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Transport of proteins into or across cellular membranes is mediated by the conserved and ubiquitous Sec-machinery. The Sec-homologue in the inner membrane of Escherichia coli is SecYEG. Sec-mediated insertion of numerous membrane proteins is aided by YidC, another protein integral to the inner membrane of Escherichia coli. YidC fulfils in addition the integration of a variety of membrane proteins Sec-independently. It belongs to a conserved but structurally uncharacterised family of proteins important for membrane protein biogenesis and comprises homologues in mitochondria and chloroplasts. By modification of a former crystallisation protocol two-dimensional crystals of SecYEG were grown in presence of the signal sequence peptide of LamB. Recording of structural data by electron cryo-microscopy and calculation of a difference structure comparing a former SecYEG projection structure with the one of SecYEG crystallised in presence of the substrate revealed several new and vacant densities. These hint to signal peptide binding close to the translocation pore and to significant rearrangements in proximity to the lateral exit site for transmembrane domains in SecYEG. The difference structure suggests that dimeric SecYEG is an asymmetric molecule consisting of one active and one inactive SecYEG monomer. Detergent removal from a mixture of purified YidC and lipids produced two-dimensional crystals that were highly dependent on the ionic strength and lipid composition for their growth. Electron cryo-microscopy on the frozen-hydrated crystals and image processing visualised structural details at about 10 Å resolution. Averaging two alternative projection structures in p2 and p121_a symmetry, respectively, yielded essentially the same features. Four YidC monomers form one unit cell (dimensions 82 x 71 Å, included angle 85 ° and 90 °, respectively) and seem to be arranged as two sets of dimers integrated in an anti-parallel fashion into the membrane. An area of low density in the centre of each YidC monomer resembles possibly a constriction of the membrane, which could have particular relevance for the integration of substrate proteins into the lipid bilayer.
Seit gezeigt wurde, dass die genetischen Informationen in Form von DNA gespeichert wird, ist das Geheimnis der DNA-Struktur gelöst, der Mechanismus der Gen-Expression und die Rolle der RNA verstanden worden. Das Interesse für die Chemie und die Biologie der Nukleinsäuren ist somit kontinuierlich gewachsen. Besonders interessant ist die RNA, die eine Rolle als ein Vermittler der genetischen Informationen (mRNA) spielt, aber auch als Bote von Aminosäuren (tRNA). Sie ist im Ribosom (rRNA) anwesend, arbeitet als Templat in Telomerasen für DNA-Synthese und hat außerdem wichtige Funktionen in der RNA-Spaltung, z.B. bei Ribozymen wie RNAse P inne. Betreffend bestimmter Spaltstellen in RNA hat auch das Phänomen der siRNA beträchtliche Aufmerksamkeit in diesem Prozess erregt. Der sogenannte RISC-Komplex wird programmiert, einzelsträngige RNA mit hoher Sequenz-Spezifität zu schneiden. Die für die RNA-Interferenz verantwortliche zelluläre Maschinerie ist auch an der Bilbung von MikroRNAs beteiligt. RNA-Interferenz ist heute eines der nützlichsten Werkzeuge in functional genomics geworden. Die große Hoffnung ist, dass es auch vielleicht in der Therapie angewandt werden könnte. Das Thema meiner Doktorarbeit trägt den Titel „Synthesis of Site-Specific Artificial Ribonucleases“. Es beschäftigt sich mit der Entwicklung künstlicher bindungsspezifischer Ribonucleasen. Diese künstlichen Katalysatoren sind im Wesentlichen aus drei Gründen bedeutsam: Zum einen liegt eine mögliche Anwendung in der Affinity-Cleavage (Affinitätsspaltung), eine Technik, die Bindungsstellen von RNA-Liganden durch das kovalente Anbringen eines Reagenzes lokalisiert, das zwischen den Nukleinsäuren schneidet. Zum anderen entsteht die Möglichkeit, neue Werkzeuge für eine gezielte Manipulation großer RNA-Moleküle zu schaffen. Die Vorteile des Ansatzes sind, dass man damit beliebige Zielsequenzen anwählen kann. Das Problem dieser Strategie ist die Notwendigkeit, hohe Genauigkeit im Spaltungssschritt zu erreichen, wie zum Beispiel mit natürlichen Ribozymen. Wichtige Ergebnisse wurden auch während meiner Arbeit erhalten, mit einem Fall von genauer Spaltung zwischen zwei Basen. Der dritte Grund ist die potentielle Anwendung als katalytische antisense-Oligonucleotide in der Chemotherapie. Gegenwärtig existieren zwei Ansätze, unspezifische künstliche RNasen relativ kleiner Größe zu schaffen. Der erste basiert auf Metallkomplexen und führt im Allgemeinen zu höheren Raten. Die Idee ist, ein Metall als elektrophiles Zentrum zur Unterstützung der Transesterfikation zu nutzen. Unter diesen Katalysatoren enthalten die effizientesten Lanthanid-Ionen, Cu2+ und Zn2+. Der zweite Ansatz zielt darauf ab, metallfreie künstliche Ribonucleasen zu entwickeln. Die Vorteile dieser Strategie sind, den Katalysator von der Stabilität der Metallkomplexe, die in vivo problematisch sein könnten, unabhängig zu machen. In diesem Ansatz wird die natürliche Katalyse durch Enzyme simuliert. Zweckmäßige Gruppen mit beschränkter katalytischer Aktivität z.B. als Nucleophile, Säuren oder Basen, werden in einer Weise zusammengesetzt, um Kooperation zu ermöglichen. Potente Katalysatoren können so ohne die Notwendigkeit von Metallen als Cofaktoren erzeugt werden. ...
The chemiosmotic theory suggested by Peter Mitchell (Mitchell, 1961, Nature 191:144-148; see Mitchell, 1979, Science 206:1148-1159 for review) postulated that the energy released upon the oxidation of electron donor substrates is transiently stored as electrochemical proton potential, delta-p across energy-transducing membranes, which acts then as the driving force for the ATP synthesis. Membrane protein complexes can both generate and utilise a transmembrane electrochemical proton potential, either by transmembrane proton transfer or by transmembrane electron transfer coupled to protolytic reactions on opposite sides of the membrane. The dihaem-containing membrane protein complex quinol:fumarate reductase (QFR) from the anaerobic epsilon-proteobacterium Wolinella succinogenes apparently combines both of these mechanisms (Haas et al, 2005, Biochemistry 44:13949-13961; Lancaster et al, 2005, PNAS 102:18860–18865; Mileni et al, 2005, Biochemistry 44:16718-16728; Madej et al, 2006, EMBO J 25:4963-4970). QFR is the terminal enzyme of anaerobic fumarate respiration that allows bacteria to use fumarate as the terminal electron acceptor (Kröger, 1978, Biochim Biophys Acta 505:129-45; Lancaster, 2004, In: Respiration in Archaea and Bacteria Volume 1:57-85). QFR couples the two-electron reduction of fumarate to succinate to the two-electron oxidation of quinol to quinone. QFR contains two haem b groups bound by the transmembrane subunit C, which are termed the ‘proximal haem’, bP, and the ‘distal haem’, bD, according to the relative proximity to the hydrophilic subunits A and B (Lancaster et al, 1999, Nature 402:377-85). The two-electron transfer via the two haem groups has been proposed (Lancaster, 2002, Biochimica et Biophysica Acta 1565:215-231) and demonstrated (Madej et al, 2006, EMBO J 25:4963-4970) to be coupled to a compensatory, parallel transfer of two protons via a transmembrane proton transfer pathway. The two most prominent constituents of the proposed pathway were suggested to be the haem bD ring C propionate and the side chain of amino-acid residue Glu C180, after which the proton transfer pathway was named the ‘E-pathway’ (Lancaster, 2002, Biochimica et Biophysica Acta 565:215-231). The essential role of Glu C180 was supported by site-directed mutagenesis and structural and functional characterization of the enzyme E180Q, where the Glu C180 was replaced with a Gln residue (Lancaster et al, 2005, PNAS 102:18860–18865). Moreover, multiconformer continuum electrostatics (MCCE) calculations (Haas and Lancaster 2004, Biophys J 87:4298-4315) and Fouriertransformed infrared (FTIR) spectroscopy experiments (Haas et al, 2005, Biochemistry 44:13949-13961) indicated the Glu C180 side chain to undergo a combination of a conformational change and protonation upon haem reduction. The contribution of haem bD propionate is less clear, however, a combination of 13C labelling of the haem propionates with redox-induced FTIR experiments (Mileni et al, 2005, Biochemistry 44:16718-16728) and MCCE calculations (Haas and Lancaster, 2004, Biophys J 87:4298-4315) support a change in protonation, possibly accompanied by a change in environment upon haem reduction. These experiments and their results strongly support the existence of the ‘E-pathway’ which is transiently open during the reduction of the haem groups and blocked in the oxidized state of the enzyme (Lancaster, 2002b, Biochim Biophys Acta 1565:215-231). All available crystal structures of the QFR, however, are those of the oxidized enzyme. Therefore, it is advantageous to perform simulations of various redox states of the enzyme to determine for instance, how the side-chain of Glu C180 and haem bD ring C propionate behave upon changes of the redox states of the haem groups and why is the ‘E-pathway’ blocked in the oxidized state of the enzyme. Although the distal haem ring C propionate and Glu C180 were identified as the most prominent components of the proton transfer pathway, it was not clear, on the basis of the structure, how proton transfer could occur between them. In addition, two constituents are not enough to span the membrane region and the additional participants in the proton transfer pathway must be identified. Since an atomistic investigation of proton transfer in this system is not yet possible experimentally, I used available theoretical methods such as classical molecular dynamics (MD) simulation (Alder and Wainwright, 1959, J Phys Chem 31:459-466; McCammon et al, 1977, Nature 267:585-590) and Q-HOP molecular dynamics (Q-HOP MD) simulation (Lill and Helms, 2001, J Chem Phys 115:7993-8005) to investigate the postulated mechanism of electron coupled proton transfer in QFR. MD simulations allowed us to move away from static difference pictures obtained from FTIR experiments and MCCE calculations. The advantage of the MD simulations over the experiments and the simulations performed so far is that the time-dependent properties could now be analyzed. The behaviour of various residues and their side-chains and any environmental changes may be directly observed during MD simulations. Although classical MD simulations cannot be used to study proton transfer reactions, they can provide information on formation of configurations that would allow either direct proton transfer between donor and acceptor residues or indirect proton transfer mediated by water molecules. To avoid the static protonation of residues which is inherent in classical MD simulations, Q-HOP MD simulations were performed which explicitly describe proton transfer reactions by allowing the change of the protonation state of residues ‘on the fly’. The structures obtained after classical molecular dynamics simulations ....