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C C Blake

Publications and source records attributed to C C Blake.

At least 37 records · Page 2Linked to original sources

Comparison of the modelled thyroxine binding site in TBG with the experimentally determined site in transthyretin.

The structure of cleaved thyroxine-binding globulin (TBG) has been modelled on the crystal structure of cleaved alpha 1-antitrypsin (a member of the serine proteinase inhibitor, serpin, superfamily) based on the high sequence homology exhibited by the two proteins. Particular attention was paid to the identification and modelled characteristics of the thyroxine binding site. The primary aim of the study was to compare the site qualitatively with the crystallographically determined binding site of transthyretin, the other major transporter of thyroxine, in an attempt to explain the higher binding affinity of the site compared with the known thyroxine binding site in transthyretin (10(10) versus 10(8) M-1). The proposed binding site shares some similar characteristics with the transthyretin binding site but also includes a cluster of aromatic residues which are entirely absent in transthyretin. It is proposed that this might account for the substantial difference in binding affinities.

Amino Acid Sequence↗

Crystallization and preliminary crystallographic study of cathepsin D inhibitor from potatoes.

Single crystals of the glycosylated inhibitor of cathepsin D and trypsin isolated from potato tubers were obtained using the hanging drop vapor diffusion method and ammonium nitrate as precipitant. The crystals exhibit strong F222 pseudo symmetry but belong to the orthorhombic space group C222 or C222(1), with cell parameters a = 73.8 A, b = 119.9 A and c = 133.2 A with two molecules per asymmetric unit. The crystals diffract to a resolution of 2.4 A.

Cathepsin D↗

S-S bridges of cathepsin B and H from bovine spleen: a basis for cathepsin B model building and possible functional implications for discrimination between exo- and endopeptidase activities among cathepsins B, H and L.

Bovine spleen cathepsin B contains 7 disulfide bridges. Using different chemical and enzymatic cleavage methods we isolated fragments representing the individual disulfides: Cys14-Cys43, Cys26-Cys71, Cys62-Cys128, Cys63-Cys67, Cys100-Cys132, Cys108-Cys119, and Cys148-Cys252. A similar line of approach was applied to determine the S-S bridges of bovine spleen cathepsin H: Cys23-Cys66, Cys57-Cys99, Cys157-Cys207, and Cys212-Cys5A, where Cys5A is located in the propart portion of the procathepsin H chain. On the basis of the knowledge of the S-S bridges of cathepsin B a novel sequence alignment of papain and cathepsin B has been proposed. This enabled us to construct a reasonable 3D-model of cathepsin B and propose the region (a 18 residue insertion between Glu89 and Gly90 of papain) responsible for the carboxypeptidase activity of cathepsin B functioning as a "closure". A similar approach was applied to explain the aminopeptidase activity of cathepsin H. A general model of steric regulation of accessibility of the preformed "endopeptidase-like" binding cleft by distant parts of the polypeptide chain of the proteinases discussed is proposed as a factor determining the mode of binding and thus cleavage of polypeptide substrates.

Amino Acid Sequence↗

Iron- and manganese-containing superoxide dismutases can be distinguished by analysis of their primary structures.

The iron- and manganese-containing superoxide dismutases have very similar three-dimensional structures but can be distinguished by various biochemical means. The primary structures of six manganese-containing and three iron-containing superoxide dismutases are known. Analysis of the aligned amino acid sequences of these enzymes taken together with structural data from X-ray diffraction studies demonstrates that the two classes of enzyme can be distinguished on the basis of a small number of single-site substitutions that are positioned in and close to the active site of the enzyme.

Amino Acid Sequence↗

Crystal structure of manganese superoxide dismutase from Bacillus stearothermophilus at 2.4 A resolution.

The crystal structure of manganese superoxide dismutase (MnSOD) from Bacillus stearothermophilus has been solved at 2.4 A resolution by a combination of multiple isomorphous replacement and molecular replacement (1 A = 0.1 nm). The structure has been refined to a conventional R-factor for all 16,560 unique reflections at 2.4 A of 0.26, and the 2Fo-Fc density maps show features more consistent with the known amino acid sequence of MnSOD from B. stearothermophilus than with the starting model, the MnSOD from Thermus thermophilus. The molecule is a dimer of identical subunits, each with 203 amino acid residues. The polypeptide chain of the monomer is organized into two domains, one of which has an "all-alpha" structure and the other an "alpha/beta" structure, with the manganese ion bound between them. The ion is co-ordinated by three histidine residues, 26, 81 and 167, and one aspartic acid residue, 173, in a tetrahedral arrangement strongly distorted towards trigonal pyramidal. We anticipate that Tyr34, whose hydroxyl group is only 5 A from the metal, is involved in the catalytic reaction. The active site is particularly rich in aromatic amino acid residues. As in the Cu/ZnSOD there are indications that MnSOD provides electrostatic guidance to the substrate entering the active site.

Amino Acid Sequence↗

Structure and order of the protein and carbohydrate domains of prothrombin fragment 1.

The three-dimensional structure of prothrombin fragment 1 has been determined by X-ray crystallography at 3.8 A resolution. The fragment is composed of a number of structural units, some of which are ordered while others are disordered. The ordered part of the structure includes a compact kringle unit, a helical domain and a carbohydrate chain. The kringle structure is organized around a close pair of buried disulfide bridges. One of its carbohydrate chains, that attached to Asn 101, is fully ordered, but the carbohydrate chain attached to Asn 77 appears to be disordered. The calcium binding unit is composed of a disordered part containing all ten gamma-carboxyglutamic acid residues and an ordered part forming the helical domain. The highly conserved residues Phe 41, Trp 42 and Tyr 45, which form a hydrophobic cluster on the first helix, interact around a crystallographic two-fold axis with the equivalent residues in another molecule to form a dimer in the crystal.

Amino Acid Sequence↗

Deriving the generic structure of the fibronectin type II domain from the prothrombin Kringle 1 crystal structure.

The proposed homology between the fibronectin type II domain and the Kringle domains of blood clotting and fibrinolytic proteins has been examined in three dimensions by substituting the type II sequence into the bovine prothrombin Kringle 1 tertiary structure, determined by X-ray crystallographical methods at 3.8 A. Structural substitution of aligned amino acids of the type II domains and the Kringle produces a compact chain fold and deletions and insertions in the type II sequence are accommodated within the modelled structure. This confirms the structural homology between the two domains and verifies the sequence alignment and common evolution of the type II and Kringle units. The two structures contain homologous hydrophobic cores, centered around the two disulphide bridges which link conserved beta-type strands. Gross differences between the two domains occur in exterior loops and potential functional sites in these regions of the type II structures as found in fibronectin, Factor XII and seminal fluid protein PDC-109 are proposed. We suggest that the domains evolved from a common ancestral protein comprising the hydrophobic core and disulphide arrangement which later diverged to bind different macromolecules through adaptation of the external loops.

Amino Acid Sequence↗

Proteins, exons and molecular evolution.

The discovery of the eukaryotic gene structure has prompted research into the potential relationship between protein structure and function and the corresponding exon/intron patterns. The exon shuffling hypothesis put forward by Gilbert and Blake suggests the encodement of structural and functional protein elements by exons which can recombine to create novel proteins. This provides an explanation for the relatively rapid evolution of proteins from a few primordial molecules. As the number of gene and protein structures increases, evidence of exon shuffling is becoming more apparent and examples are presented both from modern multi-domain proteins and ancient proteins. Recent work into the chemical properties and catalytic functions of RNA have led to hypotheses based upon the early existence of RNA. These theories suggest that the split gene structure originated in the primordial soup as a result of random RNA synthesis. Stable regions of RNA, or exons, were utilised as primitive enzymes. In response to selective pressures for information storage, the activity was directly transferred from the RNA enzymes or ribozymes, to proteins. These short polypeptides fused together to create larger proteins with a wide range of functions. Recent research into RNA processing and exon size, discussed in this review, provides a clearer insight into the evolutionary development of the gene and protein structure.

Biological Evolution↗

Structurally specific binding of halogenated biphenyls to thyroxine transport protein.

Prealbumin is a major thyroxine binding protein in blood that has been well studied crystallographically and has also been proposed as a model for the thyroxine nuclear receptor in tissue. The high-affinity T4 binding site in prealbumin gave a linear plot on Scatchard analysis. The interactions of selected polychlorinated biphenyls (PCBs) with prealbumin have been studied with use of computer graphics and predictions made regarding relative binding affinities for such structures. These modeling predictions were tested by using competitive binding experiments involving selected PCBs and hydroxylated derivatives as soluble structural probes. The results are in excellent agreement with the modeling predictions and demonstrated that these compounds can be highly effective (3-8 times better than thyroxine itself) competitive binding ligands for thyroxine specific binding sites in prealbumin. Laterally (3,3',5,5'-) substituted PCBs show the highest binding activity and further substitution on nonlateral (2,2',6,6'-) positions lowers binding activity. Lateral chlorine substitution was common to all PCBs studied that showed high binding affinities. The binding model may also suggest a preference for a linear and symmetrical molecular shape. These structural requirements for binding are substantially consistent with the structure-toxicity relationship for closely related compounds of environmental interest. These specific binding interactions are likely to modulate the distribution of certain PCBs and related compounds and alter hormone-protein interactions that are responsible for the maintenance of normal thyroid status. Since prealbumin is also a model for the putative thyroxine nuclear receptor in tissue, our hypothesis that high toxicity of certain halogenated aromatic hydrocarbons is at least in part due to their thyromimetic properties is further supported.

Binding Sites↗

A "helix-scissors" mechanism for the hinge-bending conformational change in phosphoglycerate kinase.

X-ray studies of phosphoglycerate kinase (EC 2.7.2.3, PGK) have shown that the enzyme's single polypeptide chain is organized into two separate domains that correspond to the N- and C-terminal halves of the chain. Substrate binding studies and the incorporation of the complete amino acid sequence of horse-muscle PGK into its X-ray model suggest that the C-domain is an ADP/ATP binding unit and that the N-terminal domain contains the phosphoglycerate binding site and the active site located in a prominent cluster of positively charged residues. Because the distance between these two sites is 12-15 A, a hinge-bending of 10 degrees--20 degrees has been proposed to bring the two sites together for catalysis. Independent solution studies of yeast PGK have shown that the radius of gyration decreases significantly on the formation of the ternary complex. This change has been interpreted in terms of a 9 degrees--12 degrees rotation about a hinge in the interdomain region that brings the two domains together. We suggest here a structural basis for the proposed hinge-bending that involves the rotation of the two helices that form the domain interface about their contact normal carrying their respective domains with them.

Amino Acid Sequence↗

Energy supplementation and productivity of Guatemalan sugar-cane cutters: a longitudinal approach.

A long-term energy supplementation program was carried out to determine its effect on the productivity of agricultural workers in Guatemala. The program provided, free of charge, a low-energy (24 Kcal) and a high-energy (350 Kcal) bottled, orange-flavored soft drink to two groups of long-term resident sugar-cane cutters who worked on the same plantation, located in the Pacific Coast. Previous to, and periodically thereafter during implementation of the program, data relative to energy intake and anthropometry were collected. Through data obtained from payroll lists, a longitudinal series of average productivity (tons of sugar cane cut and loaded per day) covering 48 weeks of pre-supplementation, 90 weeks of supplementation and 21 weeks post-supplementation, was constructed. Control of the supplement consumption was daily observed. Random assignment of workers to the high-energy supplement (HES) and the low-energy (LES) groups, was not possible. Prior to supplementation both groups presented the same characteristics in terms of age, energy intake level, weight, height, tricipital adiposity and daily productivity. Little variation was found throughout the time the supplement was consumed by the HES Group. Energy intake of workers increased significantly in absolute terms in relation to the LES Group, except towards the end of the 28 months' supplementation period. Energy balance was maintained by workers throughout the study period. A time series of the difference in mean productivity of the two supplement groups (Yt) was modeled using the ARIMA techniques. No auto-regressive term was present in the Yt series. The ARIMA (0,0,1) model was fitted and expanded with different intervention components. None of the estimated parameters of the intervention components were statistically significant. It was therefore concluded that no abrupt, or gradual and sustained energy supplementation effect on productivity was present.

Adolescent↗

Molecular interactions of toxic chlorinated dibenzo-p-dioxins and dibenzofurans with thyroxine binding prealbumin.

The interactions of 2,3,7,8-tetrachlorodibenzo-p-dioxin and related compounds with prealbumin, a model for the nuclear thyroid hormone receptor, have been studied with use of computer graphics and predictions made regarding relative binding affinities for such structures. These modeling predictions were tested by experimentally measuring the binding affinities of dioxin and furan analogues. The results were in general agreement with the modeling predictions and demonstrated that such compounds could be effective competitive binding ligands for thyroxine-specific binding sites in prealbumin. The computer modeling work also demonstrates the importance of lateral chlorine substitution in the binding of these toxic compounds. The prealbumin interaction model should be of use in investigating the structure-toxicity relationships of these classes of toxic compounds. Thus, if prealbumin is a model for the nuclear thyroid hormone receptor, this work would also have major implications bearing on the mechanism of dioxin toxicity and the potential of these compounds to function as potent and persistent thyroxine agonists. A new cooperative receptor mechanism for dioxin toxic action is proposed.

Benzofurans↗

Structure of the human phosphoglycerate kinase gene and the intron-mediated evolution and dispersal of the nucleotide-binding domain.

The human X-linked phosphoglycerate kinase (PGK) gene, which is expressed in all somatic cells, was cloned and its structure was determined. The gene is interrupted by 10 introns and spans 23 kilobases. When projected on the three-dimensional structure of the PGK protein molecule, splice junctions are located between established peptide domains. In particular, an intron separates the two mononucleotide subdomains of the ATP-binding region, and additional introns divide each of these subdomains between their characteristic beta-strands. Similar correlations are found in the bipartite NAD-binding domains of alcohol dehydrogenase and glyceraldehyde-3-phosphate dehydrogenase. Furthermore, in each case the nucleotide-binding domain is separated from the catalytic domain by at least one intron. The homology of the exon organization in structurally similar regions of these three enzymes suggests that a nucleotide-binding domain evolved by gene duplication and was subsequently dispersed to different proteins through a process of intron-mediated recombination.

Amino Acid Sequence↗

Preliminary X-ray investigation of enzyme substrate complexes of horse muscle phosphoglycerate kinase.

Crystals of horse muscle 3-phosphoglycerate kinase have been grown in the presence of a wide variety of substrates using either potassium tartrate or polyethylene glycol as a precipitant. In those grown from polyethylene glycol, two related crystal forms have been obtained by varying the nature of the substrates present in the crystallization medium. In order to obtain one of these forms, form B, the presence of the substrate 3-phosphoglycerate appears to be essential. The two crystal forms are not interconvertible by simple diffusion experiments and the crystals grown in the absence of 3-phosphoglycerate are destroyed by its addition. The properties of crystal form B would be consistent with it representing a "hinge closed" form for this enzyme.

Adenosine Triphosphate↗

X-ray studies of water in crystals of lysozyme.

The structure of the water in crystals of human and tortoise egg-white lysozyme, which contain about 350 and about 650 water molecules per protein molecule, respectively, has been studied by X-ray refinement at high resolution. In the crystals, 60 to 80% of the total water is represented by featureless electron density filling the crystal interstices, which can be modelled to a first approximation by a single-valued, smoothed electron density continuum. The number of ordered water molecules detected is 140 for human and 128 for tortoise. These ordered water molecules are either hydrogen-bonded to protein polar groups, or hydrogen-bonded to other bound water molecules, to form a single layer around the protein molecules. Estimates of the proportion of the protein surface covered by ordered water molecules have been obtained by contact area calculations, giving a lower limit of approximately 45%, an upper limit of approximately 85% and a "best" estimate of approximately 75%. Examination of the structure of the ordered water layer shows that it is probably not any other single regular structure, and suggests that there is a local ordering controlled by the nature of the protein surface. Nearly all exposed protein polar atoms interact with ordered water molecules with, on average, protein oxygen atoms interacting with twice as many water molecules as protein nitrogen atoms. Analysis of the relation of the B-factors of the bound water molecules to the B-factors of the protein atoms to which they are bound, suggests that the 33 to 35 water molecules that make multiple hydrogen bonds with the lysozyme molecules are strongly bound, and that the 95 to 105 waters that make single hydrogen bonds to the protein or other bound water molecules are more weakly bound. Comparison of the location of the bound water molecules in the two lysozymes shows that most of the multiply bound water molecules occupy similar binding sites, suggesting that crystal packing or the presence of salt ions does not have a dominating influence on the protein-water interaction, which therefore may correspond to that in solution.

Animals↗

Computer graphics in drug design: molecular modeling of thyroid hormone-prealbumin interactions.

Computer graphics modeling of the thyroxine-prealbumin complex provides a detailed picture of the interactions between thyroxine and prealbumin. A wide variety of thyroid hormone analogue-prealbumin complexes were modeled by calculating the molecular surfaces of the analogues and the prealbumin hormone-binding site. Analogues with high binding affinity were observed to fill more of the hormone-binding site than low-affinity analogues. These surface models described many aspects of the hormone-protein interaction which were not obvious using simple wire models and led us to develop a model which accounts for thyroid hormone-prealbumin structure-activity relationships and ultimately to predict and measure the relative binding affinities of four previously untested thyroid hormone analogues to prealbumin.

Chemical Phenomena↗