961 resultados para DISULFIDE BONDS
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NMR spectroscopy and simulated annealing calculations have been used to determine the three-dimensional structure of NaD1, a novel antifungal and insecticidal protein isolated from the flowers of Nicotiana alata. NaD1 is a basic, cysteine-rich protein of 47 residues and is the first example of a plant defensin from flowers to be characterized structurally. Its three-dimensional structure consists of an a-helix and a triple-stranded anti-parallel beta-sheet that are stabilized by four intramolecular disulfide bonds. NaD1 features all the characteristics of the cysteine-stabilized up motif that has been described for a variety of proteins of differing functions ranging from antibacterial insect defensins and ion channel-perturbing scorpion toxins to an elicitor of the sweet taste response. The protein is biologically active against insect pests, which makes it a potential candidate for use in crop protection. NaD1 shares 31% sequence identity with alfAFP, an antifungal protein from alfalfa that confers resistance to a fungal pathogen in transgenic potatoes. The structure of NaD1 was used to obtain a homology model of alfAFP, since NaD1 has the highest level of sequence identity with alfAFP of any structurally characterized antifungal defensin. The structures of NaD1 and alfAFP were used in conjunction with structure - activity data for the radish defensin Rs-AFP2 to provide an insight into structure-function relationships. In particular, a putative effector site was identified in the structure of NaD1 and in the corresponding homology model of alfAFP. (C) 2002 Elsevier Science Ltd. All rights reserved.
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Circular proteins are a recently discovered phenomenon. They presumably evolved to confer advantages over ancestral linear proteins while maintaining the intrinsic biological functions of those proteins. In general, these advantages include a reduced sensitivity to proteolytic cleavage and enhanced stability. In one remarkable family of circular proteins, the cyclotides, the cyclic backbone is additionally braced by a knotted arrangement of disulfide bonds that confers additional stability and topological complexity upon the family. This article describes the discovery, structure, function and biosynthesis of the currently known circular proteins. The discovery of naturally occurring circular proteins in the past few years has been complemented by new chemical and biochemical methods to make synthetic circular proteins; these are also briefly described.
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Dissertation for the Master’s Degree in Structural and Functional Biochemistry
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A new type of high avidity binding molecule, termed "peptabody" was created by harnessing the effect of multivalent interaction. A short peptide ligand was fused via a semi-rigid hinge region with the coiled-coil assembly domain of the cartilage oligomeric matrix protein, resulting in a pentameric multivalent binding molecule. In the first peptabody (Pab-S) described here, a peptide (S) specific for the mouse B-cell lymphoma BCL1 surface Ig idiotype, was selected from a phage display library. A fusion gene was constructed encoding peptide S, followed by the 24 aa hinge region from camel IgG and a modified 55 aa cartilage oligomeric matrix protein pentamerization domain. The Pab-S fusion protein was expressed in Escherichia coli in a soluble form at high levels and purified in a single step by metal-affinity chromatography. Pab-S specifically bound the BCL1 surface idiotype with an avidity of about 1 nM, which corresponds to a 2 x 10(5)-fold increase compared with the affinity of the synthetic peptide S itself. Biochemical characterization showed that Pab-S is a stable homopentamer of about 85 kDa, with interchain disulfide bonds. Pab-S can be dissociated under denaturing and reducing conditions and reassociated as a pentamer with full-binding activity. This intrinsic feature provides an easy way to combine Pab molecules with two different peptide specificities, thus producing heteropentamers with bispecific and/or chelating properties.
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The epithelial sodium channel ENaC is physiologically important in the kidney for the regulation of the extracellular fluid volume, and in the lungs for the maintenance of the appropriate airway surface liquid volume that lines the pulmonary epithelium. Besides the regulation of ENaC by hormones, intracellular factors such as Na(+) ions, pH, or Ca(2+) are responsible for fast adaptive responses of ENaC activity to changes in the intracellular milieu. In this study, we show that ENaC is rapidly and reversibly inhibited by internal sulfhydryl-reactive molecules such as methanethiosulfonate derivatives of different sizes, the metal cations Cd(2+) and Zn(2+), or copper(II) phenanthroline, a mild oxidizing agent that promotes the formation of disulfide bonds. At the single channel level, these agents applied intracellularly induce the appearance of long channel closures, suggesting an effect on ENaC gating. The intracellular reducing agent dithiothreitol fully reverses the rundown of ENaC activity in inside-out patches. Our observations suggest that changes in intracellular redox potential modulate ENaC activity and may regulate ENaC-mediated Na(+) transport in epithelia. Finally, substitution experiments reveal that multiple cysteine residues in the amino and carboxyl termini of ENaC subunits are responsible for this thiol-mediated inhibition of ENaC.
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The role of bacterial Hsp40, DnaJ, is to co-chaperone the binding of misfolded or alternatively folded proteins to bacterial Hsp70, DnaK, which is an ATP-fuelled unfolding chaperone. In addition to its DnaK targeting activity, DnaJ has a weak thiol-reductase activity. In between the substrate-binding domain and the J-domain anchor to DnaK, DnaJ has a unique domain with four conserved CXXC motives that bind two Zn(2+) and partly contribute to polypeptide binding. Here, we deleted in DnaJ this Zn-binding domain, which is characteristic to type I but not of type II or III J-proteins. This caused a loss of the thiol-reductase activity and strongly reduced the ability of DnaJ to mediate the ATP- and DnaK-dependent unfolding/refolding of mildly oxidized misfolded polypeptides, an inhibition that was alleviated in the presence of thioredoxin or DTT. We suggest that in addition to their general ability to target misfolded polypeptide substrates to the Hsp70/Hsp110 chaperone machinery, Type I J-proteins carry an ancillary protein dithiol-isomerase function that can synergize the unfolding action of the chaperone, in the particular case of substrates that are further stabilized by non-native disulfide bonds. Whereas the unfoldase can remain ineffective without the transient untying of disulfide bonds by the foldase, the foldase can remain ineffective without the transient ATP-fuelled unfolding of wrong local structures by the unfoldase.
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Photosynthesis, the process in which carbon dioxide is converted into sugars using the energy of sunlight, is vital for heterotrophic life on Earth. In plants, photosynthesis takes place in specific organelles called chloroplasts. During chloroplast biogenesis, light is a prerequisite for the development of functional photosynthetic structures. In addition to photosynthesis, a number of other metabolic processes such as nitrogen assimilation, the biosynthesis of fatty acids, amino acids, vitamins, and hormones are localized to plant chloroplasts. The biosynthetic pathways in chloroplasts are tightly regulated, and especially the reduction/oxidation (redox) signals play important roles in controlling many developmental and metabolic processes in chloroplasts. Thioredoxins are universal regulatory proteins that mediate redox signals in chloroplasts. They are able to modify the structure and function of their target proteins by reduction of disulfide bonds. Oxidized thioredoxins are restored via the action of thioredoxin reductases. Two thioredoxin reductase systems exist in plant chloroplasts, the NADPHdependent thioredoxin reductase C (NTRC) and ferredoxin-thioredoxin reductase (FTR). The ferredoxin-thioredoxin system that is linked to photosynthetic light reactions is involved in light-activation of chloroplast proteins. NADPH can be produced via both the photosynthetic electron transfer reactions in light, and in darkness via the pentose phosphate pathway. These different pathways of NADPH production enable the regulation of diverse metabolic pathways in chloroplasts by the NADPH-dependent thioredoxin system. In this thesis, the role of NADPH-dependent thioredoxin system in the redox-control of chloroplast development and metabolism was studied by characterization of Arabidopsis thaliana T-DNA insertion lines of NTRC gene (ntrc) and by identification of chloroplast proteins regulated by NTRC. The ntrc plants showed the strongest visible phenotypes when grown under short 8-h photoperiod. This indicates that i) chloroplast NADPH-dependent thioredoxin system is non-redundant to ferredoxinthioredoxin system and that ii) NTRC particularly controls the chloroplast processes that are easily imbalanced in daily light/dark rhythms with short day and long night. I identified four processes and the redox-regulated proteins therein that are potentially regulated by NTRC; i) chloroplast development, ii) starch biosynthesis, iii) aromatic amino acid biosynthesis and iv) detoxification of H2O2. Such regulation can be achieved directly by modulating the redox state of intramolecular or intermolecular disulfide bridges of enzymes, or by protecting enzymes from oxidation in conjunction with 2-cysteine peroxiredoxins. This thesis work also demonstrated that the enzymatic antioxidant systems in chloroplasts, ascorbate peroxidases, superoxide dismutase and NTRC-dependent 2-cysteine peroxiredoxins are tightly linked up to prevent the detrimental accumulation of reactive oxygen species in plants.
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The availability of the genome sequence of the bacterial plant pathogen Xylella fastidiosa, the causal agent of citrus variegated chlorosis, is accelerating important investigations concerning its pathogenicity. Plant vessel occlusion is critical for symptom development. The objective of the present study was to search for information that would help to explain the adhesion of X. fastidiosa cells to the xylem. Scanning electron microscopy revealed that adhesion may occur without the fastidium gum, an exopolysaccharide produced by X. fastidiosa, and X-ray microanalysis demonstrated the presence of elemental sulfur both in cells grown in vitro and in cells found inside plant vessels, indicating that the sulfur signal is generated by the pathogen surface. Calcium and magnesium peaks were detected in association with sulfur in occluded vessels. We propose an explanation for the adhesion and aggregation process. Thiol groups, maintained by the enzyme peptide methionine sulfoxide reductase, could be active on the surface of the bacteria and appear to promote cell-cell aggregation by forming disulfide bonds with thiol groups on the surface of adjacent cells. The enzyme methionine sulfoxide reductase has been shown to be an auxiliary component in the adhesiveness of some human pathogens. The negative charge conferred by the ionized thiol group could of itself constitute a mechanism of adhesion by allowing the formation of divalent cation bridges between the negatively charged bacteria and predominantly negatively charged xylem walls.
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Chaperone members of the protein disulfide isomerase family can catalyze the thiol-disulfide exchange reaction with pairs of cysteines. There are 14 protein disulfide isomerase family members, but the ability to catalyze a thiol disulfide exchange reaction has not been demonstrated for all of them. Human endoplasmic reticulum protein chaperone thio-oxidoreductase (ERp18) shows partial oxidative activity as a protein disulfide isomerase. The aim of the present study was to evaluate the participation of ERp18 in gonadotropin-releasing hormone receptor (GnRHR) expression at the plasma membrane. Cos-7 cells were cultured, plated, and transfected with 25 ng (unless indicated) wild-type human GnRHR (hGnRHR) or mutant GnRHR (Cys14Ala and Cys200Ala) and pcDNA3.1 without insert (empty vector) or ERp18 cDNA (75 ng/well), pre-loaded for 18 h with 1 µCi myo-[2-3H(N)]-inositol in 0.25 mL DMEM and treated for 2 h with buserelin. We observed a decrease in maximal inositol phosphate (IP) production in response to buserelin in the cells co-transfected with hGnRHR, and a decrease from 20 to 75 ng of ERp18 compared with cells co-transfected with hGnRHR and empty vector. The decrease in maximal IP was proportional to the amount of ERp18 DNA over the range examined. Mutants (Cys14Ala and Cys200Ala) that could not form the Cys14-Cys200 bridge essential for plasma membrane routing of the hGnRHR did not modify maximal IP production when they were co-transfected with ERp18. These results suggest that ERp18 has a reduction role on disulfide bonds in wild-type hGnRHR folding.
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To illustrate the construction of precursor complementary DNAs, we isolated mRNAs from whole venom samples. After reverse transcription polymerase chain reaction (RT-PCR), we amplified the cDNA coding for a neurotoxic protein, phospholipase A2 D49 (PLA2 D49), from the venom of Crotalus durissus collilineatus (Cdc PLA2). The cDNA encoding Cdc PLA2 from whole venom was sequenced. The deduced amino acid sequence of this cDNA has high overall sequence identity with the group II PLA2 protein family. Cdc PLA2 has 14 cysteine residues capable of forming seven disulfide bonds that characterize this group of PLA2 enzymes. Cdc PLA2 was isolated using conventional Sephadex G75 column chromatography and reverse-phase high performance liquid chromatography (RP-HPLC). The molecular mass was estimated using matrix-assisted laser desorption ionization-time-of-flight (MALDI-TOF) mass spectrometry. We tested the neuromuscular blocking activities on chick biventer cervicis neuromuscular tissue. Phylogenetic analysis of Cdc PLA2 showed the existence of two lines of N6-PLA2, denominated F24 and S24. Apparently, the sequences of the New World’s N6-F24-PLA2 are similar to those of the agkistrodotoxin from the Asian genus Gloydius. The sequences of N6-S24-PLA2 are similar to the sequence of trimucrotoxin from the genus Protobothrops, found in the Old World.
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Les molécules classiques du CMH de classe II présentent des peptides antigéniques aux lymphocytes T CD4+. Cette présentation est régulée par deux molécules non classiques : HLA-DM catalyse la relâche de CLIP et le chargement de peptides et HLA-DO module l’activité de DM. Une expression insuffisante en cellules d’insectes empêche les expériences de cristallisation de DO, probablement en raison de sa conformation, rendant DO instable et inapte à sortir du réticulum endoplasmique (RE). DM corrige la conformation de DO et permet sa sortie du RE. Aussi, par ses ponts disulfures uniques, DM adopte une conformation stable et peut sortir du RE sans lier d’autre molécule. Nous avons tenté de corriger la conformation de DO en introduisant des cystéines pour établir des ponts homologues à ceux de DM. La conformation de DO ne fut pas corrigée. Par ailleurs, nous avons augmenté l’expression de DO en introduisant une séquence partielle de Kozak. Nous avons aussi étudié l’effet de DM sur l’expression de DO. DM a favorisé l’expression de DO, probablement en diminuant sa dégradation. Chaque chaîne du dimère DMαβ est impliquée dans l’oxydation de sa chaîne partenaire. La conformation non-optimale de DO pourrait traduire une incapacité des chaînes α ou β à favoriser l’oxydation de sa partenaire; DM corrigerait ce problème. Notre analyse d’immunobuvardage de type Western a toutefois démontré que DM ne modifie pas l’état d’oxydation de DOα et DOβ. Finalement, nous avons étudié l’interaction DO-DM. L’acide aminé DOαE41 est impliqué dans cette liaison. Certains des acides aminés entre α80 et α84 pourraient être impliqués. Nous avons muté des acides aminés de cette région de DOα. Les résidus testés ne semblent pas impliqués dans la liaison DO-DM. L’obtention de la structure tridimensionnelle de DO et la caractérisation de son état oxydatif et de sa liaison à DM permettront de mieux comprendre son rôle.
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L’infertilité affecte environ 15% des couples en âge de se reproduire. Dans près de la moitié des cas, des facteurs masculins sont à la base de l’infertilité, quoique les causes exactes demeurent souvent inconnues. Les spermatozoïdes de mammifères subissent une série d’étapes de maturation avant d’acquérir la capacité de féconder un ovocyte. Les premiers changements ont lieu à l’intérieur de l’épididyme, où les spermatozoïdes gagnent la capacité de se mouvoir ainsi que de reconnaître et d’interagir avec l’ovocyte. Suite à l’éjaculation, ils doivent subir une seconde série de modifications à l’intérieur du tractus génital femelle, nommée capacitation. Nous avons préalablement démontré que chez le bovin, la famille de protéines BSP (Binder of SPerm) est essentielle à la capacitation. Des homologues des BSP ont aussi été isolés du fluide séminal de porc, de bouc, de bélier, de bison et d’étalon. Malgré la détection d’antigènes apparentés aux BSP dans le fluide séminal de souris et d’humain, les homologues des BSP n’ont jamais été caractérisés chez ces espèces. Nous avons émis l’hypothèse que des homologues des BSP seraient exprimés chez la souris et l’humain et joueraient un rôle dans la maturation des spermatozoïdes. Nous avons démontré que des séquences homologues aux BSP sont présentes dans les génomes murin et humain. Le génome murin contient trois séquences; Bsph1, Bsph2a et Bsph2b, tandis qu’une seule séquence (BSPH1) a été identifée chez l’humain. Les séquences d’ADNc de Bsph1, Bsph2a et BSPH1 ont été clonées, tandis que Bsph2b serait probablement un pseudogène. Les trois gènes sont exprimés uniquement dans l’épididyme et font partie d’une sous-famille distincte à l’intérieur de la famille des BSP. Chez les ongulés, les BSP sont exprimées par les vésicules séminales, sont ajoutées aux spermatozoïdes lors de l’éjaculation et représentent une proportion significative des protéines du plasma séminal. Au contraire, les BSP épididymaires ne sont retrouvées qu’en faibles quantités dans le fluide séminal. L’étude de leur rôle dans les fonctions spermatiques était donc plus difficile que chez les ongulés, où l’isolement des protéines natives du plasma séminal à l’aide de techniques de chromatographie était possible. Afin d’étudier sa fonction, nous avons exprimé BSPH1 recombinante dans E. coli. Les ponts disulfure des domaines de type-II caractéristiques de ces protéines ont fait en sorte que l’expression de BSPH1 fusionnée à une étiquette hexahistidine ou glutathion-S-transférase a donné lieu à des protéines insolubles dans les corps d’inclusion. La production de BSPH1 soluble a été possible grâce à l’ajout d’une étiquette thiorédoxine et l’expression dans une souche au cytoplasme oxidatif. BSPH1 a été purifiée par affinité et sa liaison aux partenaires connus des BSP, la phosphatidylcholine, les lipoprotéines de faible densité et la membrane des spermatozoïdes, suggérait que la protéine recombinante possédait sa conformation native et pouvait être utilisée pour des essais fonctionnels. La forme native de BSPH1 a été détectée dans le plasma séminal humain suite au fractionnement par gel filtration. La liaison de BSPH1 native à une colonne d’affinité à l’héparine a indiqué qu’elle partage aussi cette propriété de liaison avec la famille des BSP, et pourrait lier les GAGs semblables à l’héparine du tractus génital féminin. Une colonne d’immunoaffinité anti-BSPH1 a été préparée à l’aide d’anticorps générés contre des protéines recombinantes, et a permis d’isoler BSPH1 native à partir d’extraits de spermatozoïdes humains. Nos résultats montrent que BSPH1 native serait localisée dans les microdomaines « rafts » de la membrane. Sa masse moléculaire apparente était de 32 kDa, ce qui est supérieur à la masse prédite selon sa séquence en acides aminés, indiquant la présence probable de modifications post-traductionnelles, ou d’une migration anormale. L’effet de BSPH1 recombinante et des anticorps anti-BSPH1 sur la motilité, la viabilité et la capacitation a aussi été étudié. Les deux dernières variables ont été mesurées par un essai de cytométrie en flux, optimisé dans cette étude. Aucun effet des protéines recombinantes ou des anticorps sur la motilité et la viabilité des spermatozoïdes n’a été noté. Quoiqu’une stimulation modeste, quoique significative, de la capacitation ait été observée à la plus faible concentration de BSPH1, les concentrations plus élevées n’ont pas montré d’effet. De la même manière, les anticorps anti-BSPH1 n’ont pas eu d’effet significatif sur la capacitation. Ces résultats suggèrent que BSPH1 produite dans E. coli n’affecte pas la capacitation de façon marquée. Cependant, puisque BSPH1 native possède probablement des modifications post-traductionnelles, une protéine recombinante produite dans des cellules de mammifères pourrait affecter les fonctions spermatiques. De manière alternative, les BSP épididymaires remplissent peut-être un rôle différent dans les fonctions spermatiques que celles sécrétées par les vésicules séminales des ongulés. Les résultats décrits dans cette thèse pourraient contribuer à améliorer le diagnostic de l’infertilité masculine, ainsi que les techniques de reproduction assistée et éventuellement, pourraient mener au développement de contraceptifs masculins.
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An alkaline protease gene (Eap) was isolated for the first time from a marine fungus, Engyodontium album. Eap consists of an open reading frame of 1,161 bp encoding a prepropeptide consisting of 387 amino acids with a calculated molecular mass of 40.923 kDa. Homology comparison of the deduced amino acid sequence of Eap with other known proteins indicated that Eap encode an extracellular protease that belongs to the subtilase family of serine protease (Family S8). A comparative homology model of the Engyodontium album protease (EAP) was developed using the crystal structure of proteinase K. The model revealed that EAP has broad substrate specificity similar to Proteinase K with preference for bulky hydrophobic residues at P1 and P4. Also, EAP is suggested to have two disulfide bonds and more than two Ca2? binding sites in its 3D structure; both of which are assumed to contribute to the thermostable nature of the protein.
Resumo:
An alkaline protease gene (Eap) was isolated for the first time from a marine fungus, Engyodontium album. Eap consists of an open reading frame of 1,161 bp encoding a prepropeptide consisting of 387 amino acids with a calculated molecular mass of 40.923 kDa. Homology comparison of the deduced amino acid sequence of Eap with other known proteins indicated that Eap encode an extracellular protease that belongs to the subtilase family of serine protease (Family S8). A comparative homology model of the Engyodontium album protease (EAP) was developed using the crystal structure of proteinase K. The model revealed that EAP has broad substrate specificity similar to Proteinase K with preference for bulky hydrophobic residues at P1 and P4. Also, EAP is suggested to have two disulfide bonds and more than two Ca2? binding sites in its 3D structure; both of which are assumed to contribute to the thermostable nature of the protein.
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La butirilcolinesterasa humana (BChE; EC 3.1.1.8) es una enzima polimórfica sintetizada en el hígado y en el tejido adiposo, ampliamente distribuida en el organismo y encargada de hidrolizar algunos ésteres de colina como la procaína, ésteres alifáticos como el ácido acetilsalicílico, fármacos como la metilprednisolona, el mivacurium y la succinilcolina y drogas de uso y/o abuso como la heroína y la cocaína. Es codificada por el gen BCHE (OMIM 177400), habiéndose identificado más de 100 variantes, algunas no estudiadas plenamente, además de la forma más frecuente, llamada usual o silvestre. Diferentes polimorfismos del gen BCHE se han relacionado con la síntesis de enzimas con niveles variados de actividad catalítica. Las bases moleculares de algunas de esas variantes genéticas han sido reportadas, entre las que se encuentra las variantes Atípica (A), fluoruro-resistente del tipo 1 y 2 (F-1 y F-2), silente (S), Kalow (K), James (J) y Hammersmith (H). En este estudio, en un grupo de pacientes se aplicó el instrumento validado Lifetime Severity Index for Cocaine Use Disorder (LSI-C) para evaluar la gravedad del consumo de “cocaína” a lo largo de la vida. Además, se determinaron Polimorfismos de Nucleótido Simple (SNPs) en el gen BCHE conocidos como responsables de reacciones adversas en pacientes consumidores de “cocaína” mediante secuenciación del gen y se predijo el efecto delos SNPs sobre la función y la estructura de la proteína, mediante el uso de herramientas bio-informáticas. El instrumento LSI-C ofreció resultados en cuatro dimensiones: consumo a lo largo de la vida, consumo reciente, dependencia psicológica e intento de abandono del consumo. Los estudios de análisis molecular permitieron observar dos SNPs codificantes (cSNPs) no sinónimos en el 27.3% de la muestra, c.293A>G (p.Asp98Gly) y c.1699G>A (p.Ala567Thr), localizados en los exones 2 y 4, que corresponden, desde el punto de vista funcional, a la variante Atípica (A) [dbSNP: rs1799807] y a la variante Kalow (K) [dbSNP: rs1803274] de la enzima BChE, respectivamente. Los estudios de predicción In silico establecieron para el SNP p.Asp98Gly un carácter patogénico, mientras que para el SNP p.Ala567Thr, mostraron un comportamiento neutro. El análisis de los resultados permite proponer la existencia de una relación entre polimorfismos o variantes genéticas responsables de una baja actividad catalítica y/o baja concentración plasmática de la enzima BChE y algunas de las reacciones adversas ocurridas en pacientes consumidores de cocaína.