PubMed HealthSearch

Biomedical subjects

D R Rose

Publications and source records attributed to D R Rose.

At least 19 recordsLinked to original sources

Crystallographic observation of a covalent catalytic intermediate in a beta-glycosidase.

The three-dimensional structure of a catalytically competent glycosyl-enzyme intermediate of a retaining beta-1,4-glycanase has been determined at a resolution of 1.8 A by X-ray diffraction. A fluorinated slow substrate forms an alpha-D-glycopyranosyl linkage to one of the two invariant carboxylates, Glu 233, as supported in solution by 19F-NMR studies. The resulting ester linkage is coplanar with the cyclic oxygen of the proximal saccharide and is inferred to form a strong hydrogen bond with the 2-hydroxyl of that saccharide unit in natural substrates. The active-site architecture of this covalent intermediate gives insights into both the classical double-displacement catalytic mechanism and the basis for the enzyme's specificity.

Binding Sites

Cloning, overexpression, purification, and characterization of the carboxyl-terminal nucleotide binding domain of P-glycoprotein.

Multidrug-resistant tumor cells overexpress P-glycoprotein (170 kDa), a member of the ABC (ATP Binding Cassette)-transporter superfamily. P-glycoprotein has been implicated in transport of a broad range of amphiphilic, hydrophobic drugs from tumor cells. The sequence and structural organization of P-glycoprotein, which consists of 12 transmembrane helices and two cytoplasmic nucleotide binding domains, is similar to other ABC-transporters. It is believed that the nucleotide binding domains of various ABC transporters, which have 30-50% sequence identity, play an important role in coupling ATP hydrolysis to the transport process. To allow structure-function studies of the nucleotide binding domains, the carboxyl-terminal nucleotide binding domain (NBD) of Chinese hamster P-glycoprotein has been cloned, overexpressed, and purified both by itself and as a fusion with maltose-binding protein. It has been demonstrated that the carboxyl-terminal NBD, when overexpressed in Escherichia coli in the absence of transmembrane helices, has very low ATPase activity. This suggests that the amino-terminal nucleotide binding domain and possibly interaction with the transmembrane domains may be required for full ATPase activity. It is also consistent with the idea that the ATPase activity of P-glycoprotein is stimulated in the presence of drugs. Circular dichroism spectral analysis and the ability of carboxyl-terminal NBD, both by itself and as a fusion with maltose-binding protein, to bind ATP-agarose beads and P-glycoprotein specific monoclonal antibodies suggests that the polypeptide folds into a functional domain. Gel filtration chromatography and cross-linking studies indicate that the carboxyl-terminal NBD has a tendency to self-associate to form oligomers. It is speculated that the carboxyl-terminal NBD may play a role in self-association of P-glycoprotein molecules in the plasma membrane.

ATP Binding Cassette Transporter, Subfamily B, Mem

Crystal structure of the catalytic domain of the beta-1,4-glycanase cex from Cellulomonas fimi.

beta-1,4-Glycanases, principally cellulases and xylanases, are responsible for the hydrolysis of plant biomass. The bifunctional beta-1,4-xylanase/glucanase Cex from the bacterium Cellulomonas fimi, one of a large family of cellulases/xylanases, depolymerizes oligosaccharides and releases a disaccharide unit from the substrate nonreducing end. Hydrolysis occurs with net retention of the anomeric configuration of the sugar through a double-displacement mechanism involving a covalent glycosyl-enzyme intermediate. The active site nucleophile, Glu233, has been unambiguously identified by trapping of such an intermediate [Tull et al. (1991) J. Biol. Chem. 266, 15621-15625] and the acid/base catalyst, Glu127, by detailed kinetic analysis of mutants [MacLeod et al. (1994) Biochemistry 33, 6371-6376]. However, little is known about the enzyme's overall folding and its active site architecture. We report here the high-resolution crystal structure of the catalytic domain of Cex. The atomic structure refinement results in a model that includes 2400 protein atoms and 45 water molecules, with an R-factor of 0.217 for data extending to 1.8-A resolution. The protein forms an eight-parallel-stranded alpha/beta-barrel, which is a novel folding pattern for a microbial beta-glycanase. The active site, inferred from the location of Glu233, Glu127, and other conserved residues, is an open cleft on the carboxy-terminal end of the alpha/beta-barrel. An extensive hydrogen-bonding network stabilizes the ionization states of the key residues; in particular, the Asp235-His205-Glu233 hydrogen-bonding network may play a role in modulating the ionization state of Glu233 and in controlling local charge balance during the reaction.

Binding Sites

Exploring the mimicry of polysaccharide antigens by anti-idiotypic antibodies. The crystallization, molecular replacement, and refinement to 2.8 A resolution of an idiotope-anti-idiotope Fab complex and of the unliganded anti-idiotope Fab.

The monoclonal antibody YsT9.1 is specific for the lipopolysaccharide A antigen of Brucella abortus. A complex formed between the Fab of YsT9.1 (Ab1) and the Fab of its antidiotopic monoclonal antibody T91AJ5 (Ab2) has been crystallized, and data have been collected to 2.8 A resolution. The space group is monoclinic P2(1), with one molecule per asymmetric unit. The structure was solved using a limited Patterson-correlation search over the asymmetric-unit of rotation space, and has been refined to an R-factor of 0.174. The complex is a head-to-head dimer, with the contact between the two Fabs almost completely restricted to their hypervariable loops. The interactions between the two Fabs in the complex are dominated by tyrosine residues, not only in the formation of hydrogen bonds, but in their participation in an aromatic ring network that spans the two Fv domains. The anti-idiotope was found to be unable to carry an internal image of the antigen and induce polysaccharide-specific "anti-anti-idiotopes" (Ab3) because the polysaccharide binding cleft on the Ab1 is too narrow and deep to allow comprehensive contact with the binding site of Ab2. The antibody T91AJ5 therefore is a class gamma anti-idiotope. The contact surfaces of the two Fabs are highly complementary; however, they are distinctly different in character. Each Fab has two separate binding surfaces of approximately equal size, but while the two binding surfaces of Ab1 are partitioned between the light and heavy chains, the two binding surfaces of Ab2 are shared between the chains, with the heavy chain responsible for about 60% of the total binding area. The structure of the unliganded Fab of Ab2 has also been solved by molecular replacement, and refined to an R-factor of 0.152 at 2.8 A resolution. This Fab crystallizes in the orthorhombic space group P2(1)2(1)2(1), with one molecule per asymmetric unit. The second hypervariable loop of the heavy chain of the Ab2 Fab is observed to undergo a significant and necessary conformational rearrangement in going from the unliganded to complexed form, and thus complex formation is an example of "induced fit" of antigen to antibody. The unliganded Ab1 Fab packs in the standard head-to-tail fashion observed for other Fabs. This mode of packing is precluded in the complex, by its head-to-head nature, and it is found to pack in tilted layers with most intermolecular contacts made between adjacent Ab2 Fab molecules.(ABSTRACT TRUNCATED AT 400 WORDS)

Antibodies, Anti-Idiotypic

Preliminary crystallographic analysis of a Fab specific for P-glycoprotein with and without bound peptide.

The antigen-binding fragment (Fab) of anti-peptide monoclonal antibody C219 raised against the multidrug resistance associated P-glycoprotein has been crystallized with and without bound peptide. The crystals of the Fab in the absence and presence of peptide belong to space groups P2(1) and P2(1)2(1)2(1), respectively. The volumes of both crystal forms are consistent with the presence of four Fab molecules per asymmetric unit. Diffraction data to 3.2 A resolution have been collected on a San Diego Multiwire Area Detector system from both crystal forms. Determination of the molecular replacement solutions is underway.

ATP Binding Cassette Transporter, Subfamily B, Mem

Three-dimensional model of a human interferon-alpha consensus sequence.

A computer-built, three-dimensional, atomic-level model for human interferon-alpha (IFN-alpha) was constructed. This model was prepared using the primary amino acid sequence of consensus IFN-alpha (IFN-alpha Con1) and the alpha-carbon Cartesian coordinates of murine IFN-beta as a homolog guide to the model building. In agreement with an earlier report from this laboratory, the two domains 29-35 and 123-140 are in close spatial proximity in this model, and may constitute a receptor recognition domain, whereas the region bounded by residues 78-95 is somewhat removed from this region on the molecule and may constitute an alternative active site. Extrapolating from the model, we propose that, of the stretch 123-140, the residues that are exposed are 123, 125, 126, 128-130, and 132-139; and of the stretch 29-35, all are accessible. Additionally, we propose that there may be sufficient complexity in the Type 1 IFN receptor to account for the differential sensitivities between IFN-alpha s and IFN-beta that may be associated with residue differences in the region 78-95, specifically at residues 84, 86, and 87. This model conforms with experimental data that identify specific amino acid residues in human IFN-alpha that either do, or do not, affect the active conformation and biological activities of the molecule.

Amino Acid Sequence

Torsion angle differences as a means of pinpointing local polypeptide chain trajectory changes for identical proteins in different conformational states.

We discuss a facile and sensitive method of determining conformational differences based on the changes in the phi and psi angle values between chemically identical proteins in different conformations. It complements the conventional r.m.s. deviation technique, but offers some advantages. Two classes of conformational difference can be distinguished by this method: (i) abrupt local trajectory deformations where the chains flanking the locus of deformation remain simultaneously superposable and (ii) localized 'hinge bending' that generates domain shifts, thereby causing only one domain to be superposable on the other at one time. In the second case, the r.m.s. deviation method requires two or more calculations of r.m.s. deviation as a function of sequence after optimal alignment of each domain to demonstrate the superposability of the shifted domains, and hence the conservation of internal domain structure. On the other hand, the method of plotting delta phi and/or delta psi as a function of sequence demonstrates in one graph the superposability of shifted domains, without the prior need to perform rotational and translational alignments whose outcomes vary with the subjective choice of alignment parameters. Also, an analysis of the r.m.s. deviation in C alpha alone will miss torsion angle rotations that happen to preserve C alpha positions. The method pinpoints residues contributing singly to localized, major movements of a conformational change; however, it is insensitive to conformational changes achieved through small, concerted movements spread over a number of residues.(ABSTRACT TRUNCATED AT 250 WORDS)

Antigens, Bacterial

Refinement of recombinant oncomodulin at 1.30 A resolution.

A refinement of the oncomodulin crystal structure at 1.30 A resolution has been carried out with X-ray data from the recombinant protein. The crystallographic R-factor values are 0.169 for 19,995 reflections in the range 6.0 to 1.30 A, which were used for the restrained least-squares refinement, and 0.176 for 20,186 observed reflections in the range 10.0 to 1.30 A. This high resolution refinement has enabled us to make more definitive statements about the molecular structure than was possible heretofore. The present model includes residues 1 to 108, the two Ca2+ of the CD and EF loops, two intermolecular Ca2+, and 103 water molecules per oncomodulin molecule. The electron density maps indicate disordered orientations for ten residues on the hydrophilic surface of the molecule. The pattern of molecular aggregation via intermolecular Ca2+, which occurs in the native rat oncomodulin structure, is also present in the recombinant oncomodulin structure. The Cys18 side-chain is not in a position that would be easily accessible for molecular dimerization via a disulphide bond. The substitution of Glu59, which is preserved in all the determined species of parvalbumin, by Asp59 in oncomodulin seems to break a stabilizing hydrogen bond in the CD loop and render the main-chain in positions 59 to 60 somewhat unstable. This instability in the CD loop, and the strong tendency of oncomodulin for molecular aggregation via intermolecular Ca2+, appear to be the two outstanding features that may account for oncomodulin's biological peculiarities.

Animals

Crystal structure to 2.45 A resolution of a monoclonal Fab specific for the Brucella A cell wall polysaccharide antigen.

The atomic structure of an antibody antigen-binding fragment (Fab) at 2.45 A resolution shows that polysaccharide antigen conformation and Fab structure dictated by combinatorial diversity and domain association are responsible for the fine specificity of the Brucella-specific antibody, YsT9.1. It discriminates the Brucella abortus A antigen from the nearly identical Brucella melitensis M antigen by forming a groove-type binding site, lined with tyrosine residues, that accommodates the rodlike A antigen but excludes the kinked structure of the M antigen, as envisioned by a model of the antigen built into the combining site. The variable-heavy (VH) and variable-light (VL) domains are derived from genes closely related to two used in previously solved structures, M603 and R19.9, respectively. These genes combine in YsT9.1 to form an antibody of totally different specificity. Comparison of this X-ray structure with a previously built model of the YsT9.1 combining site based on these homologies highlights the importance of VL:VH association as a determinant of specificity and suggests that small changes at the VL:VH interface, unanticipated in modeling, may cause significant modulation of binding-site properties.

Antibody Specificity

Crystallization and preliminary X-ray diffraction analysis of the catalytic domain of Cex, an exo-beta-1,4-glucanase and beta-1,4-xylanase from the bacterium Cellulomonas fimi.

Single crystals of the catalytic domain of Cex, an exo-beta-1,4-glucanase and beta-1,4-xylanase from the cellulolytic bacterium Cellulomonas fimi, have been grown in the presence of polyethylene glycol 4000 using the vapour diffusion technique. The crystals, which diffract to better than 2.0 A resolution, belong to space group P4(1)2(1)2 or P4(3)2(1)2 and have cell constants: a = b = 88.21 A, c = 81.10 A; alpha = beta = gamma = 90 degrees.

Actinomycetales

Prolactin and growth hormone levels in premenopausal women with breast cancer and healthy women with a strong family history of breast cancer.

Although both prolactin and growth hormone are believed to play roles in the development and growth of rodent mammary cancer, the role of these hormones in human breast cancer is uncertain. Under carefully specified conditions, serum levels of these hormones were determined by radioimmunoassay (RIA) and prolactin was determined by bioassay in 18 premenopausal women with breast cancer, 23 healthy women with a strong family history of breast cancer, and 39 healthy women with no significant family history of breast cancer. Parity was associated strongly with decreased prolactin levels, and increasing age was associated strongly with decreased growth hormone levels. After controlling for these variables, no differences in prolactin or growth hormone levels were found among the three groups of women. These data do not support roles for these RIA-measured hormones or bioassay-measured prolactin in premenopausal or familial breast cancer in omnivorous white women.

Adult

Recognition of a cell-surface oligosaccharide of pathogenic Salmonella by an antibody Fab fragment.

The 2.05 angstrom (A) resolution crystal structure of a dodecasaccharide-Fab complex revealed an unusual carbohydrate recognition site, defined by aromatic amino acids and a structured water molecule, rather than the carboxylic acid and amide side chains and a structured water molecule, rather than the carboxylic acid and amide side chains that are features of transport and other carbohydrate binding proteins. A trisaccharide epitope of a branched bacterial lipopolysaccharide fills this hydrophobic pocket (8 A deep by 7 A wide) in an entropy-assisted association (association constant = 2.05 x 10(5) liters per mole, enthalpy = -20.5 +/- 1.7 kilojoules per mole, and temperature times entropy = +10.0 +/- 2.9 kilojoules per mole). The requirement for the complementarity of van der Waals surfaces and the requirements of saccharide-saccharide and protein-saccharide hydrogen-bonding networks determine the antigen conformation adopted in the bound state.

Amino Acid Sequence

Three-dimensional structure of murine anti-p-azophenylarsonate Fab 36-71. 1. X-ray crystallography, site-directed mutagenesis, and modeling of the complex with hapten.

The structure of the antigen-binding fragment (Fab) of an anti-p-azophenylarsonate monoclonal antibody, 36-71, bearing a major cross-reactive idiotype of A/J mice has been refined to an R factor of 24.8% at a resolution of 1.85 A. The previously solved partial structure of this Fab at a resolution of 2.9 A (Rose et al., 1990) was used as an initial model for refinement against the high-resolution data. The complex with hapten has been modeled by docking the small-molecule crystal structure of phenylarsonic acid into the structure of the native Fab on the basis of a low-resolution electron density map of the complex. In this model, residue Arg-96 in the light chain and residues Asn-35, Trp-47, and Ser-99 in the heavy chain contact the arsonate moiety of the hapten; an additional bond is found between the arsonate group and a tightly bound water molecule. The phenyl moiety of the hapten packs against two tyrosine side chains at positions 50 and 106 in the heavy chain. Residue Arg-96 in the light chain had been implicated as involved in hapten binding on the basis of previous experiments, and indeed, this residue appears to play a crucial role in this model. Experiments employing site-directed mutagenesis directly support this conclusion. The heavy-chain complementarity-determining regions have novel conformations not previously observed in immunoglobulins except for the recently solved anti-p-azophenylarsonate Fab R 19.9 (Lascombe et al., 1989).

Amino Acid Sequence

Structure of oncomodulin refined at 1.85 A resolution. An example of extensive molecular aggregation via Ca2+.

The crystal structure of oncomodulin, a 12,000 Mr protein isolated from rat tumours, has been determined by molecular replacement using the carp parvalbumin structure as a starting model. Refinement was performed by cycles of molecular fitting and restrained least-squares, using area-detector intensity data to 1.85 A resolution. For the 5770 reflections in the range 6.0 to 1.85 A, which were used in the refinement, the crystallographic R-factor is 0.166. The refined model includes residues 2 to 108, three Ca2+ and 87 water molecules per oncomodulin molecule. The oncomodulin backbone is closely related to that of parvalbumin; however, some differences are found after a least-squares fit of the two backbones, with root-mean-square (r.m.s.) deviations of 1 to 2 A in residues 2 to 6, 59 to 61 of the CD loop, 87, 90 and 108. The overall r.m.s. deviation of the backbone residues 5 to 108 is 0.62 A. Each of the two Ca2+ atoms that are bound to the CD and EF loops is co-ordinated to seven oxygen atoms, including one water molecule. The third Ca2+ is also seven-co-ordinated, to five oxygen atoms belonging to three different oncomodulin molecules and to two water molecules which form hydrogen bonds to a fourth oncomodulin; thus, this intermolecular Ca2+ and its equivalents interlink the molecules into zigzag layers normal to the b axis with a spacing of b/2 or 32.14 A. No such extensive molecular aggregation has been reported for any of the related Ca-binding regulatory proteins of the troponin-C family studied thus far. The Ca-O distances in all three polyhedra are in the range 2.07 A to 2.64 A, indicating tightly bound Ca polyhedra.

Amino Acid Sequence

Preliminary crystal structure analysis of an Fab specific for a Salmonella O-polysaccharide antigen.

The Fab from an IgG1, lambda murine monoclonal antibody with specificity for the O-polysaccharide antigen of Salmonella typhimurium has been crystallized in the absence and presence of hapten. The conditions for crystal growth were vapor diffusion equilibration with 16 to 23% polyethylene glycol 8000 solutions. Data have been collected from crystals of the complex in space group P212121, a = 60.6 A, b = 111.3 A, c = 61.1 A, and refinement of a molecular replacement solution is underway.

Animals

Crystallization of recombinant rat cathepsin B.

A glycosylation-minus mutant of rat cathepsin B expressed in yeast has been purified and crystallized. X-ray diffraction data have been collected and molecular replacement for solving the structure is in progress. The space group for the recombinant rat cathepsin B was determined to be P2(1) with unit cell dimensions alpha = 62.2 A, b = 90.19 A, c = 47.07 A, and beta = 97.43 degrees. A unit cell contains 4 molecules and 2 molecules per asymmetric unit.

Animals