Refine
Has Fulltext
- yes (89)
Is part of the Bibliography
- yes (89)
Year of publication
Document Type
- Journal article (67)
- Doctoral Thesis (22)
Keywords
- cancer (89) (remove)
Institute
- Theodor-Boveri-Institut für Biowissenschaften (27)
- Medizinische Klinik und Poliklinik II (10)
- Lehrstuhl für Biochemie (8)
- Pathologisches Institut (8)
- Comprehensive Cancer Center Mainfranken (6)
- Graduate School of Life Sciences (6)
- Institut für Humangenetik (4)
- Institut für Pharmakologie und Toxikologie (4)
- Klinik und Poliklinik für Mund-, Kiefer- und Plastische Gesichtschirurgie (4)
- Institut für Anatomie und Zellbiologie (3)
Sonstige beteiligte Institutionen
The incidence of malignant melanoma continues to increase each year with poor prognosis for survival in many relapse cases. To reverse this trend, whole body response measures are needed to discover collaborative paths to primary and secondary malignancy. Several species of fish provide excellent melanoma models because fish and human melanocytes both appear in the epidermis, and fish and human pigment cell tumors share conserved gene expression signatures. For the first time, we have examined the whole body transcriptome response to invasive melanoma as a prelude to using transcriptome profiling to screen for drugs in a medaka (Oryzias latipes) model. We generated RNA-seq data from whole body RNA isolates for controls and melanoma fish. After testing for differential expression, 396 genes had significantly different expression (adjusted p-value <0.02) in the whole body transcriptome between melanoma and control fish; 379 of these genes were matched to human orthologs with 233 having annotated human gene symbols and 14 matched genes that contain putative deleterious variants in human melanoma at varying levels of recurrence. A detailed canonical pathway evaluation for significant enrichment showed the top scoring pathway to be antigen presentation but also included the expected melanocyte development and pigmentation signaling pathway. Results revealed a profound down-regulation of genes involved in the immune response, especially the innate immune system. We hypothesize that the developing melanoma actively suppresses the immune system responses of the body in reacting to the invasive malignancy, and that this mal-adaptive response contributes to disease progression, a result that suggests our whole-body transcriptomic approach merits further use. In these findings, we also observed novel genes not yet identified in human melanoma expression studies and uncovered known and new candidate drug targets for further testing in this malignant melanoma medaka model.
Personalized oncology is a rapidly evolving area and offers cancer patients therapy options that are more specific than ever. However, there is still a lack of understanding regarding transcriptomic similarities or differences of metastases and corresponding primary sites. Applying two unsupervised dimension reduction methods (t-Distributed Stochastic Neighbor Embedding (t-SNE) and Uniform Manifold Approximation and Projection (UMAP)) on three datasets of metastases (n = 682 samples) with three different data transformations (unprocessed, log10 as well as log10 + 1 transformed values), we visualized potential underlying clusters. Additionally, we analyzed two datasets (n = 616 samples) containing metastases and primary tumors of one entity, to point out potential familiarities. Using these methods, no tight link between the site of resection and cluster formation outcome could be demonstrated, or for datasets consisting of solely metastasis or mixed datasets. Instead, dimension reduction methods and data transformation significantly impacted visual clustering results. Our findings strongly suggest data transformation to be considered as another key element in the interpretation of visual clustering approaches along with initialization and different parameters. Furthermore, the results highlight the need for a more thorough examination of parameters used in the analysis of clusters.
Virotherapy using oncolytic vaccinia virus (VACV) strains is one promising new strategy for cancer therapy. We have previously reported that oncolytic vaccinia virus strains expressing an anti-VEGF (Vascular Endothelial Growth Factor) single-chain antibody (scAb) GLAF-1 exhibited significant therapeutic efficacy for treatment of human tumor xenografts. Here, we describe the use of oncolytic vaccinia virus GLV-1h109 encoding GLAF-1 for canine cancer therapy. In this study we analyzed the virus-mediated delivery and production of scAb GLAF-1 and the oncolytic and immunological effects of the GLV-1h109 vaccinia virus strain against canine soft tissue sarcoma and canine prostate carcinoma in xenograft models. Cell culture data demonstrated that the GLV-1h109 virus efficiently infect, replicate in and destroy both tested canine cancer cell lines. In addition, successful expression of GLAF-1 was demonstrated in virus-infected canine cancer cells and the antibody specifically recognized canine VEGF. In two different xenograft models, the systemic administration of the GLV-1h109 virus was found to be safe and led to anti-tumor and immunological effects resulting in the significant reduction of tumor growth in comparison to untreated control mice. Furthermore, tumor-specific virus infection led to a continued production of functional scAb GLAF-1, resulting in inhibition of angiogenesis. Overall, the GLV-1h109-mediated cancer therapy and production of immunotherapeutic anti-VEGF scAb may open the way for combination therapy concept i.e. vaccinia virus mediated oncolysis and intratumoral production of therapeutic drugs in canine cancer patients.
Background
Oncolytic viruses, including vaccinia virus (VACV), are a promising alternative to classical mono-cancer treatment methods such as surgery, chemo- or radiotherapy. However, combined therapeutic modalities may be more effective than mono-therapies. In this study, we enhanced the effectiveness of oncolytic virotherapy by matrix metalloproteinase (MMP-9)-mediated degradation of proteins of the tumoral extracellular matrix (ECM), leading to increased viral distribution within the tumors.
Methods
For this study, the oncolytic vaccinia virus GLV-1h255, containing the mmp-9 gene, was constructed and used to treat PC-3 tumor-bearing mice, achieving an intra-tumoral over-expression of MMP-9. The intra-tumoral MMP-9 content was quantified by immunohistochemistry in tumor sections. Therapeutic efficacy of GLV-1h255 was evaluated by monitoring tumor growth kinetics and intra-tumoral virus titers. Microenvironmental changes mediated by the intra-tumoral MMP-9 over-expression were investigated by microscopic quantification of the collagen IV content, the blood vessel density (BVD) and the analysis of lymph node metastasis formation.
Results
GLV-1h255-treatment of PC-3 tumors led to a significant over-expression of intra-tumoral MMP-9, accompanied by a marked decrease in collagen IV content in infected tumor areas, when compared to GLV-1h68-infected tumor areas. This led to considerably elevated virus titers in GLV-1h255 infected tumors, and to enhanced tumor regression. The analysis of the BVD, as well as the lumbar and renal lymph node volumes, revealed lower BVD and significantly smaller lymph nodes in both GLV-1h68- and GLV-1h255- injected mice compared to those injected with PBS, indicating that MMP-9 over-expression does not alter the metastasis-reducing effect of oncolytic VACV.
Conclusions
Taken together, these results indicate that a GLV-1h255-mediated intra-tumoral over-expression of MMP-9 leads to a degradation of collagen IV, facilitating intra-tumoral viral dissemination, and resulting in accelerated tumor regression. We propose that approaches which enhance the oncolytic effect by increasing the intra-tumoral viral load, may be an effective way to improve therapeutic outcome.
Oncolytic virotherapy represents a promising approach to revolutionize cancer therapy. Several preclinical and clinical trials display the safety of oncolytic viruses as wells as their efficiency against solid tumors. The development of complementary diagnosis and monitoring concepts as well as the optimization of anti-tumor activity are key points of current virotherapy research. Within the framework of this thesis, the diagnostic and therapeutic prospects of beta-glucuronidase expressed by the oncolytic vaccinia virus strain GLV-1h68 were evaluated. In this regard, a beta-glucuronidase-based, therapy-accompanying biomarker test was established which is currently under clinical validation. By using fluorescent substrates, the activity of virally expressed beta-glucuronidase could be detected and quantified. Thereby conclusions about the replication kinetics of oncolytic viruses in animal models and virus-induced cancer cell lysis could be drawn. These findings finally led to the elaboration and establishment of a versatile biomarker assay which allows statements regarding the replication of oncolytic viruses in mice based on serum samples. Besides the analysis of retrospective conditions, this test is able to serve as therapy-accompanying monitoring tool for virotherapy approaches with beta-glucuronidase-expressing viruses. The newly developed assay also served as complement to routinely used plaque assays as well as reference for virally expressed anti-angiogenic antibodies in additional preclinical studies. Further validation of this biomarker test is currently taking place in the context of clinical trials with GL-ONC1 (clinical grade GLV-1h68) and has already shown promising preliminary results. It was furthermore demonstrated that fluorogenic substrates in combination with beta-glucuronidase expressed by oncolytic viruses facilitated the optical detection of solid tumors in preclinical models. In addition to diagnostic purposes, virus-encoded enzymes could also be combined with prodrugs resulting in an improved therapeutic outcome of oncolytic virotherapy. In further studies, the visualization of virus-induced immune reactions as well as the establishment of innovative concepts to improve the therapeutic outcome of oncolytic virotherapy could be accomplished. In conclusion, the results of this thesis provide crucial findings about the influence of virally expressed beta-glucuronidase on various diagnostic concepts in the context of oncolytic virotherapy. In addition, innovative monitoring and therapeutic strategies could be established. Our preclinical findings have important clinical influence, particularly by the development of a therapy-associated biomarker assay which is currently used in different clinical trials.
Squamous cell carcinomas are therapeutically challenging tumor entities. Low response rates to radiotherapy and chemotherapy are commonly observed in squamous patients and, accordingly, the mortality rate is relatively high compared to other tumor entities. Recently, targeting USP28 has been emerged as a potential alternative to improve the therapeutic response and clinical outcomes of squamous patients. USP28 is a catalytically active deubiquitinase that governs a plethora of biological processes, including cellular proliferation, DNA damage repair, apoptosis and oncogenesis. In squamous cell carcinoma, USP28 is strongly expressed and stabilizes the essential squamous transcription factor ΔNp63, together with important oncogenic factors, such as NOTCH1, c-MYC and c-JUN. It is presumed that USP28 is an oncoprotein; however, recent data suggest that the deubiquitinase also has an antineoplastic effect regulating important tumor suppressor proteins, such as p53 and CHK2. In this review, we discuss: (1) The emerging role of USP28 in cancer. (2) The complexity and mutational landscape of squamous tumors. (3) The genetic alterations and cellular pathways that determine the function of USP28 in squamous cancer. (4) The development and current state of novel USP28 inhibitors.
Tumor-induced angiogenesis is of major interest for oncology research. Vascular endothelial growth factor (VEGF) is the most potent angiogenic factor characterized so far. VEGF blockade was shown to be sufficient for angiogenesis inhibition and subsequent tumor regression in several preclinical tumor models. Bevacizumab was the first treatment targeting specifically tumor-induced angiogenesis through VEGF blockade to be approved by the Food and Drugs Administration (FDA) for cancer treatment. However, after very promising results in preclinical evaluations, VEGF blockade did not show the expected success in patients. Some tumors became resistant to VEGF blockade. Several factors have been accounted responsible, the over-expression of other angiogenic factors, the noxious influence of VEFG blockade on normal tissues, the selection of hypoxia resistant neoplastic cells, the recruitment of hematopoietic progenitor cells and finally the transient nature of angiogenesis inhibition by VEGF blockade. The development of blocking agents against other angiogenic factors like placental growth factor (PlGF) and Angiopoietin-2 (Ang-2) allows the development of an anti-angiogenesis strategy adapted to the profile of the tumor.
Oncolytic virotherapy uses the natural propensity of viruses to colonize tumors to treat cancer. The recombinant vaccinia virus GLV-1h68 was shown to infect, colonize and lyse several tumor types. Its descendant GLV-1h108, expressing an anti-VEGF antibody, was proved in previous studies to inhibit efficiently tumor induced angiogenesis. Additional VACVs expressing single chain antibodies (scAb) antibodies against PlGF and Ang-2 alone or in combination with anti VEGF scAb were designed.
In this study, VACV-mediated anti-angiogenesis treatments have been evaluated in several preclinical tumor models. The efficiency of PlGF blockade, alone or in combination with VEGF, mediated by VACV has been established and confirmed. PlGF inhibition alone or with VEGF reduced tumor burden 5- and 2-folds more efficiently than the control virus, respectively.
Ang-2 blockade efficiency for cancer treatment gave controversial results when tested in different laboratories. Here we demonstrated that unlike VEGF, the success of Ang-2 blockade is not only correlated to the strength of the blockade. A particular balance between Ang-2, VEGF and Ang-1 needs to be induced by the treatment to see a regression of the tumor and an improved survival. We saw that Ang-2 inhibition delayed tumor growth up to 3-folds compared to the control virus. These same viruses induced statistically significant tumor growth delays. This study unveiled the need to establish an angiogenic profile of the tumor to be treated as well as the necessity to better understand the synergic effects of VEGF and Ang-2. In addition angiogenesis inhibition by VACV-mediated PlGF and Ang-2 blockade was able to reduce the number of metastases and migrating tumor cells (even more efficiently than VEGF blockade).
VACV colonization of tumor cells, in vitro, was limited by VEGF, when the use of the anti-VEGF VACV GLV-1h108 drastically improved the colonization efficiency up to 2-fold, 72 hours post-infection. These in vitro data were confirmed by in vivo analysis of tumors. Fourteen days post-treatment, the anti-VEGF virus GLV-1h108 was colonizing 78.8% of the tumors when GLV-1h68 colonization rate was 49.6%. These data confirmed the synergistic effect of VEGF blockade and VACV replication for tumor regression.
Three of the tumor cell lines used to assess VACV-mediated angiogenesis inhibition were found, in certain conditions, to mimic either endothelial cell or pericyte functions, and participate directly to the vascular structure. The expression by these tumor cells of e-selectin, p-selectin, ICAM-1 and VCAM-1, normally expressed on activated endothelial cells, corroborates our findings. These proteins play an important role in immune cell recruitment, and there amount vary in presence of VEGF, PlGF and Ang-2, confirming the involvement of angiogenic factors in the immuno-modulatory abilities of tumors.
In this study VACV-mediated angiogenesis blockade proved its potential as a therapeutic agent able to treat different tumor types and prevent resistance observed during bevacizumab treatment by acting on different factors. First, the expression of several antibodies by VACV would prevent another angiogenic factor to take over VEGF and stimulate angiogenesis. Then, the ability of VACV to infect tumor cells would prevent them to form blood vessel-like structures to sustain tumor growth, and the localized delivery of the antibody would decrease the risk of adverse effects. Next, the blockade of angiogenic factors would improve VACV replication and decrease the immune-modulatory effect of tumors. Finally the fact that angiogenesis blockade lasts until total regression of the tumor would prevent the recovery of the tumor-associated vasculature and the relapse of patients.
Die Bedeutung von Ascorbinsäure als „Krebsschutzfaktor“ wird auch weiterhin kontrovers diskutiert. Seit einiger Zeit wird vermutet, dass Ascorbinsäure oxidativen Stress auslöst. In der vorliegenden Untersuchung wurde die Wirkung von Ascorbinsäure auf 12 maligne und 3 benigne Zelllinien in vitro untersucht. Die Zellen wurden für 2 bzw. 14 Stunden mit unterschiedlichen Konzentrationen von Ascorbinsäure (5 bis 100 mmol/L) inkubiert und 24, 48 und 72 Stunden nach Versuchsbeginn der Anteil vitaler Zellen bestimmt. Die hierfür verwendeten Assays, WST-8 und Kristallviolett-Assay, ließen zudem Aussagen über die Stoffwechselaktivität (WST-8) und Zellvitalität (Kristallviolett) zu. Die schädigende Wirkung von Ascorbinsäure wurde als EC50-Wert angegeben, bei dieser Ascorbinsäure-Konzentration sind 50 % der Zellen zerstört. Ascorbinsäure wirkte nach 2 Stunden Inkubation kaum zelltoxisch, während nach 14 Stunden Inkubation eindeutige zelltoxische Effekte bei 6 der 12 malignen Zelllinien zu beobachten waren. So waren die drei getesteten Glioblastomzelllinien allesamt bereits bei einer Ascorbinsäure-Konzentrationen von 5 mmol/L nahezu vollkommen zerstört (EC50: 2,6-5,5 mmol/L). Die Mammakarzinomzelllinie BT-20 hingegen war am widerstandsfähigsten gegenüber dem zelltoxischen Effekt der Ascorbinsäure (EC50: 95 mmol/L). Als wesentliches Effektormolekül der zelltoxischen Wirkung der Ascorbinsäure wurde Wasserstoffperoxid identifiziert. Die Zugabe von Katalase schützt Ascorbinsäure- sensitive Zellen, in dem es Wasserstoffperoxid abbaut. Ein weiteres Indiz hierfür ist, dass Zelllinien, die gegenüber dem Ascorbinsäure-vermittelten Effekt unempfindlich waren, dies auch gegenüber Wasserstoffperoxid waren. Umgekehrt waren Zelllinien, die empfindlich gegenüber dem Ascorbinsäurevermittelten zelltoxischen Effekt reagierten, auch empfindlich gegenüber Wasserstoffperoxid. 45 Eine wesentliche sich aus den Daten dieser Arbeit ergebende Frage ist die, worin sich Ascorbinsäure-resistente Tumorzellen von Ascorbinsäure-empfindlichen Tumorzellen unterscheiden. Da Ascorbinsäure-empfindliche Zellen durch Zugabe von Katalase vor der zelltoxischen Wirkung der Ascorbinsäure geschützt werden, liegt die Vermutung nahe, dass eine wesentliche Ursache hierfür in der zelleigenen Katalase begründet liegt. Somit sollten Ascorbinsäureresistente Zellen mehr bzw. aktivere Katalase aufweisen, als Ascorbinsäureempfindliche Zellen. Diese Vermutung ist in weiteren Experimenten zu überprüfen.
Bei vielen Karzinomen spielt EGFR und das KRAS-Onkogen eine wichtige Rolle in der Tumorentstehung. Da bei den seltenen Karzinomen an Kopfspeicheldrüsen sehr wenig über molekulare Mechanismen der Tumorgenese bekannt ist, war es das Ziel der Arbeit den EGFR-Signalweg zu untersuchen. Es wurden Paraffinschnitte von 43 Speicheldrüsenkarzinomen von den Typen ACC, MEC und Adeno-Ca NOS mit dem phosphorylierten EGFR-Antikörper gefärbt und mit klinisch-pathologischen Daten korreliert. Weiterhin wurde eine Mutationsanalyse der kras-Gensequenz durchgeführt. In allen Fällen war das kras-Gen vom Wildtyp. Bei der Expressionsanalyse von EGFR stellte sich heraus, dass 79% der Proben einen aktivierten EGF-Rezeptor besitzen. Statistisch signifikante Korrelationen gab es zwischen der EGFR-Expression und dem Patientenalter, dem zervikalen Lymphknotenbefall und der Tumorgröße. Der EGF-Signaltransduktionsweg ist bei den untersuchten Karzinomen der Kopfspeicheldrüsen im überwiegenden Masse aktiviert, ohne dass eine autonome Aktivierung beim KRAS-Onkogen vorliegt.
Ein Problem der Therapie maligner Tumore ist die Resistez gegenüber Chemotherapeutika. Diskutiert wird ein Zusammenhang zur Expression von Hitzeschockproteinen (HSP). Insbesondere das in Mamma-Karzinomen stark exprimierte HSP27 und HSP70 scheinen hier beteiligt. Hitzeschockproteine sind Teil eines durch Noxen induzierten Mechanismus, welcher Schutz vor weiterer Noxenexposition verleiht, also die entsprechenen Zellen im Unterschied zu nicht exponierten Kontrollzellen zu überleben befähigt. Es kommt nach einem Streßereignis zu einer Veränderung von Zelltod unter nachfolgenden Bedingungen, z.B. Verhütung von Apoptose (physiologischer Zelltod). Tumortherapie mittels Zytostatika stellt eine „kontrollierte Apoptose“ dar. Ziel dieser Therapie muß es also folglich sein, eine HSP-Induktion zu vermeiden, da eine solche den Therapieerfolg und Benefit für den Patienten schmälert. Die Exposition einer Tumorzelle mit einem chemotherapeutisch wirksamen Medikament bedeutet für diese Zelle toxischen/oxidativen Streß, den sie nur durch Induktion entsprechender Abwehrmechanismen überleben kann. Diese Mechanismen haben letztlich einen wesentlichen Einfluß auf die Wirksamkeit des Medikamentes und Profit des Patienten durch die ihm angebotene Therapie. Eine frühe adaptive Zellantwort von Säugerzellen auf toxische Einflüsse stellt die Expression von Hitzeschockproteinen dar. Den Fokus der vorliegenden Untersuchungen stellen einerseits diejenigen Substanzen dar, welche heutzutage in der Therapie des Mamma-Karzinoms eingesetzt werden, den drei Einzelsubstanzen des CMF-Protokolls Methotrexat, 5-Fluorouracil und Cyclophosphamid, andererseits die Hitzeschockproteine mit der höchsten bekannten Bedeutung für Tumorwachstum. In einem ersten Schritt wurde in vitro mit einem Zellsystem, welches durch Transfektion mit dem humanen hsp27-Gen bei bekannter HSP70-Induzierbarkeit als einfaches isoliertes Zellsystem ein gutes Werkzeug zur spezifischen Untersuchung dieser beiden Proteine darstellt, untersucht werden, inwieweit sich diese speziellen Proteine durch die unterschiedlichen Substanzgruppen des CMF-Protokolls induzieren lassen. Es wurde also nach einer adaptiven Zellantwort in Form einer Induktion von HSP27 und HSP70 nachfolgend einer Noxenexposition gesucht werden. In einem zweiten Schritt wurde untersucht, ob die für diese beiden HSPs postulierte zytoprotektive Eigenschaften auch für Zytostatika gelten. Es wurde überprüft , inwieweit Chemotherapeutika unter dem Einfluß von HSP70 und HSP27 stehen, also inwieweit die Expression von HSP27 und HSP70 einen Zellschutz gegen toxischen Streß (durch CMF) in den verwendeten L929-Mausfibroblasten darstellen kann.