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Cellular therapies using chimeric antigen receptor (CAR) modified T cells to eradicate tumor cells have been a major breakthrough in the treatment of hematologic malignancies. However, there are no measures to control CAR T cell activity after infusion, which is mostly required in cases of CAR T cell overreaction, e.g. cytokine release syndrome, or in the case of T cell failure, e.g. caused by exhaustion.
In our study, we identified the tyrosine kinase inhibitor (TKI) dasatinib (© Sprycel) as a suitable agent to steer CAR T cells in vitro and in vivo. We show that single treatment of CD4+ and CD8+ CAR T cells with dasatinib conferred either partial or complete inhibition, depending on the applied concentration. The blockade was immediate and encompassed spe-cific lysis, cytokine secretion and proliferation following antigen encounter. The mechanism relied on reduced phosphorylation of key kinases in the CAR signaling cascade, which led to abrogation of nuclear factor of activated T-cells (NFAT) signaling. Importantly, inhibition was fully reversible by dasatinib withdrawal. In vivo, dasatinib blocked CAR T cell function without impairing the engraftment of CAR T cells or their subsequent anti tumor function once dasatinib administration was discontinued. We therefore introduce dasatinib as a new tool to efficiently block CAR T cells in vitro and in vivo, with data suggesting that dasatinib can be used in a clinical setting to mitigate toxicity after adaptive transfer of CAR modified T cells and other forms of T cell based immunotherapy.
Additionally we show that intermittent inhibition of CAR T cells by dasatinib im-proves the efficacy of CAR T cell therapy. By pausing T cells for short periods of time in vi-vo, upregulation of programmed death protein 1 (PD-1) and subsequent induction of exhaus-tion was prevented, which increased the expansion of T cells and the rate of tumor eradica-tion. Our data therefore suggest that dasatinib can additionally be used to overcome T cell exhaustion that is induced by massive tumor burden and upregulation of inhibitory receptors.
The advances in genetic engineering have enabled us to confer T cells new desired functions or delete their specific undesired endogenous properties for improving their antitumor function. Due to their efficient gene delivery, viral vectors have been successfully used in T-cell engineering to provide gene transfer medicinal products for the treatment of human disease. One example is adoptive cell therapy with T cells that were genetically modified with gamma-retroviral and lentiviral (LV) delivery vectors to express a CD19-specific chimeric antigen receptor (CAR) for cancer treatment. This therapeutic approach has shown remarkable results against B-cell malignancies in pilot clinical trials. Consequently, there is a strong desire to make CAR T cell therapy scalable and globally available to patients. However, there are persistent concerns and limitations with the use of viral vectors for CAR T cell generation with regard to safety, cost and scale of vector production. In order to address these concerns, we aimed to improve non-viral gene transfer and genome editing tools as an effective, safe and broadly applicable alternative to viral delivery methods for T-cell engineering.
In the first part of the study, we engineered CAR T cells through non-viral Sleeping Beauty (SB) transposition of CAR genes from minimalistic DNA vectors called minicircles rather than conventional SB plasmids. This novel approach dramatically increased stable gene transfer rate and cell viability and resulted in higher yield of CAR+ T cells without the need of long ex vivo expansion to generate therapeutic doses of CAR+ T cells. Importantly, CD19-CAR T cells modified by MC-based SB transposition were equally effective as LV transduced CD19-CAR T cells in vitro and in a murine xenograft model (NSG/Raji-ffLuc), where a single administration of CD8+ and CD4+ CAR T cells led to complete eradication of lymphoma and memory formation of CAR T cells after lymphoma clearance.
To characterize the biosafety profile of the CAR T cell products, we did the most comprehensive genomic insertion site analysis performed so far in T cells modified with SB. The data showed a close-to-random integration profile of the SB transposon with a higher number of insertions in genomic safe harbors compared to LV integrants. We developed a droplet digital PCR assay that enables rapid determination of CAR copy numbers for clinical applications.
In the second part of the study, we ablated expression of PD-1, a checkpoint and negative regulator of T cell function to improve the therapeutic index of CAR T cells. This was accomplished using non-viral CRISPR/Cas9 via pre-assemble Cas9 protein and in vitro-transcribed sgRNA (Cas9 RNP). Finally, we combined our developed Cas9 RNP tool with CAR transposition from MC vectors into a single-step protocol and successfully generated PD-1 knockout CAR+ T cells. Based on the promising results achieved from antibody-mediated PD-1 blockade in the treatment of hematological and solid tumors, we are confident that PD-1 knockout CAR T cells enhance the potency of CAR T cell therapies for treatment of cancers without the side effects of antibody-based therapies.
In conclusion, we provide a novel platform for virus-free genetic engineering of CAR T cells that can be broadly applied in T-cell cancer therapy. The high level of gene transfer rate and efficient genome editing, superior safety profile as well as ease-of-handling and production of non-viral MC vectors and Cas9 RNP position our developed non-viral strategies to become preferred approaches in advanced cellular and gene-therapy.
Der Wnt Signalweg spielt eine entscheidende Rolle in der Embryogenese durch Steuerung der Proliferation, Apoptose, Differenzierung und der Festlegung der Körperachsen im frühen Embryo. Eine Fehlregulation des Signalwegs durch Mutationen in einem der Proteine und Gene dieser hochkomplexen Signalkaskade kann fatale Folgen haben, und ist ein erster Schritt auf dem Weg der Krebsentstehung. Dabei spielt das Protein β-Catenin eine Schlüsselrolle im kanonischen Zweig des Wnt Signalwegs. Durch Steuerung seiner Konzentration im Zytoplasma wird die Expression seiner direkten Zielgene reguliert, da β-Catenin im aktiven Signalweg als Co-Transkriptionsfaktor agiert. Durch Sichtbarmachung dieses Proteins durch fluoreszierende Reportergenkonstrukte kann der Aktivitätsstatus des Wnt Signalwegs in der Zelle beobachtet werden. Das ermöglicht zum einen genaue Analysen des Signalwegs, wie zum Beispiel das Studium des Zusammenspiels mit anderen Signalwegen. Vor allem aber erlaubt es die gezielte Suche nach Wnt-Signalwegs-modulierenden Substanzen als potentielle Wirkstoffe in der Krebsmedikamentenentwicklung. In der vorliegenden Arbeit wurden mehrere Reportergenkonstrukte für die stabile Transfektion von Zelllinien entwickelt und hinsichtlich eines möglichen Einsatzes sowohl in der Forschung, als auch in Wirkstoffscreenings validiert. Dies umfasst sowohl mehrere Reporter mit β-Catenin als Fusionsprotein, als auch Wnt-Promoter-regulierte eGFP-Reporter, die den Akitvitätsstatus des Wnt-Signalwegs anzeigen. Mit Hilfe dieser Reporter konnten Untersuchungen zur Wirkung des Wnt-Signalwegs auf die Morphologie von transfizierten und nicht-transfizierten MDCK-Zellen durchgeführt werden. Überdies wurde ein promotorregulierter eGFP-Reporter konstruiert, mit welchem transfizierte Zellen mit aktiviertem Wnt-Signalweg aus einem Zellpool gefischt werden können. Diese Methode ist sowohl für den Einsatz in kultivierten Zelllinien, als auch in der Diagnostik nach der Transfektion primärer Zellen geeignet. Auf Grundlage der neuen Zelllinien wurde weiterhin ein neuer Screeningansatz für potentielle Wnt-Signalwegsinhibitoren entwickelt, der auf dem Ausbleichen der Fluoreszenz in einem Well einer Multiwell-Kulturplatte beruht.
Tumor angiogenesis is essential for the growth of solid tumors as their proliferation and survival is dependent on consistent oxygen and nutrient supply. Anti-angiogenic treatments represent a therapeutic strategy to inhibit tumor growth by preventing the formation of new blood vessels leading to starvation of the tumor. One of the best characterized anti angiogenic therapeutics is the monoclonal antibody bevacizumab (Avastin), which targets and neutralizes VEGF leading to disruption of the VEGF signaling pathway. Until today, bevacizumab has found its way into clinical practice and has gained approval for treatment of different types of cancer including colorectal cancer, non-small cell lung cancer, breast cancer and renal cell carcinoma. Signaling of VEGF is mediated through VEGF receptors, mainly VEGFR2, which are primarily located on the cell surface of endothelial cells. However, there has been evidence that expression of VEGF receptors can also be found on tumor cells themselves raising the possibility of autocrine and/or paracrine signaling loops. Thus, tumor cells could also benefit from VEGF signaling, which would promote tumor growth. The aim of this study was to investigate if bevacizumab has a direct effect on tumor cells in vitro. To this end, tumor cell lines from the NCI-60 panel derived from four different tumor types were treated with bevacizumab and angiogenic gene and protein expression as well as biological outputs including proliferation, migration and apoptosis were investigated. Most of the experiments were performed under hypoxia to mimic the in vivo state of tumors. Overall, there was a limited measurable effect of bevacizumab on treated tumor cell lines according to gene and protein expression changes as well as biological functions when compared to endothelial controls. Minor changes in terms of proliferation or gene regulation were evident in a single tumor cell line after VEGF-A blockade by bevacizumab, which partially demonstrated a direct effect on tumor cells. However, the overall analysis revealed that tumor cell lines are not intrinsically affected in an adverse manner by bevacizumab treatment.
Besides the functional analysis of tumor cells, embryonic stem cell derived endothelial cells were characterized to delineate vascular Hey gene functions. Hey and Hes proteins are the best characterized downstream effectors of the evolutionary conserved Notch signaling pathway, which mainly act as transcriptional repressors regulating downstream target genes. Hey proteins play a crucial role in embryonic development as loss of Hey1 and Hey2 in mice in vivo leads to a severe vascular phenotype resulting in early embryonic lethality. The major aim of this part of the thesis was to identify vascular Hey target genes using embryonic stem cell derived endothelial cells utilizing a directed endothelial differentiation approach, as ES cells and their differentiation ability provide a powerful in vitro system to study developmental processes. To this end, Hey deficient and Hey wildtype embryonic stem cells were stably transfected with an antibiotic selection marker driven by an endothelial specific promoter, which allows selection for endothelial cells. ESC-derived endothelial cells exhibited typical endothelial characteristics as shown by marker gene expression, immunofluorescent staining and tube formation ability. In a second step, Hey deficient ES cells were stably transfected with doxycycline inducible Flag-tagged Hey1 and Hey2 transgenes to re-express Hey proteins in the respective cell line. RNA-Sequencing of Hey deficient and Hey overexpressing ES cells as well as ESC-derived endothelial cells revealed many Hey downstream target genes in ES cells and fewer target genes in endothelial cells. Hey1 and Hey2 more or less redundantly regulate target genes in ES cells, but some genes were regulated by Hey2 alone. According to Gene Ontology term analysis, Hey target genes are mainly involved in embryonic development and transcriptional regulation. However, the response of ESC-derived endothelial cells in regulating Hey downstream target genes was rather limited when compared to ES cells, which could be due to lower transgene expression in endothelial cells. The limited response also raises the possibility that target gene regulation in endothelial cells is not only dependent on Hey gene functions alone and thus loss or overexpression of Hey genes in this in vitro setting does not influence target gene regulation.
Krebserkrankungen gehen neben körperlichen Einschränkungen auch mit psychischer Belastung einher. Krebspatienten leiden unter Unsicherheit, Unwissen und Angst. Hierbei kann die Informationsvermittlung eine wichtige Rolle für den Patienten spielen. Die vorliegende Studie untersucht den Zusammenhang von Informationszufriedenheit, Geschlecht und Tumorstadium mit der Lebensqualität von Krebspatienten. Hierzu wurde eine Querschnittsstudie mit Patienten unterschiedlicher Tumorlokalistationen durchgeführt. Zur Datenerhebung dienten Fragebögen zur Selbsteinschätzung der Informationszufriedenheit und der Lebensqualität (EORTC QLQ-C30).
In der vorliegenden Arbeit wurde das Expressionsverhalten fünf zellulärer Marker beim metastasierenden Plattenepithelkarzinom des Kopf- und Halsbereiches untersucht. Bei den getesteten Markern handelte es sich um einen MAGE-A, zwei verschiedenen VEGF, einen EGFR und einen C-Src-Tyrosinkinase Antikörper. Im Einzelnen sollte hinterfragt werden, ob ein Zusammenhang zwischen der Antikörperexpression und verschiedenen, klinischen und histopathologischen Parametern (pT-Stadium, pN-Stadium, histologisches Grading, Tumorverhornung, Patientenalter, Geschlecht des Patienten) besteht. Weiterhin war von Interesse, ob Parallelen zwischen dem Expressionsverhalten der verschiedenen Antikörper untereinander zu erkennen sind. Die Ergebnisse wurden anschließend mit Erkenntnissen aus anderen Studien und Literaturangaben verglichen.
Untersuchung der Inanspruchnahme von psychosozialen Unterstützungsangeboten bei Krebspatienten. In einer multizentrischen Studie wurde untersucht, welche Unterstützungsangebote bevorzugt in Anspruch genommen werden und ob es hinsichtlich der Inanspruchnahme einen Geschlechterunterschied gibt. Außerdem wurden diverse andere Prädiktoren untersucht, die einen Einfluss auf die Inanspruchnahme haben können (z.B. Depressivität, psychische Störung, Alter, Bildungsstand). Zur Datenerhebung dienten Selbstbeurteilungsinstrumente in Form von Fragebögen und ein standardisiertes klinisches Interview (CIDI).
Background: Inactivation of the p53 pathway that controls cell cycle progression, apoptosis and senescence, has been proposed to occur in virtually all human tumors and p53 is the protein most frequently mutated in human cancer. However, the mutational status of p53 in melanoma is still controversial; to clarify this notion we analysed the largest series of melanoma samples reported to date. Methodology/Principal Findings: Immunohistochemical analysis of more than 180 melanoma specimens demonstrated that high levels of p53 are expressed in the vast majority of cases. Subsequent sequencing of the p53 exons 5–8, however, revealed only in one case the presence of a mutation. Nevertheless, by means of two different p53 reporter constructs we demonstrate transcriptional inactivity of wild type p53 in 6 out of 10 melanoma cell lines; the 4 other p53 wild type melanoma cell lines exhibit p53 reporter gene activity, which can be blocked by shRNA knock down of p53. Conclusions/Significance: In melanomas expressing high levels of wild type p53 this tumor suppressor is frequently inactivated at transcriptional level.
Background: In principle, the elimination of malignancies by oncolytic virotherapy could proceed by different mechanisms - e.g. tumor cell specific oncolysis, destruction of the tumor vasculature or an anti-tumoral immunological response. In this study, we analyzed the contribution of these factors to elucidate the responsible mechanism for regression of human breast tumor xenografts upon colonization with an attenuated vaccinia virus (VACV). Methods: Breast tumor xenografts were analyzed 6 weeks post VACV infection (p.i.; regression phase) by immunohistochemistry and mouse-specific expression arrays. Viral-mediated oncolysis was determined by tumor growth analysis combined with microscopic studies of intratumoral virus distribution. The tumor vasculature was morphologically characterized by diameter and density measurements and vessel functionality was analyzed by lectin perfusion and extravasation studies. Immunological aspects of viral-mediated tumor regression were studied in either immune-deficient mouse strains (T-, B-, NK-cell-deficient) or upon cyclophosphamide-induced immunosuppression (MHCII+-cell depletion) in nude mice. Results: Late stage VACV-infected breast tumors showed extensive necrosis, which was highly specific to cancer cells. The tumor vasculature in infected tumor areas remained functional and the endothelial cells were not infected. However, viral colonization triggers hyperpermeability and dilatation of the tumor vessels, which resembled the activated endothelium in wounded tissue. Moreover, we demonstrated an increased expression of genes involved in leukocyte-endothelial cell interaction in VACV-infected tumors, which orchestrate perivascular inflammatory cell infiltration. The immunohistochemical analysis of infected tumors displayed intense infiltration of MHCII-positive cells and colocalization of tumor vessels with MHCII+/CD31+ vascular leukocytes. However, GI-101A tumor growth analysis upon VACV-infection in either immunosuppressed nude mice (MHCII+-cell depleted) or in immune-deficient mouse strains (T-, B-, NK-cell-deficient) revealed that neither MHCII-positive immune cells nor T-, B-, or NK cells contributed significantly to VACV-mediated tumor regression. In contrast, tumors of immunosuppressed mice showed enhanced viral spreading and tumor necrosis. Conclusions: Taken together, these results indicate that VACV-mediated oncolysis is the primary mechanism of tumor shrinkage in the late regression phase. Neither the destruction of the tumor vasculature nor the massive VACV-mediated intratumoral inflammation was a prerequisite for tumor regression. We propose that approaches to enhance viral replication and spread within the tumor microenvironment should improve therapeutical outcome.