Lehrstuhl für Biochemie
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Sonstige beteiligte Institutionen
- CIBSS Centre for Integrative Biological Signalling Studies, University of Freiburg (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)
- Rudolf-Virchow-Zentrum DFG-Forschungszentrum für Experimentelle Biomedizin der Universität Würzburg (1)
The Epstein-Barr Virus (EBV) -encoded EBNA2 protein, which is essential for the in vitro transformation of B-lymphocytes, interferes with cellular processes by binding to proteins via conserved sequence motifs. Its Arginine-Glycine (RG) repeat element contains either symmetrically or asymmetrically di-methylated arginine residues (SDMA and ADMA, respectively). EBNA2 binds via its SDMA-modified RG-repeat to the survival motor neurons protein (SMN) and via the ADMA-RG-repeat to the NP9 protein of the human endogenous retrovirus K (HERV-K (HML-2) Type 1). The hypothesis of this work was that the methylated RG-repeat mimics an epitope shared with cellular proteins that is used for interaction with target structures. With monoclonal antibodies against the modified RG-repeat, we indeed identified cellular homologues that apparently have the same surface structure as methylated EBNA2. With the SDMA-specific antibodies, we precipitated the Sm protein D3 (SmD3) which, like EBNA2, binds via its SDMA-modified RG-repeat to SMN. With the ADMA-specific antibodies, we precipitated the heterogeneous ribonucleoprotein K (hnRNP K). Specific binding of the ADMA-antibody to hnRNP K was demonstrated using E. coli expressed/ADMA-methylated hnRNP K. In addition, we show that EBNA2 and hnRNP K form a complex in EBV-infected B-cells. Finally, hnRNP K, when co-expressed with EBNA2, strongly enhances viral latent membrane protein 2A (LMP2A) expression by an unknown mechanism as we did not detect a direct association of hnRNP K with DNA-bound EBNA2 in gel shift experiments. Our data support the notion that the methylated surface of EBNA2 mimics the surface structure of cellular proteins to interfere with or co-opt their functional properties.
G-Quadruplex (G4)-Strukturen sind sehr stabile und polymorphe DNA und RNA Sekundärstrukturen mit einem konservierten Guanin-reichen Sequenzmotiv (G4-Motiv). Sie bestehen aus übereinander gestapelten planaren G-Quartetts, in denen je vier Guanine durch Wasserstoffbrückenbindungen zusammengehalten werden.
Da G4-Motive in Eukaryoten an bestimmten Stellen im Genom angereichert vorkommen, wird angenommen, dass die Funktion von G4-Strukturen darin besteht, biologische Prozesse positiv oder negativ zu regulieren. Aufgrund der hohen thermodynamischen Stabilität von G4 Strukturen ist davon auszugehen, dass Proteine in die Faltung, Stabilisierung und Entfaltung dieser Nukleinsäure-Strukturen regulatorisch involviert sind. Bis heute wurden viele Proteine in der Literatur beschrieben, die G4-Strukturen entwinden können. Jedoch konnten bisher nur wenige Proteine identifiziert werden, die in vivo die Faltung fördern oder G4-Strukturen stabilisieren.
Durch Yeast One-Hybrid (Y1H)-Screenings habe ich Zuo1 als neues G4 bindendes Protein identifiziert. In vitro Analysen bestätigten diese Interaktion und es stellte sich heraus, dass Zuo1 G4-Strukturen stabilisiert. Übereinstimmend mit den in vitro Daten konnte gezeigt werden, dass Zuo1 signifikant an G4-Motive im Genom von Saccharomyces ceresivisiae bindet. Genomweit überlappen G4-Motive, an die Zuo1 bindet, mit Stellen, an denen die DNA Replikation zum Stillstand kommt und vermehrt DNA Schäden vorkommen. Diese Ergebnisse legen nahe, dass Zuo1 eine Funktion während der DNA Reparatur oder in Zusammenhang mit dem Vorankommen der DNA Replikationsgabel hat, indem G4-Strukturen stabilisiert werden. Diese Hypothese wird außerdem durch genetische Experimente gestützt, wonach in Abwesenheit von Zuo1 die Genominstabilität zunimmt. Aufgrund dieser Daten war es möglich ein Model zu entwickeln, bei dem Zuo1 während der S-Phase G4-Strukturen bindet und stabilisiert wodurch die DNA Replikation blockiert wird. Diese Interaktion findet neben Stellen schadhafter DNA statt und unterstützt somit DNA Reparatur-Prozesse wie beispielsweise die Nukleotidexzisionsreparatur.
Als weiteres potentielles G4-bindendes Protein wurde Slx9 in Y1H-Screenings identifiziert. In vitro Experimente zeigten zwar, dass Slx9 mit höherer Affinität an G4-Strukturen bindet im Vergleich zu anderen getesteten DNA Konformationen, jedoch wurde in S. cerevisiae genomweit keine signifikante Bindung an G4-Motive festgestellt.
Der Transkriptionsfaktor Stat6 vermittelt zentrale Wirkungen von IL-4 und IL-13, die in der Pathologie atopischer Erkrankungen eine Rolle spielen. Seine Spezifität für diese beiden allergieassoziierten Cytokine ist eine wesentliche Motivation ihn näher zu untersuchen. In dieser Arbeit sollte mehr über die Funktion von Stat6 herausgefunden werden. Außerdem wurden Möglichkeiten untersucht dieses Verhalten zu beinflussen. Einen Schwerpunkt der Arbeit bildete die Regulation des Eotaxin-1-Promotors. Eotaxin-1 ist einer der stärksten Rekrutierungsfaktoren für Eosinophile, die eine zentrale Rolle bei der Immunpathologie allergischer Erkrankungen spielen. Mit Hilfe der Daten konnte eine neue Hypothese zur Regulation des Eotaxin-1-Promotors entwickelt werden. Zum Vergleich wurde mit der Untersuchung des Promotors eines weiteren Chemokins, des MCP-4, begonnen. In Zusammenarbeit mit Dr. Sascha Stolzenberger wurde ein Weg untersucht den Stat6-Signalweg zu hemmen. Dabei wurden mit Hilfe des Antennapedia-Peptides Stat6-Bindepeptide in die Zelle transportiert, um dort über eine kompetitive Hemmung die Signaltransduktion zu unterbinden. Ergebnis dieser Arbeiten ist ein hochspezifischer, aber nur transient wirkender Stat6 Inhibitor. Die Stat6/DNA-Wechselwirkung wurde mit der Magnetobead-Technik untersucht. Dabei werden Promotorfragmente an Magnetkügelchen gekoppelt und unter Ausnutzung der Magnetisierung an die DNA bindende Proteine isoliert und über SDS-PAGE/Immunoblotanalyse untersucht. Mit dem Verfahren konnte die Stat6-Bindung an acht verschiedene Promotoren nachgewiesen werden. In Zusammenarbeit mit der Arbeitsgruppe Pallardy aus Paris wurde die Wechselwirkung von Stat6 mit dem Glucocorticoid-Rezeptor untersucht. Glucocorticoide kontrollieren Entzündungen und Interaktionen des aktivierten Rezeptors mit anderen Proteinen aus der Stat-Familie sind seit längerem bekannt. Wie in dieser Arbeit gezeigt wurde, interagiert Stat6 mit dem Glucocorticoidrezeptor unabhängig von einer Bindung an DNA. Zusätzlich wurde der Mucin-2-Promotor auf Stat6-Regulierung untersucht. Mucine sind wichtige Bestandteile des Schleimes. Verstärkte Schleim-Sekretion ist ein klinisches Symptom asthmatischer Erkrankungen und trägt zur Zerstörung der Lunge bei. Ein potentiell Stat6 reguliertes Fragment aus dem Mucinpromoter wurde mit Hilfe von PCR-Techniken isoliert und in Reportergenvektoren kloniert.
Introduction: Oncolytic viruses show promise for treating cancer. However, to assess therapy and potential toxicity, a noninvasive imaging modality is needed. This study aims to determine the in vivo biodistribution, and imaging and timing characteristics of a vaccinia virus, GLV-1h153, encoding the human sodium iodide symporter (hNIS.
Methods: GLV-1h153 was modified from GLV-1h68 to encode the hNIS gene. Timing of cellular uptake of radioiodide \(^{131}\)I in human pancreatic carcinoma cells PANC-1 was assessed using radiouptake assays. Viral biodistribution was determined in nude mice bearing PANC-1 xenografts, and infection in tumors confirmed histologically and optically via Green Fluorescent Protein (GFP) and bioluminescence. Timing characteristics of enhanced radiouptake in xenografts were assessed via \(^{124}\)I-positron emission tomography (PET). Detection of systemic administration of virus was investigated with both \(^{124}\)I-PET and 99m-technecium gamma-scintigraphy.
Results: GLV-1h153 successfully facilitated time-dependent intracellular uptake of \(^{131}\)I in PANC-1 cells with a maximum uptake at 24 hours postinfection (P < 0.05). In vivo, biodistribution profiles revealed persistence of virus in tumors 5 weeks postinjection at 10\(^9\) plaque-forming unit (PFU)/gm tissue, with the virus mainly cleared from all other major organs. Tumor infection by GLV-1h153 was confirmed via optical imaging and histology. GLV-1h153 facilitated imaging virus replication in tumors via PET even at 8 hours post radiotracer injection, with a mean % ID/gm of 3.82 \(\pm\) 60.46 (P < 0.05) 2 days after intratumoral administration of virus, confirmed via tissue radiouptake assays. One week post systemic administration, GLV1h153-infected tumors were detected via \(^{124}\)I-PET and 99m-technecium-scintigraphy.
Conclusion: GLV-1h153 is a promising oncolytic agent against pancreatic cancer with a promising biosafety profile. GLV-1h153 facilitated time-dependent hNIS-specific radiouptake in pancreatic cancer cells, facilitating detection by PET with both intratumoral and systemic administration. Therefore, GLV-1h153 is a promising candidate for the noninvasive imaging of virotherapy and warrants further study into longterm monitoring of virotherapy and potential radiocombination therapies with this treatment and imaging modality.
Introduction:
Oncolytic viruses show promise for treating cancer. However, to assess therapeutic efficacy and potential toxicity, a noninvasive imaging modality is needed. This study aimed to determine if insertion of the human sodium iodide symporter (hNIS) cDNA as a marker for non-invasive imaging of virotherapy alters the replication and oncolytic capability of a novel vaccinia virus, GLV-1h153.
Methods:
GLV-1h153 was modified from parental vaccinia virus GLV-1h68 to carry hNIS via homologous recombination. GLV-1h153 was tested against human pancreatic cancer cell line PANC-1 for replication via viral plaque assays and flow cytometry. Expression and transportation of hNIS in infected cells was evaluated using Westernblot and immunofluorescence. Intracellular uptake of radioiodide was assessed using radiouptake assays. Viral cytotoxicity and tumor regression of treated PANC-1tumor xenografts in nude mice was also determined. Finally, tumor radiouptake in xenografts was assessed via positron emission tomography (PET) utilizing carrier-free (124)I radiotracer.
Results:
GLV-1h153 infected, replicated within, and killed PANC-1 cells as efficiently as GLV-1h68. GLV-1h153 provided dose-dependent levels of hNIS expression in infected cells. Immunofluorescence detected transport of the protein to the cell membrane prior to cell lysis, enhancing hNIS-specific radiouptake (P < 0.001). In vivo, GLV-1h153 was as safe and effective as GLV-1h68 in regressing pancreatic cancer xenografts (P < 0.001). Finally, intratumoral injection of GLV-1h153 facilitated imaging of virus replication in tumors via (124)I-PET.
Conclusion:
Insertion of the hNIS gene does not hinder replication or oncolytic capability of GLV-1h153, rendering this novel virus a promising new candidate for the noninvasive imaging and tracking of oncolytic viral therapy.
Background:
Pancreatic cancer is a fatal disease associated with resistance to conventional therapies. This study aimed to determine changes in gene expression patterns associated with infection and susceptibility of pancreatic cancer cells to an oncolyticvaccinia virus, GLV-1h153, carrying the human sodium iodide symporter for deep tissue imaging of virotherapy.
Methods:
Replication and susceptibility of pancreatic adenocarcinoma PANC-1 cells to GLV-1h153 was confirmed with replication and cytotoxicity assays. PANC-1 cells were then infected with GLV-1h153 and near-synchronous infection confirmed via flow cytometry of viral-induced green fluorescent protein (GFP) expression. Six and 24 hours after infection, three samples of each time point were harvested, and gene expression patterns assessed using HG-U133A cDNA microarray chips as compared to uninfected control. Differentially expressed genes were identified using Bioconductor LIMMA statistical analysis package. A fold change of 2.0 or above was used as a cutoff, with a P value of 0.01. The gene list was then analyzed using Ingenuity Pathways Analysis software.
Results:
Differential gene analysis revealed a total of 12,412 up- and 11,065 downregulated genes at 6 and 24 hours postinfection with GLV-1h153 as compared to control. At 6 hours postinfection. A total of 139 genes were either up or downregulated >twofold (false discovery rate < 0.05), of which 124 were mapped by Ingenuity Pathway Analysis (IPA). By 24 hours postinfection, a total of 5,698 genes were identified and 5,563 mapped by IPA. Microarray revealed gene expression changes, with gene networks demonstrating downregulation of processes such as cell death, cell cycle, and DNA repair, and upregulation of infection mechanisms (P < 0.01). Six hours after infection, gene changes involved pathways such as HMGB-1, interleukin (IL)-2, IL-6, IL-8, janus kinase/signal tranducer and activator of transcription (JAK/STAT), interferon, and ERK 5 signaling (P < 0.01). By 24 hours, prominent pathways included P53- and Myc-induced apoptotic processes, pancreatic adenocarcinoma signaling, and phosphoinositide 3-kinase/v-akt murine thymoma vial oncogene homolog 1 (PI3/AKT) pathways.
Conclusions:
Our study reveals the ability to assess time-dependent changes in gene expression patterns in pancreatic cancer cells associated with infection and susceptibility to vaccinia viruses. This suggests that molecular assays may be useful to develop safer and more efficacious oncolyticvirotherapies and support the idea that these treatments may target pathways implicated in pancreatic cancer resistance to conventional therapies.
Spinal muscular atrophy with respiratory distress type 1 (SMARD1) is an autosomal recessive neuronal disorder in infants. The disease is marked by early onset of respiratory distress and predominantly distal muscle weakness, as consequences of diaphragmatic paralysis and progressive degeneration of  motor neurons in the spinal cord, respectively. Genetically, SMARD1 is caused by mutations in the single gene encoding Immunoglobulin µ-Binding Protein 2 (IGHMBP2). Despite the tissue specific degeneration observed in SMARD1 patients, the disease gene product IGHMBP2 is ubiquitously expressed in human and mouse tissues. Therefore, SMARD1 appears to be a motor neuron disease caused by the malfunction of a “housekeeping” protein, rather than a neuron specific factor. IGHMBP2 harbors an N-terminal DEXDc-type helicase/ATPase domain and has been classified as a member of the Superfamily 1 (SF1) of helicases. This protein has been assigned to various cellular activities such as DNA replication, pre-mRNA splicing and transcription. However its precise function in either process has remained elusive. The study presented here aimed at the enzymatic characterization of IGHMBP2, the identification of a specific cellular process to which IGHMBP2 is connected and the role of this factor in the pathophysiology of SMARD1. As a first step toward this end, a two-step purification strategy was established, which enabled the large-scale purification of properly folded and enzymatically active IGHMBP2. In vitro enzymatic studies using this recombinant protein defined IGHMBP2 as an ATP-dependent helicase that catalyzes unwinding of duplices composed of either DNA or RNA in a 5’→3’ direction. In contrast to previous reports, indirect immunofluorescence studies revealed a predominantly cytoplasmic localization of IGHMBP2. Size-fractionation studies and affinity-purification experiments further showed that IGHMBP2 is part of an RNase-sensitive macromolecular complex, which was identified as the ribosome. Interestingly, IGHMBP2 was abundantly detected in both subunits as well as to 80S ribosomes but only in small amounts in actively translating polysomes. These data strongly point to a role of IGHMBP2 in ribosomes-associated gene regulation control, such as in mRNA stabilization or mRNA translation. However, its precise function in those pathways remains to be identified. The biochemical and enzymatic characterization of IGHMBP2 allowed for the first time insights into the pathomechanism of SMARD1. SMARD1-causing pathogenic IGHMBP2 variants were investigated for their enzymatic activities and interaction with ribosomal subunits. Interestingly, among all missense mutations that have been tested thus far, none obstructs association with ribosomal subunits. However, these mutants exhibit specific defects in either the ATPase or RNA helicase activity or both. The data suggest that defects in the enzymatic activity of IGHMBP2 directly correlate with the pathogenesis of SMARD1. Furthermore, these data also raise the possibility that the disease SMARD1 is caused by alterations in the cellular translation machinery.
Herpesviruses have mastered host cell modulation and immune evasion to augment productive infection, life-long latency and reactivation thereof 1,2. A long appreciated, yet elusively defined relationship exists between the lytic-latent switch and viral non-coding RNAs 3,4. Here, we identify miRNA-mediated inhibition of miRNA processing as a novel cellular mechanism that human herpesvirus 6A (HHV-6A) exploits to disrupt mitochondrial architecture, evade intrinsic host defense and drive the latent-lytic switch. We demonstrate that virus-encoded miR-aU14 selectively inhibits the processing of multiple miR-30 family members by direct interaction with the respective pri-miRNA hairpin loops. Subsequent loss of miR-30 and activation of miR-30/p53/Drp1 axis triggers a profound disruption of mitochondrial architecture, which impairs induction of type I interferons and is necessary for both productive infection and virus reactivation. Ectopic expression of miR-aU14 was sufficient to trigger virus reactivation from latency thereby identifying it as a readily drugable master regulator of the herpesvirus latent-lytic switch. Our results show that miRNA-mediated inhibition of miRNA processing represents a generalized cellular mechanism that can be exploited to selectively target individual members of miRNA families. We anticipate that targeting miR-aU14 provides exciting therapeutic options for preventing herpesvirus reactivations in HHV-6-associated disorders like myalgic encephalitis/chronic fatigue syndrome (ME/CFS) and Long-COVID.
Herpesviruses have mastered host cell modulation and immune evasion to augment productive infection, life-long latency and reactivation thereof 1,2. A long appreciated, yet elusively defined relationship exists between the lytic-latent switch and viral non-coding RNAs 3,4. Here, we identify miRNA-mediated inhibition of miRNA processing as a thus far unknown cellular mechanism that human herpesvirus 6A (HHV-6A) exploits to disrupt mitochondrial architecture, evade intrinsic host defense and drive the lytic-latent switch. We demonstrate that virus-encoded miR-aU14 selectively inhibits the processing of multiple miR-30 family members by direct interaction with the respective pri-miRNA hairpin loops. Subsequent loss of miR-30 and activation of the miR-30/p53/Drp1 axis triggers a profound disruption of mitochondrial architecture. This impairs induction of type I interferons and is necessary for both productive infection and virus reactivation. Ectopic expression of miR-aU14 triggered virus reactivation from latency, identifying viral miR-aU14 as a readily drugable master regulator of the herpesvirus lytic-latent switch. Our results show that miRNA-mediated inhibition of miRNA processing represents a generalized cellular mechanism that can be exploited to selectively target individual members of miRNA families. We anticipate that targeting miR-aU14 provides exciting therapeutic options for preventing herpesvirus reactivations in HHV-6-associated disorders.
Mit Hilfe von in vivo ChIP-Experimenten identifizierten wir eine präRC Bindungsstelle von -2519 bis -2152 (Fragment B) innerhalb eines „origin of bidirectional replication (OBR)“ der 44 kb langen Maus-rDNA-Einheit. Diese Bindungsstelle befindet sich ungefähr 2,3 kb ubstream des Transkriptionsstartpunktes der RNA-Poymerase I. An dieser Bindungsstelle konnte in der G1-Phase der komplette ORC-Komplex sowie Geminin, MCM3 und -6 nachgewiesen werden. Für den G1/S-Phasenübergang deuten die Ergebnisse darauf hin, dass sich ORC6 und Geminin von Fragment B ablösen, während sich CDC6 und -45 an den ORC-Komplex anlagern. Mit Erreichen der S-Phase konnte gezeigt werden, dass sich CDC6 und -45 sowie ORC1 wieder ablösen und ein Core-Komplex von ORC2-5 sowie MCM3 und -6 gebunden bleibt. Außerdem konnte an Fragment B eine spezifische Bindung eines aus FM3A-Zellkernprotein angereicherten präRC-Komplexes (Komplex A) auch in vitro mit Hilfe von EMSA-Experimenten beobachtet werden. Die Bindungsaktivität von Komplex A an Fragment B konnte durch ATP verstärkt werden.