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The Q80K polymorphism in the NS3-4A protease of the hepatitis C virus is associated with treatment failure of direct-acting antiviral agents. This polymorphism is highly prevalent in genotype 1a infections and stably transmitted between hosts. Here, we investigated the underlying molecular mechanisms of evolutionarily conserved coevolving amino acids in NS3-Q80K and revealed potential implications of epistatic interactions in immune escape and variants persistence. Using purified protein, we characterized the impact of epistatic amino acid substitutions on the physicochemical properties and peptide cleavage kinetics of the NS3-Q80K protease. We found that Q80K destabilized the protease protein fold (p < 0.0001). Although NS3-Q80K showed reduced peptide substrate turnover (p < 0.0002), replicative fitness in an H77S.3 cell culture model of infection was not significantly inferior to the WT virus. Epistatic substitutions at residues 91 and 174 in NS3-Q80K stabilized the protein fold (p < 0.0001) and leveraged the WT protease stability. However, changes in protease stability inversely correlated with enzymatic activity. In infectious cell culture, these secondary substitutions were not associated with a gain of replicative fitness in NS3-Q80K variants. Using molecular dynamics, we observed that the total number of residue contacts in NS3-Q80K mutants correlated with protein folding stability. Changes in the number of contacts reflected the compensatory effect on protein folding instability by epistatic substitutions. In summary, epistatic substitutions in NS3-Q80K contribute to viral fitness by mechanisms not directly related to RNA replication. By compensating for protein-folding instability, epistatic interactions likely protect NS3-Q80K variants from immune cell recognition.
Für das Verständnis der Proteinfaltung ist es von Interesse, die phi,psi-Torsionswinkelverteilung und deren Abhängigkeiten innerhalb einer Polypeptidkette zu kennen. Mit der in dieser Arbeit verwendeten Kombination aus MD-Simulation und NMR-Spektroskopie wird die Abhängigkeit der Konformationsverteilung kurzer alaninbasierter Modellpeptide mit einer Genauigkeit von 5 % bestimmt. Die Berechnung der thermischen Populationen der einzelnen Konformationen beruht auf einer Minimierung der Differenz aus experimentellen und berechneten skalaren Kopplungskonstanten. Trialanin populiert überwiegend den Bereich der Polyprolin Typ II Helix (~ 90 %) und daneben den beta-Faltblattbereich mit ca. 10%, jedoch nicht den alphaR-helicalen Bereich. Diese Konformationsverteilung ändert sich nicht signifikant mit zunehmender Kettenlänge in der Peptidreihe Ala3 bis Ala7. Das in der Seitenkette verzweigte Trivalin populiert dagegen alle drei Konformationsbereiche signifikant. Aufgrund der Periodizität der Torsionswinkel populiert Triglycin einen zusammenhängenden Bereich, der sich an den vier Ecken des Ramachandran-Diagramms befindet. Zudem befindet es sich in einem langsamen konformationellen Gleichgewicht zwischen der cis- und trans-Konformation der Peptidbindung. Die Temperaturabhängigkeit der Konformationsverteilung wird am Beispiel von Trialanin untersucht. Die 3J(HN,Ha) Kopplungskonstanten nehmen linear mit der Temperatur zu. Dies ist auf eine Zunahme des beta-Faltblattanteils zurückzuführen und kann theoretisch beschrieben werden. Die Konformationsverteilung der Trialaninsequenz innerhalb einer heteropolymeren Aminosäuresequenz ist von der Kettenlänge der an dem N- und C-Terminus angefügten heteropolymeren Aminosäuresequenz abhängig. Dies wird an zwei Peptiden, abgeleitet von der Sequenz des Proteins Lysozym aus Hühnereiweiß, gezeigt. Das kürzere Peptid hat an beiden Enden jeweils drei Aminosäurereste angefügt, das längere jeweils acht Aminosäurereste. Die Konformationsverteilung der Trialanisequenz des kürzeren Peptids entspricht nahezu der in der Peptidreihe Ala3 bis Ala7. Die Verteilung des längeren Peptids ist dagegen deutlich verschieden (~ 35% alphaR-helicaler Anteil). Die 1HN und 15N chemischen Verschiebungen der Trialaninsequenz des längeren Peptids sind mit denen des entfalteten Lysozym-Proteins identisch und demzufolge aller wahrscheinlichkeit nach auch die Konformationsverteilung. Kurze homopolymere Peptide eignen sich deshalb nicht als Modell für Aminosäuresequenzen in längeren heteropolymeren Peptiden.
The C40A/C82A double mutant of barstar has been shown to undergo cold denaturation above the water freezing point. By rapidly applying radio-frequency power to lossy aqueous samples, refolding of barstar from its cold-denatured state can be followed by real-time NMR spectroscopy. Since temperature-induced unfolding and refolding is reversible for this double mutant, multiple cycling can be utilized to obtain 2D real-time NMR data. Barstar contains two proline residues that adopt a mix of cis and trans conformations in the low-temperature-unfolded state, which can potentially induce multiple folding pathways. The high time resolution real-time 2D-NMR measurements reported here show evidence for multiple folding pathways related to proline isomerization, and stable intermediates are populated. By application of advanced heating cycles and state-correlated spectroscopy, an alternative folding pathway circumventing the rate-limiting cis-trans isomerization could be observed. The kinetic data revealed intermediates on both, the slow and the fast folding pathway.
Folding of G-protein coupled receptors (GPCRs) according to the two-stage model (Popot, J. L., and Engelman, D. M. (1990) Biochemistry 29, 4031–4037) is postulated to proceed in 2 steps: partitioning of the polypeptide into the membrane followed by diffusion until native contacts are formed. Herein we investigate conformational preferences of fragments of the yeast Ste2p receptor using NMR. Constructs comprising the first, the first two, and the first three transmembrane (TM) segments, as well as a construct comprising TM1–TM2 covalently linked to TM7 were examined. We observed that the isolated TM1 does not form a stable helix nor does it integrate well into the micelle. TM1 is significantly stabilized upon interaction with TM2, forming a helical hairpin reported previously (Neumoin, A., Cohen, L. S., Arshava, B., Tantry, S., Becker, J. M., Zerbe, O., and Naider, F. (2009) Biophys. J. 96, 3187–3196), and in this case the protein integrates into the hydrophobic interior of the micelle. TM123 displays a strong tendency to oligomerize, but hydrogen exchange data reveal that the center of TM3 is solvent exposed. In all GPCRs so-far structurally characterized TM7 forms many contacts with TM1 and TM2. In our study TM127 integrates well into the hydrophobic environment, but TM7 does not stably pack against the remaining helices. Topology mapping in microsomal membranes also indicates that TM1 does not integrate in a membrane-spanning fashion, but that TM12, TM123, and TM127 adopt predominantly native-like topologies. The data from our study would be consistent with the retention of individual helices of incompletely synthesized GPCRs in the vicinity of the translocon until the complete receptor is released into the membrane interior.
The formation and maintenance of a defined three-dimensional structure is a prerequisite for most proteins in order to fulfill their function in the native context. However, there are proteins, which are intrinsically unstructured and thus natively unfolded. In addition, the misfolding and aggregation of many proteins can lead to severe diseases. The investigation of non-native states of proteins significantly contributes to the understanding of protein folding and misfolding. Nuclear magnetic resonance (NMR) spectroscopy is the only known technique that can provide information on structure and dynamics of non-native states of proteins at atomic resolution. Unfolded and non-native states of proteins have to be treated as ensembles of rapidly interconverting conformers and their observed properties are ensemble and time averaged. In this thesis, hen egg white lysozyme (HEWL) and mutants thereof have been investigated by NMR spectroscopy. The reduction of its four disulfide bridges and the successive methylation of the cysteine residues renders HEWL permanently non-native (‘HEWL-SMe’). Alternatively, the exchange of the eight cysteines for alanines results in very similar states (‘all-Ala-HEWL’). Under these conditions, HEWL-SMe and all-Ala-HEWL do not resemble random coil conformations, but exhibit residual secondary and tertiary structure. The presence of hydrophobic clusters and long-range interactions around the proteins six tryptophan residues and the modulation of these properties by single-point mutants has been observed. For the NMR spectroscopic investigation, HEWL has been isotopically labelled in E. coli by expression into inclusion bodies. After purification, the 1HN, 15NH, 13Calpha, 13Cbeta, 13C’, 1Halpha and 1Hbeta resonances of HEWL-SMe and all-Ala-HEWL have been assigned almost completely using three-dimensional NMR experiments. The analysis of secondary chemical shifts revealed regions in the proteins sequence — particularly around the six tryptophan residues—with significantly populated alpha-helix like conformations. In order to further elucidate the influence of the tryptophan side chains, a set of two new pulse sequences has been developed that allowed for the successful assignment of the 13Cg, 15Ne and 1HNe resonances in these side chains. This knowledge was eventually exploited in the interpretation of two-dimensional 15N-1H photo-CIDNP spectra, which revealed a differential solvent accessibility of the tryptophan residues in all-Ala-HEWL but not in the single point mutant W62G-all-Ala-HEWL. In addition, heteronuclear R2 relaxation rates have been determined for the indole 15Ne nuclei of all-Ala-HEWL and W62G. While in the wild-type like all-Ala-HEWL, the rates are different among the six tryptophan residues, in W62G they are more uniform. Together with relaxation data from the amide backbone, these results indicate the significant destabilization of the hydrophobic clusters in the absence of W62. In contrast, in the W108G mutant the profile of the R2 relaxation rates was not found to be significantly altered. No evidence was found by R1rho relaxation rates and relaxation dispersion measurements for conformational exchange on slower (micro- to millisecond) timescales. Residual dipolar couplings have been determined for non-native HEWL in order to retrieve structural information of these states. The differences of the W62G and the wild-type like non-native HEWL is also picked up in NH-RDCs of these proteins aligned in polyacrylamide gels. Significant positive RDCs are observed in the regions of the hydrophobic clusters in all-Ala-HEWL, but to a much lesser degree in W62G. So far, all attempts to simulate RDCs from generated non-native ensembles failed even when including long-range contacts or specific phi/psi backbone angle propensities. However, the measured RDCs can be used to cross-validate structural ensembles of non-native HEWL generated by molecular dynamics simulations that are based on restraints from the other experimental data, such as the differential solvent accessibilities from the photo-CIDNP experiments and the data on the hydrophobic clustering gained from the combined mutational and relaxation studies. Finally, non-native HEWL has been investigated for the first time using two-dimensional NMR in organic solvents, which are able to induce secondary structures and ultimately lead to amyloid formation. Under these conditions severe line broadening was observed, which was attributed to exchange between different — mostly a-helical— conformations. In summary, in this thesis methods have been developed, optimized and successfully applied for the structural and dynamical characterization of non-native states of proteins and the effect of single-point mutants on the properties of such ensembles has been investigated. Data has been gained that can considerably contribute to the further elucidation of the nature of non-native states of HEWL by molecular dynamics simulations.