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Chemical investigation of the methanolic extract of the Red Sea cucumber Holothuria spinifera led to the isolation of a new cerebroside, holospiniferoside (1), together with thymidine (2), methyl-α-d-glucopyranoside (3), a new triacylglycerol (4), and cholesterol (5). Their chemical structures were established by NMR and mass spectrometric analysis, including gas chromatography–mass spectrometry (GC–MS) and high-resolution mass spectrometry (HRMS). All the isolated compounds are reported in this species for the first time. Moreover, compound 1 exhibited promising in vitro antiproliferative effect on the human breast cancer cell line (MCF-7) with IC\(_{50}\) of 20.6 µM compared to the IC50 of 15.3 µM for the drug cisplatin. To predict the possible mechanism underlying the cytotoxicity of compound 1, a docking study was performed to elucidate its binding interactions with the active site of the protein Mdm2–p53. Compound 1 displayed an apoptotic activity via strong interaction with the active site of the target protein. This study highlights the importance of marine natural products in the design of new anticancer agents.
Electrospun carbon nanofibers (CNFs), which were modified with hydroxyapatite, were fabricated to be used as a substrate for bone cell proliferation. The CNFs were derived from electrospun polyacrylonitrile (PAN) nanofibers after two steps of heat treatment: stabilization and carbonization. Carbon nanofibrous (CNF)/hydroxyapatite (HA) nanocomposites were prepared by two different methods; one of them being modification during electrospinning (CNF-8HA) and the second method being hydrothermal modification after carbonization (CNF-8HA; hydrothermally) to be used as a platform for bone tissue engineering. The biological investigations were performed using in-vitro cell counting, WST cell viability and cell morphology after three and seven days. L929 mouse fibroblasts were found to be more viable on the hydrothermally-modified CNF scaffolds than on the unmodified CNF scaffolds. The biological characterizations of the synthesized CNF/HA nanofibrous composites indicated higher capability of bone regeneration.
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.
Metabolische Veränderungen und Zelltod in neuralen Zellen durch "Advanced Glycation Endproducts"
(2000)
Advanced Glycation Endproducts (AGEs) entstehen aus nicht-enzymatisch glykierten Proteinen. In einer Folge von Dehydratations-, Kondensations- und Oxidationsschritten entsteht ein heterogenes Gemisch aus farbigen, fluoreszierenden Verbindungen. AGE-modifizierte Proteine sind unlöslich und proteaseresistent, bei ihrer Bildung entstehen freie Radikale und andere reaktive Intermediate. Von der AGE-Bildung betroffen sind vor allem langlebige Proteine mit geringem Umsatz wie Kollagen und Kristallin aber auch pathologische Proteinablagerungen, z.B. in der Alzheimer´schen Demenz (AD). Die Akkumulation von AGEs spielt in der Pathogenese von Komplikationen des Diabetes und der Hämodialyse eine Rolle, für die AD wird eine Beteiligung von AGEs am Krankheitsverlauf diskutiert. Die Alzheimer´sche Demenz ist gekennzeichnet durch den histologischen Nachweis seniler Plaques und neurofibrillärer Bündel in Hirngewebe der Patienten. Auf Ebene des Stoffwechsels kommt es zu einer Verringerung des zerebralen Glukoseumsatzes, es finden sich Marker sowohl für eine Akutphasenreaktion als auch für oxidativen Stress. In dieser Arbeit wurde gezeigt, dass die AGE-Bildung in vitro die Aggregation von ßA4, dem Hauptbestandteil der senilen Plaques in der AD, beschleunigt. Der geschwindigkeits-bestimmende Schritt ist dabei die Glykierung des ßA4-Monomers. Durch Zugabe von Übergangsmetall-ionen kann die Vernetzung weiter beschleunigt werden. Dies deutet darauf hin, dass AGEs zur Plaquebildung in der AD beitragen, redox-aktive Eisenionen sind in der AD mit den Plaques assoziiert. Mit Hilfe von Metallchelatoren, Antioxidantien oder mit Substanzen, welche die zur Vernetzung notwendigen Aminogruppen abblocken, lässt sich die Aggregation von ßA4 verlangsamen oder verhindern. AGEs wirken zytotoxisch auf BHK 21 Fibroblasten und humane SH-SY5Y Neuroblastoma Zellen. Die Toxizität unterschiedlicher Modell-AGEs ist abhängig von verschiedenen Faktoren, u.a. von dem zur Herstellung verwendeten Protein und vom Zucker. Die LD50 der Modell-AGEs korreliert mit dem AGE-Gehalt und der Radikalproduktion der Präparationen in vitro. Die AGE-Toxizität ist hauptsächlich radikalvermittelt. Oxidativer Stress lässt sich in AGE-behandelten Zellen durch die Bildung intrazellulärer Lipidperoxidationsprodukte nachweisen. Auf Ebene der Signaltransduktion konnte die Aktivierung des Transkriptions-faktors NfkB als Zeichen der Stressabwehr nachgewiesen werden. Die Gabe von Antioxidantien vor oder gleichzeitig mit den AGEs verringerte den Zelltod. Auch durch das Blockieren des Rezeptors für AGEs (RAGE) mit spezifischen Antikörpern konnte die Zahl überlebender Zellen gesteigert werden. Durch AGEs ausgelöster Stress führt in Neuroblastoma Zellen bereits in Konzentrationen unterhalb der LD50 zu Störungen im Redoxstatus, es kommt zur Depletion von GSH und zu Verschiebungen im Verhältnis GSH/GSSG. Damit einher gehen Veränderungen im Energiestoffwechsel der Zelle, nach anfänglich erhöhter Glukoseaufnahme kommt es im weiteren Verlauf der Inkubation zu einer Verringerung der Aufnahme von Glukose aus dem Medium, gefolgt von einer Zunahme der Laktatausschüttung. Ausserdem wurde eine Depletion von ATP um bis zu 50 Prozent nachgewiesen. Antioxidantien können die Störungen im Metabolismus der Zellen verhindern oder abschwächen, die meisten der getesteten Substanzen konnten Redoxstatus und ATP-Gehalt der Zellen zu normalisieren. Obwohl sich in AGE-gestressten Zellkulturen durch Annexin-Fluorescein-Markierung ein geringfügig erhöhter Prozentsatz apoptotischer Zellen nachweisen ließ und AGEs auch die Freisetzung von Cytochrom c ins Zytoplasma induzieren, verläuft der durch AGEs ausgelöste Zelltod verläuft offenbar insgesamt nekrotisch. Sowohl durch Radikalproduktion als auch über rezeptorvermittelte Signalwege verursachen AGEs oxidativen Stress und induzieren Veränderungen im Metabolismus der Zelle. Dies führt u. a. dazu, dass für die antioxidativen Schutzmechanismen der Zelle nicht mehr genügend Energie zur Verfügung steht. AGE-Stress trägt damit in einer selbstverstärkenden Reaktionskaskade zur Neurodegeneration bei und kann so an der Pathogenese der AD beteiligt sein. Antioxidantien und auch AGE-Inhibitoren könnten einen interessanten Ansatz zur Entwicklung alternativer Therapien in der AD darstellen.
Bioactivity-guided fractionation of a methanolic extract of the Red Sea cucumber Holothuria spinifera and LC-HRESIMS-assisted dereplication resulted in the isolation of four compounds, three new cerebrosides, spiniferosides A (1), B (2), and C (3), and cholesterol sulfate (4). The chemical structures of the isolated compounds were established on the basis of their 1D NMR and HRMS spectral data. Metabolic profiling of the H. spinifera extract indicated the presence of diverse secondary metabolites, mostly hydroxy fatty acids, diterpenes, triterpenes, and cerebrosides. The isolated compounds were tested for their in vitro cytotoxicities against the breast adenocarcinoma MCF-7 cell line. Compounds 1, 2, 3, and 4 displayed promising cytotoxic activities against MCF-7 cells, with IC\(_{50}\) values of 13.83, 8.13, 8.27, and 35.56 µM, respectively, compared to that of the standard drug doxorubicin (IC\(_{50}\) 8.64 µM). Additionally, docking studies were performed for compounds 1, 2, 3, and 4 to elucidate their binding interactions with the active site of the SET protein, an inhibitor of protein phosphatase 2A (PP2A), which could explain their cytotoxic activity. This study highlights the important role of these metabolites in the defense mechanism of the sea cucumber against fouling organisms and the potential uses of these active molecules in the design of new anticancer agents.
Models of the outer epithelia of the human body namely the skin, the intestine and the lung have found valid applications in both research and industrial settings as attractive alternatives to animal testing. A variety of approaches to model these barriers are currently employed in such fields, ranging from the utilization of ex vivo tissue to reconstructed in vitro models, and further to chip-based technologies, synthetic membrane systems and, of increasing current interest, in silico modeling approaches. An international group of experts in the field of epithelial barriers was convened from academia, industry and regulatory bodies to present both the current state of the art of non-animal models of the skin, intestinal and pulmonary barriers in their various fields of application, and to discuss research-based, industry-driven and regulatory-relevant future directions for both the development of new models and the refinement of existing test methods. Issues of model relevance and preference, validation and standardization, acceptance, and the need for simplicity versus complexity were focal themes of the discussions. The outcomes of workshop presentations and discussions, in relation to both current status and future directions in the utilization and development of epithelial barrier models, are presented by the attending experts in the current report.
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.
Community-acquired (CA) Staphylococcus aureus cause various diseases even in healthy individuals. Enhanced virulence of CA-strains is partly attributed to increased production of toxins such as phenol-soluble modulins (PSM). The pathogen is internalized efficiently by mammalian host cells and intracellular S. aureus has recently been shown to contribute to disease. Upon internalization, cytotoxic S. aureus strains can disrupt phagosomal membranes and kill host cells in a PSM-dependent manner. However, PSM are not sufficient for these processes. Here we screened for factors required for intracellular S. aureus virulence. We infected escape reporter host cells with strains from an established transposon mutant library and detected phagosomal escape rates using automated microscopy. We thereby, among other factors, identified a non-ribosomal peptide synthetase (NRPS) to be required for efficient phagosomal escape and intracellular survival of S. aureus as well as induction of host cell death. By genetic complementation as well as supplementation with the synthetic NRPS product, the cyclic dipeptide phevalin, wild-type phenotypes were restored. We further demonstrate that the NRPS is contributing to virulence in a mouse pneumonia model. Together, our data illustrate a hitherto unrecognized function of the S. aureus NRPS and its dipeptide product during S. aureus infection.
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.
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.