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Institut
- Rudolf-Virchow-Zentrum (285) (entfernen)
Sonstige beteiligte Institutionen
- Rudolf Virchow Center for Integrative and Translational Bioimaging, University of Würzburg (2)
- Center for Nanosystems Chemistry (CNC), University of Würzburg (1)
- Eberhard Karls Universität Tübingen (1)
- Genelux Corporation, San Diego Science Center, 3030 Bunker Hill Street, Suite 310, San Diego, California 92109, USA (1)
- MRB Forschungszentrum für Magnet-Resonanz-Bayern e.V., Am Hubland, D-97074 Würzburg (1)
- Research Center for Infectious Diseases, University of Wuerzburg, Wuerzburg 97080, Germany (1)
- Rudolf-Virchow-Zentrum für Experimentelle Biomedizin der Universität Würzburg (1)
Ein sehr wichtiger Tumorsuppressor ist der Transkriptionsfaktor p53, der Zellschicksals-Entscheidungen wie Zellzyklus-Arrest und programmierten Zelltod (Apoptose) kontrolliert. Die Wirkung von p53 und von seinen Familienmitgliedern p63 und p73 beruht überwiegend auf der Fähigkeit, als Transkriptionsfaktoren die Genexpression zu regulieren. Die DNA-Bindung an Promotoren von Zielgenen ist dabei von grundlegender Bedeutung und wird durch die hoch konservierte zentrale DNA-Bindungs-Domäne und den Carboxy-Terminus bestimmt. In dieser Arbeit wurden die DNA-Bindungseigenschaften von p53 und verschiedener Carboxy-terminalen p73 Isoformen untersucht. In „electrophoretic mobility shift assay” (EMSA) Experimenten bildeten p53 und p73gamma nur schwache Sequenz-spezifische DNA-Komplexe, wohingegen p73alpha, beta und delta die DNA deutlich stärker banden. Die schwache DNA-Bindung von p53 und p73gamma kann durch mehrfach positiv geladene Carboxy-Termini erklärt werden, die über eine Sequenz-unabhängige DNA-Bindung ein Gleiten entlang der DNA ermöglichen. Die Deletion der Carboxy-terminalen Domäne (CTD) von p53 („p53delta30“) verstärkte dementsprechend die Sequenz-spezifische DNA-Bindung in vitro und seine Übertragung auf p73alpha („p73alpha+30“) schwächte sie ab. Mittels „fluorescence recovery after photobleaching“ (FRAP) Experimenten konnte in lebenden Zellen eine Verminderung der intra-nukleären Mobilität von p53 und p73alpha+30 durch die CTD gezeigt werden, die aus der Sequenz-unabhängigen DNA-Bindung resultiert. Zusätzlich reduzierte die CTD die Sequenz-spezifische DNA-Bindung von p53 an den p21 (CDKN1A) Promotor. Das Spektrum der regulierten Zielgene wurde in einer Genom-weiten Genexpressions-Analyse nicht durch die CTD verändert, sondern maßgeblich durch das Protein-Rückgrat von p53 beziehungsweise p73 bestimmt. Allerdings verminderte die CTD das Ausmaß der Transkriptions-Regulation und hemmte die Induktion von Zellzyklus-Arrest und Apoptose. Die mehrfach positiv geladene CTD in p53 besitzt demzufolge eine negativ regulatorische Wirkung, die in den wichtigsten p73 Isoformen alpha, beta und delta fehlt. Die zentrale DNA-Bindungs-Domäne trägt durch elektrostatische Wechselwirkungen zwischen H1-Helices (Aminosäurereste 177 bis 182) unterschiedlicher p53 Monomere zu kooperativer DNA-Bindung und zu Zellschicksals-Entscheidungen bei. Anhand von Mutanten, die unterschiedlich starke H1-Helix-Interaktionen ermöglichen, konnte gezeigt werden, dass starke Interaktionen die Bindung an Promotoren von pro-apoptotischen Genen verstärkte, wohingegen die Bindung an anti-apoptotische und Zellzyklus-blockierende Gene unabhängig von der Interaktions-Stärke war. Diese Unterschiede in der Promotor-Bindung ließen sich nicht auf eine veränderte zelluläre Lokalisation der Mutanten zurückführen, da alle Mutanten überwiegend nukleär lokalisiert waren. Eine an Serin 183 Phosphorylierungs-defekte Mutante von p53 bildete stabile DNA-Komplexe, entsprechend einer Mutante mit starker H1-Helix-Interaktion, und trans-aktivierte pro-apoptotische Promotoren stärker als Mutanten, die Phosphorylierung von p53 an Serin 183 simulieren. Da zusätzlich bekannt ist, dass Serin 183 mit der H1-Helix wechselwirkt, könnte diese Phosphorylierung einen physiologischen Mechanismus zur Regulation der H1-Helix-Interaktion und damit des Zellschicksals darstellen. Zusammenfassend ließ sich zeigen, dass sowohl die Interaktions-Stärke zweier DNA-Bindungs-Domänen als auch die elektrische Ladung des Carboxy-Terminus die DNA-Bindungseigenschaften von p53 Familienmitgliedern bestimmen und so Zellschicksals-Entscheidungen der p53 Familie beeinflussen.
Mycobacterium tuberculosis is the causative agent of tuberculosis and responsible for more than eight million new infections and about two million deaths each year. Novel chemotherapeutics are urgently needed to treat the emerging threat of multi drug resistant and extensively drug resistant strains. Cell wall biosynthesis is a widely used target for chemotherapeutic intervention in bacterial infections. In mycobacteria, the cell wall is comprised of mycolic acids, very long chain fatty acids that provide protection and allow the bacteria to persist in the human macrophage. The type II fatty acid biosynthesis pathway in Mycobacterium tuberculosis synthesizes fatty acids with a length of up to 56 carbon atoms that are the precursors of the critical mycobacterial cell wall components mycolic acids. KasA, the mycobacterial ß-ketoacyl synthase and InhA, the mycobacterial enoyl reductase, are essential enzymes in the fatty acid biosynthesis pathway and validated drug targets. In this work, KasA was expressed in Mycobacterium smegmatis, purified and co-crystallized in complex with the natural thiolactone antibiotic thiolactomycin (TLM). High-resolution crystal structures of KasA and the C171Q KasA variant, which mimics the acyl enzyme intermediate of the enzyme, were solved in absence and presence of bound TLM. The crystal structures reveal how the inhibitor is coordinated by the enzyme and thus specifically pinpoint towards possible modifications to increase the affinity of the compound and develop potent new drugs against tuberculosis. Comparisons between the TLM bound crystal structures explain the preferential binding of TLM to the acylated form of KasA. Furthermore, long polyethylene glycol molecules are bound to KasA that mimic a fatty acid substrate of approximately 40 carbon atoms length. These structures thus provide the first insights into the molecular mechanism of substrate recognition and reveal how a wax-like substance can be accommodated in a cytosolic environment. InhA was purified and co-crystallized in complex with the slow, tight binding inhibitor 2-(o-tolyloxy)-5-hexylphenol (PT70). Two crystal structures of the ternary InhA-NAD+-PT70 were solved and reveal how the inhibitor is bound to the substrate binding pocket. Both structures display an ordered substrate binding loop and corroborate the hypothesis that slow onset inhibition is coupled to loop ordering. Upon loop ordering, the active site entrance is more restricted and the inhibitor is kept inside more tightly. These studies provide additional information on the mechanistic imperatives for slow onset inhibition of enoyl ACP reductases.
Studies on platelet cytoskeletal dynamics and receptor regulation in genetically modified mice
(2009)
Platelets are produced by bone marrow megakaryocytes in a process involving actin dynamics. Actin-depolymerizing factor (ADF) and cofilin are actin-binding proteins that act as key regulators in actin turnover by promoting filament severing and depolymerization. The overall significance of ADF/cofilin function and actin turnover in platelet formation is presently unclear. In the first part of this thesis, platelet formation and function were studied in mice constitutively lacking ADF and/or mice with a conditional deficiency (Cre/loxP) in n-cofilin. To delete cofilin exclusively in megakaryocytes and platelets, cofilinfl/fl mice were crossed with PF4 (platelet factor 4)-Cre mice. While a single-deficiency in ADF or n-cofilin resulted in no or only a minor platelet formation defect, respectively, a double-deficiency in ADF and n-cofilin led to an almost complete loss of platelets. Bone marrow megakaryocytes of ADF/n-cofilin-deficient mice showed defective platelet zone formation. Interestingly, in vitro and ex vivo megakaryocyte differentiation revealed reduced proplatelet formation and absence of platelet-forming swellings. These data establish that ADF and n-cofilin have redundant but essential roles in the terminal step of platelet formation in vitro and in vivo. In the second part of the thesis, mechanisms underlying cellular regulation of the major platelet collagen receptor, glycoprotein VI (GPVI), were studied. GPVI mediates platelet activation on exposed subendothelial collagens at sites of vascular injury, and thereby contributes to normal hemostasis but also to occlusion of diseased vessels in the setting of myocardial infarction or stroke. Thus, GPVI is an attractive target for anti-thrombotic therapy, particularly because previous studies have shown that anti-GPVI antibodies induce irreversible down-regulation of the receptor in circulating platelets by internalization and ectodomain shedding. Metalloproteinases of the ADAM (a disintegrin and metalloproteinase domain) family are suspected to mediate this ectodomain shedding, but in vivo evidence for this is lacking. To study the mechanism of GPVI regulation in vivo, two mouse lines, Gp6 knock-out and Adam10fl/fl, PF4-Cre mice, were generated and in addition low TACE (TNFalpha converting enzyme) mice were analyzed. It was shown that GPVI can be cleaved in vitro by ADAM10 or TACE depending on the shedding-inducing signaling pathway. Moreover, GPVI was down-regulated in vivo upon antibody injection in ADAM10-deficient and low TACE mice suggesting that either both or an additional metalloproteinase is involved in GPVI regulation in vivo.
Die angeborene Immunität ist entstanden als Schutz gegenüber einer Vielzahl schädigender Einflüsse, denen ein Organismus ausgesetzt ist, und dient im Besonderen der sofortigen Abwehr von Krankheitserregern. Sie basiert auf der Funktion verschiedener keimbahnkodierter Rezeptoren und Sensoren, wie etwa den Toll-like Rezeptoren, die bestimmte fremdartige Strukturen der Krankheitserreger erkennen und daraufhin diverse Immunabwehrmechanismen auslösen. Hierbei kann die Detektion der Fremdstrukturen zum einen über die Aktivierung von Transkriptionsfaktoren, wie AP-1, NF-kB und IRFs, die Produktion antiviraler und proinflammatorischer Zytokine verursachen, welche daraufhin auf andere Zellen einwirken. Zum anderen kann die Detektion der Fremdstrukturen auch direkte immunologische Effektorfunktionen in der betroffenen Zelle auslösen. Die diversen Signale der Zytokin- und Detektionsrezeptoren münden in gemeinsamen Signalwegen, die daraufhin zur Induktion der verschiedenen Immuneffektorfunktionen führen. Häufig kommt es zunächst zu einer Aktivierung von NF-kB, was der antiviralen Abwehr, der Beseitigung anderer Störungen und dem Überleben der Zelle unter Stress dient. Wenn der schädigende Einfluss zu lange anhält, kann es stattdessen zur Initiation des programmierten Zelltodes kommen. Der programmierte Zelltod wird als sehr effektive Abwehrstrategie vielzelliger Organismen betrachtet, welcher die Ausbreitung intrazellulärer Erreger im Körper verhindert. Dies beruht darauf, dass die betroffene Zelle abstirbt, bevor der Erreger in der Lage ist, sich zu vervielfältigen und auf benachbarte Zellen zu übertragen. Da Viren als intrazelluläre Parasiten jedoch auf den Metabolismus ihrer Wirtszellen angewiesen sind, mussten sie im Laufe ihrer Evolution vielseitige Immunevasionsfunktionen etablieren, um sich trotz der effektiven antiviralen Wirksamkeit der angeborenen Immunität in den Wirtszellen vermehren zu können. In dieser Arbeit konnte ein vielseitiger Immunevasionsmechanismus des murinen Cytomegalovirus aufgedeckt werden. Am Anfang der Arbeit stand die Beobachtung, dass rekombinante murine Cytomegaloviren, die kein funktionsfähiges M45-Protein exprimieren, nicht mehr in der Lage waren, sich in Endothelzellkulturen auszubreiten, was auf die vorzeitige Induktion des programmierten Zelltodes zurückgeführt wurde. Der Mechanismus, wie das murine Cytomegalovirus-Protein M45 die Einleitung des programmierten Zelltodes verhindert, sollte in dieser Arbeit aufgeklärt werden. In ersten Untersuchungen konnte bestätigt werden, dass M45 tatsächlich in der Lage ist, infizierte Zellen vor Todesrezeptor-vermitteltem Zelltod zu schützen. Über die Analyse von M45-Interaktionspartnern wurde daraufhin aufgedeckt, dass M45 das zentrale zelluläre Adapterprotein RIP1 angreift, welches an einem Schnittpunkt verschiedener immunologischer Detektionssysteme und Zytokinsignalwege steht. Durch die Bindung an 5 RIP1 kann M45 die Aktivierung des Transkriptionsfaktors NF-kB nach Stimulation des TLR3 unterbinden, was wahrscheinlich eine wichtige Rolle bei der Detektion einer CMV-Infektion spielt. Des Weiteren inhibiert M45 die Aktivierung von NF-kB und der p38 MAP-Kinase nach TNF-a-Stimulation. Die vermutlich wichtigste Funktion hingegen, die M45 durch die Inhibition von RIP1 ausübt, ist die Verhinderung des Caspase-unabhängigen programmierten Zelltodes infizierter Zellen nach Einwirkung von TNF-a. Diese Funktion erklärt den ursprünglich beobachteten Phänotyp der M45-Deletionsmutante. Es konnte gezeigt werden, dass M45 diese wichtigen Immunevasionsfunktionen allein ohne weitere virale Proteine erfüllen kann. Sowohl für die Bindung an RIP1 als auch für die Inhibition der TNF-a-induzierten NF-kB-Aktivierung scheint nur der C-terminale Teil des M45 benötigt zu werden. Als molekulare Grundlage konnte nachgewiesen werden, dass M45 die Ubiquitinierung von RIP1 verhindert, welche als Stimulus-abhängige Aktivierung dieses Adapterproteins betrachtet wird. Auf diese Weise werden die verschiedenen RIP1- abhängigen Signalwege von M45 blockiert. Diese Inhibition RIP1-abhängiger Signalwege durch das MCMV-Protein M45 stellt einen neuen viralen Evasionsmechanismus dar, mit dem gleichzeitig mehrere antivirale und proinflammatorische Signalwege inhibiert werden können und der vermutlich entscheidend zur erfolgreichen Vermehrung und Pathogenese des murinen Cytomegalovirus beiträgt.
The prototyical tumor suppressor p53 is able to arrest cells after DNA damage or as a response to oncogene expression. The transactivation-competent (TA) isoforms of the more recently discovered p53 family member p73 also prevent tumors, but the underlying mechanisms are less well understood. The work presented here addressed this issue by using a cell culture model of tumorigenesis in which normal human diploid fibroblasts are stepwise transduced with oncogenes. Cells in pretransformed stages were shown to harbour high levels of TAp73 mRNA and protein. This positive regulation was probably a result of pRB inactivation and derepression of E2F1, a key activator of TAp73. Consequences for such cells included an increased sensitivity to the cytostatic drug adriamycin, slower proliferation and reduced survival at high cell density, as demonstrated by rescue experiments using siRNA-mediated knockdown of TAp73. In order to identify potential effector pathways, the gene expression profile of siRNA treated, matched fibroblast cell lines with high and low TAp73 levels were compared in DNA microarrays. These findings support the notion of TAp73 up-regulation as an anti-proliferative defense mechanism, blocking the progress towards full transformation. This barrier could be overcome by the introduction of a constitutively active form of Ras which caused a switch from TAp73 to oncogenic DeltaNp73 expression, presumably through the phosphatidylinositol 3-kinase (PI3K) pathway. In summary, the results presented emphasize the tumor-suppressive function of TAp73 and indicate that its downregulation is a decisive event during the transformation of human cells by oncogenic Ras mutants.
Um der ungehinderten Vermehrung maligne entarteter Zellen vorzubeugen, besitzt der Organismus Tumorsuppressorgene. Die Blockade von tumorsuppressiven Signalwegen ist Voraussetzung für die neoplastische Transformation von Zellen. Während die tumorsuppressive Funktion von p53 bestens untersucht ist, war die Bedeutung des p53-Familienmitglieds p73 als Tumorsuppressor umstritten. Komplizierend war hierbei, dass das p73-Gen sowohl ein p53-ähnliches, putativ tumorsuppressives Protein (TAp73) als auch ein funktionell antagonistisches, potentiell onkogenes Protein (ΔNp73) exprimiert. Die in dieser Arbeit dargestellten Untersuchungen zeigen, dass TAp73 tatsächlich tumorsuppressiv agiert: zum einen verhindert es zusammen mit p53 und TAp63 durch Induktion von myogener Differenzierung die Entstehung von Rhabdomyosarkomen - zum anderen unterdrückt es substratunabhängiges Wachstum als Charakteristikum von Tumorzellen und bildet so eine Barriere auf dem Weg der malignen Transformation. Eine Inaktivierung der tumorsuppressiven Aktivitäten von TAp73 erfolgt bei Tumorpatienten – anders als bei p53 – entweder durch eine Reduktion der p73-Expression aufgrund von Gendeletion bzw. Promotormethylierung oder durch eine verstärkte Expression von Inhibitoren wie ΔNp73. Eine reduzierte p73-Expression wird z.B. bei einigen hämatologischen Neoplasien beobachet. Entsprechend beobachteten wir in einem Myc-induzierten Lymphommodell der Maus eine geringfügig aber signifikant beschleunigte Lymphomentstehung nach Deletion eines p73-Allels. Eine verstärkte Expression von ΔNp73 ist dagegen die charakteristische Expressionsveränderung von p73 in soliden Tumoren. Entsprechend beobachteten wir in >85% aller Rhabdomyosarkome stark erhöhte ΔNp73-Spiegel, die sich als essentiell für Tumorentstehung und Tumorprogression erwiesen. Diese Ergebnisse in unterschiedlichen in vitro und in vivo Modellen belegen mechanistisch, dass TAp73 als Tumorsuppressor wirkt, dessen Funktion in Tumoren häufig inaktiviert ist. Proof-of-principle Experimente in dieser Arbeit unterstreichen ferner, dass eine Reaktivierung der Tumorsuppressorfunktion von TAp73, z.B. durch Blockade von ΔNp73, eine Möglichkeit darstellt, um Tumore auf molekularer Ebene zu therapieren.
The Transforming Growth Factor (TGF) superfamily of cytokines and their serine/threonine kinase receptors play an important role in the regulation of cell division, differentiation, adhesion, migration, organization, and death. Smad proteins are the major intracellular signal transducers for the TGF receptor superfamily that mediate the signal from the membrane into the nucleus. Bone Morphogenetic Protein-4 (BMP-4) is a representative of the TGF superfamily, which regulates the formation of teeth, limbs and bone, and also plays a role in fracture repair. Binding of BMP-4 to its receptor stimulates phosphorylation of Smad1, which subsequently recruits Smad4. A hetero-oligomeric complex consisting of Smad1 and Smad4 then translocates into the nucleus and regulates transcription of target genes by interacting with transcription factors. Although the individual steps of the signaling cascade from the receptor to the nucleus have been identified, the exact kinetics and the rate limiting step(s) have remained elusive. Standard biochemical techniques are not suitable for resolving these issues, as they do not offer sufficiently high sensitivity and temporal resolution. In this study, advanced optical techniques were used for direct visualization of Smad signaling in live mammalian cells. Novel fluorescent biosensors were developed by fusing cyan and yellow fluorescent proteins to the signaling molecules Smad1 and Smad4. By measuring Fluorescence Resonance Energy Transfer (FRET) between the two fluorescent proteins, the kinetics of BMP/Smad signaling was unraveled. A rate-limiting delay of 2 - 5 minutes occurred between BMP receptor stimulation and Smad1 activation. A similar delay was observed in the complex formation between Smad1 and Smad4. Further experimentation indicated that the delay is dependent on the Mad homology 1 (MH1) domain of Smad1. These results give new insights into the dynamics of the BMP receptor – Smad1/4 signaling process and provide a new tool for studying Smads and for testing inhibitory drugs.
Platelets are crucial to inhibit extensive blood loss at sites of vascular injury. However, under pathological conditions such as rupture of an atherosclerotic plaque, activated platelets form aggregates that may occlude the vessel. This can lead to heart attack and stroke. Various and complex signaling pathways in the cell are involved in the steps of platelet adhesion, activation and aggregation. Single aspects of these processes were studied in three different subprojects in this work. The Glycoprotein (GP) Ib-V-IX complex is responsible for the first contact of platelets with the vessel wall. Subsequently, GPVI can bind to collagen of the subendothelium, which initiates a signaling cascade leading to platelet activation, aggregation, characterized by integrin activation and granule secretion and platelet procoagulant activity. The latter is characterized by exposed phosphatidylserine (PS) on the platelet surface, which enhances thrombin generation and thereby the coagulation cascade. A controlled regulation of GP receptors on the platelet surface is vital for an intact response of the cell to platelet agonists. In the first subproject described here the regulation of GPV and GPVI on mouse platelets was investigated and it was found that both receptors are shed from the platelet surface in a metalloproteinase dependent manner. However, GPVI is shed upon mitochondrial injury, while GPV cleavage could be observed upon platelet stimulation. The metalloproteinase responsible for GPVI shedding remains unknown whereas the metallproteinase that sheds GPV was identified in this work as being ADAM17. This shows that the expression of both receptors underlies a controlled mechanism regulated through distinct metalloproteinases. In the second subproject the role of protein kinase C (PKC) in platelet activation and procoagulant response was investigated using PKC specific inhibitors. It was found that PKC blockage reduced platelet activation but enhanced platelet procoagulant activity. This is the first time that a dual role in platelet activation and procoagulant activity is defined for PKC. In the third project the role of the small GTPase Rac1 in platelet signaling was studied using conditional Rac1 knock out mice. It is reported here that Rac1 lies downstream of GPVI and is involved in integrin activation and cytsolic Ca2+ changes in vitro and platelet adhesion and thrombus formation in vivo. This is the first time that Rac1 is demonstrated to have a pivotal role in GPVI signaling and furthermore points to a novel, unknown pathway downstream of GPVI.
Viren durchliefen eine gemeinsame Evolution mit ihren Wirtsorganismen, die zu einer spezifischen Anpassung der Viren an ihren jeweiligen Wirt führte. Als Folge dessen verfügen viele Viren über ein eng begrenztes Wirtsspektrum. Gelegentlich machen Viren Veränderungen durch, die es ihnen erlauben, einen neuen Wirt zu infizieren und in ihm zu replizieren, wie dies in jüngster Vergangenheit beim humanen Immundefizienz-Virus oder beim Grippevirus geschehen ist. Spezies-übergreifende Infektionen sind für die meisten neuen und wiederauftauchenden Viruserkrankungen verantwortlich. Allerdings ist bisher wenig über die Mechanismen bekannt, die Viren auf einen bestimmten Wirt beschränken, und welche Faktoren Viren zur Überwindung der Spezies-Barriere und zur Vermehrung in einer neuen Wirtsspezies benötigen. Cytomegaloviren sind Prototypen der beta-Herpesvirus Unterfamilie und verfügen über eine ausgeprägte Spezies-Spezifität. Sie vermehren sich nur in Zellen der eigenen oder einer eng verwandten Wirtsspezies. Der molekulare Mechanismus, der dieser Spezies-Spezifität zugrunde liegt, ist noch weitgehend unbekannt und stellt deshalb das Thema dieser Arbeit dar. Initiale Beobachtungen zeigten, dass sich das Maus-Cytomegalovirus (MCMV) ausschließlich in menschlichen 293 und 911 Zellen, aber keiner anderen getesteten menschlichen Zelle vermehren ließ. Diese beiden Zelllinien sind mit Adenovirus E1-Genen transformiert, die den Transkriptions-Transaktivator E1A sowie zwei Apoptose-Inhibitoren (E1B-55k und E1B-19k) kodieren. Daher lag die Hypothese nahe, dass diese Funktionen benötigt werden, um eine MCMV-Replikation in menschlichen Zellen zu ermöglichen. Außerdem konnte gezeigt werden, dass normale menschliche Zellen nach Infektion rapide absterben, und zwar durch eine Caspase-9-vermittelte Apoptose. Die Induktion der Apoptose durch MCMV lässt sich durch Caspase-Inhibitoren unterdrücken, wodurch die virale Replikation wiederhergestellt wird. Dies deutet auf eine Schlüsselfunktion der Caspasen für diesen Prozess hin. Durch Überexpression eines mitochondrialen Apoptose-Inhibitors, d.h. eines Bcl-2-ähnlichen Proteins, in menschlichen Zellen ließ sich die Virus-induzierte Apoptose verhindern. Diese Zellen erlaubten ebenfalls eine effiziente MCMV-Replikation. Die Bedeutung Bcl-2-ähnlicher Proteine für die Spezies-übergreifende Cytomegalovirus-Infektion wurde sowohl durch die Integration korrespondierender Gene, alsauch durch die Integration anderer Inhibitioren der Apoptose oder von Kontroll-Genen in das MCMV Genom bestätigt. Nur rekombinante Viren, die ein Bcl-2-ähnliches Protein kodieren, konnten in menschlichen Zellen vermehrt werden. Ein einziges Gen des humanen Cytomegalovirus, das einen mitochondrialen Apoptose-Inhibitor kodiert, reichte aus, um eine MCMV-Replikation in menschlichen Zellen zu ermöglichen. Zusätzlich konnte gezeigt werden, dass dieselben Prinzipien für eine Replikation des Ratten-Cytomegalovirus in menschlichen Zellen gelten. Zusammenfassend kann festgestellt werden, dass die Induktion der Apoptose eine Spezies-übergreifende Infektion bei den Nagetier-Cytomegaloviren einschränkt.
Human cytomegalovirus (HCMV) infection causes clinical symptoms in immunocompromised individuals such as transplantant recipients and AIDS patients. The virus is also responsible for severe complications in unborn children and young infants. The species specificity of HCMV prevents the direct study of mechanisms controlling the infection in animal models. Instead, the murine cytomegalovirus (MCMV) is used as a model system. Human and murine CMVs have large double-stranded DNA genomes, encoding nearly 170 genes. About 30% of the genes are committed to essential tasks of the virus. The remaining genes are involved in virus pathogenesis or host interaction and are dispensable for virus replication. The CMV genes are classified in gene families, based on sequence homology. In the present work, the function of two genes of the US22 gene family was analyzed. The MCMV genes m142 and m143 are the only members of this family that are essential for virus replication. These genes also differ from the remaining ten US22 gene family members in that they lack 1 of 4 conserved sequence motifs that are characteristic of this family. The same conserved motif is missing in the HCMV US22 family members TRS1 and IRS1, suggesting a possible functional homology. To demonstrate an essential role of m142 and m143, the genes were deleted from the MCMV genome, and the mutants were reconstituted on complementing cells. Infection of non-complementing cells with the deletion mutants did not result in virus replication. Virus growth was rescued by reinsertion of the corresponding genes. Cells infected with the viral deletion mutants synthesized reduced amounts of viral DNA, and viral late genes were not expressed. However, RNA analyses showed that late transcripts were present, excluding a role of m142 and m143 in regulation of gene transcription. Metabolic labelling experiments showed that total protein synthesis at late times postinfection was impaired in cells infected with deletion mutants. Moreover, the dsRNA-dependent protein kinase R (PKR) and its target protein, the translation initiation factor 2α (eIF2α) were phosphorylated in these cells. This suggested that the m142 and m143 are required for blocking the PKR-mediated shut-down of protein synthesis. Expression of the HCMV gene TRS1, a known inhibitor of PKR activation, rescued the replication of the deletion mutants, supporting the observation that m142 and m143 are required to inhibit this innate immune response of the host cell.