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This thesis investigates the structure of the translocase of the outer membrane (TOM) complex in mitochondria, focusing on the TOM holo complex through single-particle electron cryo-microscopy (cryoEM) complemented by mass spectrometry and computational structure prediction. Mitochondria, crucial for energy production in eukaryotic cells, import most of their proteins from the cytoplasm. These proteins enter through the TOM complex, which in its core form consists of a membrane-embedded homodimer of Tom40 pores, two Tom22 cytoplasmic receptors, and six small TOM stabilizing subunits (Tom7, Tom6, and Tom5). The holo complex includes two additional subunits, Tom70 and Tom20, whose stoichiometry and positioning are less understood due to their easy dissociation during isolation of the complex. CryoEM analysis revealed the high-resolution structure of the Neurospora crassa TOM core complex at 3.3 Å, containing all core subunits, and the presence of a central phospholipid causing the Tom40 dimer to tilt to 20°. Furthermore, a 4 Å resolution map indicated the binding of a precursor protein as it transitions through the translocation barrel. Finally, at 6-7 Å resolution, the structure of the TOM holo complex highlighted Tom20's flexibility as it interacts with the core complex, emphasizing its role in protein translocation. This work provides significant insights into the architecture and functioning of the TOM complex, contributing to the understanding of mitochondrial protein import mechanisms.
Solute carrier (SLC) are related to various diseases in human and promising pharmaceutical targets but more structural and functional information on SLCs is required to expand their use for drug design and therapy. The 7-transmembrane segment inverted (7-TMIR) fold was identified for the SLC families 4, 23 and 26 in the last decade thus detailed analysis of the structure function relationship of one of these families might also yield insights for the other two. SVCT1 and SVCT2 from the SLC23 family are sodium dependent ascorbic acid transporters in human but structural analysis of the SLC23 family is exclusively based on two homologs – UraA from E. coli and UapA from A. nidulans – yielding two inward-facing and one occluded conformation. In combination with outward-facing conformations from SLC4 transporters, and additional information from the SLC26 family, an elevator transport mechanism for all 7-TMIR proteins was identified but detailed mechanistic features of the transport remain elusive due to the lack of multiple conformations from individual transporters.
To increase the understanding of 7-TMIR protein structure and function in this study, the transport mechanism of SLC23 transporters was analyzed by two strategies including selection of alpaca derived nanobodies and synthetic nanobodies against UraA as prokaryotic model protein of the SLC23 family. The second strategy involved mutagenesis of UraA at functional relevant positions regarding the conformational change during transport. Therefore, available structures of 7-TMIR proteins and less related elevator transporters were analyzed and a common motif identified – the alpha helical inter-domain linkers. The proposed rigid body movement for transport in combination with the characteristic alpha helical secondary structure of the linkers connecting both rigid bodies led to the hypothesis of functional relevance of the linkers and a conformational hinge being located in close proximity to the linkers. These positions were identified and used to modulate the biophysical properties of the transporter. Mutagenesis at three relevant positions led to loss of transport functionality and these UraA variants could be recombinantly produced and purified to further examine the underlying mechanistic effects. The variants UraAG320P and UraAP330G from the periplasmic inter-domain linker showed increased dimerization and thermal stability as well as substrate binding in solution. The substrate affinity of UraAG320P was identified to be 5-fold higher compared to the wildtype. The solvent accessibility of the substrate binding site in UraAG320P and UraAP330G revealed reduced open probability that indicated an altered conformational space compared to UraAWT. This phenomenon was analyzed in more detail by differential hydrogen-deuterium exchange mass spectrometry and the results supported the hypothesis of a reduced open probability and gave further insights into the impact of the two mutations in the periplasmic inter-domain linker in UraA.
This thesis further presents strategies for phage display selection of nanobodies with epitope bias and a post selection analysis pipeline to identify nanobodies with desired binding characteristics. Thereby, whole cell transport inhibition highlighted periplasmic epitope binders and conformational selectivity. A cytoplasmic epitope could be identified by pulldown with inside-out membrane vesicles for one cytoplasmic side binder. Thermal stabilization analysis of the target protein in differential scanning fluorometry was performed in presence of two different nanobodies to identify simultaneous binding by additional thermal stabilization respectively competition by intermediate melting temperatures. Combination of epitope information with simultaneous DSF could be used to identify the stabilization of different UraA conformations by a set of binders and presents a general nanobody selection strategy for other SLCs. Synthetic nanobodies (sybodies) were also included in the analysis pipeline and Sy45 identified as promising candidate for co-crystallization that gave rise to UraAWT crystals in several conditions in presence or absence of uracil. Similar crystals could be obtained in combination with UraAG320P that were further optimized to gain structural information on this mutant. The structure was solved by molecular replacement and the model refined at 3.1 Å resolution confirming the cytoplasmic epitope of Sy45 as predicted by the selection pipeline. The stabilized conformation was inward-facing similar to the reported UapA structure but significantly different to the previously reported inward-facing structure of UraA. The structure further confirmed the structural integrity of the UraA mutant G320P. Despite the monomeric state of UraA in the structure, the gate domain aligned reasonably well with the gate domain of the previously published dimeric UraA structure in the occluded conformation and allowed detailed analysis of the conformational transition in UraA from inward-facing to occluded by a single rigid body movement. Thereby little movement in the gate domain of UraA was observed in contrast to a previously reported transport mechanism. Core domain rotation around a rotation axis parallel to the substrate barrier was found to explain the major part of conformational transition from inward-facing to occluded and experimentally supported the hypothesized mechanism by Chang et al. (2017). Additionally, the conformational hinge around position G320 in UraA could be identified as well as the impact of the backbone rigidity introduced by the highly conserved proline residue at position 330 in UraA on the conformational transition. This position was found to serve as anchoring point the inter-domain linker and determines the coordinated movement of inter-domain linker and core domain. The functional analysis further highlighted the requirement of alpha helical secondary structure within the inter-domain linker that serves as amphipathic structural entity that can adjust to changed core-gate domain distances and angles during transport by extension/compression or bending while preserving the rigid linkage.
The applied strategies to modulate the conformational space of UraA by mutagenesis at the hinge positions in the inter-domain linkers is transferrable to other transporters and might facilitate their structural and functional characterization.
Further, this study discusses the conformational thermostabilization of UraA that is based on increased melting temperatures upon restriction of its conformational freedom. The term ‘conformational thermostabilization’ introduced by Serrano-Vega et al. (2007) could be experimentally supported and the direct correlation between the conformational freedom and thermostabilization was qualitatively analyzed for UraA. The concept of conformational thermostabilization might help in characterization of other dynamic transport systems as well.
Specialized transporter proteins facilitate controlled uptake and extrusion of molecules across biological membranes that would otherwise be impermeable to them. The superfamily of solute carriers (SLC) comprises the second largest group of membrane proteins in humans, acting on a variety of small polar and non-polar molecules and ions. Because of their central role in metabolism, malfunctioning of these proteins often is pathogenic. The interest in SLC transporters as drug targets – as well as for drug delivery – has therefore increased in the past years. For many SLC subfamilies, however, structural and functional information remains scarce to date.
The here presented data provides important insights into different aspects of the transport mechanism of the SLC23 and SLC26 protein families. Importantly, we show that SLC23 nucleobase transporters, in contrast to what was been previously reported, work as uniporters rather than as proton-coupled symporters. In order to do so, we developed the first and only in vitro transport assay for the SLC23 family, which enables investigation of protein function in a defined environment. Moreover, we provide a hypothesis on the role of the extremely conserved negative charged substrate binding site residue found not only in the SLC23, but also SLC4 and SLC26 families. Based on a detailed analysis of binding and transport we conclude that this conserved negative charged has a relevance for protein stability rather than for substrate binding, which explains its conservation for all three protein families that otherwise differ in their substrate specificities and modes of transport. Lastly, we investigated the relevance of oligomerization for the SLC23 and SLC26 families, highlighting the importance of the STAS domain for forming active dimers in the SLC26 anion transporter family.
The ubiquinol:cytochrome c oxidoreductase is a key component of several aerobic respiratory chains in different organisms. It is an integral membrane protein complex, made up of three catalytic subunits (cytochrome b, cytochrome c1 and Rieske iron sulphur protein) and up to eight additional subunits in mitochondria. The complex oxidizes one quinol molecules and reduces two cytochrome c during the Q cycle, originally described by Peter Mitchell. Electrons are split between the low and the high potential chain and protons are released on the positive side of the membrane, increasing the protonmotive force needed by the ATP-synthase for energy transduction. The cytochrome bc1 complex from P. denitrificans is a perfect model for structural and functional studies. Bacteria are easy to grow and the genetic material is readily accessible for genetic manipulation. Moreover, the P. denitrificans aerobic respiratory chain is very close to the mitochondrial one: the complexes involved in electron transfer resemble the ones found in mitochondria, but lack most of the additional subunits. As a unique feature, P. denitrificans has a strongly acidic domain at the N-terminal region of the cytochrome c1, a sequence of 150 aminoacids which does not correlate with any known protein. An analogous composition can be found in the eukaryotic cytochrome bc1 complex as a part of an accessory subunit, proposed to be involved in facilitating electron transfer between the complex and the electron acceptor cytochrome c. In order to study the function of this domain in the P. denitrificans cytochrome bc1 complex, a deletion mutant has been previously cloned and modified with an affinity tag as a C-terminal extension of cytochrome b. The complex is purified by affinity chromatography and characterized by steady-state kinetics using not only horse heart cytochrome c but also the endogenous electron acceptor, the membrane bound cytochrome c552, employed here as a soluble fragment. Steady–state kinetics indicate that the deletion of the long acidic domain had effects neither on the turnover rate nor on the apparent affinity for the substrate. To understand wether the deletion affects the reaction between the cytochrome bc1 complex and the substrate, laser flash photolysis experiments are performed, showing that the interaction observed was not changed in the complex missing the acidic domain. The results presented in this work confirm the ones previously obtained by Julia Janzon using soluble fragments of the same interaction partners. The deletion, however, affected the oligomerization state of the complex, as shown by LILBID (Laser Induced Liquid Bead Ion Desorption) analysis. The wild type complex has a tetrameric structure, better described as a “dimer of dimers”. The deletion of the acidic domain on the cytochrome c1 results in the separation of the two dimers, yielding the canonical dimer. Therefore, the complex deleted in the acidic domain is used for cloning and expression of a heterodimeric complex, containing an inactivating mutation in the quinol oxidation site in only one monomer, thus allowing a selective switch-off for half the complex. Such a complex is needed for the verification of an internal regulation mechanism, the half-of-the-sites reactivity. According to it, the dimeric structure of the cytochrome bc1 complex has functional implications, since the two monomers can communicate and work in a coordinated manner. This approach confirms that substrate oxidation does effectively take place only in one of the two monomers constituting the dimer, and that the binding of substrate at the Qo and Qi site regulates the switch between active and inactive monomer. Moreover, this mechanism works also as an effective protection against the reaction of quinone intermediates with oxygen and the formation of reactive oxygen species (ROS), responsable for cellular aging. The motion of the ISP head domain is also addressed in this work; in particular the mechanism which regulates the movements towards the cytochrome c1 and the electron bifurcation at the quinol oxidation site. Laser flash kinetics in presence of several inhibitors and the substrate allow studying the response of the ISP to the binding of different species at the quinol oxidation site. The binding of ligand at the Qo site in the complex triggers the conformational switch in the ISP head domain, supporting the mechanism proposed in the literature according to which the Qo site is able to “sense” the presence of substrate and transfer the information to the ISP, regulating its mobility. The internal electron pathway between the ISP and the cytochrome c1 has been analyzed also by stopped-flow kinetics, in presence and absence of inhibitors. The results indicate that two kinetic phases describe the reduction of cytochrome c1 by the ISP, and a model for the simulation of the data is proposed.
Infections with multidrug resistant bacterial strains like Escherichia coli, Klebsiella pneumoniae, Pseudomonas aeruginosa or Acinetobacter baumanii that can accumulate resistance mechanisms against different groups of drugs cause increasing problems for the health care system. Multidrug efflux pumps are able to transport different classes of substances, providing a basic resistance to different antibiotics. Especially when they are overexpressed they can keep bacterial cells alive under antibiotic pressure unless other high level resistance mechanisms like expression of β-lactamases are established. One example for a clinically relevant multidrug efflux pump is the AcrAB/TolC tripartite system of E. coli, that transports a variety of different substrates, including besides antibiotics dyes, detergents, bile salts and organic compounds from the periplasm or the inner membrane out of the cell. AcrB is the inner membrane component of the protein complex that determines not only the substrate specificity of the tripartite system but energises the transport through the whole system process via proton transduction as well. TolC is the outer membrane spanning protein that forms a pore in the outer membrane enabling the system to transport drugs over the latter out of the cell. The periplasmic membrane fusion protein AcrA connects AcrB and TolC in the periplasm completing the channel from the periplasm, respective the inner membrane to the extracellular space. AcrB assembles as trimers, in asymmetric crystal structures each of the protomers adapts a different conformation designated L(oose), T(ight) and O(pen). In the protomers tunnels open up and collaps in different conformations. In the L protomer a periplasmic cleft opens up that can initially bind substrates to the periplasmic part of AcrB. In the T conformation the deep binding pocket opens that is assumed to bind substrates tightly that were bound to the access pocket before. As well in the T conformation a second pathway leading to the deep binding pocket opens that can guide substrates from a groove between transmembrane helices TM7, TM8 and TM9, the TM8 groove, that is connected with socalled tunnel 1 that ends in the deep binding pocket. In the O conformation a new tunnel opens that connects the collapsing deep binding pocket with the periplasmic space, respective the channel through the periplasmic space formed from AcrA and TolC. Substrates were cocrystallised in access and deep binding pocket verifying their role in substrate transport. In the TM8 groove in high resolution crystal structures DDM molecules were cocrystallised in L and T conformation, indicating that the AcrB substrate DDM may utilise this entrance to the deep binding pocket. The asymmetry observed in the AcrB trimers trongly suggests a peristaltic pump mechanism. The functional rotation cycle demands communication between the subunits and tight control of substrate load of protomers during the transport to optimise the ration between protons that are transduced and substrates transported. Indeed it was shown that AcrB transport mechanism is positively cooperative for some β-lactam substrates. For the communication between the subunits it was assumed that ionic interaction between ion pairs established between charged amino acids at the interfaces of protomers in different conformations are of special importance. Thus the amino acids engaged in ionic interactions, respective ion pairs D73-K131, E130-K110, D174-K110, R168, R259-E734 were substituted with non-charged amino acids pairwise and phenotypes were determined in plate dilution assays and MIC experiments. No evidence for a general, substrate independent, reduction of AcrB activity, that would be expected when the ionic residues are of special importance for AcrB function, could be found with the methods applied. Substitutions were not only combined pairwise according to the putative ion pairs but as well in combinations of R168A with D174N, E130Q and K131M. AcrB activity is reduced for the variant R168A_D174N significantly, activity decreases further for quadruple variant E130Q_K131M_ R168A_D174N. Because the reduced activity is only observed in this combination of substitutions the phenotype must result from accumulation of small effects of the single substitutions. R168A may destabilise the protomer interfaces, as its side chain is oriented in direction to the neighbouring protomer at all interfaces, enhancing substratespecific effects of substitutions E130Q, K131M, D174N that are not in all conformations oriented towards the neighbouring protomer but as well along the substrate transport pathway. Further investigations to figure out the details of the effects observed were not conducted because fluctuating expression of the variants hindered experimental procedures.
In another approach TM8 was in focus of the interest. As mentioned above it is a possible substrate entrance in the inner membrane. The linker between TM8 and the periplasmic PC2 subdomain undergoes a coil-to-helix transition when AcrB cycles through L, T and O conformations. Linking the transmembrane part of AcrB that provides the energy for the transport process via proton transduction with the periplasmic part harbouring the major part of the substrate pathway assignes TM8 and the periplasmic linker (859-876) an important role in the function of AcrB. Thus it was investigated with an alanine-scan of residues 859 to 884 and G/P respective P/G exchange followed by phenotype characterisation in growth curve and plate dilution assays of selected variants. In the phenotype determinations none of the variants, except G861P that seems to cause massive sterical restriction in an α-helical region, displayed a general, substrate independent decrease of AcrB activity. Thus it is concluded that the individual properties of amino acids in TM8 and the periplasmic linker are not of general importance for the mechanism of AcrB. The substitution of individual amino acids had impact on uptake of different substrates in plate dilution assays in a substrate dependent manner. The uptake of some substrates, like erythromycin or chloramphenicol is more affected than that of others with rhodamine 6G resistance being only reduced for the G861P variant. A relation between the PSA of substrates and reduced activity of AcrB was observed. in Substrates with higher PSA values are more affected by substitutions in TM8 or periplasmic linker, resulting in the conclusion that substrates with higher PSA are more likely to be taken up via the TM8 groove/tunnel 1 pathway than those with lower PSA values.
Structure-function relationships in substrate binding protein dependent secondary transporters
(2023)
This work provides new insights into the relevance of SBP dependent secondary transport systems, especially in the thus far under-researched subgroup of TAXI transporters. Importantly, we identified and characterized the TAXI transport system TAXIPm-PQM from Proteus mirabilis. We demonstrated that, in contrast to previously characterized SBP dependent secondary transport systems, TAXIPm-PQM is a proton coupled system and transports the C5-dicarboxylate α- ketoglutarate. Since initially the transport of α-ketoglutarate could only be demonstrated in vivo but not in vitro using established protocols (Mulligan et al. 2009), we investigated in detail the differences between the in vivo and in vitro assay. This resulted in a bioinformatic analysis of TRAP and TAXI signal peptides, which strongly implied that TAXIPm-P requires a transmembrane anchor to allow for transport. We then provided TAXIPm-P surface tethered to the membrane in in vitro transport assays and confirmed the prediction of our bioinformatic analysis that TAXIPm-PQM deploys a membrane-anchored instead of a soluble SBP. Furthermore, the TAXI transport system TAXIMh-PQM from Marinobacter hydrocarbonoclasticus transports fumarate only if both membrane domains Q and M are present. For further characterization, Michaelis-Menten kinetics and affinities were determined for both TAXI transport systems TAXIPm-PQM from Proteus mirabilis and TAXIMh-PQM from Marinobacter hydrocarbonoclasticus. In addition, nanobodies were selected for the membrane domain TAXIPm-QM from Proteus mirabilis to stabilize different conformations which can serve in subsequent structural elucidation studies. Furthermore, the TRAP SBP TRAPHi-SiaP from Haemophilus influenzae was shown to interact not only with its corresponding membrane domain TRAPHi-SiaQM but with at least one additional transporter. It was thereby excluded that TRAPHi- SiaP transfers N-acetylneuraminic acid to the only native E. coli TRAP transporter TRAPEc-YiaMNO and suggested to rather interact with a SBP dependent ABC transport system as this protein family represents the largest SBP dependent protein group in E. coli (Moussatova et al. 2008).
ATP-binding cassette (ABC) transporters constitute an omnipresent superfamily of integral membrane proteins, which catalyze the translocation of a multitude of chemically diverse substrates across biological membranes. In humans, ABC transporters typically act as highly promiscuous exporters, responsible for many physiological processes, multi-drug resistance, and severe diseases, such as hypercholesterolemia, lipid trafficking disorders, and immune deficiency. In all ABC transporters, ATP-driven movements within two highly conserved nucleotide-binding domains (NBDs) are coupled to conformational changes of two transmembrane domains (TMDs), which provide a framework for substrate binding and release on the opposite side of the membrane and enable the transporter to cycle between inward-facing and outward-facing orientations. Several structures of ABC transporters determined either by X-ray crystallography or single-particle electron cryo-microscopy (cryo-EM) have been reported, mostly exhibiting a variation of the inward-facing state, which highlights their dynamic behavior. However, for a complete understanding of the conformational dynamics, further structural information on intermediates is needed – especially for heterodimeric ABC transporters, which are predominant in humans and for which only limited structural information is available.
One prime example of such human heterodimeric ABC transport complexes is the transporter associated with antigen processing (TAP). TAP is a key player of the adaptive immune response, because it translocates proteasomal degradation products into the ER lumen for loading of MHC I molecules. Many functional aspects of TAP have been disclosed in recent years. However, structural information is lacking far behind and a major challenge in the field of medical relevant transporters. Recently, the heterodimeric ABC export system TmrAB (Thermus thermophilus multidrug resistance proteins A and B) was identified as an ortholog of TAP, by sharing structural homology with TAP and, intriguingly, being able to restore antigen presentation in human TAP-deficient cells. Thus, TmrAB is a biochemically well-characterized ABC exporter that can be regarded as a functional ortholog of TAP and serves as a model system for (heterodimeric) ABC export systems in general.
Thus, to illuminate the molecular basis of substrate translocation by single-particle cryo-EM, one of the main objectives of this work was the generation of stabilizing chaperones (synthetic antibodies, nanobodies, cyclic peptides) to reduce the conformational heterogeneity of TAP and TmrAB. Selected antibodies were analyzed with respect to stable complex formation, conformational trapping, and the ability to serve as alignment tools for structural studies by single-particle cryo-EM. Both antibody types were shown to form sufficiently stable complexes to serve as a rigid body for EM analyses. However, all selected antibodies bound to the inward-facing state exclusively.
Hence, for EM studies, various ligands were added to elucidate the full spectrum of conformational states during the catalytic cycle. For TAP, first attempts by negative-stain EM revealed a homogenous distribution of particles on the grid. Surprisingly, no transporter-like features were observed although various attempts were applied to increase the overall sample quality.
For TmrAB, in contrast, the complete conformational space in a native-like lipid environment under turnover conditions was mapped. Cryo-EM analysis of TmrAB incubated with ATP-Mg2+ and substrate revealed two distinct inward-facing conformations (IFwide and IFnarrow) as well as two asymmetric conformations with dimerized NBDs, which were markedly different from all previously reported structures. Here, the catalytically active site was slightly wider and contained ADP, while ATP was still bound at the catalytically-inactive site within the NBDs, demonstrating an asymmetric post-hydrolysis state. Intriguingly for the inward-facing conformations, a weak additional density close to residues M139TmrB and W297TmrB was observed in the inward-facing conformation, which displayed a higher degree of cytosolic gate opening (IFwide) indicating the presence of substrate. To verify that this density corresponds to substrate, single alanine mutations of M139TmrB and W297TmrB were introduced, leading to a strong reduction in substrate binding and transport. Since substrate release requires the opening of the extracellular gate, the absence of an outward-facing open conformation indicated that the opening must be highly transient. In order to explore the outward-facing open conformation, a cryo-EM analysis of the catalytically-inactive TmrAE523QB mutant upon incubation with ATP-Mg2+ was performed. Remarkably, within the same dataset, two different outward-facing conformations (occluded and open) were resolved, both in an ATP-bound state, which indicated that binding of ATP is sufficient to drive the large-scale conformational transition from inward-facing to outward-facing open. To explore the effect of nucleotide hydrolysis, TmrAB was trapped by vanadate. Again, two populations were observed, representing the outward-facing open and outward-facing occluded conformation.
Based on several structures of key intermediates, determined under turnover conditions or trapped in the pre-hydrolysis and hydrolysis transition state, for the first time the complete description of the ATP hydrolysis and translocation cycle of a heterodimeric ABC transport complex was elucidated in one single study. By mapping the conformational landscape during active turnover, aided by mutational and chemical modulation of kinetic rates, fundamental and so-far hidden steps of the substrate translocation cycle of asymmetric ABC transporters were resolved and a general template for (heterodimeric) ABC exporter-catalyzed substrate translocation was provided.
Während meiner Promotion habe ich zwei Projekte unter der Aufsicht von Dr. Misha Kudryashev durchgeführt. Im ersten Projekt habe ich die Strukturen des Ryanodinrezeptors 1 (RyR1) in Apo- und Ryanodin-Bindungszuständen in der nativen Membran durch Tomographie und Subtomogramm-Mittelung bei 12,6 bzw. 17,5 Å bestimmt. Im Vergleich zur Struktur von gereinigtem RyR1 unter Verwendung der Einzelpartikel-Kryo-Elektronenmikroskopie (Cryo-EM) können zusätzliche Dichten in der cytoplasmatischen Domäne und der sarkoplasmatischen Retikulum (SR)-Membran bzw. im SR-Lumen beobachtet werden. Die Auflösung der Struktur von RyR1 im Apo-Zustand wurde von den Kollegen in meinem Labor mithilfe der Hybridmethode auf 9,5 Å verbessert. Diese Arbeit hat unser Verständnis für die Mechanismen von RyR1 in nativen Membranen erweitert. Im zweiten Projekt habe ich die Struktur des Proteins SdeC der SidE-Familie durch Einzelpartikel-Kryo-EM bei 4,6 Å bestimmt. Die Kristallstruktur des C-Terminus von SdeA wurde von meinem Forschungspartner Dr. Mohit Misra gelöst. Durch Überlagerung einer gemeinsamen Helix dieser beiden Strukturen konnten wir ein kombiniertes Modell erstellen und ein allgemeines Verständnis der Proteine der SidE-Familie erhalten.
Structural determinants for substrate specificity of the promiscuous multidrug efflux pump AcrB
(2013)
Opportunistic Gram-negative pathogens such as Escherichia coli, Klebsiella pneumoniae, Acinetobacter Baumanii and Pseudomonas aeruginosa are becoming more and more multiresistant against many commonly available antibiotics [39, 40]. An important resistance mechanism of Gram-negative bacteria is the efflux of noxious compounds by tripartite systems [39, 41-44]. The best studied and most clinically relevant tripartite system is the AcrA-AcrB-TolC system of Escherichia coli, where substrate recognition and energy transduction takes place in the inner membrane protein AcrB. AcrB has a remarkably huge substrate spectrum and can recognize structurally diverse molecules, such as hexan in contrast to erythromycin, as its substrates [45]. Therefore, overproduction of the tripartite system can render a Gram-negative pathogen resistant against multiple antibiotics at once. The mechanisms of how AcrB is able to recognize such an enormous spectrum of molecules as substrates, without compromising its specificity (e.g. by neglecting essential compounds like lipids or gluclose as its susbtates), remained puzzling. Structural insight into substrate specificity was so far limited to two co-crystal structures of AcrB, where minocycline and doxorubicin, respectively, were identified bound to an internal binding pocket of AcrB. This binding pocket is particularly deeply buried into internal parts of the T monomer of AcrB and was, therefore, denoted deep binding pocket (DBP). Analysis of several AcrB co-crystal structures with substrate molecules bound to the DBP [4, 23, 25] indicated that the substrate promiscuity involved multisite binding modes within the DBP. Multisite binding modes, where different substrate molecules can bind to slightly different positions and orientations to the same binding pocket, is a common feature of multidrug recognizing proteins such as QacR or BmrR [27-29]. Nevertheless, AcrB's substrate spectrum is much broader than substrate spectra of most other multidrug recognizing proteins. Therefore, it is likely that additional mechanisms are involved in mediating the observed high substrate promiscuity of AcrB. In our recently published high-resolution AcrB/doxorubicin co-crystal structure (pdb entry: 4DX7 [23]) we were able to identify two additional substrate binding pockets in the L monomer of AcrB: i) the access pocket (AP), with an opening towards the periplasm, and ii) a putative binding site in a groove between transmembrane helices 8 and 9 (TM8/TM9 groove), accessible from the lipid layer of the inner membrane. Both binding pockets are likely to be access sites for substrates towards AcrB. Furthermore, each of the binding pockets are possibly specialized to recognize a specific subset of the entire substrate spectrum of AcrB, i.e. highly hydrophobic substrates (e.g. n-dodecyl-ß-d-maltoside or sodium dodecylsulfate) might access AcrB towards the TM8/TM9 groove and water soluble substrates (e.g. berberine) might access AcrB towards the AP. Since substrates will accumulate in the membrane or the periplasm according to their hydrophilic or hydrophobic nature, substrates will be "pre-selected" by the medium, rather than by the protein itself, and guided to their appropriate access site. This process is proposed to be called "medium- mediated pre-selection". The AcrB/doxorubicin co-crystal structure (pdb entry: 4DX7 [23]) furthermore revealed that the AP and DBP are in next neighborhood to each other and are separated by a switch loop. This switch loop adopts distinct conformations in the L, T and O monomers. Specific switch loop conformations are strongly involved in coordinating the selective occupation of both binding pockets, the AP and the DBP. The conformation of the switch loop in the L monomer (L-switch loop) opens the AP and closes the DBP, whereas the conformation of the switch loop in the T monomer (T-switch Loop) opens the DBP and closes the AP. An analysis of all asymmetric AcrB structures indicated that the L-switch loop is able to adopt multiple distinct conformations, whereas the conformation of T-switch loop remained largely congruent in all crystal structures. Moreover, each distinct switch loop conformation, observed in co-crystal structures of AcrB with occupied AP [4, 23], was perfectly adapted to the bound substrate molecule. Therefore, the putatively flexible switch loop is likely to act as an adaptive module and mediates a high binding pocket plasticity without altering the global protein structure. This binding mode is called adaptor-mediated binding mechanism, where an flexible adaptive module (like the switch loop) is able to adapt the surface shape of an binding pocket to different substrate molecules. Furthermore, structural and biochemical analyses of an AcrB G616N variant, revealed the involvement of specific switch loop conformations in the substrate specificity of AcrB. A substitution of G616, located on the switch loop, to N616 was able to alter the conformation of the switch loop exclusively in the L monomers of AcrB, whereas the switch loop conformations in T and O monomers remained congruent to the conformations observed in crystal structures of wildtype AcrB. Moreover, cells producing the AcrB G616N and MexB, both bearing the G616N amino acid substitution, exhibited a reduced resistance against certain substrates, whereas the resistance against most other substrates remained on the level of wildtype AcrB. Correlations of the phenotypes with minimal projection areas, a novel 2-spatiodimensional parameter which approximates the size of a substrate molecule, revealed that AcrB variants with a G616N substitution have a reduced efflux activity for exclusively large substrate molecules. The rejection of large substrates is most likely connected with altered L-switch loop conformations....
NADH:ubiquinone oxidoreductase (Complex Ⅰ) is the first and largest enzyme in the respiratory chain. It catalyzes the transfer of two electrons from NADH to ubiquinone via a series of enzyme-bound redox centers - Flavin mononucleotide (FMN) and iron-sulfur (Fe-S) clusters – and couples the exergonic reaction with the endergonic translocation of four protons across the membranes. Bacteria contain the minimal form of complex I, which is composed of 14 conserved core subunits with a molecular mass of around 550 kDa. Complex Ⅰ has an L-shaped structure which can be subdivided into two major parts (arms). The hydrophilic arm protruding into the bacterial cytosol (or mitochondrial matrix) harbors the binding site for the substrate NADH, the two- to one-electron switch FMN and all one-electron transferring Fe-S clusters and therefore considered as the catalytic unit. The membrane arm consists of the membranespanning subunits and conducts the proton pumping process. The Quinone binding site is located at the interface of both arms. ...