringe Variabilität zwischen individuellen Embryonen. Dies belegt, dass die Verminderung des Verzweigungsgrades größerer Gefäße nicht innerhalb der normalen Variabilität liegt, sondern durch die Inaktivierung des Sema5a-Gens verursacht wird. Dieser Phänotyp ist in späteren Stadien sogar deutlicher ausgeprägt. In E11,5 Embryonen waren die Stämme der großen Blutgefäße in den Nullmutanten weniger komplex und in einigen Fällen trat sogar eine Reduzierung der Anzahl primärer Verzweigungen auf. Diese spätere Verminderung der Anzahl bereits ausgebildeter primärer Verzweigungen legt nahe, dass der Phänotyp durch eine Rückbildung von Verzweigungen aufgrund möglicher Defizite in deren Reifung und/oder Stabilisierung erfolgt. Die interessanteste Besonderheit der vaskulären Defekte in den Nullmutanten liegt in ihrer regionalen Spezifität. Bis hier ist das Netzwerk großer Gefäße, welches der anterioren Hauptvene entspringt, das einzige Gefäßsystem, in dem Abweichungen entdeckt wurden. Dieses Netzwerk wird durch die strukturelle Umbildung des primären kapillaren Plexuses gebildet. Zwischen E9,5 und E12 sprießen Zweige rostral aus der Hauptvene, um ein hierarchisch organisiertes Netzwerk von Gefäßen zu bilden. Die Umbildung des primären kapillaren Plexus in den mehr rostral und ventral gelegenen Kopfregionen führt zu der Bildung eines hochverzweigten vaskulären Netzwerkes, welches jedoch bei E10,5 noch nicht hierarchisch organisiert erscheint. Die Signale, die für diesen unterschiedlichen Ablauf der Musterbildung während der Entwicklung des Gefäßsystems des Kopfes verantwortlich sind, sind noch unbekannt. Die besonderen Defekte in der stereotypischen Organisation der cranialen Gefäße in Sema5a-Mutanten legt nahe, dass Sema5A eines dieser Signale sein könnte. Es könnte Teil eines Rezeptor/Ligandenkomplexes sein, welcher positionelle Signale für das Verzweigen und das Wachstum großer Gefäße in rostraler Richtung liefert. Sema5A könnte die Bildung von Verzweigungen durch die Regulierung der Wanderung endothelialer Zellen, ihrer Proliferation oder ihrer Interaktion mit unterstützenden Zellen oder der extrazellulären Matrix kontrollieren. Sema5A könnte Teil eines neuen Signalweges sein oder als Teil eines der bekannten Signalwegs wirken, welcher die Entwicklung des Gefäßsystems reguliert. Einer der Signalwege, die essentiell für die Gefäßbildung sind, wird durch VEGF und Angiopoietin (Ang-1) reguliert. Sowohl in VEGF-, als auch in Ang-1-Mutanten ist die Gefäßumbildung im Kopf beeinträchtigt. Insbesondere erscheint das Netzwerk kleiner Gefäße in den Ang-1 Nullmutanten als nur nur teilweise restrukturiert und die großen Gefäße als weniger komplex. Das Verzweigungsmuster der großen Gefäße in den Ang-1- Nullmutanten ähnelt auffallend dem der Sema5a-Nullmutanten. Eine zweite Ähnlichkeit in den Phänotypen von Ang-1- und Sema5a-Mutanten zeigt sich in der Reduzierung der primären Verzweigungen, welche in den Sema5a-Nullmutanten bei E11,5 beobachtet wird. Hier könnte die Verminderung aus einer Rückbildung von Gefäßen resultieren, wie sie auch typischerweise in Mutanten für Ang-1 oder dessen Rezeptor auftritt. Diese Beobachtung legt nahe, dass Sema5A ein neuer Teilnehmer innerhalb des Ang-1-Signalweges ist, welcher die Auswirkung von Ang-1 auf die endothelialen Zellen der großen Gefäße entweder vermittelt oder moduliert und dadurch das spezifische Muster der Blutgefäße des Kopfes beeinflußt. Mit dieser Doktorarbeit wird zum ersten Mal eine funktionelle Untersuchung des Klasse 5 Semaphorins Sema5A vorgestellt. Die phänotypische Untersuchung von Mäusen, die Nullallele für Sema5a-Gens tragen ergab, dass dieses membrangebundene Protein essentiell für die embryonale Entwicklung ist. Es ist an der Musterbildung des Gefäßsystems beteiligt. Seine Aufgabe besteht möglicherweise darin, die Bereitstellung positioneller Signale für die Ausbildung von Gefäßverzweigungen zu gewährleisten. Einige grundlegende Fragen werden durch diesen Phänotyp aufgeworfen. Sowohl die Ursache für die embryonale Sterblichkeit als auch die zellulären Prozesse, welche in den Sema5a-Nullmutanten beeinträchtigt sind, müssen noch beschrieben werden. Unbekannt ist ebenfalls, ob zusätzlich zu der hier beschriebenen Rolle von Sema5A in der Gefäßbildung dieses an der Entwicklung des Nervensystems beteiligt ist. Die ersten Daten über die physiologische Rolle von Sema5A, welche mit dieser Arbeit vorgelegt werden, öffnen den Weg für weitergehende Untersuchungen über die Funktion des Proteins während der Embrionalentwicklung. Das hier erstmals vorgestellte Modellsystem ermöglicht es, Sema5A regulierte zelluläre Mechanismen zu untersuchen. Zusätzlich stellt es ein Werkzeug zur Verfügung, um die funktionelle Beziehung zwischen der Entwicklung des kardiovaskulären Systems und des Nervensystems zu untersuchen. Damit können die Aufgaben der Semaphorin-Proteinfamilie, die an diesen beiden wichtigen Prozessen beteiligt sind, näher charakterisiert werden.