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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
1

Identification of LDH-A as a therapeutic target for cancer cell killing via (i) p53.NAD(H)-dependent and (ii) p53-independent pathways

Allison, Simon J., Knight, J.R.P., Granchi, C., Rani, R., Minutolo, F., Milner, J., Phillips, Roger M. January 2014 (has links)
No / Most cancer cells use aerobic glycolysis to fuel their growth. The enzyme lactate dehydrogenase-A (LDH-A) is key to cancer’s glycolytic phenotype, catalysing the regeneration of nicotinamide adenine dinucleotide (NAD+) from reduced nicotinamide adenine dinucleotide (NADH) necessary to sustain glycolysis. As such, LDH-A is a promising target for anticancer therapy. Here we ask if the tumour suppressor p53, a major regulator of cellular metabolism, influences the response of cancer cells to LDH-A suppression. LDH-A knockdown by RNA interference (RNAi) induced cancer cell death in p53 wild-type, mutant and p53-null human cancer cell lines, indicating that endogenous LDH-A promotes cancer cell survival irrespective of cancer cell p53 status. Unexpectedly, however, we uncovered a novel role for p53 in the regulation of cancer cell NAD+ and its reduced form NADH. Thus, LDH-A silencing by RNAi, or its inhibition using a small-molecule inhibitor, resulted in a p53-dependent increase in the cancer cell ratio of NADH:NAD+. This effect was specific for p53+/+ cancer cells and correlated with (i) reduced activity of NAD+-dependent deacetylase sirtuin 1 (SIRT1) and (ii) an increase in acetylated p53, a known target of SIRT1 deacetylation activity. In addition, activation of the redox-sensitive anticancer drug EO9 was enhanced selectively in p53+/+ cancer cells, attributable to increased activity of NAD(P)H-dependent oxidoreductase NQO1 (NAD(P)H quinone oxidoreductase 1). Suppressing LDH-A increased EO9-induced DNA damage in p53+/+ cancer cells, but importantly had no additive effect in non-cancer cells. Our results identify a unique strategy by which the NADH/NAD+ cellular redox status can be modulated in a cancer-specific, p53-dependent manner and we show that this can impact upon the activity of important NAD(H)-dependent enzymes. To summarise, this work indicates two distinct mechanisms by which suppressing LDH-A could potentially be used to kill cancer cells selectively, (i) through induction of apoptosis, irrespective of cancer cell p53 status and (ii) as a part of a combinatorial approach with redox-sensitive anticancer drugs via a novel p53/NAD(H)-dependent mechanism.
2

Caracterização de interações proteína-DNA em tripanossomas. / Characterization of protein-DNA interactions in trypanosomes.

Llanos, Ricardo Pariona 23 April 2014 (has links)
O T. cruzi, é o agente causador da doença de Chagas. O estado redox NAD+/NADH intracelular é fundamental na manutenção do metabolismo celular. A GAPDH apresenta a função de proteção do telômero em mamíferos contra degradação, isto por causa de ligar se ao telômero. Aqui, mostramos que a GAPDH recombinante de T. cruzi (rTcGAPDH) interage com o DNA telomérico. A rTcGAPDH liga ao DNA de simples fita. Mostramos que a GAPDH liga ao DNA telomérico in vivo em células epimastigotas, onde a [NADH] é maior que [NAD+], mas a adição de NAD+ exógeno bloqueia esta interação. Corroborando a hipótese de que o equilíbrio NAD+/NADH determina a interação GAPDH-telômero, vimos que o tripomastigota tem maior [NAD+] intracelular que a [NADH] e a GAPDH não é capaz de ligar se ao DNA telomérico. Além disso, o NADH exógeno resgata a interação GAPDH-telómero nesta fase. É importante o equilíbrio NAD+/NADH desta interação em tripanosomas, sugerindo que a proteção do telômero do parasita pode ser regulada pelo estado metabólico das células. / The T. cruzi, is the causative agent of Chagas disease. The redox state of NAD+/NADH intracellular is critical in the maintenance of cellular metabolism. The GAPDH has the protection function of the telomere in mammals against degradation, because it is connecting to the telomere. Here we show the recombinant GAPDH of T. cruzi (rTcGAPDH) interacts with telomeric DNA. The rTcGAPDH binds to single-stranded DNA. We show GAPDH to bind to telomeric DNA in vivo epimastigotes cells, where [NADH] is greater than [NAD+], but the addition of exogenous NAD+ blocks this interaction. Corroborating the hypothesis that the NAD+/NADH balance determines the GAPDH-telomere interaction, we saw that the trypomastigote has higher [NAD+] that intracellular [NADH] and GAPDH is not able to connect to telomeric DNA. In addition, the exogenous NADH recovers the GAPDH-telomere interaction at this stage. It is important the NAD+/NADH balance this interaction in trypanosomes, suggesting that the protection of the telomere of the parasite can be regulated by the metabolic state of the cells.
3

Caracterização de interações proteína-DNA em tripanossomas. / Characterization of protein-DNA interactions in trypanosomes.

Ricardo Pariona Llanos 23 April 2014 (has links)
O T. cruzi, é o agente causador da doença de Chagas. O estado redox NAD+/NADH intracelular é fundamental na manutenção do metabolismo celular. A GAPDH apresenta a função de proteção do telômero em mamíferos contra degradação, isto por causa de ligar se ao telômero. Aqui, mostramos que a GAPDH recombinante de T. cruzi (rTcGAPDH) interage com o DNA telomérico. A rTcGAPDH liga ao DNA de simples fita. Mostramos que a GAPDH liga ao DNA telomérico in vivo em células epimastigotas, onde a [NADH] é maior que [NAD+], mas a adição de NAD+ exógeno bloqueia esta interação. Corroborando a hipótese de que o equilíbrio NAD+/NADH determina a interação GAPDH-telômero, vimos que o tripomastigota tem maior [NAD+] intracelular que a [NADH] e a GAPDH não é capaz de ligar se ao DNA telomérico. Além disso, o NADH exógeno resgata a interação GAPDH-telómero nesta fase. É importante o equilíbrio NAD+/NADH desta interação em tripanosomas, sugerindo que a proteção do telômero do parasita pode ser regulada pelo estado metabólico das células. / The T. cruzi, is the causative agent of Chagas disease. The redox state of NAD+/NADH intracellular is critical in the maintenance of cellular metabolism. The GAPDH has the protection function of the telomere in mammals against degradation, because it is connecting to the telomere. Here we show the recombinant GAPDH of T. cruzi (rTcGAPDH) interacts with telomeric DNA. The rTcGAPDH binds to single-stranded DNA. We show GAPDH to bind to telomeric DNA in vivo epimastigotes cells, where [NADH] is greater than [NAD+], but the addition of exogenous NAD+ blocks this interaction. Corroborating the hypothesis that the NAD+/NADH balance determines the GAPDH-telomere interaction, we saw that the trypomastigote has higher [NAD+] that intracellular [NADH] and GAPDH is not able to connect to telomeric DNA. In addition, the exogenous NADH recovers the GAPDH-telomere interaction at this stage. It is important the NAD+/NADH balance this interaction in trypanosomes, suggesting that the protection of the telomere of the parasite can be regulated by the metabolic state of the cells.
4

Nouvelles stratégies de co-immobilisation de déhydrogénases, du co-factor NAD+, et de médiateurs redox, au sein de films sol-gel en vue d'applications en bioélectrocatalyse / New strategies for co-immobilization of dehydrogenases, NAD+ cofactor and redox mediators in sol-gel thin films for bioelectrocatalytic applications

Wang, Zhijie 04 October 2011 (has links)
Cette thèse décrit différentes stratégies pour co-immobiliser au sein d'un film sol-gel une déhydrogénase, le cofacteur NAD+/NADH et un système pour régénérer électrochimiquement ce cofacteur. L'immobilisation de la déshydrogénase dans la matrice sol-gel a été obtenue en utilisant un polyélectrolyte positivement chargé comme additif dans le sol de départ. Le film peut être déposé par les procédés d'évaporation ou d'électrogénération, permettant alors la fonctionnalisation d'électrodes d'or macroporeuses. La diaphorase a également pu être co-encapsulée pour la régénération du cofacteur NAD+. L'immobilisation du cofacteur a ensuite été obtenue par couplage chimique du NAD+ avec le groupement époxy du glycidoxypropylsilane avant formation du film. Plusieurs stratégies d'immobilisation du médiateur électrochimique ont alors été étudiées avec succès. Les espèces de type ferrocène ou des complexes d'osmium(III) peuvent être incorporées dans la matrice sol-gel par encapsulation de polymères portant ces médiateurs (Fc-PEI et polymère d'osmium) ou par co-condensation avec un ferrocène fonctionnalisé par un groupement silane. Finalement d'autres stratégies ont été étudiées basées sur la fonctionnalisation de nanotubes de carbone par un traitement micro-onde, par électropolymérisation du vert de méthylène, ou par recouvrement par un polymère de type acrylate portant des complexes d'osmium(III). L'électrogénération d'une couche mince sol-gel servant à immobiliser les protéines et le cofacteur à la surface des nanotubes fonctionnalisés par le polymère d'osmium(III) a alors permis d'observer une réponse électrocatalytique de stabilité remarquable. / In this thesis, the research work was focused on designing functional layers based on silica sol-gel thin films to co-immobilize dehydrogenase, cofactor and electron mediator to get the most highly active systems. Immobilization of dehydrogenase in an active form in a sol-gel matrix was obtained by using a positively-charged polyelectrolyte as additive in the starting sol. The optimal sol can be deposited by evaporation or by electrodeposition and was successfully deposited in macroporous electrodes. The immobilization of the cofactor was investigated by simple entrapment, adsorption to carbon nanotube (CNTs), encapsulation of NAD+ chemically attached to dextran(NAD-dextran), and by in-situ coupling with glycidoxypropyltrimethoxysilane (GPS). The last approach allowed stable immobilization of the cofactor. Several mediators (Fc-PEI, Fc-Silane or Osmium polymer) were successfully co-immobilized with dehydrogenase and cofactor in the sol-gel matrix deposited by drop-coating. However, such co-immobilization did not operate in the electrogenerated sol-gel films. The strategies based on CNTs for mediator immobilization were finally developed. They include (1) micro-wave treatment (MWCNTs-µW), (2) electrochemical deposition of poly(methylene green) (MWCNTs-PMG), and (3) wrapping by osmium(III) polymer (MWCNTs-Os). MWCNTs-Os has been the only system that was successfully combined with sol-gel electrodeposition for co-immobilization of dehydrogenase and cofactor.

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