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The mitochondrial respiratory chain consists of NADH:ubiquinone oxidoreductase (Complex-I), succinate:ubiquinone reductase (Complex-II), ubiquinol:cytochrome c reductase (Complex-III), cytochrome c oxidase (Complex-IV) and cytochrome c as an electron mediator between Complex-III and Complex-IV. Paracoccus denitrificans membranes were used as a model system for the association of the mitochondrial respiratory chain. More than 50 years ago, a model was given for a supercomplex assembly formed by stable associations between these complexes. This model gradually shifted by the model of random diffusion given by Hackenbrock et al. 1986 Different independent approaches were used to further analyze this situation in a native membrane environment, thus avoiding any perturbation caused by detergent solubilization: (a) measuring the distance and orientation of the different complexes by multi-frequency EPR Spectroscopy we started to analyze simple system, the interaction between CuA fragment derived from P. denitrificans and various c type cytochrome by Pulsed X band and G band (180 GHz) EPR. Partner proteins for the CuA (excess negative surface charge) were (i) horse heart cytochrome c which contain a large number of positive charges in heme crevice,(ii) the cytochrome c552 soluble fragment (physiological electron donor and have positive charges), and as a control (iii) the cytochrome c1 soluble fragment (negative surface potential, derived from bc1 complex) The measurements were performed at several magnetic field positions varying temperature between 5 to 30 K. Both the X band and the high-field measurements show the existence of a strong relaxation enhancement of the CuA by the specific binding of the P. denitrificans cytochrome c552 and horse heart cytochrome c. This relaxation enhancement is dependent on temperature and provides information about the distance and relative orientation of the two interacting spins within this protein-protein complex. (b) For quantitative information about lateral diffusion of cytochrome c oxidase in the native membrane Fluorescence Correlation Spectroscopy (FCS) was used. In this experiment, diffusion coefficients for oxidase differ in the case of supercomplex for wild type membrane and for two deletion mutants lacking either Complex-I or Complex-III. (c) The optical absorption spectroscopy at microsecond level resolution was tried for the translational mobility of oxidase in membrane vesicles. Due to the presence of different hemes in the native membrane, carbon monoxide (CO) used as a probe for the experiment. The optimization of the experimental conditions were carried out to get the optimal signal.
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.
The multidrug resistance like protein 1 (Mdl1p) belongs to the class of ATP binding cassette (ABC) transporters which comprise a large family of membrane proteins utilising ATP hydrolysis to drive up-hill transport of a wide variety of solutes across membranes. Mdl1p is a mitochondrial ABC transporter involved in the export of protein fragments derived from the proteolysis of non-assembled inner membrane proteins out of the mitochondrial matrix. Mdl1p forms a homodimeric complex consisting of two polytrophic transmembrane domains (TMDs) and two nucleotide binding domains (NBDs). The transport function and structural organisation of Mdl1p have not been elucidated yet. To characterise the ATP hydrolysis cycle of Mdl1p, the His-tagged NBD (amino acids D423-R695) was over-expressed in Escherichia coli and purified to homogeneity. The isolated NBD was active in ATP binding and hydrolysis. The ATPase activity was non-linear regarding to the protein concentration, indicating that the functional state is a dimer. Dimeric catalytic transition states could be trapped and three different intermediate states were isolated, containing two ATPs, one ATP and one ADP, or two DPs, which are trapped by orthovanadate or beryllium fluoride. These experiments showed that (i) ATP binding to the NBDs induces dimerisation, (ii) in all isolated dimeric states, two nucleotides are present, (iii) phosphate can dissociate from the dimer, (iv) both nucleotides are hydrolysed, and (v) hydrolysis occurs in a sequential mode. Studies in the workgroup systematically screened for over-expression of the full-length Mdl1p and expression conditions were optimised. These studies showed that highest expression was obtained in S. cerevisiae, where the protein was over-expressed 100-fold. In this work over-expressed His-tagged protein was purified via immobilised metal-ion affinity chromatography that was active in ATP binding and hydrolysis with a turn-over of 2.5 ATP per second. N-terminal amino acid sequencing of purified Mdl1p by Edman degradation confirmed experimentally a N-terminal targeting sequence of a mitochondrial ABC transporter of S. cerevisiae for the first time. This sequence was determined to be 59 amino acids in length. Mdl1p was reconstituted into liposomes, which was confirmed by freeze fracture electron microscopy. The reconstituted protein showed ATP hydrolysis similar to the solubilised Mdl1p. However peptide translocation with radiolabelled X(8) or X(23) libraries as done for the transporter associated with antigen processing TAP could not be shown with this setup. Furthermore, structural insights of the mitochondrial transport complex and its oligomeric state were obtained via single particle electron microscopy. It was shown that Mdl1p forms a homodimer in detergent. These in vitro studies provide the basis for further detailed investigation of the mitochondrial ABC transporter Mdl1p.
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.
G protein-coupled receptors (GPCRs) comprise the largest membrane protein family and play an essential role in signal transduction through the cell membrane. They are currently the targets of approximately 50 % of the pharmaceuticals on the market (Klabunde and Hessler, 2002). However, only one high-resolution GPCR structure has been determined up to now, that of bovine rhodopsin (Palczewski et al., 2000). The GPCR activation and regulation mechanisms are still unknown and other GPCR structures are thus required. MePNet (Membrane Protein Network) was a European consortium dedicated to structural studies of GPCRs. The approach was to produce 100 GPCRs in three expression systems (Escherichia coli, Pichia pastoris and Semliki Forest Virus infected mammalian cells) in order to select at each step of the process (production, solubilization, purification) the constructs that fulfilled quantity and quality (functionality) requirements for crystallization trials. In our team, we screened 38 of the 100 targets in P. pastoris. For each receptor, the clone with the highest production level was identified by dot-blot. The size and homogeneity of each receptor were then analyzed by Western-blot. The human adenosine A2A receptor showed a well-defined and pronounced single band and was thus selected for further characterization. The adenosine A2A receptor is a GPCR mainly localized in the central nervous system and, as it antagonizes dopaminergic activity, it has great potential as a drug target for the treatment of Parkinson’s disease. Functional characterization by binding assays with the specific antagonist [3H]-ZM241385 demonstrated a Bmax of 56 +/- 3 pmol/mg i.e. pmol of binder per milligram of total membrane protein, and a KD of 0.40 +/- 0.02 nM. Receptor production was then improved by lowering the induction temperature, decreasing the induction time and adding DMSO to the medium. For large-scale production, fermention reached around 300 g cells (wet weight)/L culture, which provided 43 mg of functional receptor in membranes per liter of culture. Functional solubilization was achieved with dodecyl-β-D-maltoside and the soluble yield was increased to 70-80 % of the membrane content by addition of cholesteryl hemisuccinate and increasing the ionic strength. The receptor was successfully purified via Ni-NTA and monomeric avidin chromatography in the presence of the antagonist ZM241385. This strategy produced a pure, homogeneous and stable receptor preparation with functionality demonstrated by radioligand binding assays. The total receptor yield after purification was routinely around 20 % of the membrane functional receptor content and 2 g of membranes provided 4 mg of pure receptor for crystallization trials. GPCRs are very difficult targets for crystallization, and co-crystallization with antibody fragments has been shown to be a successful method for crystallization of membrane proteins. In order to develop such a tool for the adenosine A2A receptor, a single-chain Fv (scFv) fragment specific to the purified receptor was selected by phage display. The receptor was functionally immobilized on the surface of streptavidin beads and after two rounds of selection, 6 different phages were identified several times. After production in E. coli and purification via Ni-NTA affinity chromatography, 4 out of the 6 scFv fragments were sufficiently enriched to be tested by ELISA. For the ELISA, the receptor was functionally immobilized via the biotinylation domain of the construct in a 96-well streptavidin-coated plate. The antibody fragments binding to the receptor were identified based on interaction with HRP-conjugated protein L. One scFv fragment gave a positive ELISA signal 10 fold above background and titration of the scFv fragment binding to the receptor was specific and saturable. However no complex of scFv fragment and receptor was observed on gel filtration. In order to have a more sensitive detection method, the scFv fragment was labeled with fluorescein: a complex was then observed up on gel filtration but the binding appeared to be non-specific. A pull-down assay with immobilized non-labeled scFv fragment finally confirmed the specificity of the binding, but also the low affinity of the interaction. Affinity maturation of this specific scFv fragment by a random mutagenesis and selection process should improve this parameter in order to obtain an adapted tool for co-crystallization.