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Biomedical subjects

R H Wade

Publications and source records attributed to R H Wade.

13 recordsLinked to original sources

Lattice defects in microtubules: protofilament numbers vary within individual microtubules.

We have used cryo-electron microscopy of vitrified specimens to study microtubules assembled both from three cycle purified tubulin (3x-tubulin) and in cell free extracts of Xenopus eggs. In vitro assembled 3x-tubulin samples have a majority of microtubules with 14 protofilaments whereas in cell extracts most microtubules have 13 protofilaments. Microtubule polymorphism was observed in both cases. The number of protofilaments can change abruptly along individual microtubules usually by single increments but double increments also occur. For 3x-tubulin, increasing the magnesium concentration decreases the proportion of 14 protofilament microtubules and decreases the average separation between transitions in these microtubules. Protofilament discontinuities may correspond to dislocation-like defects in the microtubule surface lattice.

Animals

Low pH deforms the influenza virus envelope.

Influenza virus membrane fusion is induced by low pH, which triggers an irreversible conformational change in the viral haemagglutinin (HA). The result of this change is the extrusion of the HA fusion peptide, after which it may act in the fusion of virus and endosomal membranes. Here we describe electron microscopic observations on low pH-treated virus after negative staining or cryo-electron microscopy of virus in the frozen hydrated state. The results indicate a destabilization of the virus membrane at low pH that can be reversed by returning the pH to neutral.

Hydrogen-Ion Concentration

New data on the microtubule surface lattice.

The in vitro polymerisation of tubulin is a remarkable example of protein self-assembly in that several closely related microtubule structures coexist on the polymerisation plateau. Unfixed and unstained in vitro assembled microtubules were observed in vitreous ice by cryo-electron microscopy. New results are reported that considerably extend previous observations [47]. In ice, microtubule images have a distinctive contrast related to the number and skew of the protofilaments. The microtubules observed have from twelve to seventeen protofilaments. Comparison with thin sections of pelleted material allows a direct identification of images from microtubules with thirteen, fourteen and fifteen protofilaments. A surface lattice accommodation mechanism, previously proposed to explain how variable numbers of protofilaments can be incorporated into the basic thirteen protofilament structure, is described in detail. Our new experimental results are shown to be in overall agreement with the theoretical predictions. Only thirteen protofilament microtubules have unskewed protofilaments, this was confirmed by observations on axoneme fragments. The results imply that the microtubule surface lattice is based on a mixed packing which combines features of the standard A and B lattices.

Animals

Characterization of microtubule protofilament numbers. How does the surface lattice accommodate?

Frozen-hydrated specimens of microtubules assembled in vitro were observed by cryoelectron microscopy. Specimens were of both pure tubulin, and of microtubule protein isolated by three cycles of assembly and disassembly. It is shown that the characteristic image contrast of individual microtubules allows the microtubule protofilament number to be determined unambiguously. Microtubules with 13, 14 and 15 protofilaments are observed to coexist in specimens prepared under various assembly conditions. Confirmation of these results is obtained by observations of thin sections of pelleted samples fixed and stained using the glutaraldehyde/tannic acid technique. Images of individual microtubules show both characteristic contrast profiles across their width and typical variations of these profiles along their length. The profiles across the images indicate the protofilament number of the microtubule. The lengthwise variations indicate how the protofilaments are aligned with respect to the microtubule axis giving what has previously been called a supertwist. In 13 protofilament microtubules the protofilaments are paraxial. In 14 and 15 protofilament microtubules, the protofilaments are skewed with respect to the microtubule axis. The skew is greater for the 15 protofilament case than for 14 protofilaments. The skew allows the extra protofilaments to be accommodated by the surface lattice. These results should also be relevant to situations in vivo.

Histocytochemistry

Concerning the axial rotational flexibility of the Fab regions of immunoglobulin G.

By electron microscopy, we have observed immunocomplexes with both negative stain and in amorphous ice using monoclonal antibodies directed against one of the 24 subunits of scorpion haemocyanin. A copy of this subunit occurs at each of the corners of the square-shaped haemocyanin molecule. Three distinct orientations of adjacent haemocyanin molecules may be observed in immunocomplex pairs or chains using both the above-mentioned methods. These observations, coupled with low-resolution computer simulations of immunocomplex formation, argue strongly in favour of the existence of a considerable degree of rotational flexibility within the IgG molecule and around the long axis of the Fab arms, as was suggested by previous observations with negative stain. We find that the arms can rotate by up to 180 degrees with respect to the Fc region.

Animals

Interaction between complement subcomponent C1q and bacterial lipopolysaccharides.

The heptose-less mutant of Escherichia coli, D31m4, bound complement subcomponent C1q and its collagen-like fragments (C1qCLF) with Ka values of 1.4 x 10(8) and 2.0 x 10(8) M-1 respectively. This binding was suppressed by chemical modification of C1q and C1qCLF using diethyl pyrocarbonate (DEPC). To investigate the role of lipopolysaccharides (LPS) in this binding, biosynthetically labelled [14C]LPS were purified from E. coli D31m4 and incorporated into liposomes prepared from phosphatidylcholine (PC) and phosphatidylethanolamine (PE) [PC/PE/LPS, 2:2:1, by wt.]. Binding of C1q or its collagen-like fragments to the liposomes was estimated via a flotation test. These liposomes bound C1q and C1qCLF with Ka values of 8.0 x 10(7) and 2.0 x 10(7) M-1; this binding was totally inhibited after chemical modification of C1q and C1qCLF by DEPC. Liposomes containing LPS purified from the wild-strain E. coli K-12 S also bound C1q and C1qCLF, whereas direct binding of C1q or C1qCLF to the bacteria was negligible. Diamines at concentrations which dissociate C1 into C1q and (C1r, C1s)2, strongly inhibited the interaction of C1q or C1qCLF with LPS. Removal of 3-deoxy-D-manno-octulosonic acid (2-keto-3-deoxyoctonic acid; KDO) from E. coli D31m4 LPS decreases the binding of C1qCLF to the bacteria by 65%. When this purified and modified LPS was incorporated into liposomes, the C1qCLF binding was completely abolished. These results show: (i) the essential role of the collagen-like moiety and probably its histidine residues in the interaction between C1q and the mutant D31m4; (ii) the contribution of LPS, particularly the anionic charges of KDO, to this interaction.

Acetates

Monotonic versus oscillating microtubule assembly: a cryo-electron microscope study.

Depending on the free GTP concentration, microtubules can assemble following either a monotonic or an oscillatory mode. We have used cryoelectron microscopy to compare the tubulin assemblies characteristic of each polymerization pathway. We focus on the first assembly peak. At this particular time point, despite their strikingly different subsequent evolution, both systems are similar with regard to the extent of tubulin polymerization and to the microtubule length distribution. The present study shows that whilst the observed microtubule structures are the same in both systems, the oscillatory system shows quantities of closed ring-like tubulin oligomers, far in excess of those observed in the monotonic system. Furthermore, the conversion of the oscillating system to a monotonic one by GTP addition during the first oscillation is accompanied by a marked decrease in the number of rings. Based on these results we propose that the GTP dependent step which governs microtubule oscillations is the opening of inactive tubulin oligomers.

Animals

Electron-irradiation-induced flattening of negatively stained 2D protein crystals.

The thickness of negatively stained 2D crystalline arrays of the bladder membrane does not vary significantly during air drying and exposure to high vacuum. High-dose electron irradiation reduces the thickness to about 60% of the native value. These results, together with the fact that the same behaviour has been observed on another 2D system (gap junctions), indicate that the flattening induced by an electron beam on 2D crystals may be general. The implications for 3D reconstruction of negatively stained objects are discussed.

Animals

Three-dimensional structure of bladder membrane protein.

The naturally occurring crystals of the mammalian bladder membrane belong to the two-sided plane group p6 and have a lattice parameter of 160 A. The 3D reconstruction in negative stain at a resolution of 35 A in-plane and 45 A out-of-plane shows each motif to consist of twelve subunits elongated perpendicular to the crystal plane to a total height of about 50 A. Comparison with shadowed specimens shows that the protein particles revealed by negative stain are exclusively on one side of the membrane.

Animals

Electron microscope structural study of modified fibrin and a related modified fibrinogen aggregate.

The structure of proteolytically modified fibrin and a closely related modified fibrinogen aggregate have been studied by analysis of electron microscope images. For both structures, we propose a model that consists of double-stranded, 2-fold helical protofibrils, which are associated laterally to form ordered fibrils, with a C222 space group: a = 44.0 nm, b = c = 9.4 nm. Each fibril is 80 nm or less in diameter, and twists along its length in a right-handed sense, with a pitch from 7 to 12 times the molecular length. The fibrils associate laterally to form bundles, which tend to twist in a left-handed sense, with a pitch of the order of 40 times the molecular length. The specific volume of modified fibrin calculated from this model is 3.9 A3 per dalton, which is comparable to the specific volume of 3.6 A3 per dalton for modified fibrinogen crystals but is lower than the 6 A3 per dalton determined for fibrin from light-scattering experiments. Comparison of our electron microscope results with X-ray and neutron diffraction data suggest a similar, but less well-ordered, structure for native fibrin, with a smaller fibril, approximately 18.4 nm wide, consisting of eight protofibrils.

Fibrin

Three-dimensional structure of luminal plasma membrane protein from urinary bladder.

The structure of the membrane protein from urothelial plasma membrane has been investigated. A three-dimensional map has been obtained at 35 A resolution from negatively stained two-dimensional arrays of membrane proteins. The lattice space group has the symmetry p6. Twelve stain-excluding areas are resolvable on projections perpendicular to the membrane plane. In the three-dimensional reconstruction these areas appear to be restricted to one side of the membrane and form protrusions that extend 50 A out of the membrane. No periodic structure is observed at the cytoplasmic side of the membrane, which suggests that the protein is not a transmembrane protein.

Animals

3-D reconstruction of bluetongue virus tubules using cryoelectron microscopy.

Bluetongue virus (BTV) forms tubules in infected mammalian cells. These tubules are virally encoded entities which can be formed with only one protein, NS1. The NS1 protein does not form a part of virus particles, and its function in viral infection is uncertain. Expression of the NS1 gene in insect cells by recombinant baculovirus yields high amounts of NS1 tubules (ca. 50% of cellular proteins) which are morphologically and immunologically similar to authentic BTV NS1 and can be isolated to about 90% purity. The structure of these synthetic NS1 tubules was investigated by cryoelectron microscopy. NS1 tubules are on average 52.3 nm in diameter and up to 100 nm long. The structure of their helical surface lattice has been determined using computer image processing to a resolution of 40 A. The NS1 protein is about 5.3 nm in diameter and forms a dimer-like structure, so that the tubules are composed of helically coiled ribbons of NS1 "dimers," with 21 or 22 dimers per turn. The surface lattice displays P2 symmetry and forms a one-start helix with a pitch of 9.1 nm. The NS1 tubules exist in two slightly different pH-dependent conformational states.

Animals