951 resultados para RNA interference (RNAi)


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Die humane induzierbare NO-Synthase (iNOS) spielt bei zahlreichen Erkrankungen wie Asthma, Krebs und der rheumatoiden Arthritis eine entscheidende Rolle. Durch Fehlregulation der iNOS-Expression kommt es häufig zu massiven Gewebeschädigungen. Aus diesem Grund ist es wichtig die Mechanismen der Genregulation der iNOS-Expression zu verstehen. Bei Affinitätschromatographie-Analysen wurde das zytosolische PolyA-bindende Protein (PABP) als direkter Interaktionspartner der 3´UTR der humanen iNOS identifiziert. Weitere Bindungsanalysen konnten eine spezifische Bindestelle für PABP in der 5´UTR und zwei Bindestellen im AU-reichen Bereich der 3´UTR der humanen iNOS nachweisen. Eine siRNA-mediierte Herabregulation von PABP mit Hilfe der stabilen Expression spezifischer siRNAs in DLD-1 Zellen (siPABP Zellen) zeigte eine signifikant verringerte Expression der humanen iNOS und damit einhergehend eine verringerte NO-Produktion nach Zytokinstimulation. Promotoranalysen zeigten keine Veränderung der Induzierbarkeit des humanen 16 kb iNOS-Promotors in siPABP Zellen. RNA-Stabilitätsanalysen zeigten einen verstärkten Abbau der iNOS-mRNA in diesen Zellen, so dass davon auszugehen ist, dass die Regulation der humanen iNOS über die mRNA-Stabilität erfolgt. Reportergen-Analysen mit Plasmiden, welche die 5’ und/oder 3’UTR Sequenzen der humanen iNOS mit den identifizierten PABP-Bindestellen oder Mutationen in diesen Bindestellen enthielten, zeigten, dass PABP die iNOS-mRNA über die 5´UTR stabilisiert und anscheinend über die 3´UTR einen destabilisierenden Effekt auf die mRNA ausübt. Ebenfalls scheint PABP über die 3’UTR dieTranslation der iNOS mRNA zu hemmen. Die Ergebnisse dieser Arbeit zeigen, dass PABP, über seine allgemeinen Funktionen hinaus, eine spezifische Rolle in der Regulation der Expression der humanen iNOS einnimmt.rnDie rheumatoide Arthritis (RA) ist eine chronisch entzündliche Autoimmunerkrankung, welche überwiegend die peripheren Gelenke der Hände und Füße betrifft. Die aktuellen Therapiemöglichkeiten sind immer noch mit einer Vielzahl von Nebenwirkungen behaftet und führen nicht zur vollständigen Remission der Erkrankung, so dass die Entwicklung neuer Medikamente unerlässlich ist. In dieser Arbeit wurden die antiinflammatorischen Substanzen Gallielalacton (Gal) und Oxacyclododecindion (Oxa) im Mausmodell der kollagen-induzierten Arthritis (CIA) getestet. Leider waren beide Substanzen nicht in der Lage die Symptome der CIA zu vermindern, obwohl beide im Modell der LPS-induzierten akuten Entzündung die Expression proinflammatorischer Mediatoren senken konnten. Die Substanz S-Curvularin (SC) hat sich im CIA-Modell bereits bewährt und wurde in dieser Arbeit weiter untersucht. SC war in der Lage die Expression knorpel- und knochendestruktiver Markergene signifikant zu verrindern. rnIn der vorliegenden Arbeit wurden neue microRNAs identifiziert, die in der Pathogenese der CIA eine Dysregulation zeigen. Die Expression dieser microRNAs wurde von SC wieder auf das Normalniveau gebracht, so dass SC eine vielversprechende Substanz in der Therapie chronisch inflammatorische Erkrangungen sein könnte. Die neu identifizierten CIA-relevanten microRNAs könnten als neueRA-Marker oder als Zielstrukturen für neue Medikamente dienen.rn

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Die mittlere Überlebenszeit nach Erkennung eines Glioblastoms ohne Behandlung liegt bei 3 Monaten und kann durch die Behandlung mit Temozolomid (TMZ) auf etwa 15 Monate gesteigert werden. Neben TMZ sind die chlorethylierenden Nitrosoharnstoffe die meistversprechendsten und am häufigsten eingesetzten Chemotherapeutika in der Gliomtherapie. Hier liegt die mittlere Überlebenszeit bei 17,3 Monaten. Um die Therapie des Glioblastoms noch effektiver zu gestalten und Resistenzen zu begegnen, werden unterschiedlichste Ansätze untersucht. Eine zentrale Rolle spielen hierbei das activator protein 1 (AP-1) und die mitogen aktivierten Proteinkinasen (MAPK), deren Funktion in bisherigen Arbeiten noch unzureichend beleuchtet wurde.rnBesonders mit der Rolle des AP-1-bildenden Proteins FRA-1 in der Therapie des Glioblastoms haben sich bisher nur wenige Arbeiten beschäftigt, weshalb im ersten Teil der vorliegenden Arbeit dessen Funktion in der Regulation der Chemosensitivität gegenüber dem chlorethylierenden Agenz ACNU genauer untersucht wurde. Es konnte gezeigt werden, dass die FRA 1-Expression durch Behandlung mit ACNU induziert wird. Die Induktion erfolgte über die beiden MAPKs ERK1/2 und p38K. JNK hatte keinen Einfluss auf die Induktion. Durch die Herunterregulation der FRA-1-Expression mit Hilfe von siRNA und eines shRNA exprimierenden Plasmids kam es zu einer signifikanten Sensitivierung gegenüber ACNU. Dabei konnte gezeigt werden, dass die Herunterregulation der FRA-1-Expression in einer verminderten AP 1-Bildung, bedingt durch eine reduzierte Menge an FRA-1 im AP-1-Komplex resultiert. Die Sensitivierung gegenüber ACNU ist weder durch eine Veränderung in der DNA-Reparatur, noch in der Modulation der FAS-Ligand- bzw. FAS-Rezeptor-Expression bedingt. Auch die hier untersuchten BCL 2-Familienmitglieder wiesen keine Unterschiede in der Expression durch Modulation der FRA 1-Expression auf. Allerdings kam es durch die verminderte FRA-1-Expression zu einer Reduktion der Zellzahl in der G2/M-Phase nach Behandlung mit ACNU. Diese ging einher mit einer reduzierten Menge an phosphoryliertem und unphosphoryliertem CHK1, weshalb davon auszugehen ist, dass FRA 1 nach ACNU-Behandlung in Gliomzellen vor der Apoptose schützt, indem es modulierend auf die Zellzykluskontrolle einwirkt.rnIm zweiten Teil dieser Arbeit wurde die Regulation der apoptotischen Antwort nach Behandlung mit ACNU und TMZ genauer beleuchtet, wobei ein spezielles Augen¬merk auf AP 1 und die MAPKs gelegt wurde. Hier konnte gezeigt werden, dass die Apoptose nach Behandlung mit ACNU bzw. TMZ sowohl durch Spaltung von Pro-Caspase 8, als auch Pro-Caspase 9 eingeleitet wird. Dabei akkumulierte in beiden Fällen p53 vermehrt im Zellkern. Eine Inhibierung der transkriptionellen Aktivität von p53 führte nach ACNU-Behandlung zu einer Sensitivierung der Zellen, nach TMZ-Behandlung kam es zu einem leichten Anstieg in der Vitälität. Der FAS-Rezeptor wurde nach ACNU- und nach TMZ-Behandlung aktiviert und auch die DNA-Reparaturproteine DDB2 und XPC wurden in beiden Fällen vermehrt exprimiert. Für die MAPKs JNK und ERK1/2 konnte gezeigt werden, dass diese pro-apoptotisch wirken. Die AP-1-Bildung nach ACNU-Behandlung erfolgte bereits nach 24 h und war von langer Dauer, wohingegen nach TMZ-Behandlung nur eine transiente AP 1-Bildung zu relativ späten Zeitpunkten detektiert werden konnte. Ebenso konnte für das AP-1-Zielgen FAS-Ligand nach ACNU-Behandlung eine relativ schnelle, lang anhaltende Aktivierung detektiert werden, wohingegen nach TMZ-Behandlung zu einem späten Zeitpunkt ein kurzer Anstieg im Signal zu verzeichnen war. In späteren Experimenten konnte gezeigt werden, dass das BCL-2-Familienmitglied BIM eine zentrale Rolle in der Regulation des intrinsischen Apoptosesignalweges nach Behandlung mit ACNU und TMZ spielt. Die hier entstanden Ergebnisse tragen entscheidend zum Verständnis der durch diese beiden Agenzien gesteuerten, apoptotischen Signalwege bei und bieten eine fundierte Grundlage für weitere Untersuchungen.rn

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Mammalian teeth are composed of hydroxyapatite crystals that are embedded in a rich extracellular matrix. This matrix is produced by only two cell types, the mesenchymal odontoblasts and the ectodermal ameloblasts. Ameloblasts secrete the enamel proteins amelogenin, ameloblastin, enamelin and amelotin. Odontoblasts secrete collagen type I and several calcium-binding phosphoproteins including dentin sialophosphoprotein, dentin matrix protein, bone sialoprotein and osteopontin. The latter four proteins have recently been grouped in the family of the SIBLINGs (small integrin-binding ligand, N-linked glycoproteins) because they display similar gene structures and because they contain an RGD tripeptide sequence that binds to integrin receptors and thus mediates cell adhesion. We have prepared all the other tooth-specific proteins in recombinant form and examined whether they might also promote cell adhesion similar to the SIBLINGs. We found that only ameloblastin consistently mediated adhesion of osteoblastic and fibroblastic cells to plastic or titanium surfaces. The activity was dependent on the intact three-dimensional structure of ameloblastin and required de novo protein synthesis of the adhering cells. By deletion analysis and in vitro mutagenesis, the active site could be narrowed down to a sequence of 13 amino acid residues (VPIMDFADPQFPT) derived from exon 7 of the rat ameloblastin gene or exons 7-9 of the human gene. Kinetic studies and RNA interference experiments further demonstrated that this sequence does not directly bind to a cell surface receptor but that it interacts with cellular fibronectin, which in turn binds to integrin receptors. The identification of a fibronectin-binding domain in ameloblastin might permit interesting applications for dental implantology. Implants could be coated with peptides containing the active sequence, which in turn would recruit fibronectin from the patient's blood. The recruited fibronectin should then promote cell adhesion on the implant surface, thereby accelerating osseointegration of the implant.

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Fas-activated serine/threonine phosphoprotein (FAST) is the founding member of the FAST kinase domain-containing protein (FASTKD) family that includes FASTKD1-5. FAST is a sensor of mitochondrial stress that modulates protein translation to promote the survival of cells exposed to adverse conditions. Mutations in FASTKD2 have been linked to a mitochondrial encephalomyopathy that is associated with reduced cytochrome c oxidase activity, an essential component of the mitochondrial electron transport chain. We have confirmed the mitochondrial localization of FASTKD2 and shown that all FASTKD family members are found in mitochondria. Although human and mouse FASTKD1-5 genes are expressed ubiquitously, some of them are most abundantly expressed in mitochondria-enriched tissues. We have found that RNA interference-mediated knockdown of FASTKD3 severely blunts basal and stress-induced mitochondrial oxygen consumption without disrupting the assembly of respiratory chain complexes. Tandem affinity purification reveals that FASTKD3 interacts with components of mitochondrial respiratory and translation machineries. Our results introduce FASTKD3 as an essential component of mitochondrial respiration that may modulate energy balance in cells exposed to adverse conditions by functionally coupling mitochondrial protein synthesis to respiration.

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Trypanosoma brucei membranes consist of all major eukaryotic glycerophospholipid and sphingolipid classes. These are de novo synthesized from precursors obtained either from the host or from catabolised endocytosed lipids. In recent years, substantial progress has been made in the molecular and biochemical characterisation of several of these lipid biosynthetic pathways, using gene knockout or RNA interference strategies or by enzymatic characterization of individual reactions. Together with the completed genome, these studies have highlighted several possible differences between mammalian and trypanosome lipid biosynthesis that could be exploited for the development of drugs against the diseases caused by these parasites.

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myo-Inositol is an essential precursor for the production of inositol phosphates and inositol phospholipids in all eukaryotes. Intracellular myo-inositol is generated by de novo synthesis from glucose 6-phosphate or is provided from the environment via myo-inositol symporters. We show that in Trypanosoma brucei, the causative pathogen of human African sleeping sickness and nagana in domestic animals, myo-inositol is taken up via a specific proton-coupled electrogenic symport and that this transport is essential for parasite survival in culture. Down-regulation of the myo-inositol transporter using RNA interference inhibited uptake of myo-inositol and blocked the synthesis of the myo-inositol-containing phospholipids, phosphatidylinositol and inositol phosphorylceramide; in contrast, it had no effect on glycosylphosphatidylinositol production. This together with the unexpected localization of the myo-inositol transporter in both the plasma membrane and the Golgi demonstrate that metabolism of endogenous and exogenous myo-inositol in T. brucei is strictly segregated.

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In this paper, we investigated whether bcl-xL can be involved in the modulation of the angiogenic phenotype of human tumor cells. Using the ADF human glioblastoma and the M14 melanoma lines, and their derivative bcl-xL-overexpressing clones, we showed that the conditioned medium of bcl-xL transfectants increased in vitro endothelial cell functions, such as proliferation and morphogenesis, and in vivo vessel formation in Matrigel plugs, compared with the conditioned medium of control cells. Moreover, the overexpression of bcl-xL induced an increased expression of the proangiogenic interleukin-8 (CXCL8), both at the protein and mRNA levels, and an enhanced CXCL8 promoter activity. The role of CXCL8 on bcl-xL-induced angiogenesis was validated using CXCL8-neutralizing antibodies, whereas down-regulation of bcl-xL through antisense oligonucleotide or RNA interference strategies confirmed the involvement of bcl-xL on CXCL8 expression. Transient overexpression of bcl-xL led to extend this observation to other tumor cell lines with different origin, such as colon and prostate carcinoma. In conclusion, our results showed that CXCL8 modulation by bcl-xL regulates tumor angiogenesis, and they point to elucidate an additional function of bcl-xL protein.

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Eukaryotes have evolved quality control mechanisms that prevent the expression of genes in which the protein coding potential is crippled by the presence of a premature translation-termination codon (PTC). In addition to nonsense-mediated mRNA decay (NMD), a well documented posttranscriptional consequence of the presence of a PTC in an mRNA, we recently reported the transcriptional silencing of PTC-containing immunoglobulin (Ig) mu and gamma minigenes when they are stably integrated into the genome of HeLa cells. Here we demonstrate that this transcriptional silencing of PTC-containing Ig-mu constructs requires active translation of the cognate mRNA, as it is not observed under conditions where translation of the PTC-containing mRNA is inhibited through an iron-responsive element in the 5'-untranslated region. Furthermore, RNA interference-mediated depletion of the essential NMD factor Upf1 not only abolishes NMD but also reduces the extent of nonsense-mediated transcriptional gene silencing (NMTGS). Collectively, our data indicate that NMTGS and NMD are linked, relying on the same mechanism for PTC recognition, and that the NMTGS pathway branches from the NMD pathway at a step after Upf1 function.

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The translocation of secretory and membrane proteins across the endoplasmic reticulum (ER) membrane is mediated by co-translational (via the signal recognition particle (SRP)) and post-translational mechanisms. In this study, we investigated the relative contributions of these two pathways in trypanosomes. A homologue of SEC71, which functions in the post-translocation chaperone pathway in yeast, was identified and silenced by RNA interference. This factor is essential for parasite viability. In SEC71-silenced cells, signal peptide (SP)-containing proteins traversed the ER, but several were mislocalized, whereas polytopic membrane protein biogenesis was unaffected. Surprisingly trypanosomes can interchangeably utilize two of the pathways to translocate SP-containing proteins except for glycosylphosphatidylinositol-anchored proteins, whose level was reduced in SEC71-silenced cells but not in cells depleted for SRP68, an SRP-binding protein. Entry of SP-containing proteins to the ER was significantly blocked only in cells co-silenced for the two translocation pathways (SEC71 and SRP68). SEC63, a factor essential for both translocation pathways in yeast, was identified and silenced by RNA interference. SEC63 silencing affected entry to the ER of both SP-containing proteins and polytopic membrane proteins, suggesting that, as in yeast, this factor is essential for both translocation pathways in vivo. This study suggests that, unlike bacteria or other eukaryotes, trypanosomes are generally promiscuous in their choice of mechanism for translocating SP-containing proteins to the ER, although the SRP-independent pathway is favored for glycosylphosphatidylinositol-anchored proteins, which are the most abundant surface proteins in these parasites.

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Phosphatidylethanolamine is a major phospholipid class of all eukaryotic cells. It can be synthesized via the CDP-ethanolamine branch of the Kennedy pathway, by decarboxylation of phosphatidylserine, or by base exchange with phosphatidylserine. The contributions of these pathways to total phosphatidylethanolamine synthesis have remained unclear. Although Trypanosoma brucei, the causative agent of human and animal trypanosomiasis, has served as a model organism to elucidate the entire reaction sequence for glycosylphosphatidylinositol biosynthesis, the pathways for the synthesis of the major phospholipid classes have received little attention. We now show that disruption of the CDP-ethanolamine branch of the Kennedy pathway using RNA interference results in dramatic changes in phosphatidylethanolamine, phosphatidylserine, and phosphatidylcholine. By targeting individual enzymes of the pathway, we demonstrate that de novo phosphatidylethanolamine synthesis in T. brucei procyclic forms is strictly dependent on the CDP-ethanolamine route. Interestingly, the last step in the Kennedy pathway can be mediated by two separate activities leading to two distinct pools of phosphatidylethanolamine, consisting of predominantly alk-1-enyl-acyl- or diacyl-type molecular species. In addition, we show that phosphatidylserine in T. brucei procyclic forms is synthesized exclusively by base exchange with phosphatidylethanolamine.

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The mRNA stabilizing factor HuR is involved in the posttranscriptional regulation of many genes, including that coding for cyclooxygenase 2 (COX-2). Employing RNA interference technology and actinomycin D experiments, we demonstrate that in human mesangial cells (hMC) the amplification of cytokine-induced COX-2 by angiotensin II (AngII) occurs via a HuR-mediated increase of mRNA stability. Using COX-2 promoter constructs with different portions of the 3' untranslated region of COX-2, we found that the increase in COX-2 mRNA stability is attributable to a distal class III type of AU-rich element (ARE). Likewise, the RNA immunoprecipitation assay showed AngII-induced binding of HuR to this ARE. Using the RNA pulldown assay, we demonstrate that the AngII-caused HuR assembly with COX-2 mRNA is found in free and cytoskeleton-bound polysomes indicative of an active RNP complex. Mechanistically, the increased HuR binding to COX-2-ARE by AngII is accompanied by increased nucleocytoplasmic HuR shuttling and depends on protein kinase Cdelta (PKCdelta), which physically interacts with nuclear HuR, thereby promoting its phosphorylation. Mapping of phosphorylation sites identified serines 221 and 318 as critical target sites for PKCdelta-triggered HuR phosphorylation and AngII-induced HuR export to the cytoplasm. Posttranslational modification of HuR by PKCdelta represents an important novel mode of HuR activation implied in renal COX-2 regulation.

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The enzyme 11beta-hydroxysteroid dehydrogenase type 1 (11beta-HSD1) catalyzes the conversion of inactive to active glucocorticoids. 11beta-HSD1 plays a crucial role in the pathogenesis of obesity and controls glucocorticoid actions in inflammation. Several studies have demonstrated that TNF-alpha increases 11beta-HSD1 mRNA and activity in various cell models. Here, we demonstrate that mRNA and activity of 11beta-HSD1 is increased in liver tissue from transgenic mice overexpressing TNF-alpha, indicating that this effect also occurs in vivo. To dissect the molecular mechanism of this increase, we investigated basal and TNF-alpha-induced transcription of the 11beta-HSD1 gene (HSD11B1) in HepG2 cells. We found that TNF-alpha acts via p38 MAPK pathway. Transient transfections with variable lengths of human HSD11B1 promoter revealed highest activity with or without TNF-alpha in the proximal promoter region (-180 to +74). Cotransfection with human CCAAT/enhancer binding protein-alpha (C/EBPalpha) and C/EBPbeta-LAP expression vectors activated the HSD11B1 promoter with the strongest effect within the same region. Gel shift and RNA interference assays revealed the involvement of mainly C/EBPalpha, but also C/EBPbeta, in basal and only of C/EBPbeta in the TNF-alpha-induced HSD11B1 expression. Chromatin immunoprecipitation assay confirmed in vivo the increased abundance of C/EBPbeta on the proximal HSD11B1 promoter upon TNF-alpha treatment. In conclusion, C/EBPalpha and C/EBPbeta control basal transcription, and TNF-alpha upregulates 11beta-HSD1, most likely by p38 MAPK-mediated increased binding of C/EBPbeta to the human HSD11B1 promoter. To our knowledge, this is the first study showing involvement of p38 MAPK in the TNF-alpha-mediated 11beta-HSD1 regulation, and that TNF-alpha stimulates enzyme activity in vivo.

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MicroRNAs (miRNA) are negative regulators of gene expression at the posttranscriptional level, which are involved in tumorigenesis. Two miRNAs, miR-15a and miR-16, which are located at chromosome 13q14, have been implicated in cell cycle control and apoptosis, but little information is available about their role in solid tumors. To address this question, we established a protocol to quantify miRNAs from laser capture microdissected tissues. Here, we show that miR-15a/miR-16 are frequently deleted or down-regulated in squamous cell carcinomas and adenocarcinomas of the lung. In these tumors, expression of miR-15a/miR-16 inversely correlates with the expression of cyclin D1. In non-small cell lung cancer (NSCLC) cell lines, cyclins D1, D2, and E1 are directly regulated by physiologic concentrations of miR-15a/miR-16. Consistent with these results, overexpression of these miRNAs induces cell cycle arrest in G(1)-G(0). Interestingly, H2009 cells lacking Rb are resistant to miR-15a/miR-16-induced cell cycle arrest, whereas reintroduction of functional Rb resensitizes these cells to miRNA activity. In contrast, down-regulation of Rb in A549 cells by RNA interference confers resistance to these miRNAs. Thus, cell cycle arrest induced by these miRNAs depends on the expression of Rb, confirming that G(1) cyclins are major targets of miR-15a/miR-16 in NSCLC. Our results indicate that miR-15a/miR-16 are implicated in cell cycle control and likely contribute to the tumorigenesis of NSCLC.

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HAMLET, a complex of partially unfolded alpha-lactalbumin and oleic acid, kills a wide range of tumor cells. Here we propose that HAMLET causes macroautophagy in tumor cells and that this contributes to their death. Cell death was accompanied by mitochondrial damage and a reduction in the level of active mTOR and HAMLET triggered extensive cytoplasmic vacuolization and the formation of double-membrane-enclosed vesicles typical of macroautophagy. In addition, HAMLET caused a change from uniform (LC3-I) to granular (LC3-II) staining in LC3-GFP-transfected cells reflecting LC3 translocation during macroautophagy, and this was blocked by the macroautophagy inhibitor 3-methyladenine. HAMLET also caused accumulation of LC3-II detected by Western blot when lysosomal degradation was inhibited suggesting that HAMLET caused an increase in autophagic flux. To determine if macroautophagy contributed to cell death, we used RNA interference against Beclin-1 and Atg5. Suppression of Beclin-1 and Atg5 improved the survival of HAMLET-treated tumor cells and inhibited the increase in granular LC3-GFP staining. The results show that HAMLET triggers macroautophagy in tumor cells and suggest that macroautophagy contributes to HAMLET-induced tumor cell death.

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BACKGROUND: Human African trypanosomiasis (HAT), a major parasitic disease spread in Africa, urgently needs novel targets and new efficacious chemotherapeutic agents. Recently, we discovered that 4-[5-(4-phenoxyphenyl)-2H-pyrazol-3-yl]morpholine (compound 1) exhibits specific antitrypanosomal activity with an IC(50) of 1.0 microM on Trypanosoma brucei rhodesiense (T. b. rhodesiense), the causative agent of the acute form of HAT. METHODOLOGY/PRINCIPAL FINDINGS: In this work we show adenosine kinase of T. b. rhodesiense (TbrAK), a key enzyme of the parasite purine salvage pathway which is vital for parasite survival, to be the putative intracellular target of compound 1 using a chemical proteomics approach. This finding was confirmed by RNA interference experiments showing that down-regulation of adenosine kinase counteracts compound 1 activity. Further chemical validation demonstrated that compound 1 interacts specifically and tightly with TbrAK with nanomolar affinity, and in vitro activity measurements showed that compound 1 is an enhancer of TbrAK activity. The subsequent kinetic analysis provided strong evidence that the observed hyperactivation of TbrAK is due to the abolishment of the intrinsic substrate-inhibition. CONCLUSIONS/SIGNIFICANCE: The results suggest that TbrAK is the putative target of this compound, and that hyperactivation of TbrAK may represent a novel therapeutic strategy for the development of trypanocides.