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Biomedical subjects

G Stubbs

Publications and source records attributed to G Stubbs.

At least 37 records · Page 2Linked to original sources

Preliminary crystallographic examination of a novel fungal lysozyme from Chalaropsis.

The lysozyme from the fungus of the Chalaropsis species has been crystallized. This lysozyme (Mr 22,415) displays no sequence homology with avian, phage, or mammalian lysozymes, however, preliminary studies indicate significant sequence homology with the bacterial lysozyme from Streptomyces. Both enzymes are unusual in possessing beta-1,4-N-acetylmuramidase and beta-1,4-N,6-O-diacetylmuramidase activity. The crystals grow from solutions of ammonium sulfate during growth periods from several months to a year. The space group is P2(1)2(1)2(1) with a = 34.0 A, b = 42.6 A, c = 122.1 A. Preliminary data indicate that there is 1 molecule/asymmetric unit. A complete native data set has been collected to 2.57-A resolution. The crystals are highly ordered and exhibit diffraction patterns to d-spacings less than 1.5 A.

Crystallization↗

Visualization of protein-nucleic acid interactions in a virus. Refined structure of intact tobacco mosaic virus at 2.9 A resolution by X-ray fiber diffraction.

The structure of tobacco mosaic virus (TMV) has been determined by fiber diffraction methods at 2.9 A resolution, and refined by restrained least-squares to an R-factor of 0.096. Protein-nucleic acid interactions are clearly visible. The final model contains all of the non-hydrogen atoms of the RNA and the protein, 71 water molecules, and two calcium-binding sites. Viral disassembly is driven by electrostatic repulsions between the charges in two carboxyl-carboxylate pairs and a phosphate-carboxylate pair. The phosphate-carboxylate pair and at least one of the carboxyl-carboxylate pairs appear to be calcium-binding sites. Nucleotide specificity, enabling TMV to recognize its own RNA by a repeating pattern of guanine residues, is provided by two guanine-specific hydrogen bonds in one of the three base-binding sites.

Amino Acids↗

The probability distributions of X-ray intensities in fiber diffraction: largest likely values for fiber diffraction R factors.

R factors in fiber diffraction are generally lower than in conventional crystallography, because of the cylindrical averaging of fiber diffraction data. The probability distributions for fiber diffraction intensities, analogous to Wilson's distributions for crystal diffraction intensities, are derived, and from these the largest likely values of R are estimated. These values depend on the size and symmetry of the diffracting particle and on the resolution of the analysis, and range from 0.586 for systems for very high symmetry (as in crystal diffraction) to much lower values for systems of low symmetry.

Crystallography↗

Visualization of alpha-helices in tobacco mosaic virus by cryo-electron microscopy.

We have used tobacco mosaic virus (TMV) as a test specimen, in order to develop techniques for the analysis of high-resolution structural detail in electron micrographs of biological assemblies with helical symmetry. It has previously been shown that internal details of protein structure can be visualized by processing electron micrographs of unstained specimens of extended two-dimensional crystalline arrays. However, the techniques should in principle be applicable to other periodic specimens, such as assemblies with helical symmetry. We show here that data to spacings better than 10 A can be retrieved from electron images of frozen hydrated TMV. The three-dimensional computed map agrees well with that derived from X-ray diffraction and shows the two pairs of alpha-helices forming the core of the coat subunit, the C alpha-helix and the viral RNA. The results demonstrate that it is possible to determine detailed internal structure in helical particles.

Freezing↗

Enhancement and simplification of macromolecular images.

Computer graphics programs have been devised to display selected atomic features and to simplify images of complex macromolecular structures. By using boundary outlines, adjustment of size and shape of the molecular components, color coding, shading, and selective omission of obscuring detail, attention can be focused on specific interactions which determine higher levels of organization. A balanced color table has been constructed in which different hues have equal steps in brightness; this table has facilitated distinction of atom types and sequence coding together with representation of an optimum range of depth cueing and surface shading. The graphics system has been used with the atomic coordinates of the tobacco mosaic virus structure to simplify images of the protein subunit, to illustrate intermolecular interactions, and to relate subunit packing arrangements in different assemblies to the underlying atomic structure. The system has also been used to construct a schematic representation of the polyomavirus capsid, based on low resolution data. Application of artistic methods contributes to the effective presentation and interpretation of detailed scientific information about complex macromolecular structures.

Computer Graphics↗

Structure of microtubules with reduced hydration. Comparison of results from X-ray diffraction and electron microscopy.

A recent model for the structure of microtubules is used to interpret X-ray fiber diffraction patterns from microtubules, obtained under various conditions. The results suggest that tubulin may undergo conformational changes under conditions of reduced water-activity. Such changes could account for some of the differences in the structure of tubulin as determined by electron microscopy and X-ray diffraction.

Microscopy, Electron↗

Microtubule structure at 18 A resolution.

A model for the structure of microtubules at a resolution of 18 A (1 A = 0.1 nm) is described, based on X-ray fiber diffraction data from hydrated reassembled calf brain microtubules. The model was derived by an iterative solvent flattening refinement procedure, with initial phases based on those determined by electron microscopy. The major microtubule surface grooves are those defining the protofilaments, which form a hollow cylinder of maximum diameter 300 A. Strong electron density fluctuations in the microtubule wall are interpreted as evidence for a domain structure within the tubulin subunit. The arrangement of domains is such that the tubulin molecule could be quite flexible at the domain connections; thus, slight changes in this arrangement could account for the unusual polymorphism of tubulin assemblies.

Animals↗

Structure of tobacco mosaic virus at 3.6 A resolution: implications for assembly.

X-ray fiber diffraction analysis of tobacco mosaic virus (TMV) has led to the building of a molecular model of the intact virus, based on a map at 3.6 A resolution derived from five separated Bessel orders. This has been made possible by advances in the solution of the fiber diffraction phase problem. It is now possible to understand much of the chemical basis of TMV assembly, particularly in terms of intersubunit electrostatic interactions and RNA binding. Consideration of the molecular structure in conjunction with physical chemical studies by several groups of investigators suggests that the nucleating aggregate for initiation of TMV assembly is a short (about two turns) helix of protein subunits, probably inhibited from further polymerization in the absence of RNA by the disordering of peptide loop near the inner surface of the virus.

RNA, Viral↗

Untoward effects of fenfluramine in autistic children.

Several recent studies have described the benefits of fenfluramine for the symptomatic treatment of infantile autism. No large surveys of side effects of this drug have been reported in autistic children. To evaluate the untoward effects of fenfluramine in children with autism, 12 subjects were systematically studied. Medication was administered in a double-blind, placebo-controlled cross-over study. Parents were trained in monitoring untoward effects. These observations were compiled in detailed daily notes. In addition, four cases describing unusual effects found in a sample of 170 patients treated with fenfluramine are also reported. In the initial 2 weeks of active drug listlessness, food refusal, and stomach upset were frequently seen. A different pattern of untoward effects was seen in the final 14 weeks of treatment. Irritability, agitation, and crying along with continued food refusal were noted. The subjects lost 2.1% of body weight during active drug phase, but there was a rebound weight gain during the subsequent placebo phase. A thorough understanding of fenfluramine's side effects and adverse reactions is necessary so as to differentiate them from the multiple symptoms inherent in the syndrome of autism.

Adolescent↗

31P nuclear magnetic resonance of the RNA in tobacco mosaic virus.

Solid state 31P n.m.r. data concerning the structure of the RNA in TMV are presented in light of the prior diffraction and model building results on this system (Stubbs et al., 1977; Stubbs & Stauffacher, 1981). The 31P chemical shift anisotropy powder pattern of a stationary, unoriented solution of TMV shows the RNA to be immobilized by the coat protein-RNA interactions, since the principal values (sigma 11 = 83, sigma 22 = 25, sigma 33 = -108 p.p.m. relative to external 85% H3PO4) are essentially the same as those of a static phosphodiester group. There are three peaks in the isotropic 31P n.m.r. spectrum obtained with magic angle sample spinning, indicating three distinct phosphate environments. There are three peaks in the 31P n.m.r. spectrum from an oriented TMV solution, indicating three distinct phosphate orientations.

Magnetic Resonance Spectroscopy↗

Structural comparisons of the aggregates of tobacco mosaic virus protein.

The coat protein of tobacco mosaic virus forms numerous aggregates, including the small A-protein, the disk, and two helical forms. The structures of the disk, the helical protein forms, and the virus are compared. Most of the differences are in the conformation of the chain between residues 89 and 113, which lies in the region of protein at the center of the virus, inside the RNA. It is disordered in the disk, but has a fixed conformation in the virus and the protein helices. The differences between the virus and the two helical protein forms are largely in the conformations of arginines and carboxylic acids in this region.

Macromolecular Substances↗