920 resultados para Covalent Modification


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Activated by elevations in myoplasmic calcium concentration, myosin light chain kinase (skMLCK) phosphorylates the regulatory light chains (RLCs) of fast muscle myosin. This covalent modification potentiates force production, but requires an investment of ATP. Our objective was to investigate the effect of RLC phosphorylation on the contractile economy (mechanical output:metabolic input) of fast twitch skeletal muscle. Extensor digitorum longus muscles isolated from Wildtype and skMLCK-/- mice mounted in vitro (25°C) were subjected to repetitive low-frequency stimulation (10Hz,15s) known to cause activation of skMLCK, and staircase potentiation of force. With a 3-fold increase in RLC phosphate content, Wildtype generated 44% more force than skMLCK-/- muscles over the stimulation period (P = .002), without an accompanied increase in energy cost (P = .449). Overall, the contractile economy of Wildtype muscles, with an intact RLC phosphorylation mechanism, was 73% greater than skMLCK /- muscles (P = .043), demonstrating an important physiological function of skMLCK during repetitive contractile activity.

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L’adaptation des cellules à leur environnement externe repose sur la transduction adéquate de signaux régulés par une pléthore d'événements moléculaires. Parmi ces événements moléculaires, les modifications post-traductionnelles (MPT) de protéines aident à intégrer, à traduire et à organiser de façon spatiotemporelle ces signaux pour que les cellules puissent réagir aux stimuli externes. Parmi les modifications post-traductionnelles, les petites protéines de la famille de l’Ubiquitine (Ublps, Ubiquitin-like proteins) jouent un rôle majeur dans presque toutes les voies de signalisation. Cette thèse rapporte des études fonctionnelles et structurales des interactions covalentes et non covalentes entre SUMO (Small Ubiquitin related MOdifier), un membre de la famille des Ublps, et trois protéines d'échafaudage, TIF1beta, le corépresseur universel des protéines KRAB-multidoigt de zinc, PIAS1, une ligase E3 pour SUMO et PML, un suppresseur de tumeur. La première étude rapporte l'identification et la caractérisation biochimique des sites de SUMOylation de TIF1beta. Nous avons déterminé que la modification covalente de six résidus lysine par SUMO est essentielle à l’activité de répression de la transcription induit par TIF1beta. En outre, nous présentons des évidences indiquant que la SUMOylation de TIF1 exige non seulement sa capacité à homo-oligomériser, mais est aussi positivement régulée par son interaction avec le domaine KRAB des protéines à doigts de zinc. Partant de ce constat, nous postulons que les protéines KRAB-multidoigt de zinc recrutent leur corépresseur TIF1betaà des gènes cibles, mais aussi accentuent son activité répressive grâce à l'augmentation de sa SUMOylation. Notre seconde étude révèle qu’en plus de réprimer la transcription en tant que MPT covalente, SUMO joue aussi un rôle important dans la répression en tant que partenaire non covalent d’interactions protéine-protéine. Nous avons montré que SUMO interagit simultanément avec deux enzymes de la machinerie de SUMOylation, l’unique enzyme de conjugaison E2, UBC9, et la ligase E3 PIAS1 au sein d’un complexe ternaire répresseur. En outre, nous révélons que la formation du complexe ternaire PIAS1:SUMO:UBC9 est modulée par le niveau de phosphorylation de résidus sérine juxtaposés à un motif d’interaction avec SUMO (SIM) dans PIAS1. Ainsi, SUMO agit comme un adaptateur spécifique qui stabilise les interactions UBC9 E2: E3 PIAS1. Partant de ce constat, nous proposons que les enzymes E2 et E3 des autres systèmes Ublps exploitent des mécanismes similaires dans le cadre de leur fonction Enfin, notre troisième étude explore la régulation des interactions non covalentes de SUMO par la phosphorylation. En utilisant une combinaison d'études in vivo et in vitro, nous démontrons que l'interaction entre SUMO1 et PML est régi par la phosphorylation dépendant de CK2 sur quatre résidus sérine de PML. Les structures cristallographiques des complexes PML-SIM:SUMO1 révèlent que les phospho-sérines de PML contactent des résidus de la région basique de SUMO1. Sachant que la kinase CK2 peut être induite par des kinases activables par le stress, ces résultats suggèrent que les interactions non-covalentes avec SUMO sont modulées par le stress cellulaire. Sur la base de cette constatation, nous postulons que des événements analogues affectent des protéines contenant des séquences SIM ciblées par CK2. En résumé, cette étude révèle qu’en plus de son rôle de MPT, SUMO peut fonctionner comme un adaptateur permettant des interactions spécifiques entre protéines tel que pour les enzymes E3 et E2.

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Many different reagents and methodologies have been utilised for the modification of synthetic and biological macromolecular systems. In addition, an area of intense research at present is the construction of hybrid biosynthetic polymers, comprised of biologically active species immobilised or complexed with synthetic polymers. One of the most useful and widely applicable techniques available for functionalisation of macromolecular systems involves indiscriminate carbene insertion processes. The highly reactive and non-specific nature of carbenes has enabled a multitude of macromolecular structures to be functionalised without the need for specialised reagents or additives. The use of diazirines as stable carbene precursors has increased dramatically over the past twenty years and these reagents are fast becoming the most popular photophors for photoaffinity labelling and biological applications in which covalent modification of macromolecular structures is the basis to understanding structure-activity relationships. This review reports the synthesis and application of a diverse range of diazirines in macromolecular systems.

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Lipid peroxidation produces a large number of reactive aldehydes as secondary products. We have previously shown that the reaction of cytochrome c with trans,trans-2, 4-decadienal (DDE), an aldehyde generated as a product of lipid peroxidation in cell membranes, results in the formation of adducts. Mass spectrometry analysis indicated that His-33, Lys-39, Lys-72 and Lys-100 in cytochrome c were modified by DDE. In the present work, we investigated the effect of DDE on isolated rat liver mitochondria. DDE (162 mu M) treatment increases the rate of mitochondrial oxygen consumption. Extensive mitochondrial swelling upon treatment with DDE (900 nM-162 mu M) was observed by light scattering and transmission electron microscopy experiments. DDE-induced loss of inner mitochondrial membrane potentials, monitored by safranin O fluorescence, was also observed. Furthermore, DDE-treated mitochondria showed an increase in lipid peroxidation, as monitored by MDA formation. These results suggest that reactive aldehydes promote mitochondrial dysfunction.

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This work deals with the covalent functionalization of single-wall carbon nanotubes (SWNTs) with phenosafranine (PS) and Nile Blue (NB) dyes. These dyes can act as photosensitizers in energy and electron transfer reactions, with a potential to be applied in photodynamic therapy. Several changes in the characteristic Raman vibrational features of the dyes suggest that a covalent modification of the nanotubes with the organic dyes occurs. Specifically, the vibrational modes assigned to the NH(2) moieties of the dyes are seen to disappear in the SWNT-dye nanocomposites, corroborating the bond formation between amine groups in the dyes and carboxyl groups in the oxidized nanotubes. The X-ray absorption (XANES) data also show, that the intense band at 398.6 eV attributed to 1s -> 2p pi* transition of the nitrogen of the aromatic PS ring, is shifted due to the bonding with the carbonic structure of the SWNTs. The cytotoxicity data of dyes-modified SWNT composites in the presence and absence of light shows that the SWNT-NB (4 mu g/mL) composite presents a good photodynamic effect, namely a low toxicity in the dark, higher toxicity in the presence of light and also a reduced dye photobleaching by auto-oxidation. (C) 2010 Elsevier B.V. All rights reserved.

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Pyrolytic graphite electrodes (PGE) were modified into dopamine solutions using phosphate buffer solutions, pH 10 and 6.5, as supporting electrolyte. The modification process involved a previous anodization of the working electrode at +1. 5 V into 0. 1 mol-L-1 NaOH followed by other anodization step, in the same experimental conditions, into dopamine (DA) solutions. pH of the supporting electrolyte performed an important role in the production of a superficial melanin polymeric film, which permitted the simultaneous detection of ascorbic acid (AA), (DA) and uric acid (UA), Delta EAA-DA = 222 mV-, Delta EAA-UA = 360 mV and Delta EDA-UA=138mV, avoiding the superficial poisoning effects. The calculated detection limits were: 1.4 x 10(-6) mol L-1 for uric acid, 1.3x10-(5) molL(-1) for ascorbic acid and 1.1 X 10(-7) mol L-1 for dopamine, with sensitivities of (7.7 +/- 0.5), (0.061 +/- 0.001) and (9.5 +/- 0.05)A mol(-1) cm(-2), respectively, with no mutual interference. Uric acid was determined in urine, blood and serum human samples after dilution in phosphate buffer and no additional sample pre-treatment was necessary. The concentration of uric acid in urine was higher than the values found in blood and serum and the recovery tests (92-102%) indicated that no matrix effects were observed. (C) 2008 Elsevier B.V. All rights reserved.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Der Fokus dieser Arbeit lag in der Synthese von funktionellen HPMA-Copolymeren, sowohl für die Darstellung definierter Polymer-Antikörper Konjugate, als auch zum effizienten Transport von p-DNA in Polymer-DNA Komplexen (Polyplexe). Nach ausführlicher physikalischer und chemischer Charakterisierung wurden gezielt ihre Wechselwirkungen mit (Immun)-Zellen untersucht und so ihr Potential für die Verwendung in der Tumor-Immuntherapie aufgezeigt.rnFür das gezielte Ansprechen von bestimmten Immunzellen mit Schlüsselfunktionen besitzen monoklonale Antikörper ein großes Potential. Im Rahmen dieser Arbeit gelang die Darstellung definierter Polymer-Antikörper Konjugate über das gezielte Einführen von Thiol-Gruppen an Antikörper und die Synthese eng verteilter, Maleinimid funktionalisierter HPMA-Copolymere. Diese sehr gut definierten, funktionellen HPMA-Copolymere konnten über die Kombination der RAFT-Polymerisation und Reaktivester Polymeren gewonnen werden. Unterschiedliche Polymerstrukturen ermöglichten die Synthese verschiedener Arten von Polymer-Antikörper Konjugaten. Speziell die Untersuchung der verschiedenen Konjugate aus dem für dendritische Zellen spezifischen aDEC-205 Antikörper an Immunzellen aus dem Knochenmark von Mäusen lieferten wertvolle Erkenntnisse über Struktur-Wirkungsbeziehungen und zeigten die Möglichkeit der gezielten Adressierung von Immunzellen mit Schlüsselfunktionen bei der Aktivierung einer (Tumor)-Immunabwehr am Beispiel von dendritischen Zellen. Gleichzeitig erlaubt der Syntheseweg sowohl die gleichzeitige und kontrollierte Einführung auch komplexerer Stimuli am Polymerrückgrat als auch die Verwendung verschiedener Antikörper.rnÜber die Kombination der RAFT-Polymerisation und polymeren Reaktivestern wurde ebenso die Synthese von neuartigen kationisch-hydrophilen Polylysin-b-poly(HPMA) Blockcopolymeren als effiziente Transporter für den komplexen aber wirkungsvollen Wirkstoff p-DNA in Form von Polymer-DNA Komplexen (Polyplexe) realisiert. Da diese Polyplexe gleichzeitig eine Abschirmung der sensitiven p-DNA über eine poly(HPMA)-Korona vermitteln, stellen sie allgemein ein geeignetes Transportmittel für einen therapeutischen Transport von p-DNA dar. Diese Polyplexe sind in der Lage, humane Nierenkarzinomzellen (HEK-293T Zelllinie) zu transfizieren ohne signifikante Zytotoxizität zu zeigen. Darüber hinaus gelang eine große Steigerung der Transfektionseffizienz, ohne eine gleichzeitige Erhöhung der Zytotoxizität, durch die gezielte Einführung von Redox-stimuliresponsiven Disulfid-Gruppen zwischen den einzelnen Blöcken. Diese Polyplexe stellen einen polymeren Vektor zur transkriptionellen Regulierung von Zellen dar, zum Beispiel für die transkriptionelle Aktivierung von dendritischen Zellen, durch die Verwendung speziell dafür modifizierter p-DNA-Konstrukte. rnDurch die Verknüpfung einer ortsspezifischen enzymatischen Kopplung und kupferfreien Cyclooctin-Azid Kupplung gelang die kontrollierte und kovalente Modifizierung von polymeren Mizellen mit aDEC-205 Antikörpern an der hydrophilen poly(HPMA)-Korona. Diese Methode bietet die Möglichkeit der Anbindung der effektiven aber anspruchsvollen Erkennungsstruktur Antikörper an komplexere Polymerstrukturen und andere nano-partikulären Systeme, zum Beispiel an die zuvor genannten Polyplexe, um eine zellspezifische und verbesserte Aufnahme und Prozessierung zu erreichen.rnDiese Studien zeigen somit, sowohl die Möglichkeit der selektiven Addressierung von Immunzellen mit Schlüsselfunktionen wie dendritischer Zellen, als auch die Möglichkeit der transkriptionellen Regulation von Zellen durch Polyplexe. Sie stellen somit einen ersten Schritt zur Herstellung funktioneller, nanopartikulärer Systeme zur Verwendung in der Tumor-Immuntherapie dar. rn

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Protozoan parasites are one of the major causes of diseases worldwide. The vector transmitted parasites exhibit complex life cycles involving interactions between humans, protozoa, and arthropods. In order to adapt themselves to the changing microenvironments, they have to undergo complex morphological and metabolic changes. These changes can be brought about by expressing a new pool of proteins in the cell or by modifying the existing repertoire of proteins via posttranslational modifications (PTMs). PTMs involve covalent modification and processing of proteins thereby modulating their functions. Some of these changes may involve PTMs of parasite proteins to help the parasite survive within the host and the vector. Out of many PTMs known, three are unique since they occur only on single proteins: ethanolamine phosphoglycerol (EPG) glutamate, hypusine and diphthamide. These modifications occur on eukaryotic elongation factor 1A (eEF1A), eukaryotic initiation factor 5A (eIF5A) and eukaryotic elongation factor 2 (eEF2), respectively. Interestingly, the proteins carrying these unique modifications are all involved in the elongation steps of translation. Here we review these unique PTMs, which are well conserved in protozoan parasites, and discuss their roles in viability and pathogenesis of parasites. Characterization of these modifications and studying their roles in physiology as well as pathogenesis will provide new insights in parasite biology, which may also help in developing new therapeutic interventions.

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$\rm Ca\sp{2+}$-dependent exposure of an N-terminal hydrophobic region in troponin C (TnC) is thought to be important for the regulation of contraction in striated muscle. To study these conformational changes in cardiac troponin (cTnC), the $\varepsilon$C and $\varepsilon$H chemical shifts for all 10 Met residues in cTnC were sequence-specific assigned on NMR spectra using a combination of two dimensional NMR techniques and site-directed mutagenesis. The assigned methyl-Met chemical shifts were used as structural markers to monitor conformational changes induced by $\rm Ca\sp{2+}.$ The results showed that binding of $\rm Ca\sp{2+}$ to the regulatory site in the N-domain induced large changes in the $\varepsilon$H and $\varepsilon$C chemical shifts of Met 45, Met 80, Met 81 in the predicted N-terminal hydrophobic region, but had no effect on the chemical shifts of Met residues located in the C-domain. These results suggest that the $\rm Ca\sp{2+}$-dependent functions of cTnC are mainly through N-terminal domain of cTnC.^ To further define the molecular mechanism by which TnC regulates muscle contraction, single Cys residues were engineered at positions 45, 81, 84 or 85 in the N-terminal hydrophobic region of cTnC to provide sites for attachment of specific blocking groups. Blocking groups were coupled to these Cys residues in cTnC mutants and the covalent adducts were tested for activity in TnC-extracted myofibrils. Covalent modification of cTnC(C45) had no effect on maximal myofibril ATPase activity. Greatly decreased myofibril ATPase activity resulted when the peptide or biotin was conjugated to residue 81 in cTnC(C81), while less inhibition resulted from covalent modification of cTnC(C84) or cTnC(C85). The results suggest that limited sites of the N-terminal hydrophobic region in cTnC are important for transducing the $\rm Ca\sp{2+}$ signal to troponin I (TnI) and are sensitive to modification, while other regions are less important or can adapt to steric hindrances introduced by bulky blocking groups.^ Although the exposed TnI interaction site in the N-terminal hydrophobic region of TnC is crucial for function of TnC, other regions in the N-domain of TnC may also participate in transducing the $\rm Ca\sp{2+}$ signal and conferring the maximal activation of actomyosin ATPase. The interactions between the B-/C-helices of cTnC and cTnI were characterized using a combination of site-directed mutagenesis, fluorescence and covalent modification. The results suggest that the $\rm Ca\sp{2+}$-dependent interactions of the B-/C-helices of cTnC with TnI may be required for the maximal activation of muscle contraction. ^

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γ-Aminobutyric acid type A receptors (GABAA receptors) are chloride ion channels composed of five subunits, mediating fast synaptic and tonic inhibition in the mammalian brain. These receptors show near five-fold symmetry that is most pronounced in the second trans-membrane domain M2 lining the Cl- ion channel. To take advantage of this inherent symmetry, we screened a variety of aromatic anions with matched symmetry and found an inhibitor, pentacyanocyclopentdienyl anion (PCCP-) that exhibited all characteristics of an open channel blocker. Inhibition was strongly dependent on the membrane potential. Through mutagenesis and covalent modification, we identified the region α1V256-α1T261 in the rat recombinant GABAA receptor to be important for PCCP- action. Introduction of positive charges into M2 increased the affinity for PCCP- while PCCP- prevented the access of a positively charged molecule into M2. Interestingly, other anion selective cys-loop receptors were also inhibited by PCCP-, among them the Drosophila RDL GABAA receptor carrying an insecticide resistance mutation, suggesting that PCCP- could serve as an insecticide.

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Tyrosine hydroxylase (E.C. 1.14.16.2, L-tyrosine tetrahydropteridine:oxygen oxidoreductase, 3-hydroxylating), is the initial and rate limiting enzyme in the biosynthetic pathway of catecholamine production. The mechanism by which the activity of tyrosine hydroxylase is altered in response to excitation of adrenergic cells has been suggested to be a covalent modification of the enzyme. A variety of evidence suggests that the stimulus-induced modification of tyrosine hydroxylase responsible for activating the enzyme is an increased phosphorylation of the enzyme. Tyrosine hydroxylase has been shown to be phosphoprotein in situ and undergoes changes in its state of phosphorylation upon stimulation of the adrenergic tissue. Further, in vitro phosphorylation of tyrosine hydroxylase increases the activity of the enzyme in a manner kinetically similar to the changes observed in the enzyme after stimulation of the intact adrenergic tissue. Thus, the covalent modification of tyrosine hydroxylase by reversible phosphorylation appears to provide a rapid and sensitive mechanism of coupling the activity of the enzyme to the excitation process. The mechanism by which the adrenergic cell mediates the depolarization-dependent phosphorylation and activation of tyrosine hydroxylase is controversial. The most accepted working model suggests that the cAMP-dependent protein kinase mediates this process, however a variety of data are inconsistent with this hypothesis.^ This dissertation attempts to identify the protein kinase(s) responsible for mediating the stimulus-dependent phosphorylation of tyrosine hydroxylase in purified, isolated bovine adrenal chromaffin cells. These studies address this question by first identifying the protein kinase activities in the chromaffin cells which can phosphorylate tyrosine hydroxylase and subsequently, evaluating the possibility that these protein kinases mediate the stimulus-dependent phosphorylation of the enzyme by tryptic peptide mapping. The maps of tyrosine hydroxylase phosphorylated by these protein kinase activities were compared with that of tyrosine hydroxylase phosphorylated in situ. The outcome of these studies have been the identification of three protein kinase activities in the chromaffin cells which can phosphorylate tyrosine hydroxylase in vitro, and the determination that one, a calcium-, calmodulin-dependent protein kinase, is capable of accounting for the pattern of phosphate incorporation into tyrosine hydroxylase observed in situ. The results of these experiments suggest that the depolarization-dependent activation of tyrosine hydroxylase in adrenal chromaffin cells may be mediated by the activation of a calcium-, calmodulin-dependent protein kinase by the influx of calcium into the cells and the subsequent phosphorylation of tyrosine hydroxylase by this enzyme.^

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Increased dependence on aerobic glycolysis for energy (ATP) supply has been observed in various human cancer cells. It is plausible to exploit this metabolic alteration for therapeutic benefits by inhibiting glycolysis to preferentially abolish cancer energy metabolism and kill the malignant cells. 3-Bromopyruvate has been shown to be a potent inhibitor of glycolysis capable of inducing severe ATP reduction and cell death in various cancer cell lines, especially cancer cells with mitochondrial defects or under hypoxic conditions. However, the detailed mechanisms of this novel anticancer agent still remain unclear. My study demonstrated that 3-Bromopyruvate caused a covalent modification of hexokinase II, a key glycolytic enzyme, and disrupted its association with mitochondria. This led to mitochondrial permeability transition and a substantial release of apoptosis-inducing faction (AIF) prior to cytochrome c release. Dissociation of HK II from mitochondria using a cell permeable specific peptide also induced the release of AIF and cytochrome c, and caused substantial cell death. HK II-targeted peptide did not cause significant change in mitochondria respiration and glycolysis activity, suggesting that dissociation of this molecule from mitochondria alone can also cause cell death, and that this may be a novel mechanism by which 3-Bromopyruvate exerts its potent cytotoxic action, in addition to its inhibition of the enzyme activity. Another significant new discovery was that 3-Bromopyruvate induced rapid reduction of protein ubiquitination in vivo, which occurred within several hours of drug incubation and before ATP reduction and cell death. Further mechanistic studies showed that this was due to the inhibition the ubiquitin activating enzyme E1 and the conjugating enzyme E2. Knocking down ubiquitin protein expression by siRNA did not suppress mitochondria respiration and glycolysis, but caused significant cell death. Taken together, this study demonstrated that induction of HK II dissociation from mitochondria and inhibition of glycolysis are two newly discovered mechanisms that contribute to the potent anticancer activity of 3-Bromopyruvate, and identified this compound as a valuable chemical tool for research in protein ubiquitination. ^

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In a number of clinical circumstances it would be desirable to artificially conceal cellular antigenic determinants to permit survival of heterologous donor cells. A case in point is the problem encountered in transfusions of patients with rare blood types or chronically transfused patients who become allosensitized to minor blood group determinants. We have tested the possibility that chemical modification of the red blood cell (RBC) membrane might serve to occlude antigenic determinants, thereby minimizing transfusion reactions. To this end, we have covalently bound methoxy(polyethylene glycol) (mPEG) to the surface of mammalian RBC via cyanuric chloride coupling. Human RBC treated with this technique lose ABO blood group reactivity as assessed by solution–phase antisera agglutination. In accord with this, we also find a profound decrease in anti-blood group antibody binding. Furthermore, whereas human monocytes avidly phagocytose untreated sheep RBC, mPEG-derivatized sheep RBC are ineffectively phagocytosed. Surprisingly, human and mouse RBC appear unaffected by this covalent modification of the cell membrane. Thus, mPEG-treated RBC are morphologically normal, have normal osmotic fragility, and mPEG-derivatized murine RBC have normal in vivo survival, even following repeated infusions. Finally, in preliminary experiments, mPEG-modified sheep RBC intraperitoneally transfused into mice show significantly improved (up to 360-fold) survival when compared with untreated sheep RBC. We speculate that similar chemical camouflage of intact cells may have significant clinical applications in both transfusion (e.g., allosensitization and autoimmune hemolytic disease) and transplantation (e.g., endothelial cells and pancreatic β cells) medicine.

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The mammalian renal toxicant tetrafluoroethylcysteine (TFEC) is metabolized to a reactive intermediate that covalently modifies the lysine residues of a select group of mitochondrial proteins, forming difluorothioamidyl lysine protein adducts. Cellular damage is initiated by this process and cell death ensues. NH2-terminal sequence analysis of purified mitochondrial proteins containing difluorothioamidyl lysine adducts identified the lipoamide succinyltransferase and dihydrolipoamide dehydrogenase subunits of the α-ketoglutarate dehydrogenase complex (αKGDH), a key regulatory component of oxidative metabolism, as targets for TFEC action. Adduct formation resulted in marked inhibition of αKGDH enzymatic activity, whereas the related pyruvate dehydrogenase complex was unmodified by TFEC and its activity was not inhibited in vivo. Covalent modification of αKGDH subunits also resulted in interactions with mitochondrial chaperonin HSP60 in vivo and with HSP60 and mitochondrial HSP70 in vitro. These observations confirm the role of mammalian stress proteins in the recognition of abnormal proteins and provide supporting evidence for reactive metabolite-induced cell death by modification of critical protein targets.