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N Boisset

Publications and source records attributed to N Boisset.

At least 37 records · Page 2Linked to original sources

Three-dimensional reconstruction of the alpha D and beta C-hemocyanins of Helix pomatia from frozen-hydrated specimens.

The three-dimensional (3D) reconstructions of the di-decameric forms of alpha D and beta C-hemocyanins of the Roman snail Helix pomatia and of the decameric half molecules of alpha D-hemocyanin were carried out on frozen-hydrated specimens observed in the electron microscope by using the random conical tilt series method. The three 3D volumes were examined by computing solid-body surface representations and slices through the volume and by eroding the structure progressively through raising of the threshold. The di-decameric molecule of alpha D and beta C-hemocyanins, reconstructed from side views, are very similar and are composed of a cylindrical wall, comprising ten oblique wall units, and of two collar complexes located at both ends of the cylinder, comprising each five arches and an annular collar made up of five collar units. Erosion of the structure reveals that the wall looks like a segment of a five-stranded right-handed helix and that each oblique wall unit resembles a figure 8 inclined to the right. The decameric half molecule of alpha D-hemocyanin, reconstructed from end-on views, resembles the whole molecule, except that the collar is thinner and appears composed of five independent collar complex units. It is suggested that the difference in structural appearance of the collar complex between the whole and the half alpha D-hemocyanin may be due to the missing cone artifact, induced by the angular limitations imposed by the goniometer of the electron microscope. The comparison between the alpha D-hemocyanin and the beta C-di-decameric hemocyanin at high thresholds suggests that in the beta C-hemocyanin the oblique wall units of each half molecule may be linked by two connections, whereas in alpha D-hemocyanin there may be only one. This difference in the number of connections may be responsible for the lower stability of the alpha D molecule at high salt concentration.

Animals↗

Three-dimensional reconstruction of Sepia officinalis hemocyanin from frozen-hydrated specimens.

The three-dimensional reconstruction of Sepia hemocyanin from randomly oriented native molecules was carried out by the method of the random conical tilt series on a frozen-hydrated specimen. As other molluscan hemocyanins, the molecule resembles a hollow cylinder or pentahedron composed of five dimeric subunits. Each dimeric subunit, composed of 16 functional units, comprises one wall oblique unit made up of 12 functional units and one arch made up of four functional units. The five wall oblique units are separated from each other by five oblique clefts bridged by the five arches, formerly termed collar structures. Each arch is composed of two types of functional units that are probably Soe, a functional unit absent in Octopus hemocyanin, and Soh, the C-terminal functional unit of the polypeptide chain. The architecture of the arches and their intramolecular location in front of the edges of the pentahedron are strongly reminiscent of the arches of Octopus hemocyanin. The D5 point-group symmetry of the molecule suggests that the orientation of the polypeptide chains is antiparallel as in Octopus hemocyanin. Several models of architecture compatible with these results are designed.

Animals↗

Estimation of variance distribution in three-dimensional reconstruction. II. Applications.

A previously developed theory of three-dimensional (3-D) variance estimation [J. Opt. Soc. Am. A 12, 2615-2627 (1995)] is applied to the structural study of a hemocyanin-Fab complex with the electron microscope. The precise locations of structurally variable regions of the macromolecule are determined from the 3-D variance maps. The structural differences among different classes of the macromolecular complex are assessed by the use of the statistical t-test, and the 3-D antibody binding sites are revealed. From a model analysis, a rule is demonstrated for visually identifying a 3-D conformational change by the inspection of the 3-D variance map. Our analysis lays the foundation for numerous practical applications of variance estimation in the 3-D imaging of macromolecules.

Analysis of Variance↗

Three-dimensional reconstruction from a frozen-hydrated specimen of the chiton Lepidochiton sp. hemocyanin.

A frozen-hydrated specimen of the hemocyanin of the chiton Lepidochiton sp. has been subjected to a three-dimensional reconstruction by the random conical tilt- series m wall and a collar complex. The wall is composed of five oblique wall units, disposed as a five-stranded, right-handed helix, separated by five clefts. The oblique wall unit is composed of two strings of functional units separated by a groove parallel with the cleft. The collar complex is a crown-like structure composed of five collar complex units, located at one end of the molecule and slightly protruding outside the cylinder wall. The collar complex unit comprises a collar unit probably composed of two functional units, one of which is connected to the wall, and an arch composed of two additional functional units, each connected to the wall by a narrow bridge. Each arch crosses a cleft between adjacent oblique wall units. The indentations present on both circular faces of the molecule and the dispositions of the masses resemble those of cephalopod hemocyanins.

Animals↗

Quaternary structure of Octopus vulgaris hemocyanin. Three-dimensional reconstruction from frozen-hydrated specimens and intramolecular location of functional units Ove and Ovb.

A frozen-hydrated sample of Octopus vulgaris hemocyanin was imaged at 0 degree and 40 degrees tilt angle under low dose conditions by transmission electron microscopy. A three-dimensional reconstruction by the method of random conical tilt series produced a three-dimensional volume to which a D5 symmetry was applied. Examination of serial sections in the volume and surface representation at various thresholds allowed the five arches containing functional unit Ovg to be localized at the interdimeric subunit groove. In another set of experiments specific polyclonal antibodies were used to label functional units Ovb and Ove in the cylinder wall. The observation of the negatively stained immunocomplexes showed that Ovb is located in the external tiers of functional units and Ove in the internal tier. These results suggest that the direction of the polypeptide chains in the cylinder wall may be only partially antiparallel. A model of the quaternary structure is proposed with the following features: (1) the external tiers of functional units comprise four units each (Ova-d) coming from a single polypeptide chain; (2) the internal tier comprises two functional units from each polypeptide chain (Ove-f); (3) the interdimeric subunit arches connect the two copies of a single functional unit (Ovg) located in each polypeptide chain.

Animals↗

Three-dimensional architecture of human alpha 2-macroglobulin transformed with methylamine.

A frozen-hydrated sample embedded in vitreous ice of human alpha 2-macroglobulin transformed by methylamine was imaged by cryoelectron microscopy and reconstructed in three dimensions. In the reconstruction, the cage-like architecture of this protease inhibitor is fully revealed with a clear visualization of two lozenge-shaped lateral walls connected by thin bridges. The shape and dimensions of the internal cavity normally containing the trapped protease(s) is described. The possible locations of the thiol ester sites and inter-subunit connections are also discussed.

Image Processing, Computer-Assisted↗

Localization of the proteinases in the human alpha 2-macroglobulin-chymotrypsin complex by image processing of electron micrographs.

Human alpha 2-macroglobulin (alpha 2M), a large tetrameric plasma glycoprotein, inhibits a wide spectrum of proteinases by a particular "trapping" mechanism resulting from the proteolysis of peptide bonds at specific "bait" regions. This induces the hydrolysis of four thiol esters triggering both the possible covalent bonding of the proteinases and a considerable structural change in the alpha 2M molecule, also observed following direct cleavage of the thiol esters by methylamine. By subtracting average images of electron micrographs from two populations of alpha 2M molecules in the same biochemical state (with both the four cleaved bait regions and thiol esters), but containing either two or zero chymotrypsins, we are able to demonstrate the position of the two proteinases inside the tetrameric alpha 2M molecule. The comparison of the alpha 2M molecules transformed either by immobilized chymotrypsin or methylamine shows that the proteolysis of the bait regions seems of minimal importance for the general shape of the molecule and provides a direct visualization of the actual role of the thiol esters in the conformational change.

Amino Acid Sequence↗

Three-dimensional reconstruction of native Androctonus australis hemocyanin.

A sample of native 4 x 6-meric hemocyanin of Androctonus australis was negatively stained with the double-layer technique, and was observed by transmission electron microscopy under low-dose conditions with a 50 degree and 0 degree tilt. The three-dimensional reconstruction method from "Single-exposure, random conical tilt series" was then applied. Independent three-dimensional reconstructions were obtained from the top, side and 45 degree views. Despite a pronounced flattening effect, presumably due to the specimen preparation technique, the positions of the 24 subunits composing the oligomer were unequivocally determined. This experiment definitely solves the problem of the architectural organization of the subunits in the cheliceratan 4 x 6-meric hemocyanins. Moreover, distinction between the flip and flop faces and an attenuated rocking effect were observed.

Animals↗

Topological mapping of 13 epitopes on a subunit of Androctonus australis hemocyanin.

A topological localization of epitopes on the surface of the Aa6 subunit of Androctonus australis hemocyanin has been carried out. First, immunocomplex strings composed of native hemocyanin and monoclonal antibodies were examined in the electron microscope and submitted to an image processing by correspondence analysis. The average images were then compared to a three-dimensional model of the 24-mer suggesting that 11 of the 13 epitopes are located in three zones of the subunit surface. Second, the overlaps between the epitopes were then studied by polyacrylamide gel electrophoresis, competitive binding inhibition, and immunoelectron microscopy. Four groups of epitopes were identified. One group was capable of binding exclusively to the free subunit. The other three groups were identical to those found in immunoelectron microscopy. The data are consistent with the existence of a small number of immunodominant regions on the surface of the Aa6 subunit.

Animals↗

Image processing of proteinase- and methylamine-transformed human alpha 2-macroglobulin. Localization of the proteinases.

Comparative x-ray scattering experiments and electron microscopic observations have been performed on native S-form, and on different F-forms of human plasma alpha 2-macroglobulin (alpha 2M), obtained by proteinase (chymotrypsin, plasmin, and thrombin) or methylamine treatment. Image processing of electron micrographs of the alpha 2M molecules transformed by chymotrypsin, plasmin, and methylamine displayed average images which could be compared. The proteinase-complex alpha 2M molecules exhibited the usual H-like structure, but the methylamine-inactivated ones showed a different organization, with almost no stain-excluding material in the central region of the molecule, which therefore presented a central cavity filled with stain. By subtracting average images of alpha 2M-methylamine from alpha 2M-chymotrypsin or alpha 2M-plasmin, a putative localization of the proteinases inside the alpha 2M molecule, very close to its center was revealed. The values of the radii of gyration for the S- and F-forms obtained by x-ray scattering were very different (78 and 67.7 A, respectively). All four scattering curves of the F-forms were comparable in shape and showed maxima and minima different from that of the S-form alpha 2M. Image processing of electron micrographs and x-ray scattering have provided independent results which indicate that a large cavity exists in the alpha 2M-methylamine molecule and that the proteinases might be located in a very central position inside the alpha 2M-proteinase molecules.

Chymotrypsin↗

Intramolecular localization of epitopes within an oligomeric protein by immunoelectron microscopy and image processing.

Three epitopes have been localized by immunoelectron microscopy on subunit Aa6 of the 4 x 6-meric hemocyanin of the scorpion Androctonus australis. Soluble immunocomplexes composed of monoclonal antibodies and of native hemocyanin were purified, negatively stained with uranyle acetate by the single-layer technique, and examined under the electron microscope (EM). The molecule images were digitized, aligned, and submitted to correspondence analysis according to the method of Van Heel and Frank (Ultramicroscopy 6:187-194, 1981). A high-precision localization of the attachment point of the Fab arm to the antigen was achieved through a careful analysis of the average images. This method easily allowed the discrimination of epitopes located in different domains (Mr 20 kDa) of the same subunit. Nonoverlapping epitopes located in the same structural domain of subunit Aa6 could be distinguished by the stain exclusion patterns of their Fab arms. The method is general and may be used for epitope mapping in any antigen producing definite EM views.

Antibodies, Monoclonal↗

Image analysis and three-dimensional model of chymotrypsin-transformed human alpha 2-macroglobulin complexed with a monoclonal antibody specific for this conformation.

Alpha 2-macroglobulin (alpha 2M) is a plasma inhibitor of proteinases, the steric mechanism of which is based on a considerable conformational change. The typical and distinct H-like shape of alpha 2M-chymotrypsin (alpha 2M-chy) complexes seen by electron microscopy led us to an ultrastructural study of the binding of a monoclonal antibody (Mab) specific for this conformation of alpha 2M. The epitope of this Mab is located near the extremities of the 4 arms of the H-like alpha 2M-chy, at a site that is not accessible on the native molecule. The identical binding of the Mab on the 4 arms of the tetrameric molecule demonstrates that these arms are equivalent portions of the 4 monomers. Various types of immune complexes between alpha 2M and IgG are described, and images of individual immune complexes were processed by correspondence analysis. This extracts new information concerning the organization of chymotrypsin-transformed alpha 2M. The molecule appears asymmetrical, presents 2 conformational states (which we describe as relaxed and twisted), and has flexible arms. These intramolecular motions are supposed to be related to IgG binding. The results are discussed in comparison with previously published models of proteinase-transformed alpha 2M.

Antibodies, Monoclonal↗

Three-dimensional immunoelectron microscopy of scorpion hemocyanin labeled with a monoclonal Fab fragment.

An immunocomplex of the 4 x 6-meric hemocyanin of the scorpion Androctonus australis with the monoclonal Fab fragment L104 was reconstructed from electron micrographs of a negatively stained specimen, using the double-carbon-layer technique. The resulting structure enables a clear visualization of the Fab fragments bound to the four copies of the Aa6 subunit and directly confirms a previous localization of the L104 epitope deduced from two-dimensional image processing. Despite a strong flattening effect produced by the negative-staining technique the orientations of the Fab fragments are well characterized. Moreover, the observation of a central hole within the elbow bends of the Fab fragments provides information about the disposition of the Fabs around their main axis.

Animals↗

An approach to the intramolecular localization of the thiol ester bonds in the internal cavity of human alpha 2-macroglobulin based on correspondence analysis.

The plasma proteinase inhibitor alpha 2-macroglobulin (alpha 2M) can trap small proteins including cytokines. With the four internal thiol ester bonds being involved in the covalent binding of proteinases and other ligands, it was of interest to precisely localize these active groups in the alpha 2M molecule. This was approached by comparing methylamine-transformed human alpha 2M (alpha 2M-MA) and alpha 2M-MA chemically coupled to cytochrome c (Cyt c). This enzyme was chosen because of its size, which is close to that of cytokines, and because of the easy quantification of the reaction stoichiometry. The two molecular species were first mixed in a single sample that was deposited on a carbon-coated grid, negatively stained, and imaged in the electron microscope. The aligned images of the two macromolecular species were then separated by correspondence analysis and hierarchical ascendant classification and compared through the calculation of a subtraction image. The interest of this approach is that prior to the separation of the images, the two molecular species are subjected to rigorously identical treatments. The subtraction images between the average images of alpha 2M-MA and Cyt c-alpha 2M-MA allowed an unambiguous localization of the Cyt c molecules in the internal cavity of the alpha 2M molecule. The internal cavity is gradually filled when the Cyt c/alpha 2M ratio increases. However, it is not yet clear whether the thiol groups are located in the median portion of the wall or in the interwall (paddle) structure.

Animals↗

Architecture of native human alpha 2-macroglobulin studied by cryoelectron microscopy and three-dimensional reconstruction.

The architecture of the native human alpha 2-macroglobulin was studied by cryoelectron microscopy and image processing techniques. The lip, padlock, doughnut, and four-petaled flower views of this homotetrameric proteinase inhibitor were observed in the frozen-hydrated specimen, and a new view, termed eye view, was also characterized. The present three-dimensional reconstruction demonstrates that all these electron microscope views derive from a single three-dimensional structure. The molecule is composed of two horizontal bodies and of two oblique arches, which border a large central cavity. The polymorphism and the flexibility of the native alpha 2-macroglobulin are discussed.

Freezing↗

Three-dimensional reconstruction of Androctonus australis hemocyanin labeled with a monoclonal Fab fragment.

An immunocomplex formed by the 4 x 6 meric hemocyanin of the scorpion Androctonus australis with the monoclonal antibody L104 was studied by cryoelectron microscopy and subjected to three-dimensional (3D) reconstruction. The reconstructed particle reflects the structure of the immunocomplex in its hydrated state and is devoid of the flattening that was previously observed with a negatively stained preparation. A 3D fitting of the X-ray data of the Panulirus interruptus hemocyanin and of the Fab R19.9 to the reconstruction volume allowed the first quantitative measurement of the structural parameters of the antigen, and the localization of the epitope at the surface of subunit Aa6. The independent alignment of the Fabs and the hexamers provides a direct verification for the accuracy of the fit and allows the building of the most detailed model of a cheliceratan 4 x 6meric complex and its attached monoclonal antibodies.

Animals↗