97 resultados para DICARBOXYLATES FUMARATE


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E. coli ist in der Lage unter aeroben sowie anaeroben Bedingungen C4-Dicarbonsäuren zur Energiekonservierung zu nutzen. Das DcuS/DcuR-Zweikomponentensystem detektiert diese und reguliert die Gene für den C4-Dicarboxylat-Transport und Metabolismus. Dabei hängt die Sensitivität der Sensorkinase DcuS für C4-Dicarbonsäuren von der Anwesenheit des aeroben Symporters DctA oder des anaeroben Antiporters DcuB ab. Diese bifunktionalen Transporter bilden mit DcuS über direkte Protein-Protein-Wechselwirkungen Sensoreinheiten. In dieser Arbeit wurden die Funktionen von DctA und DcuS im DctA/DcuS-Sensorkomplex analysiert. Mit DctA(S380D) wurde eine Variante des Transporters identifiziert, in der die regulatorische Eigenschaft von der katalytischen Funktion entkoppelt ist. Stämme von E. coli, die den DctA(S380D)/DcuS-Sensorkomplex enthielten, waren in der Lage C4-Dicarbonsäuren wahrzunehmen, obwohl die Transportfunktion von DctA inaktiviert war. Zudem wurden Unterschiede in den Substratspektren von DctA und DcuS festgestellt. Citrat, ein guter Effektor des DctA/DcuS-Sensorkomplexes, wurde durch DctA nicht gebunden oder transportiert. Anhand von Titrationsexperimenten mit variierenden DctA-Mengen wurde außerdem nachgewiesen, dass die Sensitivität von DcuS für seine Effektoren von der DctA-Konzentration abhängig ist. Es konnte gezeigt werden, dass DctA im DctA/DcuS-Sensorkomplex nicht an der Erkennung von C4-Dicarbonsäuren beteiligt ist. DcuS stellt die Signaleingangsstelle des Komplexes dar, während DctA durch seine Anwesenheit die Sensorkinase in eine funktionsbereite oder sensitive Form überführt, die auf Effektoren reagieren kann. Darüber hinaus wurde die Rolle der Transmembranhelices TM1 und TM2 von DcuS für die Funktion und Dimerisierung der Sensorkinase untersucht. Durch Sequenzanalysen wurden „SmallxxxSmall“-Motive, deren Relevanz als Dimerisierungsschnittstellen bereits in Transmembranhelices anderer Proteine nachgewiesen wurde, in TM1 sowie TM2 identifiziert. Die Homodimerisierung beider Transmembrandomänen wurde im GALLEX Two-Hybrid System nachgewiesen, wobei die TM2-TM2-Interaktion stärker war. Die Substitution G190A/G194A im SxxxGxxxG-Tandemmotiv von TM2 rief zudem einen deutlichen Funktionsverlust der Sensorkinase hervor. Dieser Aktivitätsverlust korrelierte mit Störungen der Homodimerisierung von TM2(G190A/G194A) sowie DcuS(G190A/G194A) bei bakteriellen Two-Hybrid Messungen im GALLEX- bzw. BACTH-System. Demzufolge agiert Transmembranhelix 2 mit seinem SxxxGxxxG-Sequenzmotiv als wesentliche Homodimerisierungsstelle in DcuS. Die Dimerisierung von DcuS ist essentiell für die Funktion der Histidinkinase. Zusätzlich wurde bei fluoreszenzmikroskopischen Studien durch Koexpression von DcuS bzw. DctA die zelluläre Kolokalisierung von DctA und DcuR mit DcuS sowie DauA mit DctA nachgewiesen. Die DctA/DcuS-Sensoreinheit kann demnach zum DauA/DctA/DcuS/DcuR-Komplex erweitert werden.

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Escherichia coli kann unter aeroben und anaeroben Bedingungen mit C4-Dicarboxylaten wachsen, die Regulation des Stoffwechsels erfolgt durch das Zwei-Komponenten-System DcuSR. Die C4-Dicarboxylattransporter DctA (aerob) bzw. DcuB (anaerob) agieren als Co-Regulatoren und bilden gemeinsam mit der Sensor-Histidinkinase DcuS einen Sensorkomplex, in dem DcuS den Sensor darstellt und DctA bzw. DcuB diesen in seine rezeptive Form überführen. DcuS ist membranständig und verknüpft die Bindung von C4-Dicarboxylaten im Periplasma mit der Autophosphorylierung seiner Kinasedomäne im Cytoplasma. Dies stellt den Beginn einer Signalkaskade vom extrazellulären Reiz zum cytoplasmatischen Responseregulator DcuR dar.rnIn dieser Arbeit wurde die intramolekulare Signaltransduktion in DcuS und über die Membran untersucht. Der Fokus lag auf der Funktion der beiden Transmembranhelices TM1 und TM2 und der cytoplasmatischen PAS-Domäne, die die sensorische PASp- mit der effektorischen Kinasedomäne verbinden. Konformationsänderungen dieser Signalweiterleitung wurden durch Cysteinzugänglichkeitsstudien, oxidatives Cystein-Crosslinking und Mutageneseexperimente analysiert. rnTM2 wurde als der Überträger eines transmembranen Signals identifiziert, während TM1 als Membrananker fungiert. Der aktive Signalzustand von TM2 wird unabhängig von der Art der DcuS-Aktivierung (Effektorbindung, Deletion des Co-Regulators DctA oder PASc-ON-Mutationen) eingenommen. Der Signaltransduktion liegt eine Verschiebung von TM2 entlang ihrer Längsachse (Kolbenhub) in Richtung Periplasma zu Grunde. Cystein-Crosslinking offenbarte eine durchgehende Helix aus PASp-α6 und TM2, die im Dimer parallel mit ihrem Pendant verschoben wird. Die Amplitude des Kolbenhubs wurde anhand von Zugänglichkeitsveränderungen, der Lage verankernder Tryptophanreste, Strukturvergleichen und energetischen Berechnungen auf max. 4 - 6 Å festgelegt. Sie ist von der Effektorstärke abhängig und koppelt so die metabolische Bevorzugung einzelner Substrate an das Ausmaß des Kolbenhubs und der Genexpression. Für die cytoplasmatische PAS-Domäne wurde ein Zusammenhang zwischen lokaler Dimerisierung und Kontrolle der Sensorfunktion nachgewiesen. Schwächung der Dimerisierung führt zu einer Aktivierung der Sensorkinase. Es wurde eine hydrophobe Region identifiziert, deren strukturelle Integrität für diese Dimerisierung essentiell ist. Mit N248 wurde ein funktionell bedeutender Rest beschrieben, der auf Grund seiner Lage und seiner Eigenschaft mehrere Sekundärstrukturelemente zu verknüpfen, als Scharnier innerhalb der Domäne an der Umsetzung des Kolbenhubs in eine veränderte Quartärstruktur von PASc beteiligt sein könnte.

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Tenofovir disoproxil fumarate (TDF) has been associated with proximal renal tubulopathy and reduction in estimated glomerular filtration rate (eGFR), without accounting for the tubular secretion of creatinine.

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BACKGROUND: Antiretroviral therapy (ART) containing tenofovir disoproxil fumarate (TDF) and didanosine (ddI) has been associated with poor immune recovery despite virologic success. This effect might be related to ddI toxicity since ddI exposure is substantially increased by TDF. OBJECTIVE: To analyze whether immune recovery during ART with TDF and ddI is ddI-dose dependent. DESIGN AND METHODS: A retrospective longitudinal analysis of immune recovery measured by the CD4 T-cell slope in 614 patients treated with ART containing TDF with or without ddI. Patients were stratified according to the tertiles of their weight-adjusted ddI dose: low dose (< 3.3 mg/kg), intermediate dose (3.3-4.1 mg/kg) and high dose (> 4.1 mg/kg). Cofactors modifying the degree of immune recovery after starting TDF-containing ART were identified by univariable and multivariable linear regression analyses. RESULTS: CD4 T-cell slopes were comparable between patients treated with TDF and a weight-adjusted ddI-dose of < 4.1 mg/kg per day (n = 143) versus TDF-without-ddI (n = 393). In the multivariable model the slopes differed by -13 CD4 T cells/mul per year [95% confidence interval (CI), -42 to 17; P = 0.40]. In contrast, patients treated with TDF and a higher ddI dose (> 4.1 mg/kg per day, n = 78) experienced a significantly impaired immune recovery (-47 CD4 T cells/microl per year; 95% CI, -82 to -12; P = 0.009). The virologic response was comparable between the different treatment groups. CONCLUSIONS: Immune recovery is impaired, when high doses of ddI (> 4.1 mg/kg) are given in combination with TDF. If the dose of ddI is adjusted to less than 4.1 mg/kg per day, immune recovery is similar to other TDF-containing ART regimen.

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BACKGROUND: The human immunodeficiency virus type 1 reverse-transcriptase mutation K65R is a single-point mutation that has become more frequent after increased use of tenofovir disoproxil fumarate (TDF). We aimed to identify predictors for the emergence of K65R, using clinical data and genotypic resistance tests from the Swiss HIV Cohort Study. METHODS: A total of 222 patients with genotypic resistance tests performed while receiving treatment with TDF-containing regimens were stratified by detectability of K65R (K65R group, 42 patients; undetected K65R group, 180 patients). Patient characteristics at start of that treatment were analyzed. RESULTS: In an adjusted logistic regression, TDF treatment with nonnucleoside reverse-transcriptase inhibitors and/or didanosine was associated with the emergence of K65R, whereas the presence of any of the thymidine analogue mutations D67N, K70R, T215F, or K219E/Q was protective. The previously undescribed mutational pattern K65R/G190S/Y181C was observed in 6 of 21 patients treated with efavirenz and TDF. Salvage therapy after TDF treatment was started for 36 patients with K65R and for 118 patients from the wild-type group. Proportions of patients attaining human immunodeficiency virus type 1 loads <50 copies/mL after 24 weeks of continuous treatment were similar for the K65R group (44.1%; 95% confidence interval, 27.2%-62.1%) and the wild-type group (51.9%; 95% confidence interval, 42.0%-61.6%). CONCLUSIONS: In settings where thymidine analogue mutations are less likely to be present, such as at start of first-line therapy or after extended treatment interruptions, combinations of TDF with other K65R-inducing components or with efavirenz or nevirapine may carry an enhanced risk of the emergence of K65R. The finding of a distinct mutational pattern selected by treatment with TDF and efavirenz suggests a potential fitness interaction between K65R and nonnucleoside reverse-transcriptase inhibitor-induced mutations.

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Members of the plant NITRATE TRANSPORTER 1/PEPTIDE TRANSPORTER (NRT1/PTR) family display protein sequence homology with the SLC15/PepT/PTR/POT family of peptide transporters in animals. In comparison to their animal and bacterial counterparts, these plant proteins transport a wide variety of substrates: nitrate, peptides, amino acids, dicarboxylates, glucosinolates, IAA, and ABA. The phylogenetic relationship of the members of the NRT1/PTR family in 31 fully sequenced plant genomes allowed the identification of unambiguous clades, defining eight subfamilies. The phylogenetic tree was used to determine a unified nomenclature of this family named NPF, for NRT1/PTR FAMILY. We propose that the members should be named accordingly: NPFX.Y, where X denotes the subfamily and Y the individual member within the species.

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The global regulator FNR (for fumarate nitrate reduction) controls the transcription of >100 genes whose products facilitate adaptation of Escherichia coli to growth under O2-limiting conditions. Previous Mössbauer studies have shown that anaerobically purified FNR contains a [4Fe-4S]2+ cluster that, on exposure to oxygen, is converted into a [2Fe-2S]2+ cluster, a process that decreases DNA binding by FNR. Using 57Fe Mössbauer spectroscopy of E. coli cells containing overexpressed FNR, we show here that the same cluster conversion also occurs in vivo on exposure to O2. Furthermore, the data show that a significant amount of the [4Fe-4S]2+ cluster is regenerated when the cells are shifted back to an anaerobic environment. The present study also demonstrates that 57Fe Mössbauer spectroscopy can be employed to study the in vivo behavior of (overexpressed) proteins. The use of this technique to study other iron-containing cell components is discussed.

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The recent outbreaks of Escherichia coli 0157-associated food poisoning have focused attention on the virulence determinants of E. coli. Here, it is reported that single base substitutions in the fnr gene encoding the oxygen-responsive transcription regulator FNR (fumarate and nitrate reduction regulator) are sufficient to confer a hemolytic phenotype on E. coli K12, the widely used laboratory strain. The mechanism involves enhancing the expression of a normally dormant hemolysin gene (hlyE) located in the E. coli chromosome. The mutations direct single amino acid substitutions in the activating regions (AR1 and AR3) of FNR that contact RNA polymerase. It is concluded that altering a resident transcription regulator, or acquisition of a competent heterologous regulator, could generate a pool of hemolytic, and therefore more virulent, strains of E. coli in nature.

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The properties of oxaloacetate (OA) transport into mitochondria from potato (Solanum tuberosum) tuber and pea (Pisum sativum) leaves were studied by measuring the uptake of 14C-labeled OA into liposomes with incorporated mitochondrial membrane proteins preloaded with various dicarboxylates or citrate. OA was found to be transported in an obligatory counterexchange with malate, 2-oxoglutarate, succinate, citrate, or aspartate. Phtalonate inhibited all of these countertransports. OA-malate countertransport was inhibited by 4,4′-dithiocyanostilbene-2,2′-disulfonate and pyridoxal phosphate, and also by p-chloromercuribenzene sulfonate and mersalyl, indicating that a lysine and a cysteine residue of the translocator protein are involved in the transport. From these and other inhibition studies, we concluded that plant mitochondria contain an OA translocator that differs from all other known mitochondrial translocators. Major functions of this translocator are the export of reducing equivalents from the mitochondria via the malate-OA shuttle and the export of citrate via the citrate-OA shuttle. In the cytosol, citrate can then be converted either into 2-oxoglutarate for use as a carbon skeleton for nitrate assimilation or into acetyl-coenzyme A for use as a precursor for fatty acid elongation or isoprenoid biosynthesis.

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In the facultative anaerobe Escherichia coli, the transcription factor FNR (fumarate nitrate reduction) regulates gene expression in response to oxygen deprivation. To investigate how the activity of FNR is regulated by oxygen availability, two mutant proteins, DA154 and LH28-DA154, which have enhanced in vivo activity in the presence of oxygen, were purified and compared. Unlike other previously examined FNR preparations, the absorption spectrum of LH28-DA154 had two maxima at 324 nm and 419 nm, typical of iron-sulfur (Fe-S)-containing proteins. Consistent with these data, metal analysis showed that only the LH28-DA154 protein contained a significant amount of iron and acid-labile sulfide, and, by low temperature EPR spectroscopy, a signal typical of a [3Fe-4S]+ cluster was detected. The LH28-DA154 protein that contained the Fe-S cluster also contained a higher proportion of dimers and had a 3- to 4-fold higher apparent affinity for the target DNA than the DA154 protein. In agreement with this, we found that when the LH28-DA154 protein was treated with an iron chelator (alpha,alpha'-dipyridyl), it lost its characteristic absorption and the apparent affinity for DNA was reduced 6-fold. However, increased DNA binding and the characteristic absorption spectrum could be restored by in vitro reconstitution of the Fe-S center. DNA binding of the LH28-DA154 protein was also affected by the redox state of the Fe-S center, since protein exposed to oxygen bound 1/10th as much DNA as the protein reduced anaerobically with dithionite. The observation that DNA binding is enhanced when the Fe-S center is reduced indicates that the redox state of the Fe-S center affects the DNA-binding activity of this protein and suggests a possible mechanism for regulation of the wild-type protein.

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Kinetics of 1,3-dipolar cycloaddition involving azomethine ylides, generated from thermal [1,2]-prototropy of the corresponding imino ester, employing differential scanning calorimetry (DSC), is surveyed. Glycine and phenylalanine derived imino esters have different behavior. The first one prefers reacting with itself at 75 ºC, rather than with the dipolarophile. However, the α-substituted imino ester gives the cycloadduct at higher temperatures. The thermal dynamic analysis by 1H NMR of the neat reaction mixture of the glycine derivative reveals the presence of signals corresponding to the dipole in very small proportion. The non-isothermal and isothermal DSC curves of the cycloaddition of phenylalaninate and diisobutyl fumarate are obtained from freshly prepared samples. The application of known kinetic models and mathematical multiple non-linear regressions (NLR) allow to determine and to compare Ea, lnA, reaction orders, and reaction enthalpy. Finally a rate equation for each different temperature can be established for this particular thermal cycloaddition.

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The thermal multicomponent 1,3-dipolar cycloaddition (1,3-DC) of diethyl aminomalonate or α-amino esters (derived from glycine, alanine, phenylalanine, and phenylglycine) with ethyl glyoxylate and the corresponding dipolarophile such as maleimides, methyl acrylate, methyl fumarate, (E)-1,2-bis(phenylsulfonyl)ethylene, and electron deficient alkynes allows the diastereoselective synthesis of new polysubstituted pyrrolidine derivatives. Microwave-assisted heating processes give better results than conventional heating ones, affording endo-cycloadducts as major stereoisomers. In general, 2,5-cis-cycloadducts are preferentially formed according to the previous formation of the W-shaped dipole. Only in the 1,3-DC of the disulfone with phenylglycine and ethyl glyoxylate the corresponding exo-trans-cycloadduct was isolated. The compound endo-cis-4b, derived from phenylalanine, ethyl glyoxylate and N-benzylmaleimide, has been further transformed into a very complex diazabicyclo[2.2.1]octane skeleton with potential biological activity.

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Trabalho Final do Curso de Mestrado Integrado em Medicina, Faculdade de Medicina, Universidade de Lisboa, 2014