969 resultados para ACTIVE-SITE MUTANT


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The oxidation of alcohols and olefins is a pivotal reaction in organic synthesis. However, traditional oxidants are toxic and they often release a considerable amounts of by-products. Here, two IronIII-based systems are shown as oxidative catalyst, working in mild conditions with hydrogen peroxide as primary oxidant. An efficient catalytic system for the selective oxidation of several alcohols to their corresponding aldehydes and ketones was developed and characterized, [Fe(phen)2Cl2]NO3 (phen=1,10-Phenantroline). It was demonstrated that the adoption of a buffered aqueous solution is of crucial importance to ensure both considerable activity and selectivity.The Iron - Thymine-1-acetic acid in-situ complex was studied as catalyst in alcohol oxidations and C-H oxidative functionalization, involving hydrogen peroxide as primary oxidant in mild reaction conditions. The catalytic ability in alcohol oxidations was investigated by Density Functional Theory calculations, however the catalyst still has uncertain structure. The system shows satisfactory activity in alcohol oxidation and aliphatic rings functionalization. The Fe-THA system was studied in cyclohexene oxidation and oxidative halogenations. Halide salts such as NBu4X and NH4X were introduced in the catalytic system as halogens source to obtain cyclohexene derivatives such as halohydrins, important synthetic intermediates.The purpose of this dissertation is to contribute in testing new catalytic systems for alcohol oxidations and C-H functionalization. In particular, most of the efforts in this work focus on studying the Iron - Thymine-1-acetic acid (THA) systems as non-heme oxidative model, which present: •an iron metal centre(s) as a coordinative active site, •hydrogen peroxide as a primary oxidant, •THA as an eco-friendly, biocompatible, low cost coordinating ligand.

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In der vorliegenden Arbeit wurden die bioinformatischen Methoden der Homologie-Modellierung und Molekularen Modellierung dazu benutzt, die dreidimensionalen Strukturen verschiedenster Proteine vorherzusagen und zu analysieren. Experimentelle Befunde aus Laborversuchen wurden dazu benutzt, die Genauigkeit der Homologie-Modelle zu erhöhen. Die Ergebnisse aus den Modellierungen wurden wiederum dazu benutzt, um neue experimentelle Versuche vorzuschlagen. Anhand der erstellten Modelle und bekannten Kristallstrukturen aus der Protein-Datenbank PDB wurde die Struktur-Funktionsbeziehung verschiedener Tyrosinasen untersucht. Dazu gehörten sowohl die Tyrosinase des Bakteriums Streptomyces als auch die Tyrosinase der Hausmaus. Aus den vergleichenden Strukturanalysen der Tyrosinasen resultierten Mechanismen für die Monophenolhydroxylase-Aktivität der Tyrosinasen sowie für den Import der Kupferionen ins aktive Zentrum. Es konnte der Beweis geführt werden, daß die Blockade des CuA-Zentrums tatsächlich der Grund für die unterschiedliche Aktivität von Tyrosinasen und Catecholoxidasen ist. Zum ersten Mal konnte mit der Maus-Tyrosinase ein vollständiges Strukturmodell einer Säugetier-Tyrosinase erstellt werden, das dazu in der Lage ist, die Mechanismen bekannter Albino-Mutationen auf molekularer Ebene zu erklären. Die auf der Basis des ermittelten 3D-Modells gewonnenen Erkenntnisse über die Wichtigkeit bestimmter Aminosäuren für die Funktion wurde durch gerichtete Mutagenese an der rekombinant hergestellten Maus-Tyrosinase getestet und bestätigt. Weiterhin wurde die Struktur der Tyrosinase des Krebses Palinurus elephas durch eine niedrigaufgelöste 3D-Rekonstruktion aus elektronenmikroskopischen Bildern aufgeklärt. Der zweite große Themenkomplex umfasst die Strukturanalyse der Lichtsammlerkomplexe LHCI-730 und LHCII. Im Falle des LHCII konnte der Oligomerisierungszustand der LHCMoleküle mit diskreten Konformationen des N-Terminus korreliert werden. Auch hier kam eine Kombination von Homologie-Modellierung und einer experimentellen Methode, der Elektronen-Spin-Resonanz-Messung, zum Einsatz. Die Änderung des Oligomerisierungszustands des LHCII kontrolliert den Energiezufluß zu den Photosystemen PS I und PS II. Des Weiteren wurde ein vollständiges Modell des LHCI-730 erstellt, um die Auswirkungen gerichteter Mutagenese auf das Dimerisierungsverhalten zu untersuchen. Auf Basis dieses Modells wurden die Wechselwirkungen zwischen den Monomeren Lhca1 und Lhca4 evaluiert und potentielle Bindungspartner identifiziert.

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Clostridium difficile, der Auslöser der nosokomialen Antibiotika-assoziierten Durchfälle und der Pseudomembranösen Kolitis, besitzt zwei Hauptvirulenzfaktoren: die Toxine A und B. In vorangegangenen Veröffentlichungen wurde gezeigt, dass Toxin B durch einen zytosolischen Faktor der eukaryotischen Zielzelle während des Aufnahmeweges in die Zelle gespalten wird. Nur die N-terminale katalytische Domäne erreicht das Zytosol. Hierbei wurde davon ausgegangen, dass eine Protease der Zielzelle die Spaltung katalysiert. In dieser Arbeit konnte gezeigt werden, dass die Spaltung von Toxin B ein intramolekularer Prozess ist, der zytosolisches Inositolphosphat der Zielzelle als Kofaktor zur Aktivierung der intrinsischen Protease benötigt. Die Freisetzung der katalytischen Domäne durch Inositolphosphat-induzierte Spaltung ist nicht nur das Prinzip des Clostridium difficile Toxin B sondern auch des Toxin A, als auch des alpha Toxin von Clostridium novyi und das Letale Toxin von Clostridium sordellii. Der kovalente Inhibitor von Aspartatproteasen 1,2-epoxy-3-(p-nitrophenoxy)propan (EPNP), wurde dazu verwendet die intrinsische Protease von Toxin B zu blockieren und ermöglichte die Identifikation des katalytischen Zentrums. EPNP modifiziertes Toxin B verliert die intrinsische Proteaseaktivität und Zytotoxizität, aber wenn es direkt in das Zytosol der Wirtszelle injiziert ist, bleibt die Toxizität erhalten. Diese ist damit der erste Bericht eines bakteriellen Toxins, das eukaryotische Signale zur induzierten Autoproteolyse nutzt, um seine katalytisch-toxische Domäne in das Zytosol der Zielzelle freizusetzen. Durch diese Ergebnisse kann das Modell der Toxin-Prozessierung nun um einen weiteren entscheidenden Schritt vervollständigt werden.

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The topic of this work is the simultaneous activation, promoted by 9-epi-NH2-DHQA-TU, of alkylideneoxindole and nistirene derivatives, respectively via base catalysis and hydrogen-bond catalysis. The chosen substrates, of high biological interest, are used as starting materials for a vinylogous Michael addition where we wish to control the stereochemistry of the two asymmetric carbons far away from the active site, respectively in γ and δ position. Due to the particular structure of the starting oxindoles, it is hereby presented the first variant of this reaction performed at its highest level of stereochemical complexity. It is possible as a matter of fact, to generate 24 isomers of the product. Specifically, given that the nucleophilic attack can occur from various, non equivalent regions of the starting molecule, our main goal was to achieve a complete regio- and stereocontrol of the reaction. We have verified that the reported organocatalyzed vinylogous reaction represents a valid integration of the metal-catalyzed one, since it affords highly stereochemically complex products in good to high yields and excellent optical purity.

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Die Tyrosinase aus Streptomyces castaneoglobisporus HUT6202 ist für biochemische und strukturelle Untersuchungen besonders gut geeignet, da sie als globuläres binäres Protein vorliegt. Als bakterielles Protein lässt sich die Tyrosinase aus Streptomyces in einen E.coli Expressionsstamm klonieren und exprimieren.rnIn dieser Arbeit wurde die Tyrosinase zusammen mit seinem Hilfsprotein (ORF378) polycistronisch in Escherichia coli BL21 (DE3)-Zellen heterolog exprimiert. Das Produkt der Expression ergab einen funktionellen binären Proteinkomplex, welcher mit einer Ausbeute von bis zu 0,8 mg/L über einen C-terminalen His-Tag sowie eine anschließende Größenausschlusschromatographie auf bis 95 % gereinigt werden konnte.rnDer gereinigte binäre Komplex aus Tyrosinase und Hilfsprotein wurde mit Hilfe isoelektrischer Fokussierung untersucht um die jeweiligen isoelektrischen Punkte der beiden Proteine zu bestimmen (pI 4,8 für die Tyrosinase sowie 4,9 für das Hilfsprotein), welche stark von den anhand der Aminosäuresequenz errechneten pIs abweichen (6,2 und 6,4). Des Weiteren wurde die Tyrosinase auf ihre Substratspezifität getestet, wobei sich ein bevorzugter Umsatz von Kaffeesäure (Km 1,4 mM; Vmax 21.5 µM min-1) und p-Cumarsäure zeigte. Es erfolgte keine Katalyse von Tyrosin und Tyramin sowie nur in geringem Maß von L-Dopa. Darüber hinaus konnte gezeigt werden, dass ein enzymatischer Umsatz nur stattfindet, nachdem die Tyrosinase mit CuSO4 aktiviert wurde. Eine Aktivierung mit SDS konnte nicht beobachtet werden.rnZur Untersuchung der Aktivierung des binären Komplexes lässt sich mit Hilfe dynamischer Lichtstreuung und analytischer Ultrazentrifugation eine Dissoziation des Komplexes in seine monomeren Komponenten nach Aktivierung mit CuSO4 vermuten. Dies würde den bislang hypothetisch angenommenen Mechanismus der Aktivierung der Tyrosinase aus S.castaneoglobisporus bestätigen.rnIn silico-Arbeiten wurden durchgeführt um ein tieferes Verständnis der Substratspezifität zu bekommen. Substrat-Docking-Experimente bestätigten die im Labor erhaltenen Ergebnisse. Eine Strukturanalyse deutet auf eine sterische Hinderung der Substrataufnahme für Substrate mit sekundären Aminogruppen hin. rnAnalysen des Protein-Interface von Tyrosinase und Hilfsprotein konnten kupferfixierende Faltungsmotive an der Oberfläche des Hilfsproteins aufzeigen. Bei diesen handelt es meist um 3-4 polare Aminosäuren, welche in der Lage sind, ein Kupferatom zu fixieren. Durch die Bindung der Kupferatome an die fixierenden Motive werden wahrscheinlich zahlreiche Wasserstoff-brückenbindungen getrennt, welche den Komplex in seiner inaktiven Form stabilisieren.rn

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Urease is a nickel-dependent enzyme that catalyzes hydrolysis of urea in the last step of organic nitrogen mineralization. Its active site contains a dinuclear center for Ni(II) ions that must be inserted into the apo-enzyme through the action of four accessory proteins (UreD, UreE, UreF, UreG) leading to activation of urease. UreE, acting as a metallo-chaperone, delivers Ni(II) to the preformed complex of apo-urease-UreDFG and has the capability to enhance the GTPase activity of UreG. This study, focused on characterization of UreE from Sporosarcina pasteurii (SpUreE), represents a piece of information on the structure/mobility-function relationships that control nickel binding by SpUreE and its interaction with SpUreG. A calorimetric analysis revealed the occurrence of a binding event between these proteins with positive cooperativity and a stoichiometry consistent with the formation of the (UreE)2-(UreG)2 hetero-oligomer complex. Chemical Shift Perturbations induced by the protein-protein interaction were analyzed using high-resolution NMR spectroscopy, which allowed to characterize the molecular details of the protein surface of SpUreE involved in the complex formation with SpUreG. Moreover, backbone dynamic properties of SpUreE, determined using 15N relaxation analysis, revealed a general mobility in the nanoseconds time-scale, with the fastest motions observed at the C-termini. The latter analysis made it possible for the first time to characterize of the C-terminal portions, known to contain key residues for metal ion binding, that were not observed in the crystal structure of UreE because of disorder. The residues belonging to this portion of SpUreE feature large CSPs upon addition of SpUreG, showing that their chemical environment is directly affected by protein-protein interaction. Metal ion selectivity and affinity of SpUreE for cognate Ni(II) and non cognate Zn(II) metal ions were determined, and the ability of the protein to select Ni(II) over Zn(II), in consistency with the proposed role in Ni(II) cations transport, was established.

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Zusammenfassung rnrnIn dieser Arbeit wurden Untersuchungen an zwei verschiedenen multimeren Proteinkomplexen durchgeführt: Zum einen am Hämocyanin aus Homarus americanus mittels Röntgen-L-Kantenspektroskopie und zum anderen am α-Toxin aus Staphylococcus aureus, hinsichtlich der Interaktion an speziellen Raft-artigen Membranabschnitten, mittels AFM.rnFür das Hämocyanin aus Homarus americanus konnte ein neuer Aspekt bezüglich der Bindung von Sauerstoff aufgezeigt werden. Ein zuvor nicht in Betracht gezogener und diskutierter Einfluss von Wassermolekülen auf diesen Vorgang konnte mittels der Methode der Röntgen-L-Kantenspektroskopie dargestellt werden. Erstmals war es möglich die beiden verschiedenen Beladungszustände (Oxy-, Deoxy-Zustand) des Hämocyanin mittels dieser Methode in physiologisch ähnlicher Umgebung zu untersuchen. Vergleiche der erhaltenen L-Kanten-Spektren mit denen anorganischer Vergleichslösungen ließen auf eine Interaktion von Wassermolekülen mit den beiden Kupferatomen des aktiven Zentrums schließen. Dadurch wurde erstmals ein möglicher Einfluss des Wassers auf den Oxygenierungsprozess des Hämocyanins auf elektronischer Ebene aufgezeigt. Vergleichende Betrachtungen von Röntgenkristallstrukturen verschiedener Typ-3-Kupferproteine bestätigten, dass auch hier ein Einfluss von Wassermolekülen auf die aktiven Zentren möglich ist. Vorgeschlagen wird dabei, dass an Stelle der Überlappung der 3d-Orbitale des Kupfers mit den 2p-Orbitalen des Sauerstoffs, wie sie im sauerstoffbeladenen Zustand auftritt, im sauerstoffunbeladenen Zustand eine Wechselwirkung der 3d-Orbitale des Kupfers mit den LUMOS der Wassermoleküle möglich wird, und ein Elektronen- bzw. Ladungstransfer von den Kupfern auf die Wassermoleküle erfolgen kann. rnAFM-Untersuchungen hinsichtlich der Interaktion des α-Toxins aus Staphylococcus aureus mit oberflächenunterstützten Modellmembranen wiesen darauf hin, dass eine bevorzugte Anbindung und zumindest teilweise Integration der α-Toxine in Raft-artige Membranbereiche stattfindet. Für verschiedene ternäre Lipidsysteme konnten phasenseparierte Modellmembranen abgebildet und die unterschiedlichen Domänenformen zugeordnet werden. Der Anbindungsprozess der Toxine an diese oberflächenunterstützte Modellmembranen erfolgte dann wahrscheinlich vornehmlich an den speziellen Raft-artigen Domänen, wohingegen die Insertion der Poren vorrangig an den Grenzbereichen zwischen den Domänen auftrat. Mögliche Ursache dafür sind die räumlichen Besonderheiten dieser Grenzflächen. Membranen weisen an den Schnittstellen zwischen zwei Domänenformen eine erhöhte Unordnung auf, was sich u.a. in einer geringeren Packungsdichte der Phospholipide und dem erhöhten Freiheitsgrad ihrer Kopfgruppen bemerkbar macht. Außerdem kommt es auf Grund der Interaktion der beteiligten Membranbestandteile Sphingomyelin und Cholesterol untereinander zu einer speziellen Ausrichtung der Phosphocholin-Kopfgruppen und innerhalb der Raft-artigen Domänen zu einer erhöhten Packungsdichte der Phospholipide. Die in dieser Arbeit präsentierten Ergebnisse unterstützten demnach die in der Literatur postulierte Vermutung der bevorzugten Interaktion und Integration der Toxin-Moleküle mit Raft-artigen Membrandomänen. Die Insertion der Pore erfolgt aber wahrscheinlich bevorzugt an den Grenzbereichen zwischen den auftretenden Domänen.rn

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In this work the synthesis of polyarylated cycloparaphenylenes (CPPs) is described in order to form structurally defined carbon nanotube (CNT) segments by the Scholl reaction. Therefore, polyphenylene macrocycles in different sizes and substitution patterns were synthesized. The influence of the ring-strain on the oxidative cyclodehydrogenation of these macrocycles towards CNT segments was investigated. It was demonstrated that a selective solution based bottom-up synthesis of CNT segments could be accomplished, having polyarylated CPPs, sufficient in size and with the right substituents at the critical positions. These findings mark an important step towards the bottom-up synthesis of length- and diameter defined ultrashort CNTsrnIn the second part of this work, novel non-precious metal catalysts (NPMCs) based on phenanthroline-indole macrocycles were synthesized and their electrocatalytic performance in the cathodic oxygen reduction was investigated. It could be demonstrated that all catalysts contributed to the direct 4-electron reduction of oxygen to water in alkaline media and a superior long-term stability was observed. Since these NPMCs are not heat pre-treated, the catalytically active site was structurally well-defined, allowing the investigation of the structure-property relationship. Moreover, it could be shown that these novel NPMCs act as efficient ORR catalysts and could replace the expensive and scarce platinum in fuel cell applications.rn

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The well-known antiproliferative properties of the 9-hydroxystearic acid (9-HSA) on human colon cancer cells (HT-29 cell line) have inspired this thesis work in order to obtain new derivatives maintaining the C1-C8 chain of the HSA linked to an heterocyclic moiety at the C-9 carbon atom and to investigate their biological activity. First, thiazoles, thiadiazoles and benzothiazoles, that are compounds of interest in many fields for their biological activities, have been introduced through an amide bond starting from their 2-amino precursors. The products have been obtained by treatment with methyl 9-chloro-9-oxononanoate according to a Schotten-Baumann type reaction. The acylation reaction occurred at the endocyclic nitrogen atom of the heterocycle, as ascertained through NOESY-1D experiment. After, methyl 9-chloro-9-oxononanoate was reacted with indole, N-methylindole, and triptamine giving a serie of new indole derivatives. Finally, the biological activity of some compounds has been tested through assays on HT-29 cancer cells and bacterial and fungal microorganisms; docking calculations have also been performed to evaluate the possible interactions with the active site of histone deacetylase, which are molecular targets of the 9-HSA.

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CYP17A1 plays a pivotal role in the biosynthesis of androgens in the adrenals and the gonads. Although this enzyme catalyzes two different reactions on one single active site, its specific activities are regulated independently. Although the 17alpha-hydroxylase activity is rather constant and regulated by gene expression, the 17,20-lyase activity varies significantly with the amount of cofactors or by protein phosphorylation. cAMP increases CYP17A1 expression, P450c17 phosphorylation, and androgen production. However, the exact mechanism(s) and the specific regulators of CYP17A1 remain unknown. Therefore, we studied the regulation of adrenal androgen biosynthesis in human adrenal H295R cells focusing on CYP17A1. We analyzed androgen production and P450c17 activities in H295R cells grown under normal and serum-free conditions and/or after stimulation with 8-bromoadenosine-cAMP. H295R cells grown in starvation medium produced more androgens and had decreased HSD3B2 expression and activity but increased P450c17-17,20-lyase activity and serine phosphorylation. Although starvation increased serine phosphorylation of P450c17 specifically, cAMP stimulation enhanced threonine phosphorylation exclusively. Time-course experiments revealed that a short cAMP stimulation augmented threonine phosphorylation of P450c17 but did not increase 17,20-lyase activity. By contrast, long cAMP stimulation increased androgen production through increased P450c17 activities by enhancing CYP17A1 gene expression. We conclude that serum withdrawal shifts steroidogenesis of H295R cells towards androgen production, providing a suitable model for detailed studies of androgen regulation. In addition, our study shows that starvation and cAMP stimulation regulate P450c17 phosphorylation differentially and that an increase in P450c17 phosphorylation does not necessarily lead to enhanced enzyme activity and androgen production.

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During the resolution of inflammatory responses, neutrophils rapidly undergo apoptosis. A direct and fast activation of caspase-8 by cathepsin D was shown to be crucial in the initial steps of neutrophil apoptosis. Nevertheless, the activation mechanism of caspase-8 remains unclear. Here, by using site-specific mutants of caspase-8, we show that both cathepsin D-mediated proteolysis and homodimerization of caspase-8 are necessary to generate an active caspase-8. At acidic pH, cathepsin D specifically cleaved caspase-8 but not the initiator caspase-9 or -10 and significantly increased caspase-8 activity in dimerizing conditions. These events were completely abolished by pepstatin A, a pharmacological inhibitor of cathepsin D. The cathepsin D intra-chain proteolysis greatly stabilized the active site of caspase-8. Moreover, the main caspase-8 fragment generated by cathepsin D cleavage could be affinity-labeled with the active site probe biotin-VAD-fluoromethyl ketone, suggesting that this fragment is enzymatically active. Importantly, in an in vitro cell-free assay, the addition of recombinant human caspase-8 protein, pre-cleaved by cathepsin D, was followed by caspase-3 activation. Our data therefore indicate that cathepsin D is able to initiate the caspase cascade by direct activation of caspase-8. As cathepsin D is ubiquitously expressed, this may represent a general mechanism to induce apoptosis in a variety of immune and nonimmune cells.

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The TM0727 gene of Thermotoga maritima is responsible for encoding what has been reported to be a modulator of DNA gyrase (pmbA). Although the function of pmbA is still unknown, it is believedto be involved in cell division, carbon storage regulation, and the synthesis of the antibiotic peptide microcin B17. It is suggested that it serves together with tldD, a known zinc dependent protease, tomodulate DNA gyrase. TM0727 is believed to be a zinc dependent protease that binds zinc in the central active site of the molecule, located between two equivalent monomeric units. However, thecrystal structure determined by Wilson et al. (2005) did not contain zinc. It therefore remains to be seen if TM0727 requires zinc for activity, or regulation, and if the protein is indeed a protease. To begin studying this protein, the gene was expressed in BL21(DE3) pLysS cells and the induction time was optimized. Using affinity and ion exchange chromatography, the protein has been successfully purified. The purification procedure can be replicated to obtain sufficient protein for characterization. Purification results show that the protein loses stability after 24 hours and remains stable under an imidazole-free lysis workup. Preliminary characterization of TM0727 has focused on understanding the protein’s structuralproperties through tryptophan fluorescence anisotropy measurements. The four tryptophan residues located within the TM0727 dimer fluoresce at different maximum wavelengths and with differentintensities upon excitation with 295nm light. These emission properties are highly sensitive to the environment (solvent, surrounding residues) of each tryptophan residue. The low number oftryptophans allows for a specific monitoring of the protein’s structure as it denatures. As more denaturant is added to the protein, its tryptophan environments have clearly altered. This is indicative of unfolding and increased solvent exposure of the protein. This unfolding has been confirmed with the addition of a fluorescent quencher. Additionally, fluorescence anisotropy measurements have been carried out on the protein to gain a preliminary understanding of the rotational dynamics of the tryptophan residues. These experiments excite the tryptophan residues within the sample using a polarized light source. Polarized emission is then detected, the degree of which depends on the rotational dynamics and local environment of the tryptophan residues. The protein was denatured and the changes in emission were recorded to detect these structural changes. Results have shown a large change in quaternary structure, consistent with a dimer to monomer transition, occurs at 1.5M Guandidine HCl. There has also been an examination of the crystal structure for the location of a potential active site. The inner cavity of the protein was inspected visually to locate a potential location for a catalytic triad, specifically the amino acids found in the active sites of serine, cyteine, and aspartateproteases. It was found that a potential aspartic protease active site may be located between the Asparate286 and Aspartate287 residues. Further investigation is warranted to test this remotepossibility.

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Soybean lipoxygenase-1 (SBLO-1) catalyzes the oxygenation of linoleic acid to form 13(S) and 9(R) hydroperoxides. The manner in which substrates bind to the lipoxygenase family of enzymes is not known. It is believed fatty acid substrates may bind either with the aliphatic end first or with the carboxylate group facing the interior of the protein. This thesis tested a potential methyl-end first substrate binding mechanism by studying the activity of SBLO-1 to oxygenate immobilized linoleoyl residues attached to an insoluble polymer. Linoleic acid was attached to aminohexyl agarose in the presence of N-(3- dimethylaminopropyl)-N’-ethylcarbodiimide hydrochloride (EDC) and Nhydroxysuccinimide (NHS). The concentration of the covalently attached residues was facilitated by enriching linoleic acid with a small amount of the radioactive 14C-isotope. Functionalization yields of 3% available primary amines on the resin were obtained. Enzymatic oxygenation of the linoleoyl-residues was verified using the ferrous oxidation in xylenol orange (FOX) assay. Approximately 30% of the attached linoleoyl moieties were converted to hydroperoxides in the presence of SBLO-1. A disulfide-containing cleavable linker, cystamine, was used as part of an improved method to isolate the product in a facile manner. Cystamine was attached to NHS-activated agarose with approximately 5% overall functionalization yield of available functional groups. 14C-linoleic acid was successfully covalently linked to the cystamine moieties in the presence of EDC and NHS. The FOX assay verified the enzymatic oxygenation of the linoleoyl residues attached to cystamine-derivatized agarose. The isolation of the peroxide product was attempted in a series of extractions in organic solvents. The product was analyzed using GC/MS which did not show a new peak indicative of product. Further work is needed to successfully analyze the stereoand regiochemistry of the oxygenated product. The presence of the peroxides in this study indicated the linoleoyl residues behave as substrates of SBLO-1. It is unknown how bulky substrates bind to the active site; however, it is difficult to rationalize a carboxylate group-first binding mode. Discovery of the 13(S)-hydroperoxide product on the linoleoyl-agarose would support the claim of a potential methyl-end first binding mechanism.

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Lipoxygenases are nonheme-iron proteins that catalyze the oxygenation of polyunsaturated fatty acids to give conjugated diene hydroperoxides. For example, soybean lipoxygenase-1 (SBLO-1) converts linoleate into 13-(S)-hydroperoxy-9(Z),11(E)-octadecadienoate (13(S)-HPOD). Although the crystal structure of SBLO-1 has been determined, it is still unclear how the substrate binds at the active site. This absence of knowledge makes it difficult to understand the role of the enzyme during catalysis of the reaction. We hypothesize that SBLO-1 binds linoleate ¿tail-first¿, so that the methyl terminus is within a hydrophobic pocket deep within the enzyme. It is believed that the hydrophobic residue phenylalanine-557 at this site has stabilizing interactions with the terminal methyl group on linoleate. To test this hypothesis, we have developed a synthetic pathway that will yield linoleate analogs with longer fatty acid chains by 1 and 2 more carbons at the alkyl terminus. These substrates will be analyzed through kinetic assays done in combination with wild type SBLO-1 and mutants in which we have replaced phenylalanine-557 with valine.

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Phosphatidylinositol-specific phospholipases C (PI-PLC) are known to participate in many eukaryotic signal transduction pathways and act as virulence factors in lower organisms. Glycerophosphoryl diester phosphodiesterase (GDPD) enzymes are involved in phosphate homeostasis and phospholipid catabolism for energy production. Streptomyces antibioticus phosphatidylinositol-specific phospholipase C (SaPLC1) is a 38 kDa enzyme that displays characteristics of both enzyme superfamilies, representing an evolutionary link between these divergent enzyme classes. SaPLC1 also boasts a unique catalytic mechanism that involves a trans 1,6-cyclic inositol phosphate intermediate instead of the typical cis 1,2-cyclic inositol phosphate. The mechanism by which this occurs is still unclear. To attack this problem, we established a wide mutagenesis scan of the active site and measured activities of alanine mutants. A chemical rescue assay was developed to verify that the activity loss was due to the removal of the functional role of the mutated residue. 31P-NMR was employed in characterizing and quantifying intermediates in mutants that slowed the reaction sufficiently. We found that the H37A and H76A mutations support the hypothesis that these structurally conserved residues are also conserved in terms of their catalytic roles. H37 was found to be the general base (GB), while H76 plays the role of general acid (GA). K131 was identified as a semi-conserved key positive charge donor found at the entrance of the active site. By elucidating the SaPLC1 mechanism in relation to its active site architecture, we have increased our understanding of the structure-function relations that support catalysis in the PI-PLC/GDPD superfamily. These findings provide groundwork for in vivo studies of SaPLC1 function and its possible role in novel signaling or metabolism in Streptomyces.