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Background
Despite latest advances in prostate cancer (PCa) therapy, PCa remains the third-leading cause of cancer-related death in European men. Dysregulation of microRNAs (miRNAs), small non-coding RNA molecules with gene expression regulatory function, has been reported in all types of epithelial and haematological cancers. In particular, miR-221-5p alterations have been reported in PCa.
Methods
miRNA expression data was retrieved from a comprehensive publicly available dataset of 218 PCa patients (GSE21036) and miR-221-5p expression levels were analysed. The functional role of miR-221-5p was characterised in androgen- dependent and androgen- independent PCa cell line models (C4–2 and PC-3M-Pro4 cells) by miR-221-5p overexpression and knock-down experiments. The metastatic potential of highly aggressive PC-3M-Pro4 cells overexpressing miR-221-5p was determined by studying extravasation in a zebrafish model. Finally, the effect of miR-221-5p overexpression on the growth of PC-3M-Pro4luc2 cells in vivo was studied by orthotopic implantation in male Balb/cByJ nude mice and assessment of tumor growth.
Results
Analysis of microRNA expression dataset for human primary and metastatic PCa samples and control normal adjacent benign prostate revealed miR-221-5p to be significantly downregulated in PCa compared to normal prostate tissue and in metastasis compared to primary PCa. Our in vitro data suggest that miR-221-5p overexpression reduced PCa cell proliferation and colony formation. Furthermore, miR-221-5p overexpression dramatically reduced migration of PCa cells, which was associated with differential expression of selected EMT markers. The functional changes of miR-221-5p overexpression were reversible by the loss of miR-221-5p levels, indicating that the tumor suppressive effects were specific to miR-221-5p. Additionally, miR-221-5p overexpression significantly reduced PC-3M-Pro4 cell extravasation and metastasis formation in a zebrafish model and decreased tumor burden in an orthotopic mouse model of PCa.
Conclusions
Together these data strongly support a tumor suppressive role of miR-221-5p in the context of PCa and its potential as therapeutic target.
Efficient redirection of NK cells by genetic modification with chemokine receptors CCR4 and CCR2B
(2023)
Natural killer (NK) cells are a subset of lymphocytes that offer great potential for cancer immunotherapy due to their natural anti-tumor activity and the possibility to safely transplant cells from healthy donors to patients in a clinical setting. However, the efficacy of cell-based immunotherapies using both T and NK cells is often limited by a poor infiltration of immune cells into solid tumors. Importantly, regulatory immune cell subsets are frequently recruited to tumor sites. In this study, we overexpressed two chemokine receptors, CCR4 and CCR2B, that are naturally found on T regulatory cells and tumor-resident monocytes, respectively, on NK cells. Using the NK cell line NK-92 as well as primary NK cells from peripheral blood, we show that genetically engineered NK cells can be efficiently redirected using chemokine receptors from different immune cell lineages and migrate towards chemokines such as CCL22 or CCL2, without impairing the natural effector functions. This approach has the potential to enhance the therapeutic effect of immunotherapies in solid tumors by directing genetically engineered donor NK cells to tumor sites. As a future therapeutic option, the natural anti-tumor activity of NK cells at the tumor sites can be increased by co-expression of chemokine receptors with chimeric antigen receptors (CAR) or T cell receptors (TCR) on NK cells can be performed in the future.
Background: Scientific guidelines have been developed to update and harmonize exercise based cardiac rehabilitation (ebCR) in German speaking countries. Key recommendations for ebCR indications have recently been published in part 1 of this journal. The present part 2 updates the evidence with respect to contents and delivery of ebCR in clinical practice, focusing on exercise training (ET), psychological interventions (PI), patient education (PE). In addition, special patients' groups and new developments, such as telemedical (Tele) or home-based ebCR, are discussed as well. Methods: Generation of evidence and search of literature have been described in part 1. Results: Well documented evidence confirms the prognostic significance of ET in patients with coronary artery disease. Positive clinical effects of ET are described in patients with congestive heart failure, heart valve surgery or intervention, adults with congenital heart disease, and peripheral arterial disease. Specific recommendations for risk stratification and adequate exercise prescription for continuous-, interval-, and strength training are given in detail. PI when added to ebCR did not show significant positive effects in general. There was a positive trend towards reduction in depressive symptoms for “distress management” and “lifestyle changes”. PE is able to increase patients’ knowledge and motivation, as well as behavior changes, regarding physical activity, dietary habits, and smoking cessation. The evidence for distinct ebCR programs in special patients’ groups is less clear. Studies on Tele-CR predominantly included low-risk patients. Hence, it is questionable, whether clinical results derived from studies in conventional ebCR may be transferred to Tele-CR. Conclusions: ET is the cornerstone of ebCR. Additional PI should be included, adjusted to the needs of the individual patient. PE is able to promote patients self-management, empowerment, and motivation. Diversity-sensitive structures should be established to interact with the needs of special patient groups and gender issues. Tele-CR should be further investigated as a valuable tool to implement ebCR more widely and effectively.
Most animals live in seasonal environments and experience very different conditions throughout the year. Behavioral strategies like migration, hibernation, and a life cycle adapted to the local seasonality help to cope with fluctuations in environmental conditions. Thus, how an individual utilizes the environment depends both on the current availability of habitat and the behavioral prerequisites of the individual at that time. While the increasing availability and richness of animal movement data has facilitated the development of algorithms that classify behavior by movement geometry, changes in the environmental correlates of animal movement have so far not been exploited for a behavioral annotation. Here, we suggest a method that uses these changes in individual–environment associations to divide animal location data into segments of higher ecological coherence, which we term niche segmentation. We use time series of random forest models to evaluate the transferability of habitat use over time to cluster observational data accordingly. We show that our method is able to identify relevant changes in habitat use corresponding to both changes in the availability of habitat and how it was used using simulated data, and apply our method to a tracking data set of common teal (Anas crecca). The niche segmentation proved to be robust, and segmented habitat suitability outperformed models neglecting the temporal dynamics of habitat use. Overall, we show that it is possible to classify animal trajectories based on changes of habitat use similar to geometric segmentation algorithms. We conclude that such an environmentally informed classification of animal trajectories can provide new insights into an individuals' behavior and enables us to make sensible predictions of how suitable areas might be connected by movement in space and time.
Background
Most tumor cells show aberrantly activated Akt which leads to increased cell survival and resistance to cancer radiotherapy. Therefore, targeting Akt can be a promising strategy for radiosensitization. Here, we explore the impact of the Akt inhibitor MK-2206 alone and in combination with the dual PI3K and mTOR inhibitor PI-103 on the radiation sensitivity of glioblastoma cells. In addition, we examine migration of drug-treated cells.
Methods
Using single-cell tracking and wound healing migration tests, colony-forming assay, Western blotting, flow cytometry and electrorotation we examined the effects of MK-2206 and PI-103 and/or irradiation on the migration, radiation sensitivity, expression of several marker proteins, DNA damage, cell cycle progression and the plasma membrane properties in two glioblastoma (DK-MG and SNB19) cell lines, previously shown to differ markedly in their migratory behavior and response to PI3K/mTOR inhibition.
Results
We found that MK-2206 strongly reduces the migration of DK-MG but only moderately reduces the migration of SNB19 cells. Surprisingly, MK-2206 did not cause radiosensitization, but even increased colony-forming ability after irradiation. Moreover, MK-2206 did not enhance the radiosensitizing effect of PI-103. The results appear to contradict the strong depletion of p-Akt in MK-2206-treated cells. Possible reasons for the radioresistance of MK-2206-treated cells could be unaltered or in case of SNB19 cells even increased levels of p-mTOR and p-S6, as compared to the reduced expression of these proteins in PI-103-treated samples. We also found that MK-2206 did not enhance IR-induced DNA damage, neither did it cause cell cycle distortion, nor apoptosis nor excessive autophagy.
Conclusions
Our study provides proof that MK-2206 can effectively inhibit the expression of Akt in two glioblastoma cell lines. However, due to an aberrant activation of mTOR in response to Akt inhibition in PTEN mutated cells, the therapeutic window needs to be carefully defined, or a combination of Akt and mTOR inhibitors should be considered.
High invasiveness and resistance to chemo- and radiotherapy of glioblastoma multiforme (GBM) make it the most lethal brain tumor. Therefore, new treatment strategies for preventing migration and invasion of GBM cells are needed. Using two different migration assays, Western blotting, conventional and super-resolution (dSTORM) fluorescence microscopy we examine the effects of the dual PI3K/mTOR-inhibitor PI-103 alone and in combination with the Hsp90 inhibitor NVP-AUY922 and/or irradiation on the migration, expression of marker proteins, focal adhesions and F-actin cytoskeleton in two GBM cell lines (DK-MG and SNB19) markedly differing in their invasive capacity. Both lines were found to be strikingly different in morphology and migration behavior. The less invasive DK-MG cells maintained a polarized morphology and migrated in a directionally persistent manner, whereas the highly invasive SNB19 cells showed a multipolar morphology and migrated randomly. Interestingly, a single dose of 2 Gy accelerated wound closure in both cell lines without affecting their migration measured by single-cell tracking. PI-103 inhibited migration of DK-MG (p53 wt, PTEN wt) but not of SNB19 (p53 mut, PTEN mut) cells probably due to aberrant reactivation of the PI3K pathway in SNB19 cells treated with PI-103. In contrast, NVP-AUY922 exerted strong anti-migratory effects in both cell lines. Inhibition of cell migration was associated with massive morphological changes and reorganization of the actin cytoskeleton. Our results showed a cell line-specific response to PI3K/mTOR inhibition in terms of GBM cell motility. We conclude that anti-migratory agents warrant further preclinical investigation as potential therapeutics for treatment of GBM.
Designing of implant surfaces using a suitable ligand for cell adhesion to stimulate specific biological responses of stem cells will boost the application of regenerative implants. For example, materials that facilitate rapid and guided migration of stem cells would promote tissue regeneration. When seeded on fibronectin (FN) that was homogeneously immmobilized to NCO-sP(EO-stat-PO), which otherwise prevents protein binding and cell adhesion, human mesenchymal stem cells (MSC) revealed a faster migration, increased spreading and a more rapid organization of different cellular components for cell adhesion on fibronectin than on a glass surface. To further explore, how a structural organization of FN controls the behavior of MSC, adhesive lines of FN with varying width between 10 mu m and 80 mu m and spacings between 5 mu m and 20 mu m that did not allow cell adhesion were generated. In dependance on both line width and gaps, cells formed adjacent cell contacts, were individually organized in lines, or bridged the lines. With decreasing sizes of FN lines, speed and directionality of cell migration increased, which correlated with organization of the actin cytoskeleton, size and shape of the nuclei as well as of focal adhesions. Together, defined FN lines and gaps enabled a fine tuning of the structural organization of cellular components and migration. Microstructured adhesive substrates can mimic the extracellular matrix in vivo and stimulate cellular mechanisms which play a role in tissue regeneration.
Dendritic cells (DCs) are major players in the control of adaptive tolerance and immunity. Therefore, their specific generation and adoptive transfer into patients or their in vivo targeting is attractive for clinical applications. While injections of mature immunogenic DCs are tested in clinical trials, tolerogenic DCs still are awaiting this step. Besides the tolerogenic potential of immature DCs, also semi-mature DCs can show tolerogenic activity but both types also bear unfavorable features. Optimal tolerogenic DCs, their molecular tool bar, and their use for specific diseases still have to be defined. Here, the usefulness of in vitro generated and adoptively transferred semi-mature DCs for tolerance induction is outlined. The in vivo targeting of semi-mature DCs as represented by steady state migratory DCs are discussed for treatment of autoimmune diseases and allergies. First clinical trials with transcutaneous allergen application may point to their therapeutic use in the future.
Die Migration von Tumorzellen im Bindegewebe erfordert adhäsive Zell-Matrix-Interaktionen, die durch Integrine und andere Adhäsionsmoleküle auf der Zelloberfläche vermittelt werden. In 3DKollagenmatrices benötigen hochinvasive MV3-Melanomzellen überwiegend α2β1-Integrine zur Elongation, Adhäsion an den Kollagenfasern und zur Faserbündelung, sowie zur Kraftgenerierung und Migration. Wir haben untersucht, ob die Migration von Tumorzellen in 3D-Kollagenmatrices vollständig durch die Blockade der Integrinfunktion inhibierbar ist, oder ob es kompensatorische Mechanismen gibt, die zur Migration beitragen. Die β1-Integrinfunktion wurde durch verschiedene Methoden reduziert: a) durchflusszytometrische Sortierung der Zellen in Subgruppen mit niedriger und hoher β1-Integrin-Oberflächenexpression; b) Adhäsionsblockade mit monoklonalem anti β1-Antikörper 4B4 oder Rhodocetin, einem selektiven α2β1-Integrininantagonist; und c) Expression von dominant-negativen Peptiden zur Blockade der Funktion der β1-Integrin-zytoplasmatischen Domäne. Alle β1-Integrin-Interferenzstrategien induzierten einen Übergang der konstitutiv vorhandenen mesenchymalen Migration in einen neuen, amöboiden Migrationstyp (Mesenchymal-Amoeboid Transition, MAT), ähnlich der Migrationsweise von Monozyten oder Lymphozyten. Der Übergang zu amöboider Migration ging einher mit dem Verlust der zellvermittelten Kollagenkontraktion und -reorganisation. Subtotale Inhibition der Integrinfunktion (ca. 50%) durch Antikörper 4B4 ergab eine schnelle (0,3-0,4 >m/min) amöboide Migration, während 90-95%ige Absättigung des β1-Integrin- Epitops zu langsamer amöboider Migration (0,03-0,2 >m/min) führte. Induzierte amöboide Migration verursachte eine gleichmäßige Verteilung der β1-Integrine auf der Zelloberfläche, ein diffuses kortikales Aktin-Zytoskelett, und war mit einer ausgeprägten Formanpassung der Zelle an die Matrixstrukturen verbunden, die von kleinen Filopodien oder Oberflächenblebs getragen wurde. Die Befunde wurden für β1-Integrin-defiziente murine embryonale Fibroblasten (MEF) und murine embryonale Stammzellen (GD25) bestätigt. β1-Integrin-defiziente Fibroblasten zeigten eine schnelle, und GD25 ES-Zellen eine langsame amöboide Migration. Somit erfolgte die amöboide Migration ohne β1-Integrin-vermittelte Zell-Matrix-Interaktionen. Weil keine vollständige Immobilisierung der Zellen erzielt wurde, haben wir alternative Mechanismen von Zell-Matrix-Interaktionen untersucht, die zur Restaktivität der amöboiden Migration beitragen. Als potentielle Kandidaten wurden αv-Integrine, die an denaturiertes Kollagen binden, und Oberflächen-Glycokonjugate getestet. Es wurden keine promigratorischen Funktionen RGDabhängiger Integrine (αv oder β3) mittels zyklischer Arginin-Glycin-Asparaginsäure (cRGD)beobachtet. Um herauszufinden, welche Rolle die Oberfächen-Glycokalyx bei der Zellmigration spielen, wurden verschiedene Methoden angewandt: a) Die an die Proteine gebundenen Glycokonjugate wurden mit Hilfe von N- und O-Glycosidasen von der Oberfläche der lebenden Zellen enzymatisch abgespalten; b) um die Sulfatierung der Glycokonjugate zu verhindern, wurden die Zellen in sulfatfreiem Medium kultiviert. Durch beide Methoden wurde die Bindung von Rutheniumrot an die Zelloberfläche(Glycokalyx) um 60% bzw. die von Heparansulfat der Zelloberfläche um 60% bis 100% reduziert. Nicht die Desulfatierung führte zur Ablösung der Zellen vom Kulturflaschenboden, sondern allein dieBehandlung mit N- und O-Glycosidasen. Die gleichzeitige Behandlung von MV3 Melanomzellen mit N-, O- Glycosidase mit Inhibition der β1-, αvβ3-Integrine führten zur Abrundung der Mehrzahl der Zellen, gefolgt von oszillierender Immobilität (‚Running on the spot’) bzw. sehr langsamer Restmigration (<0,1 >m/min). Dagegen war die Migration der MV3-Zellen nach Kultivierung in sulfatfreiem Medium unverändert. Eine ähnliche Hemmung der Migration erfolgte in β1-/- MEFs nach Glycanverdau. Folglich sind β1-Integrine essentiell für fokalisierte Zell-Matrix-Interaktionen, für die mesenchymale Migration und den Matrixumbau, während amöboide Migration ohne Beteiligung von β1-Integrinen erfolgt, aber durch niedrigaffine, diffuse Zell-Matrix-Interaktionen von Oberflächenglycanen vermittelt wird. Somit ist die Glycokalyx ein alternatives Adhäsionssystem für die integrinunabhängige Zellmigration.
Pfadbildung durch invasive Melanomzellen : Matrixdefekte, Zellfragmente und erleichterte Migration
(2006)
Die metastatische Invasion von Tumorzellen durch die extrazelluläre Matrix von Geweben erfordert aktive Zellmigration sowie häufig auch den Umbau der Gewebestruktur. In dieser Arbeit sollte mittels metastasierender MV3-Melonomzellen in einem 3D-Kollagenmatrixmodell der migrationsassozierte Matrixumbau zellulär und molekular untersucht werden, insbesondere die physikalische Charakterisierung gebildeter Matrixdefekte, die molekulare Identifi kation freigesetzter Zellbestandteile, sowie den Einfluß pfadbildender Zellen auf die Invasion nachfolgender Zellen. Die Daten zeigen, daß MV3-Melanomzellen während der Migration durch ein 3DKollagengewebe komplette Zellfragmente in zurückbleibenden röhrenförmigen Trassen deponieren. Diese beinhalteten Zytoplasma und teils Zytoskelett umgeben von intakter Zellmembran mit integrierten Oberflächenrezeptoren wie β1-Integrinen, nicht jedoch DNA-Material. Der Durchmesser der Fragmente lag überwiegend bei 1-5 μm, selten über 10 μm, entsprechend unspezifisch freigesetzter Zellfragmente, die während der Migration vom Zellhinterende abgeschilftet werden. In einem Sphäroidmodell ließen sich mehrere Invasionsfronten nachweisen, in denen einer ersten pfadbildenden Zelle entlang neu gebildeter Matrixtrassen weitere Zellen den gleichen präformierten Trassen folgten. Die videomikroskopischen Befunde wurden mittels Konfokalmikroskopie bestätigt. Eine erwartete höhere Migrationsgeschwindigkeit der nachfolgenden Zellen in dem präformierten Pfad bestätigte sich jedoch nicht. Somit führt die Invasion von MV3-Melanomzellen zur Ausbildung strukturell umgebauter Matrixtrassen, die aus Matrixdefekt freigesetzten Zellfragmenten und angrenzender Extrazellulärmatrix bestehen und nachfolgenden Zellen als Leitstruktur für eine orientierte Form der Invasion dienen (Kettenwanderung). Diese Befunde beleuchten die Dynamik von Zellarrangements ähnlich dem Invasionsmuster in histopathologischen Tumorproben.