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Cytotoxic T lymphocytes eliminate infected cells upon surface display of antigenic peptides on major histocompatibility complex I molecules. To promote immune evasion, UL49.5 of several varicelloviruses interferes with the pathway of major histocompatibility complex I antigen processing. However, the inhibition mechanism has not been elucidated yet. Within the macromolecular peptide-loading complex we identified the transporter associated with antigen processing (TAP1 and TAP2) as the prime target of UL49.5. Moreover, we determined the active oligomeric state and crucial elements of the viral factor. Remarkably, the last two residues of the cytosolic tail of UL49.5 are essential for endoplasmic reticulum (ER)-associated proteasomal degradation of TAP. However, this process strictly requires additional signaling of an upstream regulatory element in the ER lumenal domain of UL49.5. Within this new immune evasion mechanism, we show for the first time that additive elements of a small viral factor and their signaling across the ER membrane are essential for targeted degradation of a multi-subunit membrane complex.
Innerhalb des adaptiven Immunsystems spielt der Major Histocompatibility Complex (MHC)-Klasse I-Weg der Antigenpräsentation eine essenzielle Rolle bei der Erkennung und Zerstörung Virus-infizierter Zellen. Ein grundlegender Schritt innerhalb dieses Prozesses ist die Translokation endogener Peptide durch den transporter associated with antigen processing (TAP) in das ER-Lumen. Der TAP-Transporter ist zusammen mit verschiedenen Chaperonen und weiteren Faktoren in einem Peptidbeladungskomplex (PLC) assoziiert. Insbesondere Herpesviren, die durch eine lebenslange Persistenz im Wirt und wiederkehrende Reaktivierung unter Stresssituationen gekennzeichnet sind, interferieren direkt mit dem PLC und dem TAP-Transporter. Das varicellovirale Typ-I-Membranprotein UL49.5 inhibiert den TAP-Komplex, wobei das Protein des Rinderherpesvirus (Bovines Herpesvirus 1, BHV-1) zusätzlich die proteasomale Degradation verschiedener Komponenten des PLCs einleitet. Dieser Mechanismus wird durch die C-terminale Domäne des UL49.5-Proteins vermittelt und ist von keinem anderen Virusprotein bekannt. Welche Aminosäuren des Virusproteins jedoch für diese Inhibition und Degradation essenziell sind, wurde bisher nicht aufgeklärt. Ziel der vorliegenden Doktorarbeit war es, die Funktionsweise des BHV-1 UL49.5-Proteins zu verstehen und insbesondere zu analysieren, welche Bereiche des Proteins für die proteasomale Degradation des TAP-Komplexes verantwortlich sind. Das UL49.5-Protein wurde im Rahmen der vorliegenden Arbeit erfolgreich in Insektenzellen und in HeLa-Zellen exprimiert. Mittels Coimmunpräzipitation (Co-IP) wurde daraufhin die Bindung verschiedener UL49.5-Varianten an den TAP-Komplex analysiert. Unterstützt wurden diese Daten durch einen in vivo Interaktionsscreen (BiFC) und in vitro translatiertes UL49.5. Hierbei stellte sich heraus, dass das UL49.5-Protein in Abwesenheit sämtlicher Komponenten des Immunsystems an beide Untereinheiten des TAP-Transporters bindet. Die Bindung erfolgt sowohl an vollständige TAP-Untereinheiten als auch an den sogenannten coreTAP-Komplex, der nur die inneren sechs Transmembranhelices besitzt. Weiterhin wurden systematisch verkürzte UL49.5-Varianten generiert, um wichtige Reste für TAP-Inhibition und proteasomale Degradation zu identifizieren. Interessanterweise sind weder die N-terminale noch die C-terminale Domäne von UL49.5 für die Bindung an den TAP-Komplex zwingend notwendig. Die Bindung an den TAP-Transporter wird demnach über die Transmembrandomäne von UL49.5 vermittelt. Mit Hilfe von Peptidtransport-Analysen wurde die inhibitorische Aktivität verschiedener UL49.5-Mutanten eingehend untersucht. Zusätzlich wurde eine Untersuchung der MHC I-Oberflächenexpression in transient transfizierten HeLa-Zellen etabliert. In diesen Zellen wurde nach Sortierung eine drastisch reduzierte TAP-Konzentration nachgewiesen, die auf proteasomale Degradation des TAP-Komplexes zurückzuführen war. Die Untersuchung von C-terminal verkürzten UL49.5-Mutanten zeigte, dass die letzten zwei C-terminalen Aminosäuren essenziell für die Induktion der TAP-Degradation sind. Die C-terminale Domäne von UL49.5 konnte jedoch, nach Übertragung auf andere Proteine, keine proteasomale Degradation des TAP-Komplexes einleiten. Demnach ist ein weiterer Bereich des Proteins für diesen Prozess zwingend notwendig. Erstaunlicherweise waren auch N-terminal verkürzte UL49.5-Proteine deutlich in ihrer inhibitorischen Funktion beeinträchtigt. Bereits nach der Deletion von 10 N-terminalen Aminosäuren war das Protein nicht mehr in der Lage, eine proteasomale Degradation des TAP-Komplexes einzuleiten. Demnach spielt auch die ER-luminale Domäne von UL49.5 eine wichtige Rolle bei der UL49.5-induzierten TAP-Degradation. Somit wurde ein bisher noch nicht beschriebener neuartiger Inhibitionsmechanismus für das BHV-1 UL49.5-Protein entdeckt. Nach Bindung von UL49.5 über die Transmembrandomäne an beide Untereinheiten des TAP-Transporters scheint die ER-luminale Domäne von UL49.5 ein Signal über die ER-Membran an die zytoplasmatische Domäne zu übertragen, die dann die proteasomale Degradation des TAP-Komplexes einleitet. Es konnte im Rahmen dieser Doktorarbeit erstmals gezeigt werden, dass additive Effekte eines sehr kleinen Virusproteins auf zwei unterschiedlichen Seiten der ER-Membran zu einer proteasomalen Degradation eines sehr großen Membran-Komplexes führen.
Mistakes in translation of messenger RNA into protein are clearly a detriment to the recombinant production of pure proteins for biophysical study or the biopharmaceutical market. However, they may also provide insight into mechanistic details of the translation process. Mistakes often involve the substitution of an amino acid having an abundant codon for one having a rare codon, differing by substitution of a G base by an A base, as in the case of substitution of a lysine (AAA) for arginine (AGA). In these cases one expects the substitution frequency to depend on the relative abundances of the respective tRNAs, and thus, one might expect frequencies to be similar for all sites having the same rare codon. Here we demonstrate that, for the ADP-ribosylation factor from yeast expressed in E. coli, lysine for arginine substitutions frequencies are not the same at the 9 sites containing a rare arginine codon; mis-incorporation frequencies instead vary from less than 1 to 16%. We suggest that the context in which the codons occur (clustering of rare sites) may be responsible for the variation. The method employed to determine the frequency of mis-incorporation involves a novel mass spectrometric analysis of the products from the parallel expression of wild type and codon-optimized genes in 15N and 14N enriched media, respectively. The high sensitivity and low material requirements of the method make this a promising technology for the collection of data relevant to other mis-incorporations. The additional data could be of value in refining models for the ribosomal translation elongation process.
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. ...
To study the implications of highly space-demanding organic moieties on the properties of self-assembled monolayers (SAMs), triptycyl thiolates and selenolates with and without methylene spacers on Au(111) surfaces were comprehensively studied using ultra-high vacuum infrared reflection absorption spectroscopy, X-ray photoelectron spectroscopy, near-edge X-ray absorption fine structure spectroscopy and thermal desorption spectroscopy. Due to packing effects, the molecules in all monolayers are substantially tilted. In the presence of a methylene spacer the tilt is slightly less pronounced. The selenolate monolayers exhibit smaller defect densities and therefore are more densely packed than their thiolate analogues. The Se–Au binding energy in the investigated SAMs was found to be higher than the S–Au binding energy.
In this study, a portable electronic nose (E-nose) prototype is developed using metal oxide semiconductor (MOS) sensors to detect odors of different wines. Odor detection facilitates the distinction of wines with different properties, including areas of production, vintage years, fermentation processes, and varietals. Four popular machine learning algorithms—extreme gradient boosting (XGBoost), random forest (RF), support vector machine (SVM), and backpropagation neural network (BPNN)—were used to build identification models for different classification tasks. Experimental results show that BPNN achieved the best performance, with accuracies of 94% and 92.5% in identifying production areas and varietals, respectively; and SVM achieved the best performance in identifying vintages and fermentation processes, with accuracies of 67.3% and 60.5%, respectively. Results demonstrate the effectiveness of the developed E-nose, which could be used to distinguish different wines based on their properties following selection of an optimal algorithm.
The Taiwan cobra (Naja naja atra) chymotrypsin inhibitor (NACI) consists of 57 amino acids and is related to other Kunitz-type inhibitors such as bovine pancreatic trypsin inhibitor (BPTI) and Bungarus fasciatus fraction IX (BF9), another chymotrypsin inhibitor. Here we present the solution structure of NACI. We determined the NMR structure of NACI with a root-mean-square deviation of 0.37 Å for the backbone atoms and 0.73 Å for the heavy atoms on the basis of 1,075 upper distance limits derived from NOE peaks measured in its NOESY spectra. To investigate the structural characteristics of NACI, we compared the three-dimensional structure of NACI with BPTI and BF9. The structure of the NACI protein comprises one 310-helix, one α-helix and one double-stranded antiparallel β-sheet, which is comparable with the secondary structures in BPTI and BF9. The RMSD value between the mean structures is 1.09 Å between NACI and BPTI and 1.27 Å between NACI and BF9. In addition to similar secondary and tertiary structure, NACI might possess similar types of protein conformational fluctuations as reported in BPTI, such as Cys14–Cys38 disulfide bond isomerization, based on line broadening of resonances from residues which are mainly confined to a region around the Cys14–Cys38 disulfide bond.
Periplasmic Sud protein encoded by the Wolinella succinogenes catalyses the transfer of bound polysulfide-sulfur to the active site of the membrane bound polysulfide reductase. The homodimeric protein consists of 131 residues per monomer, each with one cysteine residue in the active site. Polysulfide-sulfur is covalently bound to the catalytic Cys residues of the Sud protein. In order to understand the structure-function relationship of this protein, the features of its solution structure determined by heteronuclear multidimensional NMR techniques are reported here. The first step of structure determination leads to resonance assignments using 15N/13C/2H- and 15N/13C-labeled protein. The sequential backbone and side chain resonance assignments have been successfully completed. Structure calculations were carried out using the ARIA program package. The structure is based on 2688 NOE-derived distance restraints, 68 backbone hydrogen bond restraints derived from 34 slow-exchanging backbone amide protons and 334 torsion angle restraints obtained from the TALOS program as well as 158 residual dipolar coupling restraints for the refinement of relative vector orientations. The three-dimensional structure of the Sud protein was determined with an averaged rootmean- square deviation of 0.72 Å and 1.28 Å for the backbone and heavy atoms, respectively, excluding the terminal residues. Without the poorly defined segment between residues 90-94 the average r.m.s.d. value drops down to 0.6 Å and 1.14 Å. The ensemble refined with residual dipolar coupling (rdc) restraints shows good convergence. The r.m.s.d. value for the backbone heavy atoms, excluding residues 90- 94, drops down from 0.97 to 0.66 for the rdc-refined ensemble. The relative orientation of the two monomers in the protein structures refined with residual dipolar coupling restraints are also different from those without residual dipolar coupling restraints. The structure determination of the dimeric protein has been hampered by the high molecular mass (30 kDa), severe peak degeneracy, and by the small number of experimental intermonomer NOEs (relative orientation problem of two monomers). For the resonance assignments of aliphatic side chain, many resonances were ambiguously assigned because of severe overlap of signals. The Sud dimer protein contains 17 Lys, 14 Leu and one His tag for each monomer. It complicated the resonance assignments. The conventional 3D 15N-separated TOCSY HSQC experiment failed because of the large molecular weight which results in line broadening and hence made the resonance assignments of side chains more difficult. The determined structure contains a five-stranded parallel ß-sheet enclosing a hydrophobic core, a two-stranded anti-parallel ß-sheet and seven a-helices. The dimer structure is stabilized predominantly by hydrophobic residues. Sud catalyses the transfer of the polysulfide-sulfur to cyanide, similar to rhodanese encoded by Azotobacter vinelandii (Bordo et al., 2000). The two proteins are similar in the active site environment primarily owing to the main-chain conformation of the active-site loop with the cysteine residue and with respect to the surrounding positively charged residues. The active-site loop (residues 89-95) in the Sud protein appears to be flexible, reflected by few assigned proton resonances of residues 90-94 in the active site. Despite their similarity in function and their similar structure in active site, the amino acid sequences and the folds of the two proteins are remarkably different. The negatively charged polysulfide interacts with positively charged R46, R67, and R94 and hence may be stabilized in structure. The mutation of one of the three arginines that are also conserved in rhodanese from A. vinelandii leads to a loss of sulfur-transfer activity. The polysulfide chain extends from inside of Sud protein to outside, where Sud may form contacts with polysulfide reductase. These contacts provide the possible polysulfide-sulfur transfer from Sud protein to the active site of polysulfide reductase.
Coevolution of viruses and their hosts represents a dynamic molecular battle between the immune system and viral factors that mediate immune evasion. After the abandonment of smallpox vaccination, cowpox virus infections are an emerging zoonotic health threat, especially for immunocompromised patients. Here we delineate the mechanistic basis of how cowpox viral CPXV012 interferes with MHC class I antigen processing. This type II membrane protein inhibits the coreTAP complex at the step after peptide binding and peptide-induced conformational change, in blocking ATP binding and hydrolysis. Distinct from other immune evasion mechanisms, TAP inhibition is mediated by a short ER-lumenal fragment of CPXV012, which results from a frameshift in the cowpox virus genome. Tethered to the ER membrane, this fragment mimics a high ER-lumenal peptide concentration, thus provoking a trans-inhibition of antigen translocation as supply for MHC I loading. These findings illuminate the evolution of viral immune modulators and the basis of a fine-balanced regulation of antigen processing.