4 resultados para Stress degradation
em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha
Resumo:
Gegenstand dieser Arbeit war es, das Zusammenspiel zwischen DNA-Reparatur und zellulärem anitoxidativen Abwehrsystem in Melanomzellen und gesunden Hautfibroblasten näher zu untersuchen. Dabei konnte gezeigt werden, dass die dominierenden DNA-Läsionen im Falle einer Bestrahlung mit sichtbarem Licht (400 – 800 nm) Fpg-sensitive Läsionen, zu denen die Basenmodifikation 7,8-Dihydro-8-oxoguanin (8-oxoG) gehört, und im Falle der UVA-Bestrahlung Cyclobutan-Pyrimidindimere (CPDs) sind. Sowohl Melanomzellen als auch Hautfibroblasten waren problemlos in der Lage, die durch sichtbares Licht und UVA-Strahlung induzierten oxidativen DNA-Modifikationen zu reparieren. Jedoch reagierten Melanomzellen in einer adaptiven Antwort mit einer Erhöhung ihres Glutathion-Gehalts auf ein Maximum (nach circa 10 - 14 h) nach Bestrahlung mit sichtbarem Licht, wohingegen die Hautfibroblasten einen massiven Einbruch direkt nach Bestrahlung und eine extrem lange Erholungsphase über 48 h aufzuweisen hatten. Die darauffolgende Untersuchung der DNA-Reparaturkapazität der Zellen unter Bedingungen von oxidativem Stress mit vorangegangener Depletion intrazellulären Glutathions zeigten eine dramatische, nahezu vollständige Hemmung der Reparatur durch UVA- bzw. Sonnenlicht-induzierter Fpg-sensitiver DNA-Modifikationen (8-oxoG) - sowohl in Melanomzellen als auch in Hautfibroblasten. Dieser Effekt ließ sich durch den Zusatz von Dithiothreitol (DTT), nach erfolgter Bestrahlung der Glutathion-depletierten Zellen, wieder komplett revertieren. Diese Ergebnisse weisen darauf hin, dass an der Reparatur ein redoxempfindliches Protein oder zellulärer Cofaktor beteiligt sein muß. Zudem konnte durch Untersuchungen der Nukleotidexzisionsreparatur (NER) und der Einzelstrangbruchreparatur nach dem gleichen Versuchsdesign gezeigt werden, dass es sich hierbei sehr wahrscheinlich um einen für die Basenexzisionsreparatur (BER) von 7,8-dihydro-8-oxo-guanine (8-oxoG) exklusiven Effekt handelte. Zwei der wichtigsten Reparaturproteine der BER, nämlich hOGG1 und APE1, wurden anschließend auf ihre Funktionsfähigkeit hin untersucht, da es naheliegend war, dass der Reparaturhemmung ein Funktionsverlust eines dieser beiden Enzyme zugrunde liegen könnte. Im Falle des APE1-Proteins konnte dies ausgeschlossen werden, da mit Hilfe der Alkalischen Elution die volle Funktionsfähigkeit für die Reparatur von AP-Läsionen nachgewiesen werden konnte. Interessanterweise zeigte aber das hOGG1-Protein eine zwischen der dritten und vierten Stunde nach Bestrahlung Glutathion-depletierter Zellen stark abfallende Aktivität der 8-oxoG-Glykosylasefunktion. Die Western-Blot-Analyse ergab allerdings keinen Hinweis auf eine Proteinoxidation von hOGG1. Möglicherweise wird nicht hOGG1 selbst, wohl aber ein anderes, für eine konzertierte Abfolge der einzelnen Reparaturschritte entscheidend notwendiges Protein innerhalb der Zelle durch ROS leicht oxidiert. In jedem Fall bleibt festzustellen, dass Glutathion eine wichtige Aufgabe hinsichtlich einer voll funktionsfähigen Basenexzisionreparatur zuzukommen scheint. Die Ergebnisse unterstreichen die mögliche Bedeutung von oxidativem Stress für die Entstehung von Krebs durch Sonnenlicht, insbesondere durch UVA, da die durch die Strahlung (und eventuell auftretende Entzündung) gebildeten ROS nicht nur DNA-Schäden induzieren, sondern auch ihre Reparatur verhindern können.
Resumo:
Many age-related neurodegenerative disorders such as Alzheimer’s disease, Parkinson’s disease, amyotrophic lateral sclerosis and polyglutamine disorders, including Huntington’s disease, are associated with the aberrant formation of protein aggregates. These protein aggregates and/or their precursors are believed to be causally linked to the pathogenesis of such protein conformation disorders, also referred to as proteinopathies. The accumulation of protein aggregates, frequently under conditions of an age-related increase in oxidative stress, implies the failure of protein quality control and the resulting proteome instability as an upstream event of proteinopathies. As aging is a main risk factor of many proteinopathies, potential alterations of protein quality control pathways that accompany the biological aging process could be a crucial factor for the onset of these disorders.rnrnThe focus of this dissertation lies on age-related alterations of protein quality control mechanisms that are regulated by the co-chaperones of the BAG (Bcl-2-associated athanogene) family. BAG proteins are thought to promote nucleotide exchange on Hsc/Hsp70 and to couple the release of chaperone-bound substrates to distinct down-stream cellular processes. The present study demonstrates that BAG1 and BAG3 are reciprocally regulated during aging leading to an increased BAG3 to BAG1 ratio in cellular models of replicative senescence as well as in neurons of the aging rodent brain. Furthermore, BAG1 and BAG3 were identified as key regulators of protein degradation pathways. BAG1 was found to be essential for effective degradation of polyubiquitinated proteins by the ubiquitin/proteasome system, possibly by promoting Hsc/Hsp70 substrate transfer to the 26S proteasome. In contrast, BAG3 was identified to stimulate the turnover of polyubiquitinated proteins by macroautophagy, a catabolic process mediated by lysosomal hydrolases. BAG3-regulated protein degradation was found to depend on the function of the ubiquitin-receptor protein SQSTM1 which is known to sequester polyubiquitinated proteins for macroautophagic degradation. It could be further demonstrated that SQSTM1 expression is tightly coupled to BAG3 expression and that BAG3 can physically interact with SQSTM1. Moreover, immunofluorescence-based microscopic analyses revealed that BAG3 co-localizes with SQSTM1 in protein sequestration structures suggesting a direct role of BAG3 in substrate delivery to SQSTM1 for macroautophagic degradation. Consistent with these findings, the age-related switch from BAG1 to BAG3 was found to determine that aged cells use the macroautophagic system more intensely for the turnover of polyubiquitinated proteins, in particular of insoluble, aggregated quality control substrates. Finally, in vivo expression analysis of macroautophagy markers in young and old mice as well as analysis of the lysosomal enzymatic activity strongly indicated that the macroautophagy pathway is also recruited in the nervous system during the organismal aging process.rnrnTogether these findings suggest that protein turnover by macroautophagy is gaining importance during the aging process as insoluble quality control substrates are increasingly produced that cannot be degraded by the proteasomal system. For this reason, a switch from the proteasome regulator BAG1 to the macroautophagy stimulator BAG3 occurs during cell aging. Hence, it can be concluded that the BAG3-mediated recruitment of the macroauto-phagy pathway is an important adaptation of the protein quality control system to maintain protein homeostasis in the presence of an enhanced pro-oxidant and aggregation-prone milieu characteristic of aging. Future studies will explore whether an impairment of this adaptation process may contribute to age-related proteinopathies.
Resumo:
Aseptic loosening of metal implants is mainly attributed to the formation of metal degradation products. These include particulate debris and corrosion products, such as metal ions (anodic half-reaction) and ROS (cathodic half-reaction). While numerous clinical studies describe various adverse effects of metal degradation products, detailed knowledge of metal-induced cellular reactions, which might be important for possible therapeutic intervention, is not comprehensive. Since endothelial cells are involved in inflammation and angiogenesis, two processes which are critical for wound healing and integration of metal implants, the effects of different metal alloys and their degradation products on these cells were investigated. Endothelial cells on Ti6Al4V alloy showed signs of oxidative stress, which was similar to the response of endothelial cells to cathodic partial reaction of corrosion induced directly on Ti6Al4V surfaces. Furthermore, oxidative stress on Ti6Al4V alloy reduced the pro-inflammatory stimulation of endothelial cells by TNF-α and LPS. Oxidative stress and other stress-related responses were observed in endothelial cells in contact with Co28Cr6Mo alloy. Importantly, these features could be reduced by coating Co28Cr6Mo with a TiO2 layer, thus favouring the use of such surface modification in the development of medical devices for orthopaedic surgery. The reaction of endothelial cells to Co28Cr6Mo alloy was partially similar to the effects exerted by Co2+, which is known to be released from metal implants. Co2+ also induced ROS formation and DNA damage in endothelial cells. This correlated with p53 and p21 up-regulation, indicating the possibility of cell cycle arrest. Since CoCl2 is used as an hypoxia-mimicking agent, HIF-1α-dependence of cellular responses to Co2+ was studied in comparison to anoxia-induced effects. Although important HIF-1α-dependent genes were identified, a more detailed analysis of microarray data will be required to provide additional information about the mechanisms of Co2+ action. All these reactions of endothelial cells to metal degradation products might play their role in the complex processes taking place in the body following metal device implantation. In the worst case this can lead to aseptic loosening of the implant and requirement for revision surgery. Knowledge of molecular mechanisms of metal-induced responses will hopefully provide the possibility to interfere with undesirable processes at the implant/tissue interface, thus extending the life-time of the implant and the overall success of metal implant applications.
Resumo:
Rhogocytes, also termed ‘pore cells’, exist free in the hemolymph or embedded in the connective tissue of different body parts of molluscs, notably gastropods. These unique cells can be round, elongated or irregularly shaped, and up to 30 μm in diameter. Their hallmark is the so-called slit apparatus: i.e. pocket-like invaginations of the plasma membrane creating extracellular lacunae, bridged by cytoplasmic bars. These bars form distinctive slits of ca. 20 nm width. A slit diaphragm composed of proteins establishes a molecular sieve with holes of 20 x 20 nm. Different functions have been assigned to this special molluscan cell type, notably biosynthesis of the hemolymph respiratory protein hemocyanin. It has further been proposed, but not proven, that in the case of red-blooded snail species rhogocytes might synthesize the hemoglobin. However, the secretion pathway of these hemolymph proteins, and the functional role of the enigmatic slit apparatus remained unclear. Additionally proposed functions of rhogocytes, such as heavy metal detoxification or hemolymph protein degradation, are also not well studied. This work provides more detailed electron microscopical, histological and immunobiochemical information on the structure and function of rhogocytes of the freshwater snails Biomphalaria glabrata and Lymnaea stagnalis. By in situ hybridization on mantle tissues, it proves that B. glabrata rhogocytes synthesize hemoglobin and L. stagnalis rhogocytes synthesize hemocyanin. Hemocyanin is present, in endoplasmic reticulum lacunae and in vesicles, as individual molecules or pseudo-crystalline arrays. The first 3D reconstructions of rhogocytes are provided by means of electron tomography and show unprecedented details of the slit apparatus. A highly dense material in the cytoplasmic bars close to the diaphragmatic slits was shown, by immunogold labeling, to contain actin. By immunofluorescence microscopy, the protein nephrin was localized at the periphery of rhogocytes. The presence of both proteins in the slit apparatus supports the previous hypothesis, hitherto solely based on similarities of the ultrastructure, that the molluscan rhogocytes are phylogenetically related to mammalian podocytes and insect nephrocytes. A possible secretion pathway of respiratory proteins that includes a transfer mechanism of vesicles through the diaphragmatic slits is proposed and discussed. We also studied, by electron microscopy, the reaction of rhogocytes in situ to two forms of animal stress: deprivation of food and cadmium contamination of the tank water. Significant cellular reactions to both stressors were observed and documented. Notably, the slit apparatus surface and the number of electron-dense cytoplasmic vesicles increased in response to cadmium stress. Food deprivation led to an increase in hemocyanin production. These observations are also discussed in the framework of using such animals as potential environmental biomarkers.