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Zur Rolle der Typ-I-Interferone in der Abwehr von viralen Infektionen des zentralen Nervensystems
(2007)
Das zentrale Nervensystem (ZNS) bildet eine einzigartige Umgebung für Immunantworten, da Neuronen eine essentielle und in weiten Teilen nicht-erneuerbare Zellpopulation bilden. Virale Infektionen des ZNS und lokale anti-virale Immunantworten können zu dem Verlust von Neuronen und somit zu katastrophalen Erkrankungen führen. Unter normalen Bedingungen ist das ZNS weitgehend von der Kontrolle durch das Immunsystem ausgeschlossen. In diesem Zusammenhang wurde das ZNS oft auch als „immunprivilegiert“ bezeichnet. Dieses Konzept musste in den letzten Jahren revidiert werden, da es sich gezeigt hat, dass das ZNS nicht völlig vom Immungeschehen isoliert ist. Wichtige Mediatoren antiviraler Immunantworten sind die Typ I Interferone (IFN). Die verschiedenen Typ I IFN binden an einen gemeinsamen Rezeptor, den Typ I Interferon-rezeptor (IFNAR). Die Bedeutung von Typ I IFN Antworten für die Kontrolle viraler Infektionen wurde besonders eindrucksvoll mit IFNAR-defizienten Mäusen (IFNAR-/-) gezeigt. Nach Infektion mit dem neurotropen Vesikulären Stomatitis Virus (VSV) führt das Fehlen des IFNAR zu einer stark erhöhten Empfänglichkeit für tödlich verlaufende Infektionen. In allen Organen und besonders im ZNS von VSV infizierten IFNAR-/- Tieren fanden sich stark erhöhte Virusmengen. Um zu untersuchen, ob die VSV-Infektion des zentralen Nervensystems in IFNAR-/- Mäusen in erster Linie auf ein Versagen der peripheren Immunität oder des IFN Systems innerhalb des ZNS zurückzuführen ist, wurden mittels der Cre loxP Tech-nologie Mäuse hergestellt, die auf allen peripheren Zellen IFNAR exprimieren, während die Neuronen des ZNS IFNAR defizient sind (NesCre+/-IFNARflox/flox). Nach intranasaler VSV Infektion zeigten NesCre+/-IFNARflox/flox Mäuse zunächst keine Krankheitssymptome. Nach 5 bis 6 Tagen traten aber aufsteigende und halbseitige Lähmungen auf, so dass die infizierten Tiere verstärkt im Kreis liefen und schließlich verstarben. Im Vergleich dazu verstarben IFNAR-/- Mäuse bereits nach 2 bis 3 Tagen während normale C57BL/6 Tiere nach Infektion keine Symptome zeigten und überlebten. Der beobachtete Krankheitsverlauf lässt in den IFNAR-/- Mäuse auf ein Multiorganversagen als Todesursache schließen. 3 und 6 Tage nach Infektion konnte in den Organen von C57BL/6 Tieren kein Virus reisoliert werden. In den NesCre+/ IFNARflox/flox Tieren fanden sich zum Todeszeitpunkt nur im Gehirn Viruspar-tikel, während alle anderen Organe virusfrei waren. Die Virustiter im Hirn waren im Vergleich zu den IFNAR-/- Mäusen 10- bis 100-fach erhöht. In den anderen Organen und im Blut sind keine Viruspartikel nachweisbar. Dieser Befund deutete gemeinsam mit den beobachteten Krankheitsverläufen auf eine neuropathologische Symptomatik hin, bei der es wahrscheinlich zu einer VSV-Infektion des Hirnstammes kam. Die Analyse einzelner Regionen des ZNS zeigte in IFNAR-/- Tieren, dass 2 Tage nach Infektion in allen Regionen des ZNS signifikante Virusmengen zu finden waren. In den NesCre+/-IFNARflox/flox und den C57BL/6 Tieren fanden sich zu diesem Zeitpunkt nur im Riechhirn (Bulbus olfactorius) signifikante Virustiter. In den C57BL/6 Tieren blieb das Virus auf diese Region beschränkt und wurde dort innerhalb von 6 Tagen eliminiert. In den NesCre+/-IFNARflox/flox Tieren kam es in den folgenden Tagen jedoch zu einer fortschreitenden Infektion des ZNS, und auch das Großhirn, das Kleinhirn, der Hirn-stamm und das Rückenmark zeigten hohe Virustiter. In der Induktion peripherer Immunantworten unterschieden sich NesCre+/-IFNARflox/flox und C57BL/6 Mäuse nicht. In den WT Tieren kam es im Gegensatz zu den NesCre+/ IFNARflox/flox und IFNAR-/- Tieren innerhalb von 48 Stunden nach Infektion im Riechhirn zu einer Typ I IFN abhängigen Phosphorylierung von STAT-1, einer Komponente des IFNAR-Signaltransduktionsweges. Alles deutet darauf hin, dass die Induktion geringer Mengen Typ I IFN innerhalb des Riechhirns notwendig ist, um Im-munantworten zu aktivieren, die ein Übergreifen der Virusinfektion auf andere Regio-nen des ZNS verhindern. Eine funktionierende Immunität in der Peripherie und die Blut-Hirn-Schranke scheinen nicht ausreichend zu sein, um eine Infektion des ZNS mit VSV zu verhindern. Stattdessen muss es zur Aktivierung von IFN-abhängigen Mechanismen innerhalb des Riechhirns kommen, die ein Übergreifen der VSV Infektion auf andere Hirnregionen verhindert und zur Elimination von VSV im Riechhirn beiträgt.
Guanosine triphosphate (GTP) cyclohydrolase I (GCH1) catalyzes the conversion of GTP to dihydroneopterin triphosphate (H2NTP), the initiating step in the biosynthesis of tetrahydrobiopterin (BH4). Besides other roles, BH4 functions as cofactor in neurotransmitter biosynthesis. The BH4 biosynthetic pathway and GCH1 have been identified as promising targets to treat pain disorders in patients. The function of mammalian GCH1s is regulated by a metabolic sensing mechanism involving a regulator protein, GCH1 feedback regulatory protein (GFRP). GFRP binds to GCH1 to form inhibited or activated complexes dependent on availability of cofactor ligands, BH4 and phenylalanine, respectively. We determined high-resolution structures of human GCH1−GFRP complexes by cryoelectron microscopy (cryo-EM). Cryo-EM revealed structural flexibility of specific and relevant surface lining loops, which previously was not detected by X-ray crystallography due to crystal packing effects. Further, we studied allosteric regulation of isolated GCH1 by X-ray crystallography. Using the combined structural information, we are able to obtain a comprehensive picture of the mechanism of allosteric regulation. Local rearrangements in the allosteric pocket upon BH4 binding result in drastic changes in the quaternary structure of the enzyme, leading to a more compact, tense form of the inhibited protein, and translocate to the active site, leading to an open, more flexible structure of its surroundings. Inhibition of the enzymatic activity is not a result of hindrance of substrate binding, but rather a consequence of accelerated substrate binding kinetics as shown by saturation transfer difference NMR (STD-NMR) and site-directed mutagenesis. We propose a dissociation rate controlled mechanism of allosteric, noncompetitive inhibition.
By adopting a variety of shapes, proteins can perform a wide number of functions in the cell, from being structural elements or enabling communication with the environment to performing complex enzymatic reactions needed to sustain metabolism. The number of proteins in the cell is limited by the number of genes encoding them. However, several mechanisms exist to increase the overall number of protein functions. One of them are post-translational modifications, i.e. covalent attachment of various molecules onto proteins. Ubiquitin was the first protein to be found to modify other proteins, and, faithful to its evocative name, it is involved in nearly all the activities of a cell. Ubiquitylation of proteins was believed for a long time only to be responsible for proteasomal degradation of modified proteins. However, with the discovery of various types of ubiquitylation, such as mono-, multiple- or poly-ubiquitylation, new functions of this post-translational modification emerged. Mono-ubiquitylation has been implicated in endocytosis, chromatin remodelling and DNA repair, while poly-ubiquitylation influences the half-life of proteins or modulates signal transduction pathways. DNA damage repair and tolerance are example of pathways extensively regulated by ubiquitylation. PCNA, a protein involved in nearly all types of DNA transaction, can undergo both mono- and poly-ubiquitylation. These modifications are believed to change the spectrum of proteins that interact with PCNA. Monoubiquitylation of PCNA is induced by stalling of replication forks when replicative polymerases (pols) encounter an obstacle, such as DNA damage or tight DNA-protein complexes. It is believed that monoubiquitylation of PCNA stimulates the exchange between replicative pols to one of polymerases that can synthesize DNA across various lesions, a mechanism of damage tolerance known as translesion synthesis (TLS). Our work has helped to understand why monoubiqutylation of PCNA favours this polymerase switch. We have identified two novel domains with the ability to bind Ub non-covalently. These domains are present in all the members of Y polymerases performing TLS, and were named Ub-binding zinc finger (UBZ) (in polη and polκ) and Ub-binding motif (UBM) (in polι and Rev1). We have shown that these domains enable Y polymerases to preferentially gain access to PCNA upon stalling of replication, when the action of translesion polymerases is required. While the region of direct interaction between Y pols and PCNA had been known (BRCT domain in Rev1 and PIP box motif (PIP) in three others members), we propose that Ub-binding domains (UBDs) in translesion Y pols enhance the PIP- or BRCT-domain-mediated interaction between these polymerases and PCNA by binding to the Ub moiety attached onto PCNA. Following these initial studies, we have also discovered that Y polymerases themselves undergo monoubiquitylation and that their UBDs mediate this modification. This auto-ubiquitylation is believed to lead to an intramolecular interaction between UBD and Ub attached in cis onto the UBD-containing protein. We have mapped monoubiquitylation sites in polη in the C-terminal portion of the protein containing the nuclear localization signal (NLS) and the PIP box. Beside PIP, the NLS motif is also involved in direct interaction of polη with PCNA. Based on these findings, we propose that monoubiquitylation of either NLS or PIP masks them from potential interaction with PCNA. Lastly, using several functional assays, we have demonstrated the importance of all these three motifs in the C-terminus of polη (UBZ, NLS and PIP) for efficient TLS. We have also constructed a mimic of monoubiquitylated polη by genetically fusing polη with Ub. Interestingly, this chimera is deficient in TLS as compared to the wild-type protein. Altogether, these studies demonstrate that the C-terminus of polη constitutes a regulatory module involved in multiple-site interaction with monoubiquitylated PCNA, and that monoubiquitylation of this region inhibits the interaction between polη and PCNA. Our work has also revealed that the UBDs of Y pols as well as of other proteins implicated in DNA damage repair and tolerance, such as the Werner helicase-interacting protein 1 (Wrnip1), are required for their proper sub-nuclear localization. All these proteins localize to discrete focal structures inside the nucleus and mutation of their UBDs results in inability to accumulate in these foci. Interestingly, by exchanging UBDs between different proteins we have learned that each UBD seems to have a distinct functional role, surprisingly not limited to Ubbinding ability. In fact, swapping the UBZ of Wrnip1 with the UBM of polι abolished the localization of Wrnip1 to foci despite preserving the Ub-binding ability of the chimeric protein. In summary, this work provides an overview of how post-translation modification of proteins by Ub can regulate several DNA transactions. Firstly, key regulators (e.g. PCNA) can be differentially modified by Ub. Secondly, specialized UBDs (e.g. UBM, UBZ) embedded only in a subset of proteins act as modules able to recognize these modifications. Thirdly, by means of mediating auto-ubiquitylation, UBDs can modulate the behaviour of host proteins by allowing for either in cis or in trans Ub-UBD interactions.
A great challenge in life sciences remains the site-specific modification of proteins with minimal perturbation for in vitro as well as in vivo studies. Therefore, different chemoselective reactions and semi-synthetic techniques such as native chemical ligation or intein-mediated protein splicing have been established. They enable a site-specific incorporation of chemical reporters into proteins, such as organic fluorophores or unnatural amino acids. In this PhD Thesis, protein trans-splicing was guided by minimal high-affinity interaction pairs to trace proteins in mammalian cells. In addition, the temporal modulation of cellular processes by photo-cleavable viral immune evasins was achieved.
Protein trans-splicing mediated by split inteins is a powerful technique for site-specific and 'traceless' protein modifications. Despite recent developments there is still an urgent need for ultra-small high-affinity intein tags for in vitro and in vivo approaches. So far, only a very few in-cell applications of protein trans-splicing are reported, all limited to C-terminal protein modifications. Here, a strategy for covalent N-terminal intein-mediated protein labeling at sub-nanomolar probe concentrations was developed. Combined with the minimalistic Ni-trisNTA/His-tag interaction pair, the affinity between the intein fragments was increased 50-fold (KD ~ 10 nM). Site-specific and efficient 'traceless' protein modification by high-affinity trans-splicing is demonstrated at nanomolar concentrations in mammalian cells.
High background originating from non-reacted, 'always-on' fluorescent probes still is a crucial issue in life sciences. Covalent labeling approaches with simultaneous activation of fluorescence are advantageous to increase sensitivity and to reduce background signal. Therefore, high-affinity protein trans-splicing was combined with fluorophore/quencher pairs for online detection of covalent N-terminal protein labeling in cellular environments. Substantial fluorescence enhancement at nanomolar probe concentrations was achieved. This ultra-small fluorogenic high-affinity split intein system is an unprecedented example for real-time monitoring of the trans-splicing reaction in cell-like environments as well as for protein labeling with fluorogenic probes at nanomolar concentrations.
To extend the field of chemical immunology and to address spatiotemporal aspects in adaptive immune response, new tools to control antigen processing are required. Therefore, synthetic photo-conditional viral immune evasins were designed to modulate antigen processing on demand. By using light, the time and dose controlled antigen translocation by the transporter associated with antigen processing (TAP) was triggered with response in the second regime. Peptide delivery and loading by the peptide-loading complex (PLC) was rendered inactive, whereas blocking was abolished in a light-controlled fashion to inactivate the synthetic viral immune evasin ICP47 along with simultaneous activation of the antigen presentation pathway. Lightresponsive peptide translocation by the TAP complex was assayed in vitro by utilizing microsomes isolated from professional antigen presenting B-cell lymphomas (Raji). To extend these studies, suppression and photo-controlled rescue of antigen presentation was examined at single-cell resolution in human primary immune cells.
Native chemical ligation interconnects peptide chemistry with recombinantly expressed proteins. This technique was applied to generate the semi-synthetic full-length ICP47. Although this approach was realized, the low product yield was not sufficient for further functional studies. Therefore, full-length ICP47 was consecutively generated by utilizing a full synthetic four-fragment ligation approach. However, this synthetic viral immune evasin was not able to block peptide translocation in a robust way.
Na+/H+ antiporters are ubiquitous membrane proteins involved in ion homeostasis and pH sensing. The amino acid sequence of one such antiporter, MjNhaP1, from Methanococcus jannaschii, shows a significant homology to eukaryotic sodium proton exchangers like NHE1 from Homo sapiens and SOS1 of Arabidopsis thaliana than to the well-characterized Escherichia coli NhaA or NhaB. MjNhaP1 shows activity at acidic pH unlike NhaA, which is active at basic pH. 13 transmembrane helices have been predicted to be present in NhaP1. A projection map, calculated by Cryo-EM of 2D crystals of MjNhaP1 grown at pH 4, showed it to be a dimer containing elongated densities in the centre of the dimer and a cluster of density peaks on either side of the dimer core (Vinothkumar et al., 2005). Incubation of 2D crystals at pH 8 on the EM grid resulted in well-defined conformational changes, clearly evident in a difference map as a major change in density distribution within the helix bundle (Vinothkumar et al., 2005). The aim of this dissertation is to understand the working mechanism of MjNhaP1 by determining its three-dimensional structure. The aim was initially approached by structure determination by X-ray crystallography. The limitation for this method was the low expression yield, which was 0.5–0.7mg/ml (Vinothkumar et al., 2005). After various optimization trials, the expression yield of the recombinant protein could be elevated to 2-2.5mg of pure protein per litre of culture by the method of autoinduction (Studier et al., 2005). To obtain well diffracting 3D crystals, purification conditions (Vinothkumar et al., 2005) were modified. 3D crystals were obtained under various conditions, which has so far not diffracted X-Ray beyond 8Å. Parallely, optimization of parameters (Vinothkumar et al., 2005) for 2D crystals formation was carried out. A combination of 1% DDM used for lipid solubilization, and 1% OG in the buffer of the purified protein produced 1-2 μm wide tubular 2D crystals of NhaP1. This batch of crystal proved to be the optimal for data collection at higher tilt angle with the electron microscope. A 3D map showed p22121 symmetry and revealed a tight dimer with an oval shape. The region in the central part of the dimer is composed of several tilted helices forming an interface between both monomers. On either side of the dimer interface, a group of six tightly packed helices form a bundle. This bundle contains three straight helices in the centre of the monomer and three helices in the periphery. Comparison of the structures of E.coli NhaA and M. jannaschii NhaP1 show substantial differences in length and slope of corresponding helices between both antiporters. A 3D model of NhaP1 based on the 3D map revealed 13 helices, which has been named as A-M to distinguish it from the NhaA helices. Overlaying the X-ray structure onto the 3D map revealed that the disrupted helices IV and XI of NhaA superimpose two central helices at similar position in the 3D map of NhaP1. The disrupted helices IV and XI in the X-ray structure of NhaA have been proposed as the putative ion-binding and translocation site (Hunte C et al, 2005; Arkin IT et al, 2007; Screpanti & Hunte (2007). This motif appears to be present also in NhaP1, as suggested by the close fit of NhaA helices IV and XI on the putative helices E and L of the NhaP1 model. These two putative helices E and L in NhaP1 contain the highly conserved TDP and GPRVVP motif, which are crucial for antiporter activity (Hellmer et al., 2002, Hellmer et al., 2003). In the overlay, helix V of NhaA containing the two essential, conserved aspartates D163 and D164 fits the density of the putative helix F of NhaP1, which contains the conserved motif FNDP. The homologous D161 in the FNDP motif of NhaP1 is essential for transport activity as show by mutagenesis (Hellmer at al., 2003). Significant differences are visible in the region of the dimer interface of the 3D map of NhaP1 occupied by helices VI, VII, and VIII in NhaA. This region shows an extra helical density (A) in the 3D map of NhaP1. By alignment of MjNhaP1 sequence with the amino acid sequences of several Na+/H+ exchangers, it was evident that the additional helix (A) is located in the N terminus of NhaP1. In our sequence alignment, a putative hydrophobic segment corresponding to this additional helix A is present in other archaeal and eukaryotic antiporters but not in any of the bacterial ones. The N-terminus of the human Na+/H+ exchanger NHE1 has been predicted to contain a highly hydrophobic signal peptide. This indicates the probability of the N-terminal helix A of NhaP1 to be an uncleaved signal peptide. Besides being a signal sequence targeting NhaP1 to the membrane, the map suggests that this helix might be involved in the formation of dimer contacts between both monomers. A gene duplication event is evident in the 3D map of NhaP1, as not only the helices D, E, F and K, L, M are related by an inverted repeat but also the helices B, C and I, J are related. We present here the three-dimensional architecture of a Na+/H+ antiporter from archaea. The presence of the 13th helix suggests the location of the N-terminus to be located in the cytosol and the C-terminus in the periplasm. This would orient NhaP1 in an inverted manner in the membrane in comparison to NhaA. Further structural information at higher resolution and biochemical and biophysical investigations are required to confirm the topology.
The role of the Ca2+-dependent protease calpain in the diabetes-associated platelet hyperreactivity
(2012)
Platelets from diabetic patients are characterised by hyperreactivity resulting in exaggerated adhesion, aggregation and thrombus formation which contribute to the development of cardiovascular complications known to be one of the main causes of diabetes-related mortality. One of the mechanisms suggested to be involved in the diabetes-related platelet hyperactivation is the increased [Ca2+]i which leads to the overactivation of Ca2+-dependent proteases, the calpains. Among the calpain isoforms expressed in platelets the two ubquitiously expressed μ- and m-calpain are thought to play an important role in physiological and pathophysiological processes. Particularly μ-calpain is known to be involved in many steps of physiological platelet activation such as aggregation, adhesion, secretion, and signalling. However, we could show that diabetes was associated with an enhanced activation of both μ- and m-calpain in platelets
In the first part of the study we focussed on the characterization of the molecular mechanism regulating calpain activity. Indeed, although Ca2+ is considered to be the main regulator of the proteolytic activity of the conventional calpains, other mechanisms such as the presence of phospholipids and phosphorylation have been reported to affect their activity. Since most studies reported the phosphorylation of m-calpain we were interested to see whether μ-calpain activity might be also affected by phosphorylation. We could show that the activity of μ-calpain was enhanced by the PKC activator PMA suggesting its possible regulation by phosphorylation. However, whether PKC directly targeted μ-calpain remains unclear. Given that substrate recognition is important for a protease to process its substrate and since no common consensus could be attributed to calpain substrates, our next interest was to understand the mechanism regulating the recognition of its substrates by calpain. Since phosphorylation has been reported to protect different proteins from calpain degradation we investigated whether the calpain substrate CD31 could be phosphorylated in platelets and whether this could affect its recognition by calpain. Although we could show that the tyrosine phosphorylation of CD31 was increased after activation of platelets by thrombin and that this effect was attenuated in platelets from diabetic patients, tyrosine phosphorylation of CD31 seemed to have no effect on its sensitivity to calpain-mediated proteolysis.
After the analysis of the mechanism regulating calpain activity as well as its interaction with its substrates, our next interest was the identification of new calpain substrates in platelets. Since a previous study from our group showed that PPARγ agonists could indirectly reverse the diabetes-associated calpain activation we performed DIGE analysis of platelet samples from diabetic patients before and after PPARγ agonist treatment. Using this approach we could identify four novel calpain substrates in platelets: Integrin-linked kinase (ILK), α parvin, CLP36 and septin-5. Next, we assessed the effect of calpain-mediated cleavage on the function of these newly identified proteins. We could show that μ-calpain was essential for the dissociation of ILK from the IPP complex and its activation while m-calpain-mediated cleavage led to its cleavage and inactivation. Functionally, we also showed that μ-calpain was involved in platelet adhesion while m-calpain was important for spreading.
The next protein we analysed was septin-5, a small GTPase known to regulate platelet degranulation by association with other septins and syntaxin-4. We found that the interaction between septin-5 and syntaxin-4 was inhibitory for platelet degranulation. We could demonstrate that the μ-calpain-mediated cleavage dissociated septin-5 from syntaxin 4 and led to increased secretion of platelet α-granules. Next, we investigated the in vivo role of calpain in the diabetes-associated platelet hyperreactivity. We induced diabetes in mice and could reproduce calpain activation in platelets such as that found in human. Indeed, calpain activation in murine platelets also led to the cleavage of several calpain substrates including ILK and septin-5. Moreover, platelets from diabetic mice demonstrated an increased aggregation and thrombus formation in vivo. Treatment of the animals with the calpain inhibitor A-705253 (30 mg/kg/day for 10 days) significantly restored platelet function and substrate cleavage. In conclusion, in this part of the study, we could show that the increased calpain-dependent α-granule secretion and platelet adhesion may account for the enhanced vascular proliferation and thrombus formation in diabetes and calpain inhibition represents a promising way to prevent atherothrombosis development.
In the last part of the study we analysed another enzyme known to play a crucial role in diabetes, the AMPK which is an energy-sensing kinase known to be impaired in diabetes. We could show that the two catalytic subunits AMPK α1 and α2 are expressed in platelets. The AMPKα2 seemed to be the subunit involved in platelet activation since AMPKα2-deficient mice demonstrated a defect in clot retraction and the stabilization of the thrombus while the animals showed a normal bleeding time. Mechanistically, we showed in platelets that the upstream kinase of AMPKα2 is LKB1 which was activated by thrombin stimulation via a PI-3K-dependent pathway. AMPKα2 then phosphorylated the Src-family kinase Fyn, which is responsible for the phosphorylation of its substrate β3 integrin on Tyr747. These data indicate that AMPKα2, by affecting Fyn phosphorylation and activity, plays a key role in platelet αIIbβ3 integrin signalling, leading to clot retraction and thrombus stability. Although the effect of diabetes in the AMPK-dependent pathway could not be investigated we assume that the dysregulation of this pathway may account for the thrombus destabilization and enhanced embolization encountered in diabetes.
The power to dissociate : molecular function of the twin-ATPase ABCE1 in archaeal ribosome recycling
(2010)
Protein synthesis is a central process within every living cell, where information embodied in the nucleotide sequence of the mRNA is translated into the primary sequence of proteins. The translation procedure comprises four steps: initiation, elongation, termination, and recycling. Ribosome recycling orchestrated by the ATP‐binding cassette (ABC) protein ABCE1, renders mRNA translation into a cyclic process, connecting termination with re initiation. In Archaea and Eukarya, the ABC protein ABCE1 catalyzes ribosome recycling by splitting the ribosome (80S/70S) into the small 40S/30S and large 60S/50S subunits, providing them for the next translation round.
The ABC‐type ATPase one of the most conserved proteins, present in all Archaea and Eukarya, but not in Bacteria, is essential for life in all organisms examined so far. ABCE1 was initially identified as RNase L inhibitor (Rli1), involved in the antiviral RNA immunity, and as host protein 68 (HP68) playing a role in HIV capsid assembly. However, the strong sequence conservation of ABCE1 points towards a more fundamental function within cell homeostasis, which was found by its involvement in various translation processes. ABCE1 turned out to be the major ribosome recycling factor indispensable for life in Eukarya and Archaea, being involved in canonical translation, mRNA surveillance, ribosome biogenesis, and translation initiation.
Recent functional and structural data provided first insights into the mechanism of ABCE1 in ribosome recycling. The nucleotide‐binding domains (NBDs) sandwich two ATP molecules in the NBD1‐NBD2 interface causing an NBD engagement, which is released upon ATP hydrolysis. In case of ABCE1, this ATP‐dependent tweezer‐like motion of the NBDs transfers mechanical energy to the ribosome and tears the subunits apart. The FeS‐cluster domain may swing out of the NBD cleft into the inter‐subunit space of the ribosome, which drives the subunits apart either directly or via the bound a/eRF1. Hence, the subunits are released and the post‐splitting complex (PSC, 40S/30S∙ABCE1∙ATP) is available for re‐initiation events, presumably occurring via the known interactions of ABCE1with initiation factors.
One of the most crucial aspects of this model is the nucleotide‐dependent conformational switch of ABCE1, which drives ribosomal subunit splitting. However, the conformational states, which ABCE1 undergoes during ribosome recycling, including their mechanistic importance for its diverse functions, remain unknown. Further, the exact role and movement of the essential FeScluster domain during ribosome recycling are not yet understood. Additional, it remains elusive where ABCE1 is bound in the post‐splitting complex and how the splitting mechanism is regulated concerning the asymmetric NBDs and the coupling of nucleotide binding with NBD closing and ATP hydrolysis.
Thus, in order to monitor the conformational dynamics of the ribosome recycling factor ABCE1 two complementing methods in structural biology, namely single‐molecule based Förster resonance energy transfer (smFRET) and pulsed electron‐electron double resonance (PELDOR) spectroscopy were applied.
Single‐molecule FRET as an integrated biophysical approach based on Förster resonance energy transfer and single‐molecule detection was used to understand the fundamental molecular principles of ABCE1. Contrary to the anticipated two‐state model of ABC proteins, it was shown in this thesis that both nucleotide‐binding sites of ABCE1 are always in a dynamic equilibrium between conformational states with distinct properties: open, intermediate, and closed. The equilibrium in the two nucleotide‐binding sites is distinctly affected when ABCE1 interacts with ribosomal subunits and nucleotides. While ABCE1 can adopt all three conformational states in its free or 30S bound situation, the closed state has the highest affinity for 30S subunit. Further, dissociation of ABCE1 from the small ribosomal subunit, a step that completes the recycling process, is followed by the opening of the NBSs. Hence, the current findings have important implications not only for ribosome recycling but represent a new paradigm for the molecular mechanisms of twin‐ATPases.
The complementing PELDOR measurements provide the advantage of high distance precision and reliability studying macromolecular complexes. Distance distributions of a number of ABCE1 variants even bound to the 1‐MDa post‐splitting complex (30S∙ABCE1∙AMP‐PNP), composed of the 16S rRNA, 28 ribosomal proteins, and ABCE1, was analyzed. Thus, the available crystal structures of ABCE1 in the open state were validated, since all distances of ABCE1 measured in this study perfectly correspond to this crystallized state. Unfortunately, ABCE1 could not be trapped in the closed state under the experimental conditions applied, although plenty different approaches to stabilize this state were performed.
In the second part of this study the architecture yet unknown of the 1‐MDa post splitting complex (40S/30S∙ABCE1∙ATP), concerning especially the ABCE1 binding site and its interactions with translational proteins, was probed by a method, which combines chemical cross linking with mass‐spectrometry (XL‐MS). Following this approach, it was demonstrated that ABCE1 remains bound at the translational GTPase‐binding site after ribosome splitting, contacting the S24e protein of the small subunit. The platform for the intensive contacts to the small ribosomal subunit is thereby provided by the unique helix‐loop‐helix motif of ABCE1. Notably, the FeScluster domain of ABCE1 undergoes a large rotational and translational rearrangement towards the small ribosomal subunit S12 upon nucleotide‐dependent closure of the NBDs. Thus, a key complex in the translational cycle, resembling the link between translation initiation and ribosome recycling processes, was reconstituted and structurally analyzed.
Zika virus (ZIKV) is a member of the Flaviviridae family that received public attention and scientific interest after the outbreak in French Polynesia (2013-2014) and the epidemic in the Americas (2015-2016). Even though only 20% of infected people exhibit clinical manifestations and they are predominantly flu-like symptoms, these events unveiled neurological complications associated with ZIKV infection, such as the Guillain-Barré syndrome in adults and microcephaly in newborns. Lacking a preventive vaccine and a specific antiviral therapy against ZIKV allied to the fact that this pathogen is a re-emerging virus, uncovering and comprehending novel virus-host interactions is crucial to the identification of new antiviral targets and the development of innovative antiviral approaches. Previous research work uncovered that the Chinese hamster ovary (CHO) cells do not support ZIKV infection.459 As this cell line does not express endogenous epidermal growth factor receptor (EGFR), this study aimed to investigate whether EGFR and EGFR-dependent signaling are relevant for the ZIKV life cycle in vitro.
In the first part of the study, viral infection was investigated in CHO cells and compared to A549 cells, a highly ZIKV permissive cell line. After performing binding and entry assays, ZIKV entry, but not the attachment, was significantly decreased in CHO cells in comparison to A549 cells. Additionally, in A549-EGFR KO cells, ZIKV entry was diminished relatively to the off-target control. These results show the clear impact that the absence of EGFR has on viral entry, implicating EGFR during this process. Even though EGFR overexpression in CHO cells could not render these cells permissive to ZIKV infection, as demonstrated by the lack of viral infection after electroporation with in vitro transcribed capped ZIKV-Renilla luciferase RNA, it was possible to rescue ZIKV entry. These findings suggest that there are additional elements, which are not expressed in CHO cells, required for viral replication.
Furthermore, the impact of ZIKV infection on EGFR mRNA and protein levels as well as on the EGFR subcellular localization and distribution was evaluated. The relative number of EGFR specific transcripts continuously increased with ZIKV infection, whereas the EGFR protein level diminished at later times of infection. Moreover, changes in the subcellular localization of EGFR and its colocalization with the early endosomal marker EEA1 in ZIKV-infected cells revealed that ZIKV triggers EGFR internalization. The relevance of EGFR in the ZIKV entry process was further corroborated by the observation of EGFR internalization at 30 min post-infection (mpi) and to less extent at 60 mpi, which concurs with the expected time of ZIKV entry into the host cells.
In the remaining part of the study, the influence of ZIKV infection in EGFR-dependent signaling as well as the contribution of EGFR and EGFR signaling for viral infection were studied. Activation of EGFR and the MAPK/ERK signaling cascade was detected as early as 5 mpi and ceased within 30 mpi in ZIKV-infected cells. Taking into account that EGFR internalization was observed at 30 mpi in infected cells, the activation of EGFR and ERK and subsequent dephosphorylation within this period go along with this previous observation. Vice-versa, inhibition of the activation of EGFR and the MAPK/ERK pathway declines ZIKV infection. On the one hand, inhibition of EGFR activation by Erlotinib affected ZIKV entry, as a consequence of impaired EGFR internalization. On the other hand, Raf and MEK inhibitors reduced ZIKV infection without disturbing viral replication or viral entry. These data suggest that the activation of the MAPK/ERK signaling cascade is necessary for a step of the viral life cycle before the onset of genome replication and morphogenesis and after viral entry. The importance of EGFR signaling was additionally investigated by the determination of EGFR half-life in ZIKV-infected cells upon EGF stimulation. While the EGFR half-life was similar in uninfected and Uganda-infected cells, a delay in EGFR degradation was observed in French Polynesia-infected cells. This observation might indicate an extended usurpation of the EGFR signaling since EGFR seems to still be active in the endosomes. Moreover, disruption of lipid rafts by MβCD, a cholesterol-depleting agent, hampered ZIKV entry. In uninfected cells, MβCD treatment led to the activation of EGFR, but at the same time prevented EGFR internalization, indicating that EGFR activation exclusively is not sufficient for an efficient ZIKV entry and further supporting the importance of EGFR internalization during the ZIKV entry process.
Taken together, this study uncovers EGFR as a relevant host factor in the early stages of ZIKV infection, providing novel insights into the ZIKV entry process. Since numerous monoclonal antibodies and substances that target EGFR are licensed, repurposing these compounds might be a helpful tool for the establishment of an antiviral therapy in case of ZIKV re-emergence.
Nucleotide-binding domains (NBDs), roughly 27 kDa in size, are conservative components of the large family of ABC (ATP-binding cassette) transporters, which includes importers, exporters, and receptors. NBDs or ABC-ATPases supply energy for the translocation of a vast variety of substrates across biological membranes. Despite their hydrophilic sequence, many NBDs tend to aggregate and precipitate in solution upon isolation from the complete transporter. The conditions stabilizing an extremely labile NBD component of the E.coli HlyA transporter, HlyB-NBD, were developed. As a result, the pure highly concentrated enzyme was protected from precipitation for months that allowed screening of the unlimited crystallization conditions in the presence of different substrates and performance of the reproducible functional assays. HlyB-NBD was characterized in regard to its uncoupled ATPase activity, oligomeric state, and stability in solution. Comparative analysis of protein stability and ATPase activity in various buffers suggested an inverse relationship between the two. Kinetic analysis of ATPase activity revealed ATP-induced protein dimerization. Gel-filtration experiments with the wild type protein and H662A-mutant of HlyB-NBD provided further evidence of protein dimerization in the presence of ATP. The crystal structures in post- and pre-hydrolysis nucleotide-bound states of HlyB-NBD were determined at 1.6Å and 2.5Å resolution, respectively. While the hydrolytically deficient H662A mutant of HlyB-NBD was crystallized as a stable dimer in the presence of ATP or ATP-Mg2+, with two nucleotide molecules sandwiched between the two monomers, the same protein was shown to be a monomer in the ADP-loaded state. The wild type protein failed to develop crystals with bound ATP, yet formed ADP-bound crystals identical to those of the H662A-mutant. The X-ray structures of HlyB-NBD in various states of the hydrolytic cycle and the functional studies of the enzyme have provided an opportunity to characterize enzyme-substrate complexes and protein-protein interactions between the NBD subunits in great detail. Comparison of the nucleotide-free, the ADP-, and the ATP-loaded states revealed oligomeric and conformational changes of the protein upon substrate binding and resulted in a molecular picture of the catalytic cycle. The correlated results of the structural and functional investigations of HlyB-NBD are discussed with relation to the mechanism of action of ABC transporters.