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Matzek, D.

Publications and source records attributed to Matzek, D..

2 recordsLinked to original sources

Neomorphic DNA-binding enables tumor-specific therapeutic gene expression in fusion-addicted childhood sarcoma

Chimeric fusion transcription factors are oncogenic hallmarks of several devastating cancer types including pediatric sarcomas, such as Ewing sarcoma (EwS) and alveolar rhabdomyosarcoma (ARMS). Despite their exquisite specificity, these driver oncogenes have been considered largely undruggable due to their lack of enzymatic activity. Here, we show in the EwS model that - capitalizing on neomorphic DNA-binding preferences - the addiction to the respective fusion transcription factor EWSR1-FLI1 can be leveraged to express therapeutic genes. We genetically engineered a de novo enhancer-based, synthetic and highly potent expression cassette that can elicit EWSR1-FLI1-dependent expression of a therapeutic payload as evidenced by episomal and CRISPR-edited genomic reporter assays. Combining in silico screens and immunohistochemistry, we identified GPR64 as a highly specific cell surface antigen for targeted transduction strategies in EwS. Functional experiments demonstrated that anti-GPR64-pseudotyped lentivirus harboring our expression cassette can specifically transduce EwS cells to promote the expression of viral thymidine kinase sensitizing EwS for treatment to the otherwise relatively non-toxic (Val)ganciclovir and leading to strong anti-tumorigenic, but no adverse effects in vivo. Further, we prove that similar vector designs can be applied in PAX3-FOXO1-driven ARMS, and to express immunomodulatory cytokines, such as IL-15 and XCL1, in tumor types typically considered to be immunologically cold. Collectively, these results generated in pediatric sarcomas indicate that exploiting, rather than suppressing, the neomorphic functions of chimeric transcription factors may open inroads to innovative and personalized therapies, and that our highly versatile approach may be translatable to other cancers addicted to oncogenic transcription factors with unique DNA-binding properties.

cancer biology↗

Helicobacter hepaticus as disease driver in a novel CD40-mediated model of colitis

Gut microbiota and the immune system are in constant exchange, which shapes both, host immunity and microbial communities. Here, improper immune regulation can cause inflammatory bowel disease (IBD) and colitis. Antibody therapies blocking signaling through the CD40 - CD40L axis showed promising results as these molecules have been described to be deregulated in certain IBD patients. To better understand the mechanism, we used transgenic DC-LMP1/CD40 animals, which lack intestinal CD103+ dendritic cells (DCs) and therefore cannot induce regulatory T (iTreg) cells due to a constitutive CD40-signal in CD11c+ cells. These mice rapidly develop spontaneous fatal colitis with an increase of inflammatory IL-17+IFN-{gamma}+ Th17/Th1 and IFN-{gamma}+ Th1 cells. In the present study we analyzed the impact of the microbiota on disease development and detected elevated IgA- and IgG-levels in sera from DC-LMP1/CD40 animals. Their serum antibodies specifically bound intestinal bacteria and we identified a 60 kDa chaperonin GroEL (Hsp60) from Helicobacter hepaticus (Hh) as the main specific antigen targeted in absence of iTregs. When rederived to a different Hh-free SPF-microbiota, mice showed few signs of disease without fatalities, but upon recolonization of mice with Hh we found rapid disease onset and the generation of inflammatory Th17/Th1 and Th1 cells in the colon. Thus, the present work identifies a major bacterial antigen and highlights the impact of specific microorganisms on modulating the host immune response and its role on disease onset, progression and outcome in this colitis model.

immunology↗