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The 2.0 angstroms crystal structure of a pocilloporin at pH 3.5: the structural basis for the linkage between color transition and halide binding.

The pocilloporin Rtms5 and an engineered variant Rtms5H146S undergo distinct color transitions (from blue to red to yellow to colorless) in a pH-dependent manner. pK(a) values of 4.1 and 3.2 were determined for the blue (absorption lambda(max), 590 nm) to yellow (absorption lambda(max), approximately 453 nm) transitions of Rtms5 and Rtms5H146. The pK(a) for the blue-yellow transition of Rtms5H146S increased by 1.4 U in the presence of 0.1 M KI, whereas the pK(a) for the same transition of Rtms5 was relatively insensitive to added halides. To understand the structural basis for these observations, we have determined to 2.0 angstroms resolution the crystal structure of a yellow form of Rtms5H146S at pH 3.5 in the presence of iodide. Iodide was found occupying a pocket in the structure with a pH of 3.5, forming van der Waals contacts with the tyrosyl moiety of the chromophore. Elsewhere, it was determined that this pocket is occupied by a water molecule in the Rtms5H146S structure (pH 8.0) and by the side chain of histidine 146 in the wild-type Rtms5 structure. Collectively, our data provide an explanation for the observed linkage between color transitions for Rtms5H146S and binding to halides.

Journal Article↗

Crystal structure of low humidity tetragonal lysozyme at 2.1-A resolution. Variability in hydration shell and its structural consequences.

Tetragonal crystals of hen egg white lysozyme undergo a reversible transformation, accompanied by loss of water, when the relative humidity of the environment is reduced to about 90%. The structure of the low humidity form has been analyzed, using x-ray data collected at 88% relative humidity, in order to explore the variability in protein hydration caused by a change in the amount of water surrounding the protein molecule and the consequent conformational perturbations in the molecule. The structure has been refined by the restrained least-squares method to an R value of 0.162 for 6269 observed reflections in the 10-2.1-A resolution shell. The refined structure provides interesting examples for the variability in helical parameters, the role of interactions involving side chains and water in the stabilization of secondary structural features, and favorable specific hydration sites. The protein molecule as a whole moves slightly in the low humidity form from its position in the native crystals. The hydration shell tends to move along with the protein. Significant changes, however, occur in the hydration shell. These changes cause structural perturbations in the enzyme molecule, which are most pronounced in regions involved in substrate binding.

Animals↗

Crystal structure of Escherichia coli uracil DNA glycosylase and its complexes with uracil and glycerol: structure and glycosylase mechanism revisited.

The DNA repair enzyme uracil DNA glycosylase (UDG) catalyzes the hydrolysis of premutagenic uracil residues from single-stranded or duplex DNA, producing free uracil and abasic DNA. Here we report the high-resolution crystal structures of free UDG from Escherichia coli strain B (1.60 A), its complex with uracil (1.50 A), and a second active-site complex with glycerol (1.43 A). These represent the first high-resolution structures of a prokaryotic UDG to be reported. The overall structure of the E. coli enzyme is more similar to the human UDG than the herpes virus enzyme. Significant differences between the bacterial and viral structures are seen in the side-chain positions of the putative general-acid (His187) and base (Asp64), similar to differences previously observed between the viral and human enzymes. In general, the active-site loop that contains His187 appears preorganized in comparison with the viral and human enzymes, requiring smaller substrate-induced conformational changes to bring active-site groups into catalytic position. These structural differences may be related to the large differences in the mechanism of uracil recognition used by the E. coli and viral enzymes. The pH dependence of k(cat) for wild-type UDG and the D64N and H187Q mutant enzymes is consistent with general-base catalysis by Asp64, but provides no evidence for a general-acid catalyst. The catalytic mechanism of UDG is critically discussed with respect to these results.

Amino Acid Sequence↗

The structure and structural effects of VA rehabilitation bedservice care for stroke.

The purpose of this study was to: 1) examine the variation in organizational structure within rehabilitation bed-service units (RBU) in the Veterans Health Administration (VHA), and 2) evaluate the effects of RBU and parent hospital structure on stroke rehabilitation outcomes. Two VHA-wide surveys of acute and rehabilitation services for stroke were linked with 2 y of VHA rehabilitation outcomes for stroke patients. A random effects mixed model was used to adjust for patient level covariates, control for unique site effects, and test for facility level structural effects. After adjusting for patient covariates, four structural variables were associated with length of stay or patient functional gain. These results indicate that rehabilitation structure is important to rehabilitation outcome. The individual variables identified in this study, namely, diverse multidisciplinary staff, expert physician leadership, staff participation in team care, and richer rehabilitation equipment resources, may represent the distinct aspects of a successful, comprehensive rehabilitation unit.

Adult↗

[Optical properties and molecular structure of nucleic acids and their components. X. Infrared spectra and molecular structure of denatured DNA with different water content and degree of protonation].

IR-spectra (4000-900 cm-minus-1) of heat denatured DNA (d-DNA) of calf thymus have been obtained in the range of relative humidity of 0-93% and of the guota of protoned bases alpha of 0-0,5. fron these spectra the diagram of d-DNA states is plotted as the relationships of intensities and the location of some bands with and relative humidity. At alpha approximately 0,2 a compact structure S2-1 with firm hydrogen bonds between protoned and unprotoned bases which is similar to those observed earlier while protoning homopolynucleotides poly-A and poly-C. At G1'-large values of alpha S2-1-conformation destroyed and a loose structure (alpha approximately 0,35) appears. the latter is characterized by a minimum H-binding of the base and increased hydration. Further increase of alpha brings about the formation of sufficiently compact G2-1-STRUCTURE WHICH IS CHARACTERIZED BY SOLID H-bonds between PO2-groups and protoned bases. A specific effect of the structures found on the state of absorbed water and the structure of hydrate envelope is revealed.

Animals↗

[A model of structural transition based on the molecular-type population structure theorem].

The author presents a model of structural transition based on a theorem of molecular-type population structure. "Household or family has been sometimes called [a] demographic molecule, when compared with the unit of ordinary population, i.e., a person, which in turn [is called a] demographic atom. Molecular population structure is defined by the author as the age structure of the population composed of people included in certain [sorts] of molecules. The molecular age structure is basically represented by matrices whose elements...are the numbers of people aged i whose other member person in the same molecule, for example mother, is aged j." (summary in ENG)

Age Distribution↗

The structural basis of the poor fibrin specificity of urokinase(I)--knowledge-based prediction of kringle structures of urokinase and its related proteins.

The Kringle-1 structure of plasminogen (PGK-1), the Kringle-2 structure of tissue plasminogen activator (PAK-2) and the Kringle structure of prourokinase (UKK) has been modeled on the basis of the three-dimensional structure of Kringle-1 of prothrombin (PTK-1) at 2.8 A resolution. The predicted three-dimensional structure of these Kringles shows that the binding site of PGK-1 is characterized by an apparent dipolar site, the polar parts of which are separated by a hydrophobic region. PAK-2 possesses the anionic center but has not a cationic binding center which might be provided by a guanidinium group from Arg-69 located adjacent to the Arg-71 position. UKK possesses neither the anionic binding center nor the cationic center which are probably the main reason for the poor fibrin specificity of urokinase.

Amino Acid Sequence↗

[Investigation in the dependency of stiffness of cancellous bone on apparent density--based on the combination model of rod-rod structure and perforated plate structure].

The structure of cancellous bone is cellular. There are two basic models of cancellous bone structure namely the model of rod-rod structure and the model of framework of perforated plate. This paper presents several models of structure developed from the model of rod-rod structure to the model of framework of perforated plate. We computed the elastic modulus of cancellous bone based on these modes using homogenization. The relationship between the elastic modulus(E) of cancellous bone and the apparent density(p) was determined to be E = 1.78rho1.88.

Biomechanical Phenomena↗

Structure investigations of agonists of the natural neurotransmitter acetylcholine, IV. X-ray structure analyses of trimethylpentylammonium-chloride and (4-acetoxybutyl)trimethylammonium-iodide.

The crystal structures of the title compounds which display cholinergic activity at the ganglionic receptor have been determined by X-ray structure analysis. [(CH3)3N+C5H11]Cl- (1) crystallizes in the orthorhombic space group Pbnm with half a formula unit per asymmetric unit, a = 11.381(14), b = 12.871(17), c = 7.316(4) A. The intensities of 1106 independent reflections were collected with an automatic diffractometer. The structure refinement converged at R = 0.133 for the 355 observed reflections. The cation of 1 is disordered. [(CH3)3N+ (CH2)4-O-C(O)-CH3]I- (2) crystallizes in the orthorhombic space group P2(1)2(1)2(1) with four formula units per unit cell, a = 16.783(8), b = 10.276(6), c = 7.427(10) A. The intensities of 1469 independent reflections were collected. The structure refinement converged at R = 0.071 for 1383 observed reflections. In both compounds the trimethylammonio methyl groups are coordinated nearly tetrahedrally by four anions in the first coordination sphere. Anions which occupy a special face type (B) of the tetrahedron of the (CH3)3N+ -CH2-group may be treated as a "model binding site" of the receptor. In the crystal structure of 2 the anions occupying B-type faces form together with the ammonium nitrogen and the carbonyl oxygen so called "Activity triangles". The almost equal geometries of these activity triangles are correlated with the mode of pharmacological action.

Acetylcholine↗

Structural elucidation of the major phenolic glycolipid from Mycobacterium kansasii. I. Evidence for tetrasaccharide structure of the oligosaccharide moiety.

Data from the literature indicate the presence, in the Mycobacterium kansasii wall, of a phenolic glycolipid called mycoside A. A tentative trisaccharide structure was proposed for the oligosaccharide part, whereas the aglycone was found to correspond to a phenol phthiocerol residue esterified by two mycocerosic acids. In the present work, structural information mainly arising from fast atom bombardment-mass spectrometry, tandem mass spectrometry, and 1H NMR of native and chemically degraded phenolic glycolipid indicates a tetrasaccharide structure for the inherent oligosaccharide. This structure is now determined as: 2,6-dideoxy-4-O-methyl-arabino-hexopyranosyl(1 alpha----3)2-O-methyl-4-O- acetylfucopyranosyl(1 alpha----3)2-O-methyl-rhamnopyranosyl(1 alpha----3)2-4-di- O-methylrhamnopyranosyl-1 alpha----phenolglycol. Evidence for the structure of the dideoxyhexose, unique in mycobacteria, is presented in the following paper (Fournié, J.-J., Rivière, M., Papa, F., and Puzo, G. (1987) J. Biol. Chem. 262, 3180-3184).

Antigens, Bacterial↗

The covalent structure of bovine liver rhodanese. Isolation and partial structural analysis of cyanogen bromide fragements and the complete sequence of the enzyme.

Cyanogen bromide fragments from reduced and carboxymethylated rhodanese have been isolated by gel filtration and ion exchange chromatography on columns of Sephadex G-50 and sulfoethyl-Sephadex C-25, respectively. Partial or complete structural analysis of these fragments has permitted the ordering in sequence of all eleven of the nonaligned tryptic peptides from citraconylated, S-carboxymethylcysteinyl-rhodanese and has thus provided the complete covalent structure of the enzyme. Rhodanese is a single polypeptide of 293 residues and the molecule weight calculated from the covalent structural analysis is about 32,900. The cysteinyl residue implicated in the catalytic function of rhodanese is at position 247. In some preparations of the enzyme the NH2-terminal dipeptide Val-His is missing and the sequence begins with the glutamine at position 3. The rhodanese thus obtained contains 291 amino acid residues and possesses full enzymic activity. X-ray crystallographic analysis of rhodanese has shown that the halves of the molecule (Domains I and II) are nearly identical in conformation. Comparative analysis of the sequences in Domains I and II containing residues with conformationally equivalent alpha C atoms has revealed some degree of homology between the halves of the rhodanese polypeptide. Nethertheless, the structural equivalence of the rhodanese domains is reflected much more by their similarity in tertiary structural than by their sequence homology, even when the sequence comparisons are optimized with reference to the crystallographic results.

Amino Acid Sequence↗

[Structure and biological properties of immunoglobulins and gamma-globulin preparations. I. Structure and function of immunoglobulins].

Antibodies serve two different functions: they bind antigens and mediate a series of other functions party as a consequence of antigen binding. These functions are usually termed effector functions. This functional dualism is reflected in the structural arrangement of the immunoglobulin molecules, the basic structure of which consists of 4 polypeptide chains: 2 identical light chains (molecular weight 22 000--23 000) and 2 identical heavy chains (molecular weight 50 000--70 000). These polypeptide chains may be divided into compact globular regions, which are called domains and have different biological functions. The domains which are involved in antigen binding consist of the 110--120 aminoterminal amino acid residues of heavy and light chains. The amino acid sequence within these domains differs from one immunoglobulin molecule to another, and for this reason they are designated variable domains. The remaining domains are of substantially the same structure within groups of immunoglobulins and are therefore called constant domains. The structural variants within the constant domains of the heavy chains are termed classes and subclasses, and those of the light chains, types. The constant domains of the heavy chains mediate the effector functions of the immunoglobulin molecules. This structural division into a variable and a constant part allows the combination of a great number of different antigen binding specifities with a series of different effector functions.

Humans↗

Parakeratosis in some epidermal tumors: fine structural and immunohistochemical similarity between parakeratosis and "Hornmark" -like structure.

Both parakeratosis and "Hornmark" -like structure are basic histopathologic changes found in a variety of skin lesions. In order to investigate more closely the architecture and components of these two structures, three cases of epidermal tumor which showed both parakeratosis and "Hornmark" -like structure were studied by using routine histology and histochemistry, immunofluorescence technique, and electron microscopy. In the intercellular space of the stratum corneum in these two structures, diastase-resistant PAS-positive substance was found. This substance also showed positive immunofluorescence for immunoglobulins, complement, and fibrinogen. Electron microscopically, this substance was moderately electron-dense and fine granular, and was located in the intercellular space and in part in the cytoplasm of the horny cells. On the basis of these findings, this substance was judged more likely to be derived from the components of plasma protein than a result of the degeneration of epidermal cells. Only quantitative difference was observed between these two structure. This substance was considered to play an important role on the increased cohesiveness of the horny cells. However, whether this is a product of antigen-antibody reactions, or the result of the process similar to blood coagulation, remains to be elucidated.

Aged↗

[Study of super-structure of eukaryotic chromosomes. I. The super-structure of metaphase chromosomes in pigs].

The super-structure of fine and close metaphase chromosomes was studied with the optical micro multistage amplifying system designed by author himself, which could show the fine structure about 15nm in diameter of chromosomes. The micrographs of chromosomal super-structure made of DNA-nuclear protein or non-histone protein were shown respectively in the present paper. The chromotids were composed of long fibres about 20-30nm in diameter in a regular helical form directly. The characters and parameters of chromosomal super-structure were described, and a dynamical helical model of the chromosomal structure was suggested.

Animals↗

Structural changes of beta-lactoglobulin B induced by urea. Evidence of residual structure.

Several spectroscopic methods have been used to study the structure of beta-lactoglobulin B at pH 2.1 in the presence of 8M urea. Fluorescence and polarization of fluorescence spectroscopy measurements indicate that the two tryptophanyl residues of the protein are exposed to the solvent in the denatured state. CD in the far-UV indicates that the amount of secondary structure in the denatured state is comparable to that found in the native state, whereas the CD spectrum in the near-UV shows that the tertiary structure is not completely disordered. The results of one-dimensional 1H NMR spectroscopy show that some local non-random structure is maintained in the denatured state, but most of the polypeptide chain has an extended non-globular conformation under the conditions of the present experiments. This conclusion is reinforced by the results of two-dimensional 1H NMR conducted on denatured samples of beta-lactoglobulin B. The study of states with intermediate levels of order will aid the understanding of how the native structure of beta-lactoglobulin B is organised during the refolding pathways.

Animals↗

From electron density and sequence to structure: integrating protein image analysis and threading for structure determination.

This paper presents a computational methodology for integrating techniques from protein image interpretation and protein sequence threading, applied to the problem of structure determination from experimental X-ray crystallographic electron density maps. In the proposed architecture, image interpretation of an electron density map produces candidate structural segments; threading is applied to evaluate these hypothesized segments and thus to constrain the set of possible image interpretations. We present the results of experiments designed to test ability of the threading module to discriminate between correct and incorrect alignments of protein sequences onto structural models derived from protein image interpretation. The long-term goal of this research is to improve our ability to determine protein structures from crystallographic data, and to further our understanding of the underlying relationship between sequence and structure.

Algorithms↗

NMR solution structure of the isolated Apo Pin1 WW domain: comparison to the x-ray crystal structures of Pin1.

The NMR solution structure of the isolated Apo Pin1 WW domain (6-39) reveals that it adopts a twisted three-stranded antiparallel beta-sheet conformation, very similar to the structure exhibited by the crystal of this domain in the context of the two domain Pin1 protein. While the B factors in the apo x-ray crystal structure indicate that loop 1 and loop 2 are conformationally well defined, the solution NMR data suggest that loop 1 is quite flexible, at least in the absence of the ligand. The NMR chemical shift and nuclear Overhauser effect pattern exhibited by the 6-39 Pin1 WW domain has proven to be diagnostic for demonstrating that single site variants of this domain adopt a normally folded structure. Knowledge of this type is critical before embarking on time-consuming kinetic and thermodynamic studies required for a detailed understanding of beta-sheet folding.

Amino Acid Sequence↗

Prediction of the three-dimensional structures of the nerve growth factor and epidermal growth factor binding proteins (kallikreins) and an hypothetical structure of the high molecular weight complex of epidermal growth factor with its binding protein.

We have predicted the three-dimensional structures of the serine protease subunits (gamma-NGF, alpha-NGF, and EGF-BP) of the high molecular weight complexes of nerve growth factor (7S NGF) and epidermal growth factor (HMW-EGF) from the mouse submandibular gland (from the X-ray crystal structures of two related glandular kallikreins). The conformations of three of the six loops surrounding the active site are relatively well defined in the models of gamma-NGF and EGF-BP, but three other loops are likely to have flexible conformations. Although the amino acid sequence of alpha-NGF is closely related to those of gamma-NGF and EGF-BP, it is catalytically inactive. Model-building studies on alpha-NGF suggested that mutations (in alpha-NGF) just prior to the active site serine (195) and an unusual N-terminal sequence are consistent with alpha-NGF having a zymogen-like conformation (similar to that in chymotrypsinogen). An hypothetical model of the quaternary structure of HMW-EGF has been constructed using this model of EGF-BP and the NMR structure of murine EGF. The C-terminal arm of EGF was modeled into the active site of EGF-BP based on data indicating that the C-terminal arginine of EGF occupies the S1 subsite of EGF-BP. Data suggesting one of the surface loops of EGF-BP is buried in the HMW-EGF complex and symmetry constraints were important in deriving a schematic model. A molecular docking program was used to fit EGF to EGF-BP.

Amino Acid Sequence↗