610 Medizin und Gesundheit
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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.
Nonlimited proliferation is one of the most striking features of neoplastic cells. The basis of cell division is the sufficient presence of mass (amino acids) and energy (ATP and NADH). A sophisticated intracellular network permanently measures the mass and energy levels. Thus, in vivo restrictions in the form of amino acid, protein, or caloric restrictions strongly affect absolute lifespan and age-associated diseases such as cancer. The induction of permanent low energy metabolism (LEM) is essential in this process. The murine cell line L929 responds to methionine restriction (MetR) for a short time period with LEM at the metabolic level defined by a characteristic fingerprint consisting of the molecules acetoacetate, creatine, spermidine, GSSG, UDP-glucose, pantothenate, and ATP. Here, we used mass spectrometry (LC/MS) to investigate the influence of proliferation and contact inhibition on the energy status of cells. Interestingly, the energy status was essentially independent of proliferation or contact inhibition. LC/MS analyses showed that in full medium, the cells maintain active and energetic metabolism for optional proliferation. In contrast, MetR induced LEM independently of proliferation or contact inhibition. These results are important for cell behaviour under MetR and for the optional application of restrictions in cancer therapy.
Inflammation of the central nervous system (CNS) is associated with diseases such as multiple sclerosis, stroke and neurodegenerative diseases. Compromised integrity of the blood-brain barrier (BBB) and increased migration of immune cells into the CNS are the main characteristics of brain inflammation. Clustered protocadherins (Pcdhs) belong to a large family of cadherin-related molecules. Pcdhs are highly expressed in the CNS in neurons, astrocytes, pericytes and epithelial cells of the choroid plexus and, as we have recently demonstrated, in brain microvascular endothelial cells (BMECs). Knockout of a member of the Pcdh subfamily, PcdhgC3, resulted in significant changes in the barrier integrity of BMECs. Here we characterized the endothelial PcdhgC3 knockout (KO) cells using paracellular permeability measurements, proliferation assay, wound healing assay, inhibition of signaling pathways, oxygen/glucose deprivation (OGD) and a pro-inflammatory cytokine tumor necrosis factor alpha (TNFα) treatment. PcdhgC3 KO showed an increased paracellular permeability, a faster proliferation rate, an altered expression of efflux pumps, transporters, cellular receptors, signaling and inflammatory molecules. Serum starvation led to significantly higher phosphorylation of extracellular signal-regulated kinases (Erk) in KO cells, while no changes in phosphorylated Akt kinase levels were found. PcdhgC3 KO cells migrated faster in the wound healing assay and this migration was significantly inhibited by respective inhibitors of the MAPK-, β-catenin/Wnt-, mTOR- signaling pathways (SL327, XAV939, or Torin 2). PcdhgC3 KO cells responded stronger to OGD and TNFα by significantly higher induction of interleukin 6 mRNA than wild type cells. These results suggest that PcdhgC3 is involved in the regulation of major signaling pathways and the inflammatory response of BMECs.
Background:
According to only a handful of historical sources, Osmunda regalis, the royal fern, has been used already in the middle age as an anti-cancer remedy. To examine this ancient cancer cure, an ethanolic extract of the roots was prepared and analysed in vitro on its effectiveness against head and neck cancer cell lines.
Methods:
Proliferation inhibition was measured with the MTT assay. Invasion inhibition was tested in a spheroid-based 3-D migration assay on different extracellular matrix surfaces. Corresponding changes in gene expression were analysed by qRT-PCR array. Induction of apoptosis was measured by fluorescence activated cell sorting (FACS) with the Annexin V binding method. The plant extract was analysed by preliminary phytochemical tests, liquid chromatography/mass spectroscopy (LC-MS) and thin layer chromatography (TLC). Anti-angiogenetic activity was determined by the tube formation assay.
Results:
O. regalis extract revealed a growth inhibiting effect on the head and neck carcinoma cell lines HLaC78 and FaDu. The toxic effect seems to be partially modulated by p-glycoprotein, as the MDR-1 expressing HLaC79-Tax cells were less sensitive. O. regalis extract inhibited the invasion of cell lines on diverse extracellular matrix substrates significantly. Especially the dispersion of the highly motile cell line HlaC78 on laminin was almost completely abrogated. Motility inhibition on laminin was accompanied by differential gene regulation of a variety of genes involved in cell adhesion and metastasis. Furthermore, O. regalis extract triggered apoptosis in HNSCC cell lines and inhibited tube formation of endothelial cells. Preliminary phytochemical analysis proved the presence of tannins, glycosides, steroids and saponins. Liquid chromatography/mass spectroscopy (LC-MS) revealed a major peak of an unknown substance with a molecular mass of 864.15 Da, comprising about 50% of the total extract. Thin layer chromatography identified ferulic acid to be present in the extract.
Conclusion:
The presented results justify the use of royal fern extracts as an anti-cancer remedy in history and imply a further analysis of ingredients.
The canonical Wnt/beta-catenin pathway plays a key role in the regulation of bone remodeling in mice and humans. Two transmembrane proteins that are involved in decreasing the activity of this pathway by binding to extracellular antagonists, such as Dickkopf 1 (Dkk1), are the low-density lipoprotein receptor related protein 5 (Lrp5) and Kremen 2 (Krm2). Lrp 5 deficiency (Lrp5(-/-)) as well as osteoblast-specific overexpression of Krm2 in mice (Col1a1-Krm2) result in severe osteoporosis occurring at young age. In this study, we analyzed the influence of Lrp5 deficiency and osteoblast-specific overexpression of Krm2 on fracture healing in mice using flexible and semi-rigid fracture fixation. We demonstrated that fracture healing was highly impaired in both mouse genotypes, but that impairment was more severe in Col1a1-Krm2 than in Lrp5(-/-) mice and particularly evident in mice in which the more flexible fixation was used. Bone formation was more reduced in Col1a1-Krm2 than in Lrp5(-/-) mice, whereas osteoclast number was similarly increased in both genotypes in comparison with wild-type mice. Using microarray analysis we identified reduced expression of genes mainly involved in osteogenesis that seemed to be responsible for the observed stronger impairment of healing in Col1a1-Krm2 mice. In line with these findings, we detected decreased expression of sphingomyelin phosphodiesterase 3 (Smpd3) and less active beta-catenin in the calli of Col1a1-Krm2 mice. Since Krm2 seems to play a significant role in regulating bone formation during fracture healing, antagonizing KRM2 might be a therapeutic option to improve fracture healing under compromised conditions, such as osteoporosis.
An in vivo model of antiangiogenic therapy allowed us to identify genes upregulated by bevacizumab treatment, including Fatty Acid Binding Protein 3 (FABP3) and FABP7, both of which are involved in fatty acid uptake. In vitro, both were induced by hypoxia in a hypoxia-inducible factor-1 alpha (HIF-1 alpha)-dependent manner. There was a significant lipid droplet (LD) accumulation in hypoxia that was time and O-2 concentration dependent. Knockdown of endogenous expression of FABP3, FABP7, or Adipophilin (an essential LD structural component) significantly impaired LD formation under hypoxia. We showed that LD accumulation is due to FABP3/7-dependent fatty acid uptake while de novo fatty acid synthesis is repressed in hypoxia. We also showed that ATP production occurs via beta-oxidation or glycogen degradation in a cell-type-dependent manner in hypoxia-reoxygenation. Finally, inhibition of lipid storage reduced protection against reactive oxygen species toxicity, decreased the survival of cells subjected to hypoxia-reoxygenation in vitro, and strongly impaired tumorigenesis in vivo.
Bioactive glass (BG) scaffolds are being investigated for bone tissue engineering applications because of their osteoconductive and angiogenic nature. However, to increase the in vivo performance of the scaffold, including enhancing the angiogenetic growth into the scaffolds, some researchers use different modifications of the scaffold including addition of inorganic ionic components to the basic BG composition. In this study, we investigated the in vitro biocompatibility and bioactivity of Cu2+-doped BG derived scaffolds in either BMSC (bone-marrow derived mesenchymal stem cells)-only culture or co-culture of BMSC and human dermal microvascular endothelial cells (HDMEC). In BMSC-only culture, cells were seeded either directly on the scaffolds (3D or direct culture) or were exposed to ionic dissolution products of the BG scaffolds, kept in permeable cell culture inserts (2D or indirect culture). Though we did not observe any direct osteoinduction of BMSCs by alkaline phosphatase (ALP) assay or by PCR, there was increased vascular endothelial growth factor (VEGF) expression, observed by PCR and ELISA assays. Additionally, the scaffolds showed no toxicity to BMSCs and there were healthy live cells found throughout the scaffold. To analyze further the reasons behind the increased VEGF expression and to exploit the benefits of the finding, we used the indirect method with HDMECs in culture plastic and Cu2+-doped BG scaffolds with or without BMSCs in cell culture inserts. There was clear observation of increased endothelial markers by both FACS analysis and acetylated LDL (acLDL) uptake assay. Only in presence of Cu2+-doped BG scaffolds with BMSCs, a high VEGF secretion was demonstrated by ELISA; and typical tubular structures were observed in culture plastics. We conclude that Cu2+-doped BG scaffolds release Cu2+, which in turn act on BMSCs to secrete VEGF. This result is of significance for the application of BG scaffolds in bone tissue engineering approaches.
Zur Identifizierung geeigneter Routinemarker für die Prognose von Ependymompatienten führten wir immunhistochemische Untersuchungen und statistische Auswertungen an Ependymomen und Daten von 32 Erwachsenen und 23 pädiatrischen Patienten durch. Davon wurden bei drei Tumoren auch Rezidive untersucht, so dass insgesamt 59 Ependymome in die Untersuchung eingeschlossen wurden. Im Einzelnen handelte es sich um 11 myxopapilläre Ependymome, 6 Subependymome, 19 Ependymome und 23 anaplastische Ependymome. Die größten Fallgruppen bildeten pädiatrische Patienten unter drei Jahren und Erwachsene zwischen 50 und 70 Jahren. Bei Kindern war mit 45,8% die infratentorielle, bei Erwachsenen mit 65% die spinale Tumorlokalisation am häufigsten. Die untersuchten spinalen Ependymome entsprachen zu gleichen Teilen myxopapillären Ependymomen WHO Grad I und Ependymomen WHO Grad II. In supratentorieller Lage fanden sich mit 67% überwiegend anaplastische Ependymome WHO Grad III. Auch bei den infratentoriell gelegenen Ependymomen waren mit 63% die Mehrzahl anaplastische Ependymome, daneben fanden sich 29,6% Ependymome WHO Grad II. Beim Vergleich des von uns definierten und bestimmten Ki67-Scores als Zeichen für die Ependymomproliferation und der immunhistochemischen Positivität für HCK fiel nach Anwendung des Chi-Quadrat-Tests mit p=0,067 ein deutlicher Trend zu schwächerer punktförmiger Positivität bei höherem Ki67-Score auf. Dieser Trend setzte sich in der Erwachsenengruppe separat fort, während er in der Kindergruppe allein nicht nachweisbar war. In der Erwachsenengruppe war mit 28% ein deutlicher Anteil myxopapillärer Ependymome vorhanden, welche bei den Kindern nur 8% ausmachten.Möglicherweise spielt die veränderte HCK-Expression in der Subgruppe der myxopapillären Ependymome eine Rolle. Unsere Untersuchungen zeigten außerdem mit p=0,057 einen deutlichen Trend zu längerem Überleben bei immunohistochemischer DBC1-Negativität. Die Multivarianzanalyse mittels Cox-Regression wies eine Positivität für DBC1 als unabhängigen Risikofaktor für eine kürzere Überlebenszeit nach. Des Weiteren konnte eine mit p=0,013 signifikante Korrelation zwischen immunhistochemischer Positivität für DBC1 und höherem Ki67-Score gezeigt werden. Auch mit höherem WHO-Grad korrelierte die DBC1-Positivität mit p=0,009. Besonders infratentoriell gelegene Ependymome zeigten DBC1-Reaktivität. Hier treten bekannterweise häufiger anaplastische Ependymome mit höherem Proliferationsindex auf. Unsere Ergebnisse legen somit die Eignung des Markers DBC1 als immunhistochemische Routineuntersuchung für die Beurteilung der vom Resektionsstatus unabhängigen Prognose und Überlebenszeit von Ependymompatienten nahe.
Zahlreiche Studien schreiben Histondeacetylase-Inhibitoren einen Anti-Tumor-Effekt auf verschiedene hämatologische und solide Tumoren durch Apoptoseinduktion, vermehrte Zelldifferenzierung und verminderte Zellproliferation zu. Als Mechanismus wird eine Einflussnahme auf die Genexpression durch Modulation von Histondeacetylasen und deren Auswirkung auf den Acetylierungsstatus von Histonen und Nicht-Histon-Proteinen angenommen. Ziel dieser Arbeit war es, die Auswirkungen des Histondeacetylase-Inhibitors LBH589 auf Proliferation und Differenzierung von Kolonkarzinomzellen und dessen Metastasenzellen in Zellkulturexperimenten zu untersuchen. Die Untersuchungen wurden an Zellen der Zellkulturlinien SW480 (kolorektales Karzinom) und SW620 (Metastase des kolorektalen Karzinoms) durchgeführt. Für die Zellproliferation wurden die Zellen nach entsprechender Vorbehandlung in einer Neubauer-Zellzählkammer ausgezählt. Zur Feststellung des Verlaufs der Zelldifferenzierung diente die Bestimmung der Intestinalen Alkalischen Phosphatase als Marker. Unter LBH589-Inkubation kam es zu einer Hemmung der Zellproliferation sowohl bei SW480-Zellen als auch bei SW620-Zellen. Allerdings ergab sich kein signifikanter Unterschied bei der Auswertung der Kontrolllösungen mit jeweils äquimolaren Mengen DMSO. Daher konnte dem HDAC-Inhibitor LBH589 im Rahmen dieser Arbeit kein sicherer Effekt auf die Inhibition der Zellproliferation zugeschrieben werden. LBH589 hatte keinen nachweisbaren relevanten Einfluss auf die Differenzierung von Zellen der beiden Zelllinien. Allenfalls konnte ein leicht hemmender Einfluss auf die Zelldifferenzierung gezeigt werden, der jedoch nicht signifikant ausfiel. Weitere Untersuchungen sind anzustreben, um den Verlauf der Zellproliferation und weiterer Differenzierungsmarker unter dem Einfluss von LBH589 sowie äquimolaren Mengen DMSO detaillierter zu charakterisieren. Zukünftige Arbeiten zu Histondeacetylase-Inhibitoren und deren Effekt auf Zellen des kolorektalen Karzinoms, sowie Histondeacetylase-Inhibitoren in der Kombinationstherapie von kolorektalen Tumoren sind sicher sinnvoll.
In dieser Arbeit wurde in humanen CD34-positiven Stammzellen die PK-G, PK-A sowie ihr Substratprotein VASP nachgewiesen. Dabei liegt VASP in unstimulierten Zellen in nicht-phosphorylierter Form vor. Die VASP-Phosphorylierung kann durch die aus anderen Zellsystemen bekannten cAMP- und cGMP- abhängigen Signalkaskaden auch im Zellkultursystem von humanen CD34-positiven Stammzellen reguliert werden. Ein weiterer Teilaspekt war der Einfluss des cGMP-erhöhenden Stickstoffmonoxyd-Donors DEA/NO auf das Proliferations,- und Differenzierungsverhalten humaner CD34-positiver Stammzellen. Hierbei fand sich ein dualer konzentrationsabhängiger Effekt von cGMP: niedrige Konzentrationen zeigten einen hemmenden Einfluss auf die Proliferation undgleichzeitig einen aktivierenden Effekt auf die Differenzierung der hämatopeotischen Zellen zu CD41-positiven Megakaryozyten. Die höhere Konzentration von DEA/NO beinflusst zwar das Zellwachstum positiv, die Differenzierung der CD34-positiven Zellen hingegen wird gehemmt. Eine Zelldifferenzierung von humanen CD34-positiven Stammzellen zu CD15-positiven Granulozyten /Monozyten unter DEA/NO war nicht zu beobachten. Zusammenfassend konnte in der vorliegenden Arbeit gezeigt werden, dass Signalwege, die über zyklische Nukleotide reguliert werden, eine wichtige Rolle in Proliferations- und Differenzierungsvorgängen humaner hämatopoetischer Progenitorzellen spielen. Damit stehen diese Signalwege prinzipiell als Grundlage für neue pharmakologische Therapieoptionen zu Verfügung.