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For many decades, poly(2‐oxazoline)s and poly(2‐oxazine)s, two closely related families of polymers, have led the life of a rather obscure research topic with only a few research groups world‐wide working with them. This has changed in the last five to ten years, presumably triggered significantly by very promising clinical trials of the first poly(2‐oxazoline)‐based drug conjugate. The huge chemical and structural toolbox poly(2‐oxazoline)s and poly(2‐oxazine)s has been extended very significantly in the last few years, but their potential still remains largely untapped. Here, specifically, the developments in macromolecular self‐assemblies and non‐covalent drug delivery systems such as polyplexes and drug nanoformulations based on poly(2‐oxazoline)s and poly(2‐oxazine)s are reviewed. This highly dynamic field benefits particularly from the extensive synthetic toolbox poly(2‐oxazoline)s and poly(2‐oxazine)s offer and also may have the largest potential for a further development. It is expected that the research dynamics will remain high in the next few years, particularly as more about the safety and therapeutic potential of poly(2‐oxazoline)s and poly(2‐oxazine)s is learned.
Propofol is a widely used general anesthetic in clinical practice, but its use is limited by its water-insoluble nature and associated pharmacokinetic and pharmacodynamic limitations. Therefore, researchers have been searching for alternative formulations to lipid emulsion to address the remaining side effects. In this study, novel formulations for propofol and its sodium salt Na-propofolat were designed and tested using the amphiphilic cyclodextrin (CD) derivative hydroxypropyl-β-cyclodextrin (HPβCD). The study found that spectroscopic and calorimetric measurements suggested complex formation between propofol/Na-propofolate and HPβCD, which was confirmed by the absence of an evaporation peak and different glass transition temperatures. Moreover, the formulated compounds showed no cytotoxicity and genotoxicity compared to the reference. The molecular modeling simulations based on molecular docking predicted a higher affinity for propofol/HPβCD than for Na-propofolate/HPβCD, as the former complex was more stable. This finding was further confirmed by high-performance liquid chromatography. In conclusion, the CD-based formulations of propofol and its sodium salt may be a promising option and a plausible alternative to conventional lipid emulsions.
Staphylococcus aureus is a major human pathogen, which can invade and survive in non-professional and professional phagocytes. Uptake by host cells is thought to contribute to pathogenicity and persistence of the bacterium. Upon internalization by epithelial cells, cytotoxic S. aureus strains can escape from the phagosome, replicate in the cytosol and induce host cell death. Here, we identified a staphylococcal cysteine protease to induce cell death after translocation of intracellular S. aureus into the host cell cytoplasm. We demonstrated that loss of staphopain A function leads to delayed onset of host cell death and prolonged intracellular replication of S. aureus in epithelial cells. Overexpression of staphopain A in a non-cytotoxic strain facilitated intracellular killing of the host cell even in the absence of detectable intracellular replication. Moreover, staphopain A contributed to efficient colonization of the lung in a mouse pneumonia model. In phagocytic cells, where intracellular S. aureus is exclusively localized in the phagosome, staphopain A did not contribute to cytotoxicity. Our study suggests that staphopain A is utilized by S. aureus to exit the epithelial host cell and thus contributes to tissue destruction and dissemination of infection.
Author summary Staphylococcus aureus is an antibiotic-resistant pathogen that emerges in hospital and community settings and can cause a variety of diseases ranging from skin abscesses to lung inflammation and blood poisoning. The bacterium can asymptomatically colonize the upper respiratory tract and skin of humans and take advantage of opportune conditions, like immunodeficiency or breached barriers, to cause infection. Although S. aureus was not regarded as intracellular bacterium, it can be internalized by human cells and subsequently exit the host cells by induction of cell death, which is considered to cause tissue destruction and spread of infection. The bacterial virulence factors and underlying molecular mechanisms involved in the intracellular lifestyle of S. aureus remain largely unknown. We identified a bacterial cysteine protease to contribute to host cell death of epithelial cells mediated by intracellular S. aureus. Staphopain A induced killing of the host cell after translocation of the pathogen into the cell cytosol, while bacterial proliferation was not required. Further, the protease enhanced survival of the pathogen during lung infection. These findings reveal a novel, intracellular role for the bacterial protease staphopain A.
In this study, the ability of a multiwalled carbon nanotube functionalized with fluorescein isothiocyanate (MWCNT-FITC) was assessed as a prospective central nervous system-targeting drug delivery system to permeate the blood-brain barrier. The results indicated that the MWCNT-FITC conjugate is able to penetrate microvascular cerebral endothelial monolayers; its concentrations in the Transwell® system were fully equilibrated after 48 hours. Cell viability test, together with phase-contrast and fluorescence microscopies, did not detect any signs of MWCNT-FITC toxicity on the cerebral endothelial cells. These microscopic techniques also revealed presumably the intracellular localization of fluorescent MWCNT-FITCs apart from their massive nonfluorescent accumulation on the cellular surface due to nanotube lipophilic properties. In addition, the 1,000 ps molecular dynamics simulation in vacuo discovered the phenomenon of carbon nanotube aggregation driven by van der Waals forces via MWCN-TFITC rapid dissociation as an intermediate phase.
NK-Zellen spielen eine wichtige Rolle im menschlichen Immunsystem, insbesondere durch die Zerstörung von virusinfizierten Zellen und Tumorzellen sowie durch die Produktion von Zytokinen. Eine gezielte Modulation der Effektorfunktionen von NK-Zellen kann den Weg für neue Therapiestrategien gegenüber malignen Erkrankungen oder auch Autoimmunerkrankungen bahnen. Dasatinib ist ein potenter Inhibitor einer Vielzahl von Kinasen, die an der Regulation von NK-Zelleffektorfunktionen beteiligt sind und für die bereits eine Inhibition von T-Zelleffektorfunktionen gezeigt werden konnte [Schade et al. 2008; Weichsel et al. 2008]. Ein besseres Verständnis der immunmodulatorischen Eigenschaften von Dasatinib kann nicht nur neue Einsatzbereiche identifizieren, sondern auch die bereits bewährte Therapie der CML optimieren. Daher wurde im Rahmen dieser Arbeit der Einfluss von Dasatinib auf die Expansion, Zytotoxizität und Zytokinproduktion von humanen NK-Zellen analysiert. Dazu wurden aus peripheren Blutlymphozyten gesunder Spender polyklonale NK-Zellen in Kokultur mit bestrahlten RPMI 8866-Zellen mit und ohne Dasatinib expandiert und NK-Zelleffektorfunktionen mit Durchfluszytometrie-basierten Experimenten untersucht. Im Detail wurde die Zytotoxizität nach dem Prinzip des FATAL-Experiments [Sheehy et al. 2001], die Degranulationsaktivität über die Expression von CD107a/b, die Produktion von TNF-α bzw. IFN-γ mit einer intrazellulären Färbung und die Apoptose- und Zelltodanalyse über Annexin-V und 7-AAD gemessen. Die Daten dieser Arbeit zeigen, dass Dasatinib die Haupteffektorfunktionen von NK-Zellen gesunder Blutspender in vitro reguliert: Die Expansionskapazität von NK-Zellen wird dosisabhängig und bei 50 nM Dasatinib vollständig inhibiert, ohne dass dies durch ein Absterben der NK-Zellen bedingt ist. Die Zytotoxizität von NK-Zellen, die unter 10 nM Dasatinib expandiert sind, ist nach Entfernen des Medikamentes restauriert, und die Degranulationskapazität und die Zytokinproduktion sind gesteigert. Bei unbehandelt expandierten NK-Zellen führt die direkte Anwesenheit von Dasatinib zu einer dosisabhängigen Hemmung der Zytotoxizität gegenüber K562-Zellen. Darüber hinaus inhibiert Dasatinib dosisabhängig die Degranulation und Zytokinproduktion von NK-Zellen bei einer Stimulation mit K562-Zellen nicht aber bei einer Stimulation mit PMA/Ca2+Ionophor. Eine indirekte Veränderung des Lyseverhaltens der NK-Zellen durch Effekte von Dasatinib auf die K562-Zellen zeigt sich nicht nach 4h, aber nach 24h im Sinne einer erhöhten Spontanlyse, aber geringeren spezifischen Lyse. Eine 24h-Vorbehandlung von K562-Zellen mit Dasatinib führt außerdem zu einer verminderten Degranulationsaktivität und Zytokinproduktion von unbehandelten NK-Zellen. Die Hemmung der NK-Zelleffektorfunktionen bei direkter Anwesenheit von Dasatinib und deren Restauration respektive Steigerung nach Entfernen des Medikaments ist am ehesten auf eine reversible Inhibition von Src-Kinase-abhängigen Prozessen der intrazellulären Signalübertragung zurückzuführen. Eine kompromittierte NK-Zellfunktion könnte während einer Behandlung mit Dasatinib zu einer Verminderung der Infektabwehr und der immunologischen Tumorüberwachung führen. Möglicherweise lassen sich jedoch die unerwünschten Wirkungen durch ein verändertes Dosisregime, wie eine Hochdosispulstherapie, bei guter Therapieeffizienz minimieren. Eine supprimierte Aktivität der NK-Zellen durch Dasatinib könnte dagegen bei der Therapie von NK-Zelllymphomen oder auch von Autoimmunerkrankungen eine neue Behandlungsoption darstellen. Aufgrund der bereits bekannten inhibitorischen Wirkung auf T-Zellfunktionen gibt es dabei möglicherweise Synergien in der immunsuppressiven Wirkung. Das immunmodulatorische Potential von Dasatinib birgt daher große Chancen sowohl im Einsatz als Immunsuppressivum, als auch in der Optimierung der bereits bewährten Therapie der CML.
Zinc oxide nanoparticles (ZnO-NPs) are commonly used for industrial applications. Consequently, there is increasing exposure of humans to them. The in vitro analysis of cytotoxicity and genotoxicity is commonly performed under standard cell culture conditions. Thus, the question arises of how the results of genotoxicity and cytotoxicity experiments would alter if human plasma was used instead of cell culture medium containing of fetal calf serum (FCS). Human mesenchymal stem cells (hMSCs) were cultured in human plasma and exposed to ZnO-NPs. A cultivation in expansion medium made of DMEM consisting 10% FCS (DMEM-EM) served as control. Genotoxic and cytotoxic effects were evaluated with the comet and MTT assay, respectively. hMSC differentiation capacity and ZnO-NP disposition were evaluated by histology and transmission electron microscopy (TEM). The protein concentration and the amount of soluble Zn2+ were measured. The cultivation of hMSCs in plasma leads to an attenuation of genotoxic and cytotoxic effects of ZnO-NPs compared to control. The differentiation capacity of hMSCs was not altered. The TEM showed ZnO-NP persistence in cytoplasm in both groups. The concentrations of protein and Zn2+ were higher in plasma than in DMEM-EM. In conclusion, the cultivation of hMSCs in plasma compared to DMEM-EM leads to an attenuation of cytotoxicity and genotoxicity in vitro.
In contrast to other haematological malignancies, targeted immunotherapy has not entered standard treatment regimens for de novo or relapsed multiple myeloma (MM) yet. While a number of IgG-formatted monoclonal antibodies are currently being evaluated in clinical trials in MM, our study aimed to investigate whether the fully human IgM monoclonal antibody PAT-SM6 that targets a tumour-specific variant of the heat shock protein GRP78 might be an attractive candidate for future immunotherapeutic approaches. We here show that GRP78 is stably and consistently expressed on the surface on tumour cells from patients with de novo, but also relapsed MM and that binding of PAT-SM6 to MM cells can specifically exert cytotoxic effects on malignant plasma cells, whereas non-malignant cells are not targeted. We demonstrate that the induction of apoptosis and, to a lesser extent, complement dependent cytotoxicity is the main mode of action of PAT-SM6, whereas antibody dependent cellular cytotoxicity does not appear to contribute to the cytotoxic properties of this antibody. Given the favourable safety profile of PAT-SM6 in monkeys, but also in a recent phase I trial in patients with malignant melanoma, our results form the basis for a planned phase I study in patients with relapsed MM.
Aufgrund ihrer gut dokumentierten, umfangreichen gesundheitsfördernden biologischen Aktivitäten wird den Flavonoiden eine große Bedeutung zugeordnet. Die Ergebnisse von in vitro- und Tierstudien deuten zudem darauf hin, dass diese Verbindungen bei der Prävention und Therapie von Erkrankungen wie Krebs oder Alzheimer Krankheit (AD) positive Effekte zeigen. Zur besseren Charakterisierung der Interaktion von Flavonoiden mit Krebszellen wurden von uns die Cytotoxizität verschiedener Flavonoide auf T-Lymphoblastomzellen untersucht und Strukturelemente identifiziert, welche für einen Flavonoid-induzierten Zelltod relevant sind. Weitere Studien waren der potentiell neuroprotektiven Wirkung von Flavonoiden gewidmet. Die sowohl in neuronalen Zellkulturen als auch in transgenen Alzheimer-Mäusen (TgAPPsw) festgestellte Erhöhung der sAPPα Produktion und Reduktion von Aβ-Bildung wurden mit Aktivitäts- und Expressionssteigerung der α-Sekretase ADAM-10 assoziiert. Um herauszufinden, ob Flavonoide eine neuroprotektive Wirkung zeigen, wurden erste Vorbereitungen für ein Flavonoid-Screening mit einer sowohl hAPP alsauch ADAM-10 stabil transfizierten HT1080 Zellen getroffen. Dies beinhaltete die Suche nach einer potenten siRNA/shRNA und einem effektiven Flavonoid. Im zweiten Teil der Arbeit wurden Experimente durchgeführt, um die Rolle von Heparansulfat (HS) bei der foamyviralen Anbindung an die Wirtszelle zu untersuchen. Foamyviren (FV) sind Spumaviren und gehören zur Familie der Retroviren. Bei unseren Studien wurde die Bindung von FV an Heparin, die Korrelation der Suszeptibilität verschiedener Zellen mit zellulärem HS und die Reduktion der Infektion durch lösliches Heparin sowie durch enzymatischen HS-Abbau festgestellt.
Synthesis and biological activity of molybdenum carbonyl complexes and their peptide conjugates
(2012)
Molybdenum carbonyl complexes with different polypyridyl coligands were prepared and conjugated to peptides by mild bioorthogonal coupling reactions like the oxime ligation and a catalyst-free azide-alkyne click reaction utilized for the first time in such a context. The biological activity of some of the new complexes and conjugates, including their CO release properties, cytotoxicity on human cancer cells, and mode of induction of cell death was studied.
Background
Fermented wheat germ extract (FWGE) sold under the trade name Avemar exhibits anticancer activity in vitro and in vivo. Its mechanisms of action are divided into antiproliferative and antimetabolic effects. Its influcence on cancer cell metabolism needs further investigation. One objective of this study, therefore, was to further elucidate the antimetabolic action of FWGE. The anticancer compound 2,6-dimethoxy-1,4-benzoquinone (DMBQ) is the major bioactive compound in FWGE and is probably responsible for its anticancer activity. The second objective of this study was to compare the antiproliferative properties in vitro of FWGE and the DMBQ compound.
Methods
The IC\(_{50}\) values of FWGE were determined for nine human cancer cell lines after 24 h of culture. The DMBQ compound was used at a concentration of 24 μmol/l, which is equal to the molar concentration of DMBQ in FWGE. Cell viability, cell cycle, cellular redox state, glucose consumption, lactic acid production, cellular ATP levels, and the NADH/NAD\(^+\) ratio were measured.
Results
The mean IC\(_{50}\) value of FWGE for the nine human cancer cell lines tested was 10 mg/ml. Both FWGE (10 mg/ml) and the DMBQ compound (24 μmol/l) induced massive cell damage within 24 h after starting treatment, with changes in the cellular redox state secondary to formation of intracellular reactive oxygen species. Unlike the DMBQ compound, which was only cytotoxic, FWGE exhibited cytostatic and growth delay effects in addition to cytotoxicity. Both cytostatic and growth delay effects were linked to impaired glucose utilization which influenced the cell cycle, cellular ATP levels, and the NADH/NAD\(^+\) ratio. The growth delay effect in response to FWGE treatment led to induction of autophagy.
Conclusions
FWGE and the DMBQ compound both induced oxidative stress-promoted cytotoxicity. In addition, FWGE exhibited cytostatic and growth delay effects associated with impaired glucose utilization which led to autophagy, a possible previously unknown mechanism behind the influence of FWGE on cancer cell metabolism.