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1.
Proteins ; 85(7): 1190-1211, 2017 07.
Article in English | MEDLINE | ID: mdl-28378917

ABSTRACT

Triosephosphate isomerase (TIM) is a ubiquitous enzyme, which appeared early in evolution. TIM is responsible for obtaining net ATP from glycolysis and producing an extra pyruvate molecule for each glucose molecule, under aerobic and anaerobic conditions. It is placed in a metabolic crossroad that allows a quick balance of the triose phosphate aldolase produced by glycolysis, and is also linked to lipid metabolism through the alternation of glycerol-3-phosphate and the pentose cycle. TIM is one of the most studied enzymes with more than 199 structures deposited in the PDB. The interest for this enzyme stems from the fact that it is involved in glycolysis, but also in aging, human diseases and metabolism. TIM has been a target in the search for chemical compounds against infectious diseases and is a model to study catalytic features. Until February 2017, 62% of all residues of the protein have been studied by mutagenesis and/or using other approaches. Here, we present a detailed and comprehensive recompilation of the reported effects on TIM catalysis, stability, druggability and human disease produced by each of the amino acids studied, contributing to a better understanding of the properties of this fundamental protein. The information reviewed here shows that the role of the noncatalytic residues depend on their molecular context, the delicate balance between the short and long-range interactions in concerted action determining the properties of the protein. Each protein should be regarded as a unique entity that has evolved to be functional in the organism to which it belongs. Proteins 2017; 85:1190-1211. © 2017 Wiley Periodicals, Inc.


Subject(s)
Enzyme Inhibitors/chemistry , Triose-Phosphate Isomerase/chemistry , Amino Acid Sequence , Biocatalysis , Catalytic Domain , Enzyme Stability , Humans , Kinetics , Models, Molecular , Mutagenesis, Site-Directed , Protein Binding , Protein Interaction Domains and Motifs , Protein Structure, Secondary , Sequence Alignment , Sequence Homology, Amino Acid , Structure-Activity Relationship , Substrate Specificity , Triose-Phosphate Isomerase/antagonists & inhibitors , Triose-Phosphate Isomerase/genetics , Triose-Phosphate Isomerase/metabolism
2.
Biotechnol Rep (Amst) ; 13: 42-48, 2017 Mar.
Article in English | MEDLINE | ID: mdl-28352562

ABSTRACT

Rare arginine codons AGA and AGG affect the heterologous expression of proteins in Eschericha coli. The tRNAs necessary for protein synthesis are scarce in E. coli strain BL21(DE3) pLysS and plentiful in strain BL21(DE3) CodonPlus -RIL. We evaluated in both bacterial strains the effect of these rare codons on the expression of triosephosphate isomerases from 7 different species, whose sequences had different dispositions of rare arginine codons. The ratio of expressed protein (CP/Bl21) correlated with the number of rare codons. Our study shows that the number, position and particularities of the combination of rare Arg codons in the natural non-optimized sequences of the triosephosphate isomerases influence the synthesis of heterologous proteins in E. coli and could have implications in the selection of better sequences for engineering enzymes for novel or manipulated metabolic pathways or for the expression levels of non enzymatic proteins..

3.
ChemMedChem ; 11(12): 1328-38, 2016 06 20.
Article in English | MEDLINE | ID: mdl-26492824

ABSTRACT

Triosephosphate isomerase (TIM) is an essential Trypanosoma cruzi enzyme and one of the few validated drug targets for Chagas disease. The known inhibitors of this enzyme behave poorly or have low activity in the parasite. In this work, we used symmetrical diarylideneketones derived from structures with trypanosomicidal activity. We obtained an enzymatic inhibitor with an IC50 value of 86 nm without inhibition effects on the mammalian enzyme. These molecules also affected cruzipain, another essential proteolytic enzyme of the parasite. This dual activity is important to avoid resistance problems. The compounds were studied in vitro against the epimastigote form of the parasite, and nonspecific toxicity to mammalian cells was also evaluated. As a proof of concept, three of the best derivatives were also assayed in vivo. Some of these derivatives showed higher in vitro trypanosomicidal activity than the reference drugs and were effective in protecting infected mice. In addition, these molecules could be obtained by a simple and economic green synthetic route, which is an important feature in the research and development of future drugs for neglected diseases.


Subject(s)
Antiprotozoal Agents/pharmacology , Cysteine Endopeptidases/metabolism , Enzyme Inhibitors/pharmacology , Protozoan Proteins/antagonists & inhibitors , Triose-Phosphate Isomerase/antagonists & inhibitors , Trypanosoma cruzi/drug effects , Animals , Antiprotozoal Agents/chemistry , Antiprotozoal Agents/therapeutic use , Binding Sites , Chagas Disease/drug therapy , Cysteine Endopeptidases/chemistry , Disease Models, Animal , Enzyme Inhibitors/chemistry , Enzyme Inhibitors/therapeutic use , Ketones/chemistry , Ketones/pharmacology , Ketones/therapeutic use , Mice , Molecular Docking Simulation , Protein Structure, Tertiary , Protozoan Proteins/metabolism , Structure-Activity Relationship , Triose-Phosphate Isomerase/metabolism , Trypanosoma cruzi/growth & development
4.
PLoS One ; 10(11): e0141747, 2015.
Article in English | MEDLINE | ID: mdl-26618356

ABSTRACT

The dimeric nature of triosephosphate isomerases (TIMs) is maintained by an extensive surface area interface of more than 1600 Å2. TIMs from Trichomonas vaginalis (TvTIM) are held in their dimeric state by two mechanisms: a ball and socket interaction of residue 45 of one subunit that fits into the hydrophobic pocket of the complementary subunit and by swapping of loop 3 between subunits. TvTIMs differ from other TIMs in their unfolding energetics. In TvTIMs the energy necessary to unfold a monomer is greater than the energy necessary to dissociate the dimer. Herein we found that the character of residue I45 controls the dimer-monomer equilibrium in TvTIMs. Unfolding experiments employing monomeric and dimeric mutants led us to conclude that dimeric TvTIMs unfold following a four state model denaturation process whereas monomeric TvTIMs follow a three state model. In contrast to other monomeric TIMs, monomeric variants of TvTIM1 are stable and unexpectedly one of them (I45A) is only 29-fold less active than wild-type TvTIM1. The high enzymatic activity of monomeric TvTIMs contrast with the marginal catalytic activity of diverse monomeric TIMs variants. The stability of the monomeric variants of TvTIM1 and the use of cross-linking and analytical ultracentrifugation experiments permit us to understand the differences between the catalytic activities of TvTIMs and other marginally active monomeric TIMs. As TvTIMs do not unfold upon dimer dissociation, herein we found that the high enzymatic activity of monomeric TvTIM variants is explained by the formation of catalytic dimeric competent species assisted by substrate binding.


Subject(s)
Protein Multimerization , Protozoan Proteins/chemistry , Trichomonas vaginalis/enzymology , Triose-Phosphate Isomerase/chemistry , Amino Acid Sequence , Catalytic Domain , Enzyme Stability , Molecular Sequence Data , Protein Binding , Protozoan Proteins/metabolism , Triose-Phosphate Isomerase/metabolism
5.
Molecules ; 20(8): 14595-610, 2015 Aug 12.
Article in English | MEDLINE | ID: mdl-26274947

ABSTRACT

The current pharmacological Chagas disease treatments, using Nifurtimox or Benznidazole, show limited therapeutic results and are associated with potential side effects, like mutagenicity. Using random screening we have identified new chemotypes that were able to inhibit relevant targets of the Trypanosoma cruzi. We found 3H-[1,2]dithioles with the ability to inhibit Trypanosoma cruzi triosephosphate isomerase (TcTIM). Herein, we studied the structural modifications of this chemotype to analyze the influence of volume, lipophilicity and electronic properties in the anti-T. cruzi activity. Their selectivity to parasites vs. mammalian cells was also examined. To get insights into a possible mechanism of action, the inhibition of the enzymatic activity of TcTIM and cruzipain, using the isolated enzymes, and the inhibition of membrane sterol biosynthesis and excreted metabolites, using the whole parasite, were achieved. We found that this structural framework is interesting for the generation of innovative drugs for the treatment of Chagas disease.


Subject(s)
Toluene/analogs & derivatives , Trypanocidal Agents/chemistry , Trypanocidal Agents/pharmacology , Trypanosoma cruzi/drug effects , Animals , Cell Line , Dose-Response Relationship, Drug , Drug Evaluation, Preclinical , Macrophages/drug effects , Mice , Sterols/antagonists & inhibitors , Sterols/biosynthesis , Toluene/chemical synthesis , Toluene/chemistry , Toluene/pharmacology , Trypanocidal Agents/chemical synthesis , Trypanosoma cruzi/metabolism
6.
Eur J Med Chem ; 100: 246-56, 2015 Jul 15.
Article in English | MEDLINE | ID: mdl-26094151

ABSTRACT

The neglected disease American trypanosomiasis is one of the major health problems in Latin America. Triosephosphate isomerase from Trypanosoma cruzi (TcTIM), the etiologic agent of this disease, has been proposed as a druggable target. Some bis-benzothiazoles have been described as irreversible inhibitors of this enzyme. On the other hand, new bioactive furane-containing thiazoles have been described as excellent in vivo anti-T. cruzi agents. This encouraged us to design and develop new bis-thiazoles with potential use as drugs for American trypanosomiasis. The bis-thiazol 5, 3,3'-allyl-2,2'-bis[3-(2-furyl)-2-propenylidenehydrazono]-2,2',3,3'-tetrahydro-4,4'-bisthiazole, showed the best in vitro anti-T. cruzi profile with a higher selectivity index than the reference drugs Nifurtimox and Benznidazole against amastigote form of the parasite. This derivative displayed marginal activity against TcTIM however the bis-thiazol 14, 3-allyl-2-[3-(2-furyl)-2-propenylidenehydrazono]-3'-phenyl-2'-(3-phenyl-2-propenylidenehydrazono]-2,2',3,3'-tetrahydro-4,4'-bisthiazole, was an excellent inhibitor of the enzyme of the parasite. The absence of both in vitro mutagenic and in vivo toxicity effects, together with the activity of bis-thiazol 5in vivo, suggests that this compound is a promising anti-T. cruzi agent surpassing the "hit-to-lead" stage in the drug development process.


Subject(s)
Enzyme Inhibitors/pharmacology , Thiazoles/pharmacology , Triose-Phosphate Isomerase/antagonists & inhibitors , Trypanocidal Agents/pharmacology , Trypanosoma cruzi/drug effects , Trypanosoma cruzi/enzymology , Animals , Cell Line , Dose-Response Relationship, Drug , Enzyme Inhibitors/chemical synthesis , Enzyme Inhibitors/chemistry , Hydrophobic and Hydrophilic Interactions , Macrophages , Mice , Molecular Structure , Parasitic Sensitivity Tests , Structure-Activity Relationship , Thiazoles/chemical synthesis , Thiazoles/chemistry , Triose-Phosphate Isomerase/metabolism , Trypanocidal Agents/chemical synthesis , Trypanocidal Agents/chemistry
7.
J Enzyme Inhib Med Chem ; 29(2): 198-204, 2014 Apr.
Article in English | MEDLINE | ID: mdl-23406473

ABSTRACT

CONTEXT: Triosephosphate isomerase (TIM) is a ubiquitous enzyme that has been targeted for the discovery of new small molecular weight compounds used against Trypanosoma cruzi, the causative agent of Chagas disease. We have identified phenazine and 1,2,6-thiadiazine chemotypes as novel inhibitors of TIM from T. cruzi (TcTIM). OBJECTIVE: Study the mechanism of TcTIM inhibition by a phenazine derivative and by a 1,2,6-thiadiazine derivative. METHODS: We performed biochemical and theoretical molecular docking studies to characterize the interaction of the derivatives with wild-type and mutant TcTIM. RESULTS AND CONCLUSION: At low micromolar concentrations, the compounds induce highly selective irreversible inactivation of parasitic TIM. The molecular docking simulations indicate that the phenazine derivative likely interferes with the association of the two monomers of the dimeric enzyme by locating at the dimer interface, while 1,2,6-thiadiazine could act as an inhibitor binding to a region surrounding Cys-118.


Subject(s)
Antiprotozoal Agents/pharmacology , Enzyme Inhibitors/pharmacology , Phenazines/pharmacology , Thiadiazines/pharmacology , Triose-Phosphate Isomerase/antagonists & inhibitors , Trypanosoma cruzi/drug effects , Antiprotozoal Agents/chemistry , Binding, Competitive , Chagas Disease/drug therapy , Electrophoresis, Polyacrylamide Gel , Enzyme Inhibitors/chemistry , Escherichia coli/genetics , Models, Biological , Molecular Docking Simulation , Molecular Structure , Parasitic Sensitivity Tests , Phenazines/chemistry , Protein Binding , Protein Folding , Protein Multimerization , Thiadiazines/chemistry , Triose-Phosphate Isomerase/chemistry , Triose-Phosphate Isomerase/genetics , Trypanosoma cruzi/enzymology
8.
Proteins ; 82(2): 323-35, 2014 Feb.
Article in English | MEDLINE | ID: mdl-23966267

ABSTRACT

It is generally assumed that the amino acids that exist in all homologous enzymes correspond to residues that participate in catalysis, or that are essential for folding and stability. Although this holds for catalytic residues, the function of conserved noncatalytic residues is not clear. It is not known if such residues are of equal importance and have the same role in different homologous enzymes. In humans, the E104D mutation in triosephosphate isomerase (TIM) is the most frequent mutation in the autosomal diseases named "TPI deficiencies." We explored if the E104D mutation has the same impact in TIMs from four different organisms (Homo sapiens, Giardia lamblia, Trypanosoma cruzi, and T. brucei). The catalytic properties were not significantly affected by the mutation, but it affected the rate and extent of formation of active dimers from unfolded monomers differently. Scanning calorimetry experiments indicated that the mutation was in all cases destabilizing, but the mutation effect on rates of irreversible denaturation and transition-state energetics were drastically dependent on the TIM background. For instance, the E104D mutation produce changes in activation energy ranging from 430 kJ mol(-1) in HsTIM to -78 kJ mol(-1) in TcTIM. Thus, in TIM the role of a conserved noncatalytic residue is drastically dependent on its molecular background. Accordingly, it would seem that because each protein has a particular sequence, and a distinctive set of amino acid interactions, it should be regarded as a unique entity that has evolved for function and stability in the organisms to which it belongs.


Subject(s)
Protozoan Proteins/chemistry , Triose-Phosphate Isomerase/chemistry , Amino Acid Sequence , Amino Acid Substitution , Conserved Sequence , Crystallography, X-Ray , Entropy , Enzyme Stability , Giardia lamblia/enzymology , Humans , Kinetics , Models, Molecular , Protein Unfolding , Protozoan Proteins/genetics , Structural Homology, Protein , Triose-Phosphate Isomerase/genetics , Trypanosoma brucei brucei/enzymology , Trypanosoma cruzi/enzymology
9.
Parasitology ; 139(13): 1729-38, 2012 Nov.
Article in English | MEDLINE | ID: mdl-22931930

ABSTRACT

The glycolytic enzyme triosephosphate isomerase catalyses the isomerization between glyceraldehyde 3-phosphate and dihydroxyacetone phosphate. Here we report that Trichomonas vaginalis contains 2 fully functional tpi genes. Both genes are located in separated chromosomal context with different promoter regulatory elements and encode ORFs of 254 amino acids; the only differences between them are the character of 4 amino acids located in α-helices 1, 2 and 8. Semi-quantitative RT-PCR assays showed that tpi2 transcript is approximately 3·3-fold more abundant than tpi1. Using an anti-TvTIM2 polyclonal antibody it was demonstrated that TIM proteins have a cytoplasmic localization and both enzymes are able to complement an Escherichia coli strain carrying a deletion of its endogenous tpi gene. Both TIM proteins assemble as dimers and their secondary structure assessment is essentially identical to TIM from Saccharomyces cerevisiae. The kinetic catalytic constants of the recombinant enzymes using glyceraldehyde-3-phosphate as substrate are similar to the catalytic constants of TIMs from other organisms including parasitic protozoa. As T. vaginalis depends on glycolysis for ATP production, we speculate 2 possible reasons to maintain a duplicated tpi copy on its genome: an increase in gene dosage or an early event of neofunctionalization of TIM as a moonlighting protein.


Subject(s)
Trichomonas vaginalis/enzymology , Trichomonas vaginalis/genetics , Triose-Phosphate Isomerase/genetics , Triose-Phosphate Isomerase/metabolism , Amino Acid Sequence , Base Sequence , Cytoplasm/enzymology , Escherichia coli/genetics , Gene Duplication , Gene Expression Profiling , Gene Expression Regulation, Enzymologic , Genetic Complementation Test , Models, Molecular , Molecular Sequence Data , Open Reading Frames , Protein Structure, Tertiary , Recombinant Proteins/chemistry , Recombinant Proteins/genetics , Triose-Phosphate Isomerase/chemistry
10.
PLoS One ; 6(6): e21035, 2011.
Article in English | MEDLINE | ID: mdl-21738601

ABSTRACT

We previously observed that human homodimeric triosephosphate isomerase (HsTIM) expressed in Escherichia coli and purified to apparent homogeneity exhibits two significantly different thermal transitions. A detailed exploration of the phenomenon showed that the preparations contain two proteins; one has the expected theoretical mass, while the mass of the other is 28 Da lower. The two proteins were separated by size exclusion chromatography in 3 M urea. Both proteins correspond to HsTIM as shown by Tandem Mass Spectrometry (LC/ESI-MS/MS). The two proteins were present in nearly equimolar amounts under certain growth conditions. They were catalytically active, but differed in molecular mass, thermostability, susceptibility to urea and proteinase K. An analysis of the nucleotides in the human TIM gene revealed the presence of six codons that are not commonly used in E. coli. We examined if they were related to the formation of the two proteins. We found that expression of the enzyme in a strain that contains extra copies of genes that encode for tRNAs that frequently limit translation of heterologous proteins (Arg, Ile, Leu), as well as silent mutations of two consecutive rare Arg codons (positions 98 and 99), led to the exclusive production of the more stable protein. Further analysis by LC/ESI-MS/MS showed that the 28 Da mass difference is due to the substitution of a Lys for an Arg residue at position 99. Overall, our work shows that two proteins with different biochemical and biophysical properties that coexist in the same cell environment are translated from the same nucleotide sequence frame.


Subject(s)
Arginine/genetics , Escherichia coli/metabolism , Lysine/genetics , Triose-Phosphate Isomerase/chemistry , Triose-Phosphate Isomerase/metabolism , Arginine/chemistry , Calorimetry, Differential Scanning , Chromatography, Gel , Chromatography, Liquid , Computational Biology , Escherichia coli/genetics , Humans , Lysine/chemistry , Polymorphism, Genetic/genetics , Spectrometry, Mass, Electrospray Ionization , Tandem Mass Spectrometry , Triose-Phosphate Isomerase/genetics
11.
PLoS One ; 6(4): e18791, 2011 Apr 18.
Article in English | MEDLINE | ID: mdl-21533154

ABSTRACT

For a better comprehension of the structure-function relationship in proteins it is necessary to identify the amino acids that are relevant for measurable protein functions. Because of the numerous contacts that amino acids establish within proteins and the cooperative nature of their interactions, it is difficult to achieve this goal. Thus, the study of protein-ligand interactions is usually focused on local environmental structural differences. Here, using a pair of triosephosphate isomerase enzymes with extremely high homology from two different organisms, we demonstrate that the control of a seventy-fold difference in reactivity of the interface cysteine is located in several amino acids from two structurally unrelated regions that do not contact the cysteine sensitive to the sulfhydryl reagent methylmethane sulfonate, nor the residues in its immediate vicinity. The change in reactivity is due to an increase in the apparent pKa of the interface cysteine produced by the mutated residues. Our work, which involved grafting systematically portions of one protein into the other protein, revealed unsuspected and multisite long-range interactions that modulate the properties of the interface cysteines and has general implications for future studies on protein structure-function relationships.


Subject(s)
Amino Acids/chemistry , Triose-Phosphate Isomerase/metabolism , Trypanosoma/enzymology , Amino Acid Sequence , Animals , Base Sequence , Biocatalysis , DNA Primers , Models, Molecular , Molecular Sequence Data , Mutagenesis, Site-Directed , Polymerase Chain Reaction , Sequence Homology, Amino Acid , Triose-Phosphate Isomerase/chemistry , Triose-Phosphate Isomerase/genetics
12.
Insect Biochem Mol Biol ; 41(6): 400-9, 2011 Jun.
Article in English | MEDLINE | ID: mdl-21396445

ABSTRACT

Triosephosphate isomerase (TIM) is an enzyme with a role in glycolysis and gluconeogenesis by catalyzing the interconversion between glyceraldehyde 3-phosphate and dihydroxyacetone phosphate. This enzyme has been used as a target in endoparasite drug development. In this work we cloned, expressed, purified and studied kinetic and structural characteristics of TIM from tick embryos, Rhipicephalus (Boophilus) microplus (BmTIM). The Km and Vmax of the recombinant BmTIM with glyceraldehyde 3-phosphate as substrate, were 0.47 mM and 6031 µmol min⁻¹ mg protein⁻¹, respectively. The resolution of the diffracted crystal was estimated to be 2.4 Å and the overall data showed that BmTIM is similar to other reported dimeric TIMs. However, we found that, in comparison to other TIMs, BmTIM has the highest content of cysteine residues (nine cysteine residues per monomer). Only two cysteines could make disulfide bonds in monomers of BmTIM. Furthermore, BmTIM was highly sensitive to the action of the thiol reagents dithionitrobenzoic acid and methyl methane thiosulfonate, suggesting that there are five cysteines exposed in each dimer and that these residues could be employed in the development of species-specific inhibitors.


Subject(s)
Embryo, Nonmammalian/enzymology , Recombinant Proteins/metabolism , Rhipicephalus/enzymology , Triose-Phosphate Isomerase/metabolism , Zygote/enzymology , Amino Acid Sequence , Animals , Catalysis , Cloning, Molecular , Crystallography, X-Ray , Cysteine/chemistry , Cysteine/metabolism , Dihydroxyacetone Phosphate/metabolism , Dimerization , Escherichia coli , Glyceraldehyde 3-Phosphate/metabolism , Humans , Kinetics , Models, Molecular , Molecular Sequence Data , Protein Conformation/drug effects , Recombinant Proteins/genetics , Rhipicephalus/embryology , Sequence Alignment , Sulfhydryl Reagents/pharmacology , Triose-Phosphate Isomerase/antagonists & inhibitors , Triose-Phosphate Isomerase/genetics , Triose-Phosphate Isomerase/isolation & purification
13.
Eur J Med Chem ; 45(12): 5767-72, 2010 Dec.
Article in English | MEDLINE | ID: mdl-20889239

ABSTRACT

Triosephosphate isomerase from Trypanosoma cruzi (TcTIM), an enzyme in the glycolytic pathway that exhibits high catalytic rates of glyceraldehyde-3-phosphate- and dihydroxyacetone-phosphate-isomerization only in its dimeric form, was screened against an in-house chemical library containing nearly 230 compounds belonging to different chemotypes. After secondary screening, twenty-six compounds from eight different chemotypes were identified as screening positives. Four compounds displayed selectivity for TcTIM over TIM from Homo sapiens and, concomitantly, in vitro activity against T. cruzi.


Subject(s)
Enzyme Inhibitors/pharmacology , Small Molecule Libraries/pharmacology , Triose-Phosphate Isomerase/antagonists & inhibitors , Trypanocidal Agents/pharmacology , Trypanosoma cruzi/drug effects , Dimerization , Enzyme Inhibitors/chemical synthesis , Enzyme Inhibitors/chemistry , Models, Molecular , Molecular Structure , Parasitic Sensitivity Tests , Small Molecule Libraries/chemical synthesis , Small Molecule Libraries/chemistry , Stereoisomerism , Structure-Activity Relationship , Trypanocidal Agents/chemical synthesis , Trypanocidal Agents/chemistry , Trypanosoma cruzi/enzymology
14.
J Mol Biol ; 385(3): 924-37, 2009 Jan 23.
Article in English | MEDLINE | ID: mdl-18992756

ABSTRACT

Theoretical, computational, and experimental studies have suggested the existence of solvation barriers in protein unfolding and denaturation processes. These barriers are related to the finite size of water molecules and can be envisioned as arising from the asynchrony between water penetration and breakup of internal interactions. Solvation barriers have been proposed to play roles in protein cooperativity and kinetic stability; therefore, they may be expected to be subject to natural selection. We study the thermal denaturation, in the presence and in the absence of chemical denaturants, of triosephosphate isomerases (TIMs) from three different species: Trypanosoma cruzi, Trypanosoma brucei, and Leishmania mexicana. In all cases, denaturation was irreversible and kinetically controlled. Surprisingly, however, we found large differences between the kinetic denaturation parameters, with T. cruzi TIM showing a much larger activation energy value (and, consequently, much lower room-temperature, extrapolated denaturation rates). This disparity cannot be accounted for by variations in the degree of exposure to solvent in transition states (as measured by kinetic urea m values) and is, therefore, to be attributed mainly to differences in solvation-barrier contributions. This was supported by structure-energetics analyses of the transition states and by application of a novel procedure to estimate from experimental data the solvation-barrier impact at the entropy and free-energy levels. These analyses were actually performed with an extended protein set (including six small proteins plus seven variants of lipase from Thermomyces lanuginosus and spanning a wide range of activation parameters), allowing us to delineate the general trends of the solvation-barrier contributions. Overall, this work supports that proteins sharing the same structure and function but belonging to different organisms may show widely different solvation barriers, possibly as a result of different levels of the selection pressure associated with cooperativity, kinetic stability, and related factors.


Subject(s)
Trypanosoma/metabolism , Animals , Calorimetry, Differential Scanning , Kinetics , Models, Theoretical , Protein Denaturation , Solubility , Species Specificity , Thermodynamics
15.
Article in English | MEDLINE | ID: mdl-18678934

ABSTRACT

The PyrR transcriptional regulator is widely distributed in bacteria. This RNA-binding protein is involved in the control of genes involved in pyrimidine biosynthesis, in which uridyl and guanyl nucleotides function as effectors. Here, the crystallization and preliminary X-ray diffraction analysis of two crystal forms of Bacillus halodurans PyrR are reported. One of the forms belongs to the monoclinic space group P2(1) with unit-cell parameters a = 59.7, b = 87.4, c = 72.1 A, beta = 104.4 degrees , while the other form belongs to the orthorhombic space group P22(1)2(1) with unit-cell parameters a = 72.7, b = 95.9, c = 177.1 A. Preliminary X-ray diffraction data analysis and molecular-replacement solution revealed the presence of four and six monomers per asymmetric unit; a crystallographic tetramer is formed in both forms.


Subject(s)
Bacillus/chemistry , Bacterial Proteins/chemistry , Pentosyltransferases/chemistry , Repressor Proteins/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/isolation & purification , Base Sequence , Chromatography, Gel , Cloning, Molecular , Crystallography, X-Ray , DNA Primers , Electrophoresis, Polyacrylamide Gel , Models, Molecular , Pentosyltransferases/genetics , Pentosyltransferases/isolation & purification , Protein Conformation , Repressor Proteins/genetics , Repressor Proteins/isolation & purification
16.
J Biol Chem ; 283(34): 23254-63, 2008 Aug 22.
Article in English | MEDLINE | ID: mdl-18562316

ABSTRACT

Human triosephosphate isomerase deficiency is a rare autosomal disease that causes premature death of homozygous individuals. The most frequent mutation that leads to this illness is in position 104, which involves a conservative change of a Glu for Asp. Despite the extensive work that has been carried out on the E104D mutant enzyme in hemolysates and whole cells, the molecular basis of this disease is poorly understood. Here, we show that the purified, recombinant mutant enzyme E104D, while exhibiting normal catalytic activity, shows impairments in the formation of active dimers and low thermostability and monomerizes under conditions in which the wild type retains its dimeric form. The crystal structure of the E104D mutant at 1.85 A resolution showed that its global structure was similar to that of the wild type; however, residue 104 is part of a conserved cluster of 10 residues, five from each subunit. An analysis of the available high resolution structures of TIM dimers revealed that this cluster forms a cavity that possesses an elaborate conserved network of buried water molecules that bridge the two subunits. In the E104D mutant, a disruption of contacts of the amino acid side chains in the conserved cluster leads to a perturbation of the water network in which the water-protein and water-water interactions that join the two monomers are significantly weakened and diminished. Thus, the disruption of this solvent system would stand as the underlying cause of the deficiency.


Subject(s)
Anemia, Hemolytic, Congenital Nonspherocytic/enzymology , Anemia, Hemolytic, Congenital Nonspherocytic/genetics , Mutation , Triose-Phosphate Isomerase/deficiency , Triose-Phosphate Isomerase/genetics , Calorimetry, Differential Scanning , Crystallography, X-Ray/methods , Dimerization , Homozygote , Humans , Models, Molecular , Molecular Conformation , Protein Conformation , Recombinant Proteins/chemistry , Solvents/chemistry , Temperature , Water/chemistry
17.
Biochemistry ; 47(11): 3499-506, 2008 Mar 18.
Article in English | MEDLINE | ID: mdl-18298085

ABSTRACT

Cysteine 14 is an interface residue that is fundamental for the catalysis and stability of homodimeric triosephosphate isomerase from Trypanosoma brucei (TbTIM). Its side chain is surrounded by a deep pocket of 11 residues that are part of loop 3 of the adjacent monomer. Mutation of this residue to serine (producing single mutant C14S) yields a wild-type-like enzyme that is resistant to the action of sulfhydryl reagents methylmethane thiosulfonate (MMTS) and 5,5-dithiobis(2-nitrobenzoate) (DTNB). This mutant enzyme was a starting point for probing by cysteine scanning the role of four residues of loop 3 in the catalysis and stability of the enzyme. Considering that the conservative substitution of either serine or alanine with cysteine would minimally alter the structure and properties of the environment of the residue in position 14, we made double mutants C14S/A69C, C14S/S71C, C14S/A73C, and C14S/S79C. Three of these double mutants were similar in their kinetic parameters to wild-type TbTIM and the single mutant C14S, but double mutant C14S/A73C showed a greatly reduced k cat. All enzymes had similar CD spectra, but all mutants had thermal stabilities lower than that of wild-type TbTIM. Intrinsic fluorescence was also similar for all enzymes, but the double mutants bound up to 50 times more 1-anilino-8-naphthalene sulfonate (ANS) and were susceptible to digestion with subtilisin. The double mutants were also susceptible to inactivation by sulfhydryl reagents. Double mutant C14S/S79C exhibited the highest sensitivity to MMTS and DTNB, bound a significant amount of ANS, and had the highest sensitivity to subtilisin. Thus, the residues at positions 73 and 79 are critical for the catalysis and stability of TbTIM, respectively.


Subject(s)
Amino Acid Substitution , Triose-Phosphate Isomerase/chemistry , Triose-Phosphate Isomerase/metabolism , Trypanosoma brucei brucei/enzymology , Amino Acid Substitution/genetics , Animals , Circular Dichroism , Cysteine/genetics , Enzyme Stability/genetics , Hot Temperature , Kinetics , Mutation , Protein Structure, Tertiary/genetics , Serine/genetics , Solvents , Spectrometry, Fluorescence , Surface Properties , Triose-Phosphate Isomerase/genetics , Trypanosoma brucei brucei/genetics
18.
J Bioenerg Biomembr ; 40(6): 561-8, 2008 Dec.
Article in English | MEDLINE | ID: mdl-19139978

ABSTRACT

Although the capacity of isolated beta-subunits of the ATP synthase/ATPase to perform catalysis has been extensively studied, the results have not conclusively shown that the subunits are catalytically active. Since soluble F(1) of mitochondrial H(+)-ATPase can bind inorganic pyrophosphate (PP(i)) and synthesize PP(i) from medium phosphate, we examined if purified His-tagged beta-subunits from Thermophilic bacillus PS3 can hydrolyze PP(i). The difference spectra in the near UV CD of beta-subunits with and without PP(i) show that PP(i) binds to the subunits. Other studies show that beta-subunits hydrolyze [(32)P] PP(i) through a Mg(2+)-dependent process with an optimal pH of 8.3. Free Mg(2+) is required for maximal hydrolytic rates. The Km for PP(i) is 75 microM and the Vmax is 800 pmol/min/mg. ATP is a weak inhibitor of the reaction, it diminishes the Vmax and increases the Km for PP(i). Thus, isolated beta-subunits are catalytically competent with PP(i) as substrate; apparently, the assembly of beta-subunits into the ATPase complex changes substrate specificity, and leads to an increase in catalytic rates.


Subject(s)
ATP Synthetase Complexes/chemistry , ATP Synthetase Complexes/metabolism , Archaea/enzymology , Bacterial Proteins/chemistry , ATP Synthetase Complexes/isolation & purification , Catalysis , Enzyme Activation , Enzyme Stability , Hydrolysis , Solubility
19.
PLoS Negl Trop Dis ; 1(1): e1, 2007 Oct 31.
Article in English | MEDLINE | ID: mdl-17989778

ABSTRACT

BACKGROUND: Chagas disease affects around 18 million people in the American continent. Unfortunately, there is no satisfactory treatment for the disease. The drugs currently used are not specific and exert serious toxic effects. Thus, there is an urgent need for drugs that are effective. Looking for molecules to eliminate the parasite, we have targeted a central enzyme of the glycolytic pathway: triosephosphate isomerase (TIM). The homodimeric enzyme is catalytically active only as a dimer. Because there are significant differences in the interface of the enzymes from the parasite and humans, we searched for small molecules that specifically disrupt contact between the two subunits of the enzyme from Trypanosoma cruzi but not those of TIM from Homo sapiens (HTIM), and tested if they kill the parasite. METHODOLOGY/PRINCIPAL FINDINGS: Dithiodianiline (DTDA) at nanomolar concentrations completely inactivates recombinant TIM of T. cruzi (TcTIM). It also inactivated HTIM, but at concentrations around 400 times higher. DTDA was also tested on four TcTIM mutants with each of its four cysteines replaced with either valine or alanine. The sensitivity of the mutants to DTDA was markedly similar to that of the wild type. The crystal structure of the TcTIM soaked in DTDA at 2.15 A resolution, and the data on the mutants showed that inactivation resulted from alterations of the dimer interface. DTDA also prevented the growth of Escherichia coli cells transformed with TcTIM, had no effect on normal E. coli, and also killed T. cruzi epimastigotes in culture. CONCLUSIONS/SIGNIFICANCE: By targeting on the dimer interface of oligomeric enzymes from parasites, it is possible to discover small molecules that selectively thwart the life of the parasite. Also, the conformational changes that DTDA induces in the dimer interface of the trypanosomal enzyme are unique and identify a region of the interface that could be targeted for drug discovery.


Subject(s)
Triose-Phosphate Isomerase/metabolism , Trypanosoma cruzi/drug effects , Aniline Compounds/pharmacology , Animals , Chagas Disease/drug therapy , Chagas Disease/epidemiology , Cysteine/analysis , Dimerization , Escherichia coli/enzymology , Escherichia coli/genetics , Humans , Incidence , Kinetics , Models, Molecular , Protein Conformation , Recombinant Proteins/drug effects , Sequence Deletion , Triose-Phosphate Isomerase/chemistry , Triose-Phosphate Isomerase/genetics , Trypanosoma cruzi/enzymology , Trypanosoma cruzi/growth & development , X-Ray Diffraction
20.
Proteins ; 67(1): 75-83, 2007 Apr 01.
Article in English | MEDLINE | ID: mdl-17221869

ABSTRACT

Homodimeric triosephosphate isomerase (TIM) from Trypanosoma cruzi (TcTIM) and T. brucei (TbTIM) are markedly similar in amino acid sequence and three-dimensional structure. In their dimer interfaces, each monomer has a Cys15 that is surrounded by loop3 of the adjoining subunit. Perturbation of Cys15 by methylmethane thiosulfonate (MMTS) induces abolition of catalysis and structural changes. In the two TIMs, the structural arrangements of their Cys15 are almost identical. Nevertheless, the susceptibility of TcTIM to MMTS is nearly 100-fold higher than in TbTIM. To ascertain the extent to which the characteristics of the interface Cys depend on the dynamics of its own monomer or on those of the adjacent monomer, we studied MMTS action on mutants of TcTIM that had the interface residues of TbTIM, and hybrids that have only one interfacial Cys15 (C15ATcTIM-wild type TbTIM). We found that the solvent exposure of the interfacial Cys depends predominantly on the characteristics of the adjoining monomer. The maximal inhibition of activity induced by perturbation of the sole interface Cys in the C15ATcTIM-TbTIM hybrid is around 60%. Hybrids formed with C15ATcTIM monomers and catalytically inert TbTIM monomers (E168DTbTIM) were also studied. Their activity drops by nearly 50% when the only interfacial Cys is perturbed. These results in conjunction with those on C15ATcTIM-wild type TbTIM hybrid indicate that about half of the activity of each monomer depends on the integrity of each of the two Cys15-loop3 portions of the interface. This could be another reason of why TIM is an obligatory dimer.


Subject(s)
Cysteine/chemistry , Methyl Methanesulfonate/analogs & derivatives , Triose-Phosphate Isomerase/chemistry , Trypanosoma brucei brucei/enzymology , Trypanosoma cruzi/enzymology , Amino Acid Sequence , Animals , Dimerization , Kinetics , Methyl Methanesulfonate/chemistry , Methyl Methanesulfonate/pharmacology , Mutagenesis, Site-Directed , Protein Interaction Mapping/methods , Protein Structure, Quaternary , Triose-Phosphate Isomerase/antagonists & inhibitors , Triose-Phosphate Isomerase/genetics , Triose-Phosphate Isomerase/metabolism
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