3 resultados para LIVING CELLS

em Repositório Institucional da Universidade de Aveiro - Portugal


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The main scope of this work was to evaluate the metabolic effects of anticancer agents (three conventional and one new) in osteosarcoma (OS) cells and osteoblasts, by measuring alterations in the metabolic profile of cells by nuclear magnetic resonance (NMR) spectroscopy metabolomics. Chapter 1 gives a theoretical framework of this work, beginning with the main metabolic characteristics that globally describe cancer as well as the families and mechanisms of action of drugs used in chemotherapy. The drugs used nowadays to treat OS are also presented, together with the Palladium(II) complex with spermine, Pd2Spm, potentially active against cancer. Then, the global strategy for cell metabolomics is explained and the state of the art of metabolomic studies that analyze the effect of anticancer agents in cells is presented. In Chapter 2, the fundamentals of the analytical techniques used in this work, namely for biological assays, NMR spectroscopy and multivariate and statistical analysis of the results are described. A detailed description of the experimental procedures adopted throughout this work is given in Chapter 3. The biological and analytical reproducibility of the metabolic profile of MG-63 cells by high resolution magic angle spinning (HRMAS) NMR is evaluated in Chapter 4. The metabolic impact of several factors (cellular integrity, spinning rate, temperature, time and acquisition parameters) on the 1H HRMAS NMR spectral profile and quality is analysed, enabling the definition of the best acquisition parameters for further experiments. The metabolic consequences of increasing number of passages in MG-63 cells as well as the duration of storage are also investigated. Chapter 5 describes the metabolic impact of drugs conventionally used in OS chemotherapy, through NMR metabolomics studies of lysed cells and aqueous extracts analysis. The results show that MG-63 cells treated with cisplatin (cDDP) undergo a strong up-regulation of lipid contents, alterations in phospholipid constituents (choline compounds) and biomarkers of DNA degradation, all associated with cell death by apoptosis. Cells exposed to doxorubicin (DOX) or methotrexate (MTX) showed much slighter metabolic changes, without any relevant alteration in lipid contents. However, metabolic changes associated with altered Krebs cycle, oxidative stress and nucleotides metabolism were detected and were tentatively interpreted at the light of the known mechanisms of action of these drugs. The metabolic impact of the exposure of MG-63 cells and osteoblasts to cDDP and the Pd2Spm complex is described in Chapter 6. Results show that, despite the ability of the two agents to bind DNA, the metabolic consequences that arise from exposure to them are distinct, namely in what concerns to variation in lipid contents (absent for Pd2Spm). Apoptosis detection assays showed that, differently from what was seen for MG-63 cells treated with cDDP, the decreased number of living cells upon exposure to Pd2Spm was not due to cell death by apoptosis or necrosis. Moreover, the latter agent induces more marked alterations in osteoblasts than in cancer cells, while the opposite seemed to occur upon cDDP exposure. Nevertheless, the results from MG-63 cells exposure to combination regimens with cDDP- or Pd2Spm-based cocktails, described in Chapter 7, revealed that, in combination, the two agents induce similar metabolic responses, arising from synergy mechanisms between the tested drugs. Finally, the main conclusions of this thesis are summarized in Chapter 8, and future perspectives in the light of this work are presented.

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In the past few years a new generation of multifunctional nanoparticles (NPs) has been proposed for biomedical applications, whose structure is more complex than the structure of their predecessor monofunctional counterparts. The development of these novel NPs aims at enabling or improving the performance in imaging, diagnosis and therapeutic applications. The structure of such NPs comprises several components exhibiting various functionalities that enable the nanoparticles to perform multiple tasks simultaneously, such as active targeting of certain cells or compartmentalization, imaging and delivery of active drugs. This thesis presents two types of bimodal bio-imaging probes and describes their physical and chemical properties, namely their texture, structure, and 1H dynamics and relaxometry, in order to evaluate their potential as MRI contrast agents. The photoluminescence properties of these probes are studied, aiming at assessing their interest as optical contrast agents. These materials combine the properties of the trivalent lanthanide (Ln3+) complexes and nanoparticles, offering an excellent solution for bimodal imaging. The designed T1- type contrast agent are SiO2@APS/DTPA:Gd:Ln or SiO2@APS/PMN:Gd:Ln (Ln= Eu or Tb) systems, bearing the active magnetic center (Gd3+) and the optically-active ions (Eu3+ and Tb3+) on the surface of silica NPs. Concerning the relaxometry properties, moderate r1 increases and significant r2 increases are observed in the NPs presence, especially at high magnetic fields, due to susceptibility effects on r2. The Eu3+ ions reside in a single low-symmetry site, and the photoluminescence emission is not influenced by the simultaneous presence of Gd3+ and Eu3+. The presence of Tb3+, rather than Eu3+ ion, further increases r1 but decreases r2. The uptake of these NPs by living cells is fast and results in an intensity increase in the T1-weighted MRI images. The optical features of the NPs in cellular pellets are also studied and confirm the potential of these new nanoprobes as bimodal imaging agents. This thesis further reports on a T2 contrast agent consisting of core-shell NPs with a silica shell surrounding an iron oxide core. The thickness of this silica shell has a significant impact on the r2 and r2* relaxivities, and a tentative model is proposed to explain this finding. The cell viability and the mitochondrial dehydrogenase expression given by the microglial cells are also evaluated.

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A cavidade oral é um habitat favorável ao desenvolvimento de microrganismos, alguns dos quais podem causar doenças, sendo Enterococcus faecalis uma bactéria frequentemente encontrada em biofilmes instalados em diferentes nichos da cavidade oral. Este trabalho teve como objetivo testar a aplicabilidade da inativação fotodinâmica (PDI), usando porfirinas como fotossensibilizadores, como estratégia de controlo de biofilmes da cavidade oral, tomando E. faecalis como microrganismo modelo. Como fotossensibilizadores, foram testadas as porfirinas catiónicas Tetra-Py+-Me, Tri-Py+-Me-PF, PCat 2, PCat 3, PCat 4 e o corante azul de toluidina O (TBO), incluído como fotossensibilizador de referência. Os biofilmes de E. faecalis foram irradiados com luz branca (270 J.cm-2) a uma intensidade de 150 mW.cm-2, na presença de até 50 µM de porfirina ou até 20 µM de TBO. A cinética de inativação foi caracterizada pela variação da concentração de células viáveis ao longo da experiência. Foi também testada a inativação de células na forma livre, em condições equivalentes. Os biofilmes de E. faecalis mostraram-se muito resistentes à PDI com qualquer dos PS testados, não tendo sido conseguidos fatores de inativação superiores a 2 log com a concentração máxima de PS (50 µM) e a dose máxima de luz (270 J.cm-2). Na forma livre as células foram inativadas até ao limite de quantificação com concentrações de PS de 0,5 µM e doses de luz até 108 J.cm-2, com uma intensidade de 10 mW.cm-2. No entanto, a eficiência de ligação dos PS às células livres não foi maior do que aos biofilmes. Embora os fatores de inativação obtidos não permitam ainda considerar que a PDI com os compostos testados seja uma abordagem antimicrobiana eficiente contra biofilmes de E. faecalis, o facto de se confirmar uma relação entre as propriedades químicas e físicas do PS e a sua eficiência, bem como os resultados muito promissores obtidos com uma das famílias de porfirinas testadas apenas em células livres, justifica a prossecução do desenvolvimento de novos PS para o controle de biofilmes bacterianos na cavidade oral.