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C T Craescu

Publications and source records attributed to C T Craescu.

At least 37 records · Page 2Linked to original sources

Nereis sarcoplasmic Ca2+-binding protein has a highly unstructured apo state which is switched to the native state upon binding of the first Ca2+ ion.

NSCP, a sarcoplasmic Ca2+/Mg2+-binding protein from Nereis diversicolor, shows an allosteric change during Ca2+ binding and a high positive cooperativity for Mg2+ binding. Here we report the results of CD and NMR experiments aiming to characterize the apo state and the Ca2+-induced conformational changes in this protein. Circular dichroism spectra of the apo form are indicative of a reduced helical structure. In contrast, NMR spectra show no element of regular secondary or tertiary structure. Addition of one Ca2+ determines large spectral changes bringing the molecule in a conformation which is very close to the native three Ca2+ state. Addition of the second and third Ca2+ shifts this equilibrium progressively towards the liganded conformation but affects only minimally the spectrum of the liganded species.

Animals↗

Three-dimensional structure of the immunophilin-like domain of FKBP59 in solution.

FKBP59 is a protein usually associated with heat-shock protein hsp90 and steroid receptors. The N-terminal domain of the rabbit liver protein (149 amino acids) has a sequence homology with FKBP12, binds FK506 immunosuppressor, and has a peptidyl-prolyl cis-trans isomerase activity. The three-dimensional structure of this domain (FKBP59-I) was determined using homo- and heteronuclear multidimensional NMR spectroscopy, distance geometry, and molecular dynamics methods. Structure calculations used 1290 interproton distance restraints derived from nuclear Overhauser enhancement measurements, 29 dihedral phi angle restraints, and 92 hydrogen bond restraints. For the final 22 structures, the root mean square distance from the mean atomic coordinates, calculated for well-defined secondary structure fragments, is 0.47 +/- 0.05 and 1.26 +/- 0.15 A for backbone heavy atoms (N, C alpha, C') and for all non-hydrogen atoms, respectively. The global fold contains a twisted six-stranded antiparallel beta-sheet and a short alpha-helix packed on the hydrophobic side of the sheet. The 20 N-terminal and 12 C-terminal amino acids of the domain are disordered. The main-chain structure of FKBP59-I is globally similar to the NMR-derived and X-ray structures of unbound FKBP12. An unusual hydrogen bond interaction between the indole amino proton of Trp 89 and the aromatic cycle of Phe 129 was observed. This gives a large upfield shift (-4.8 ppm) and a significant exchange protection factor. The implications of the present structure determination on the ligand binding of FKBP59 are discussed.

Amino Acid Sequence↗

Five unknown mutations in the LR pyruvate kinase gene associated with severe hereditary nonspherocytic haemolytic anaemia in France.

A survey of PK-deficient patients by molecular biology techniques has been performed in France in 26 unrelated families, in which at least one mutation has been characterized. The patients, of European or North African origin, exhibited approximatively 10% of PK activity. Among the PK-R mutants described, mutation G1529-->A (Arg-509-->Gln) was the most frequent. The strategy followed for the description of PK mutants in France firstly involves determination of this mutation by PCR amplification and restriction enzyme digestion and, secondly, the sequencing of the gene for negative samples. Study of the mutation at residue 509 in 26 unrelated families indicated that 10/52 defective alleles possessed this mutation. Our study described seven different mutations; five of these have not as yet been documented. Two frameshift mutations were found: the deletion of one G base in a repetition of four Gs in position 1231-1234 (PK Mondor), del C-1527 (PK Rouen), and three missense mutations: G382-->C (Ala-114-->Pro) (PK Val-de-Marne), C398-->T (Ser-119-->Phe) (PK Beaujon), A1217-->G (Asn-392-->Ser) (PK Paris). Two mutations which were detected have been reported previously: C760-->T (Glu-240-->End) and G1529-->A (Arg-509-->Gln.

Anemia, Hemolytic↗

1H and 15N assignment of NMR spectrum, secondary structure and global folding of the immunophilin-like domain of the 59-kDa FK506-binding protein.

FKBP59, a 59-kDa FK506 binding protein, was discovered in heterooligomeric complexes containing nontransformed, non-DNA binding, steroid receptors. Sequence similarity search and secondary structure prediction suggested that the protein has a multi-domain organization, the N-terminal domain having a great similarity to human FKBP12 (12-kDa FK506-binding protein). FKBP59 binds immunosuppressant FK506 and has peptidylprolyl cis-trans-isomerase activity, both properties being localized in the N-terminal domain (FKBP59-I). In order to characterize its conformational features and to better understand its biological significance, we overexpressed and 15N-labeled this domain (149 amino acids) in Escherichia coli and initiated an NMR structural study in solution. Almost complete sequence-specific assignment of the 1H and 15N resonances was achieved using two-dimensional and three-dimensional homonuclear and heteronuclear experiments. Localization of the secondary structure elements was derived essentially from C alpha H chemical shift distribution along the sequence, the short-range and medium-range NOE connectivities and exchange kinetics of amide protons. The domain has a structured part comprising six beta-strands and a three-turn alpha-helix between K87 and M96. The first 17 residues are highly flexible and show no regular secondary structure. The beta-sheet structure, derived from long-range connectivities between backbone protons, consists of six beta-strands defined as follows: B1, V22-I24; B2, V32-K37; B3, D50-L61; B4, T64-S68 and F76-L80; B5, E100-K107; B6, L127-F137. They are organized in an antiparallel beta-sheet with the connecting topology +1, +3, +1, -3, +1. The alpha-helix connects strand B4 to strand B5. Globally, the structure of FKBP59-I, derived from the present work, is similar to the NMR-derived structures of uncomplexed FKBP12. However, several conformational differences were noted at this level of structural analysis. The beta-sheet of the FKBP59 domain has an additional strand at the N-terminal and the alpha-helix is longer by about one helical turn. In addition, strand B4 has two components, separated by a large bulge (seven residues); the first component was observed in the X-ray or NMR structures of complexed FKBP12 but not in the NMR-derived, uncomplexed structure.

Amino Acid Sequence↗

Structural characterization by nuclear magnetic resonance spectroscopy of a genetically engineered high-affinity calmodulin-binding peptide derived from Bordetella pertussis adenylate cyclase.

This paper reports the solution conformation of a peptide (P196-267) derived from the calmodulin-binding domain of Bordetella pertussis adenylate cyclase. P196-267 corresponding to the protein fragment situated between amino acid residues 196-267 was overproduced by a recombinant Escherichia coli strain. Its affinity for calmodulin is only one order of magnitude lower (Kd = 2.4 nM) than that of the whole bacterial enzyme (Kd = 0.2 nM). The proton resonances of the NMR spectra of P196-267 were assigned using homonuclear two-dimensional techniques (double-quantum-filtered J-correlated spectroscopy, total correlation spectroscopy, and nuclear Overhauser enhancement spectroscopy) and a standard assignment procedure. Analysis of the nuclear Overhauser effect connectivities and the secondary shift distribution of C alpha protons along the sequence allowed us to identify the elements of regular secondary structure. The peptide is flexible in solution, being in equilibrium between random coil and helical structures. Two segments of 11 amino acids (situated between V215 and A225) and 15 amino acids (situated between L233 and A247) populate in a significant proportion the helix conformational state. The two helices can be considerably stabilized in a mixed solvent, trifluoroethanol/water (30/70), suggesting that the corresponding fragment in the intact protein assumes a similar secondary conformation. No elements of tertiary structure organization were detected by the present experiments. The conformational properties of the isolated calmodulin target fragment are discussed in relation with the available NMR and X-ray data on various peptides complexed to calmodulin.

Adenylyl Cyclases↗

Calmodulin binding of a peptide derived from the regulatory domain of Bordetella pertussis adenylate cyclase.

This paper reports the solution conformation and calmodulin binding of a 43-residue peptide from the calmodulin-binding domain of Bordetella pertussis adenylate cyclase. The peptide (P225-267) was synthesized and 15N-labeled at specific amino acids. It binds calmodulin with an equilibrium dissociation constant of 25 nM. Assignment of the NMR spectrum of the free peptide and analysis of the NOE connectivities and secondary shifts of C alpha protons allowed us to identify a 10-amino acid fragment (Arg237 to Arg246) which is in rapid equilibrium between alpha-helical and irregular structures. Titration experiments showed that at substoichiometric molar ratios the two molecules are in intermediate exchange between free and bound conformations. Using 15N-edited methods we assigned a large part of resonances of the labeled residues in the bound peptide. Analysis of the chemical shift differences between free and bound states shows that the fragment Leu240-Ala257 is the most affected by the interaction. The proton spectra of the calmodulin, in the free and complexed states were extensively assigned using homonuclear experiments. Medium- and long-range NOE patterns are consistent with a largely conserved secondary and tertiary structure. The main changes in chemical shift of calmodulin resonances are grouped in six structural regions both in NH2- and COOH-terminal domains. Intermolecular NOE connectivities indicate that the NH2-terminal of the bound peptide fragment is engulfed in the COOH-terminal domain of calmodulin. The interaction geometry appears to be similar to those previously described for myosin light chain kinase or calmodulin kinase II fragments.

Adenylyl Cyclases↗

Enzymatic synthesis of guanine nucleotides labeled with 15N at the 2-amino group of the purine ring.

GMP and dGMP labeled with 15N at the 2-amino group of the purine ring was obtained enzymatically from NH4Cl (> 99 at.% 15N) and from IMP or dIMP, respectively, by several reactions involving IMP-dehydrogenase, GMP-synthetase, adenylate kinase, and creatine kinase. The first three enzymes were obtained by overexpression in Escherichia coli of the corresponding genes. The isotope content of the primary amino group of guanine determined by mass spectrometry after acid hydrolysis of nucleotides was found higher than 98 at.% 15N. The proton NMR spectrum of [15N]GMP in solution in the absence of nitrogen decoupling showed a doublet with a coupling constant of 92 Hz. When nitrogen decoupling was used during the acquisition time, the doublet was replaced by a single peak at 6.47 ppm, indicating that the corresponding proton is bound to 15N.

Adenylate Kinase↗

Molecular approach to protein-polymer interactions in ion-exchange chromatography.

A model was developed and implemented to aid in understanding and predicting the retention behaviour of proteins in ion-exchange chromatography. The model structures chosen were calcium-loaded and -depleted alpha-lactalbumin (ALC) and hen egg white lysozyme (HEWL) and a comparison was made with chromatographic measurements. A characteristic charge of -3.4 was found under the experimental conditions applied for both forms of ALC, and HEWL was not retained. The model explicitly considers all of the atoms, each being assigned a set of force field parameters. Because of the computational time necessary to include them, water molecules were not taken into account, but a sigmoidal function of the dielectric permittivity was introduced in the calculations. Interaction potential energies from bulk down to the contact were evaluated for each protein. The results were in qualitative agreement with those of the chromatographic experiments. It was possible to reproduce the difference in retention between both forms of ALC and also the behaviour of HEWL.

Animals↗

Zinc chelation and structural stability of adenylate kinase from Bacillus subtilis.

Adenylate kinase from Bacillus subtilis, like the enzyme from Bacillus stearothermophilus, contains a structural zinc atom. Cys153 in the enzyme from B. stearothermophilus, which is involved in the zinc coordination, is replaced in the adenylate kinase from B. subtilis by an aspartic acid residue. Therefore, we were interested in establishing whether this difference has an impact on the structure, the metal chelation, and the overall stability of these proteins. We also were interested in determining whether His138, which is conserved in many adenylate kinases, can act as a fourth partner in the metal chelation and, in general, whether His can successfully replace Cys or Asp in coordinating zinc in the adenylate kinase from B. subtilis. The adk gene from B. subtilis was cloned by polymerase chain reaction. The wild-type protein, together with several variants obtained by site-directed mutagenesis, were expressed in Escherichia coli and analyzed by biochemical and physicochemical methods. The H138N and D153C mutants of adenylate kinase from B. subtilis exhibited properties similar to those of the wild-type protein, indicating that His138 is not involved in metal coordination and that Asp153, just like Cys in the analogous position in the enzyme from B. stearothermophilus, can participate in zinc chelation. This is the first experimental evidence indicating that aspartic acid can be involved in the coordination of a structural zinc atom. On the other hand, the D153H and D153T variants showed significant changes in their zinc-binding properties. Dialysis of the latter proteins against buffer (in both the presence and the absence of 2 mM EDTA) resulted in removal of the metal ion and loss of enzymatic activity.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenylate Kinase↗

A recombinant bisphosphoglycerate mutase variant with acid phosphatase homology degrades 2,3-diphosphoglycerate.

To date no definite and undisputed treatment has been found for sickle cell anemia, which is characterized by polymerization of a deoxygenated hemoglobin mutant (HbS) giving rise to deformed erythrocytes and vasoocclusive complications. Since the erythrocyte glycerate 2,3-bisphosphate (2,3-DPG) has been shown to facilitate this polymerization, one therapeutic approach would be to decrease the intraerythrocytic level of 2,3-DPG by increasing the phosphatase activity of the bisphosphoglycerate mutase (BPGM; 3-phospho-D-glycerate 1,2-phosphomutase, EC 5.4.2.4). For this purpose, we have investigated the role of Gly-13, which is located in the active site sequence Arg9-His10-Gly11-Glu12-Gly13 in human BPGM. This sequence is similar to the Arg-His-Gly-Xaa-Arg* sequence of the distantly related acid phosphatases, which catalyze as BPGM similar phosphoryl transfers but to a greater extent. We hypothesized that the conserved Arg* residue in acid phosphatase sequences facilitates the phosphoryl transfer. Consequently, in human BPGM, we replaced by site-directed mutagenesis the corresponding amino acid residue Gly13 with an Arg or a Lys. In another experiment, we replaced Gly13 with Ser, the amino acid present at the corresponding position of the homologous yeast phosphoglycerate mutase (D-phosphoglycerate 2,3-phosphomutase, EC 5.4.2.1). Mutation of Gly13 to Ser did not modify the synthase activity, whereas the mutase and the phosphatase were 2-fold increased or decreased, respectively. However, replacing Gly13 with Arg enhanced phosphatase activity 28.6-fold, whereas synthase and mutase activities were 10-fold decreased. The presence of a Lys in position 13 gave rise to a smaller increase in phosphatase activity (6.5-fold) but an identical decrease in synthase and mutase activities. Taken together these results support the hypothesis that a positively charged amino acid residue in position 13, especially Arg, greatly activates the phosphoryl transfer to water. These results also provide elements for locating the conserved Arg* residue in the active site of acid phosphatases and facilitating the phosphoryl transfer. The implications for genetic therapy of sickle cell disease are discussed.

2,3-Diphosphoglycerate↗

A single amino acid substitution in the exoplasmic domain of the human growth hormone (GH) receptor confers familial GH resistance (Laron syndrome) with positive GH-binding activity by abolishing receptor homodimerization.

Growth hormone (GH) elicits a variety of biological activities mainly mediated by the GH receptor (GHR), a transmembrane protein that, based on in vitro studies, seemed to function as a homodimer. To test this hypothesis directly, we investigated patients displaying the classic features of Laron syndrome (familial GH resistance characterized by severe dwarfism and metabolic dysfunction), except for the presence of normal binding activity of the plasma GH-binding protein, a molecule that derives from the exoplasmic-coding domain of the GHR gene. In two unrelated families, the same GHR mutation was identified, resulting in the substitution of a highly conserved aspartate residue by histidine at position 152 (D152H) of the exoplasmic domain, within the postulated interface sequence involved in homodimerization. The recombinant mutated receptor protein was correctly expressed at the plasma membrane. It displayed subnormal GH-binding activity, a finding in agreement with the X-ray crystal structure data inferring this aspartate residue outside the GH-binding domain. However, mAb-based studies suggested the critical role of aspartate 152 in the proper folding of the interface area. We show that a recombinant soluble form of the mutant receptor is unable to dimerize, the D152H substitution also preventing the formation of heterodimers of wild-type and mutant molecules. These results provide in vivo evidence that monomeric receptors are inactive and that receptor dimerization is involved in the primary signalling of the GH-associated growth-promoting and metabolic actions.

Amino Acid Sequence↗

NMR and circular dichroic studies of the solution structure of conformationally constrained antigenic peptides.

Circular dichroic and nuclear magnetic resonance spectroscopies were used to evaluate the conformational properties in solution of a series of 20-amino-acid peptides derived from the primary structure of an antigen from Echinococcus granulosus. The linear peptide corresponding to the sequence 93-112 in the antigen was found to populate in a significant proportion the alpha-helix conformational state. In the presence of 2,2,2-trifluoroethanol, a cosolvent known to stabilize peptide secondary structure, the helical population, estimated from circular dichroic spectra, increases up to 60-70%. Two-dimensional nuclear magnetic resonance studies under these conditions showed that the segment K96-K108 meets all the criteria of an alpha-helix at 281 K and 298 K. Three different variants were synthesized with the same or similar primary structure but containing a lactam-bridged (>) side chain: D107 > K110, D97 > K100 and K94 > E98. Generally, the observed helical content in these variants was lower than in the parent molecule and the stability of the helical conformation decreased in the order D107, K110, K94, E98, D97, K100. Analysis of chemical shift and nuclear Overhauser enhancement data suggested that the lactam rings induce significant distortions of the local features of helix secondary structure. The possible factors of helix destabilization induced by lactam bridges, observed in the studied peptides are discussed in relation to the stabilizing effect of ion pairs in model compounds.

Amino Acid Sequence↗

Purification and biological activity of a recombinant human erythropoietin produced by lymphoblastoid cells.

A recombinant human erythropoietin (rH-EPO) was obtained from the culture supernatants of human B-lymphoblastoid cells transfected by the human EPO gene. rH-EPO was purified by a two-step method based on immunoaffinity and ion exchange chromatography. The first step was achieved by an anti-EPO monoclonal antibody (Mab). This Mab, immobilized on Sepharose 4B, allowed a 410-fold purification of the protein. The second step consisted of ion exchange chromatography on DEAE Sephacel. The combination of these two steps results in a highly purified rH-EPO with a global yield of about 50%; the specific activity of the protein was 176,000 IU/A280. The NMR spectrum was characteristic for a well structured, single-conformation protein. The purified protein was analyzed by SDS-PAGE and isoelectric focusing. The biological activity of purified rH-EPO was measured in vivo, by the incorporation of 59Fe into red blood cells (RBC) of polycythemic mice and in vitro by the proliferative response of an EPO-dependent cell line. The purified protein expressed in lymphoblastoid cells of human origin had the same biological activity as that of urinary EPO and rH-EPO produced in other mammalian cells.

Amino Acid Sequence↗

Sequential assignment of proton resonances in the NMR spectrum of Zn-substituted alpha chains from human hemoglobin. Ligand-induced tertiary changes in the heme pocket.

We constructed an artificial holoprotein as a complex between alpha globin from human adult hemoglobin and the protoporphyrin IX-Zn(II). The prosthetic group is bound in a single conformation to the apoglobin via a coordinative bond between Zn(II) ion and the proximal histidine (His87). The complex is diamagnetic and does not bind either CO nor O2 thus representing a diamagnetic model of deoxygenated alpha chains. In the present paper we report extensive resonance assignment in the proton nuclear magnetic resonance spectrum of the Zn-substituted alpha chains in phosphate buffer pH 5.6. A large number of aromatic and aliphatic side chain spin systems were identified in the two-dimensional homonuclear COSY spectra. Based on the assigned resonances of heme substituent protons and their NOE cross-peaks, we assigned the majority of resonances representing the heme pocket side chains. Using the main-chain-directed assignment strategy, we could establish several continuous patterns of sequential assignment and identify partial or total spin systems for a large number of side chains. The final assignment corresponds to 73% of the amino acids. Analysis of chemical shift of assigned resonances and of nuclear Overhauser enhancement connectivities provides structural information on the global and local tertiary conformation in solution and on the ligand-induced conformational changes. Comparison of observed and calculated ring current shifts enabled us to compare the solution structure with the X-ray crystal structure of alpha subunits in deoxy and carbonmonoxy hemoglobin. The global tertiary structure of unliganded chains is highly similar to both ligand and unliganded counterparts in the crystalline state. On the distal side of the heme pocket. Val62 is significantly closer to the heme center, in agreement with its conformation in the crystallographic structure. In contrast, the position of the proximal histidine (His87) relative to the heme is clearly more closely related to that in the liganded tetramer in the crystalline state. Comparison of the chemical shift values for the resonances in carbon monoxy and Zn(II)-substituted alpha chains indicates that the ligand-induced conformational changes are essentially localized in the heme pocket area and affect proximal side residues more than the distal side ones. Some notable spectral changes are discussed in connection with the crystallographic data and their relevance for the functional mechanism.

Amino Acid Sequence↗

Amino acid residues involved in the catalytic site of human erythrocyte bisphosphoglycerate mutase. Functional consequences of substitutions of His10, His187 and Arg89.

Human bisphosphoglycerate mutase (GriP2 mutase) is a trifunctional enzyme which synthesizes and degrades GriP2 in red cells. Among the amino acid residues involved in its active site there are two conserved histidine residues, His10 which is phosphorylated during the catalytic process and His187 for which only speculative data have been made about the potential role during the reactions. Another amino acid residue, Arg89, had not been described as part of this active site but we have recently shown that a natural mutant Arg89-->Cys was highly thermolabile and showed severe perturbations of its enzymatic properties. To understand better the exact role of these residues, replacements of His10 by Gly (H10G) or Asp (H10D), His187 by Asn (H187N), Tyr (H187Y) or Asp (H187D) and Arg89 by Cys (R89C), Ser (R89S), Gly (R89G) or Lys (R89K) were performed by site-directed mutagenesis. The results obtained in this report show that replacement of the His10 residue completely abolished the enzymatic activities. Concerning the His187 residue, our results afford arguments that it plays an essential role in the three catalytic activities. Indeed all these activities are abolished in the two H187Y and H187D variants, whereas they are detectable though strongly diminished, for the H187N variant. In addition mutations at His187 could be distinguishable from those at His10 since the former resulted in a thermolabile enzyme, whereas no significant change in heat stability was observed for the latter. It is noteworthy that the H187N variant is protected against thermal instability by glycerate 2,3-bisphosphate (GriP2). Concerning the Arg89 mutants, R89C, R89S and R89G, the three variants showed characteristics identical to those found in the natural R89C mutant, i.e. loss of 99% of synthase activity, consistent decrease of mutase and 2-phosphoglycolate-stimulated phosphatase activities whereas the unstimulated phosphatase activity was normal. Moreover these mutants were unstable at 55 degrees C but GriP2 was able to protect them against thermal instability. In contrast, the R89K mutant was stable at 55 degrees C. Its synthase and unstimulated phosphatase activities were normal but its mutase and 2-phosphoglycolate-stimulated phosphatase activities were decreased. In addition, Km values for monophosphoglycerates were increased (3.2-fold) in the synthase but normal in mutase activities, whereas Km values for GriP2 were normal in mutase and phosphatase activities.(ABSTRACT TRUNCATED AT 400 WORDS)

Arginine↗

Characterization of a synthetic calmodulin-binding peptide derived from Bacillus anthracis adenylate cyclase.

A 34-amino acid peptide corresponding to residues 532-565 of Bacillus anthracis adenylate cyclase (P532-565), a calmodulin (CaM)-activated enzyme, was synthesized by solid phase method. Although not homologous to any known CaM binding sequence, P532-565 exhibits molecular features characteristic of this class of peptides: a higher proportion of basic and hydrophobic residues, segregated onto the two faces of the alpha-helical structure. Fluorescence measurements and gel retardation analysis showed that P532-565 binds CaM in a Ca(2+)-dependent manner, with a binding energy that represents 80% of the binding energy of the adenylate cyclase-CaM complex. Circular dichroism analysis showed that P532-565 exists in solution as a mixture of random-coil and alpha-helical structures and that trifluoroethanol increases the relative proportion of alpha-helical population. Analysis of proton NMR spectrum in H2O allowed identification of the different amino acid spin systems and complete spectral assignment. The pattern of nuclear Overhauser effect connectivities, intense NN(i,i + 1) and medium range alpha N(i,i + 3) and alpha beta (i,i + 3) indicate the presence of an alpha-helix in the carboxylterminal end (between residues 551 and 563) in fast exchange with extended structures. These data, together with CaM-binding properties of Bordetella pertussis adenylate cyclase, show that despite rather divergent primary structures, the two bacterial enzymes possess similar structural organization of their binding sites for activator protein.

Adenylyl Cyclases↗

Sequential assignment of the proton NMR spectrum of isolated alpha(CO) chains from human adult hemoglobin.

In this paper we report proton two-dimensional NMR experiments on isolated alpha chains from human hemoglobin A (HbA) in the monocarboxylated state. Several J-correlated and NOE spectra in water or deuterium water and phosphate buffer (100 mM) at 310 K and pH 5.6 were acquired and analysed for the sequential assignment of the proton resonances. In addition, we used the topological data obtained from the crystal structure of alpha subunits in the monocarboxylated HbA tetramer. The assigned resonances correspond to 70% of the amino acid residues. The present results provide information on the tertiary structure of isolated alpha chains in solution, particularly in the heme region. This structure may be compared with that of the a subunits in the tetrameric HbA(CO) in crystal by comparison of observed chemical shifts and those calculated from the X-ray atomic coordinates. Overall, the global folding of the two forms are highly similar. However, this analysis points out several local conformational differences in the heme pocket and the neighboring of the unique Trp residue. Possible explanations of these differences are discussed.

Amino Acid Sequence↗

1H and 15N NMR characterization of free and bound states of an amphiphilic peptide interacting with calmodulin.

A peptide of 17 amino acid residues Ac-L-K-W-K-K-L-L-K-L-L-K-K-L-L-K-L-G-NH2, designed to form an amphiphilic basic alpha-helix [DeGrado, W.F., Prendergast, F. G., Wolfe, H. R., Jr., & Cox, J. A. (1985) J. Cell. Biochem. 29, 83-93], was labeled with 15N at positions 1, 7, 9, and 10. Homo- and heteronuclear NMR techniques were used to characterize the conformational changes of the peptide when it binds to calmodulin in the presence of Ca2+ ions. The spectrum of the free peptide in aqueous solution at pH 6.3 and 298 K was completely assigned by a combined application of several two-dimensional proton NMR methods. Analysis of the short- and medium-range NOE connectivities and of the secondary chemical shifts indicated that the peptide populates, to a significant extent, an alpha-helix conformational state, in agreement with circular dichroism measurements under similar physicochemical conditions. 15N-edited 1D spectra and 15N(omega 2)-half-filtered two-dimensional NMR experiments on the peptide in a 1:1 complex with calmodulin allowed assignment of half of the amide proton resonances and three C alpha H resonances of the bound peptide. The observed NOE connectivities between the peptide backbone protons are indicative of a stable helical secondary structure spanning at least the fragment L1-K11. The equilibrium and dynamic NMR parameters of the bound peptide are discussed in terms of a molecular interaction model.

Amino Acid Sequence↗