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Miederer, M.

Publications and source records attributed to Miederer, M..

2 recordsLinked to original sources

Lung-targeted cytokine-coding RNA-lipoplexes induce T and NK cell-mediated anti-tumor immune response

Lung is a major site of metastases for many primary cancers associated with poor outcomes. A central challenge in cancer immunotherapy is overcoming tumor immune evasion, which limits effective antitumor responses. Here, we investigated whether combinatorial mRNA-encoded cytokine therapy can overcome tumor immune evasion by coordinately engaging innate and adaptive immunity, using murine models of pulmonary metastases. We employed intravenously administered cationic nucleoside-modified mRNA-lipoplexes (RNA-LPX) for targeted delivery of mRNA-encoded cytokines to the lung. The cytokine mix containing interferon-, half-life extended interleukin (IL)-7, and a half-life extended IL-2 variant with reduced CD25-binding modulated the tumor immune microenvironment resulting in a potent and broad anti-tumor response and prolonged survival with good tolerability at the conditions tested. Using cell depletion experiments, we demonstrated that both T and natural killer (NK) cells are crucial mediators of the observed anti-tumor efficacy of the cytokine RNA mix, which induced activation and effector function of NK and T cells, coupled with reduced regulatory T cells (Treg) numbers and Treg activation in the lung. Importantly, antitumor efficacy was maintained in models of impaired antigen presentation, including loss of an immunodominant tumor antigen and MHC class I deficiency, where NK cells served as the primary effectors. The cytokine RNA mix induced immune cell activation in the primary human lung tumor culture, suggesting potential for translational application. Collectively, these findings demonstrate that combinatorial cytokine therapy can drive both antigen-dependent and antigen-independent tumor control for the treatment of lung metastases.

immunology↗

Non-invasive visualization of pH changes within the tumor-micro-environment by positron emission tomography

Slight changes in the pH value of the tumor microenvironment (TME) have crucial effects on host defense, metastatic behavior, immune regulation and cellular metabolism. Due to the high metabolic activity and insufficient perfusion of tumors, acidic metabolites often accumulate in tumors and can influence the pH of the TME. Several studies have shown that the acidity of the interstitial space and the relatively stable intracellular pH can influence the functions of cancer and stromal cells and their interaction with the extracellular matrix. We describe radiopharmaceutical probes for positron emission tomography (PET) that exploits the increasingly used concept of pH-dependent intratumorally cleavage of PET-tracer to release functional moieties. The radiopharmaceuticals are based on [18F]FDG, a PET tracer, routinely used, and substituents that are pH-dependently cleaved. Utilizing preclinical models, we were able to visualize small pH differences in the acidic TME of different tumors with [18F]FDG-4-methoxybenzylamine ([18F]FDG-4MBA). In vivo studies were in line with in vitro results and showed that the hemiaminal bond between FDG and a substitute is cleaved at slightly acidic pH and leads to pH dependent radiotracer uptake. In vivo neutralization of the acidic extracellular tumor pH by sodium bicarbonate treatment prevents pH-dependent cleavage of [18F]FDG-4MBA and a resulting decrease of uptake. The determination of pH differences in acidic TME may serve as a novel marker for various questions such as regulation of the response to immunotherapies. Notably, even small pH differences in the acidic TME of different tumors, in the same in vivo model, could be visualized. This is the first preclinical study to show that it is possible to visualize small pH differences in the TME of different tumors in the same mouse using hemiaminal bound [18F]FDG. Due to the facile tracer synthesis and application, this system could be well suited for translation into clinical studies to develop new strategies of pH regulation to improve the efficacy of immunotherapy in cancer patients. graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=113 SRC="FIGDIR/small/624628v1_ufig1.gif" ALT="Figure 1"> View larger version (32K): org.highwire.dtl.DTLVardef@1c338c8org.highwire.dtl.DTLVardef@1c4fc67org.highwire.dtl.DTLVardef@197036aorg.highwire.dtl.DTLVardef@1613fa2_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗