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W N Lipscomb

Publications and source records attributed to W N Lipscomb.

At least 37 records · Page 2Linked to original sources

Structural aspects of the allosteric inhibition of fructose-1,6-bisphosphatase by AMP: the binding of both the substrate analogue 2,5-anhydro-D-glucitol 1,6-bisphosphate and catalytic metal ions monitored by X-ray crystallography.

The crystal structures of the T form pig kidney fructose-1,6-bisphosphatase (EC 3.1.3.11) complexed with AMP, the substrate analogue 2,5-anhydro-D-glucitol 1,6-bisphosphate (AhG-1,6-P2), and Mn2+ at concentrations of 5, 15, 100, and 300 microM have been determined and refined at resolutions of 2.1-2.3 A to R factors which range from 0.180 to 0.195, respectively. Two metal ions per active site have been identified, one at a binding site of high affinity (metal site 1'), the second in a low affinity site (metal site 2'). The 1-phosphate group of the substrate analogue coordinates to the metal ion at site 1', but not at site 2'. In these four complexes, the distances between the two metal ions are all within 0.2 A of 4.3 A. In the previously determined R form structure of Fru-1,6-Pase complexed with AhG-1,6-P2 and Mn2+, there are also two metal ions in the active site at metal sites 1 and 2. The metal ion at site 1 is only 0.6 A displaced from the metal ion at site 1' in the T form and is also coordinated to the 1-phosphate group of AhG-1,6-P2. However, the second metal ion is located in two distinct sites which are 1.4 A apart in the T and R form structures. In the R form the Mn2+ at site 2 is coordinated to the 1-phosphate group of the substrate analogue. This metal ion is apparently required to orient the phosphate group for nucleophilic attack at the phosphorus center.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Monophosphate↗

Crystal structure of fructose-1,6-bisphosphatase complexed with fructose 2,6-bisphosphate, AMP, and Zn2+ at 2.0-A resolution: aspects of synergism between inhibitors.

The crystal structure of fructose-1,6-bisphosphatase (Fru-1,6-Pase; EC 3.1.3.11) complexed with Zn2+ and two allosteric regulators, AMP and fructose 2,6-bisphosphate (Fru-2,6-P2) has been determined at 2.0-A resolution. In the refined model, the crystallographic R factor is 0.189 with rms deviations of 0.014 A and 2.8 degrees from ideal geometries for bond lengths and bond angles, respectively. A 15 degrees rotation is observed between the upper dimer C1C2 and the lower dimer C3C4 relative to the R-form structure (fructose 6-phosphate complex), consistent with that expected from a T-form structure. The major difference between the structure of the previously determined Fru-2,6-P2 complex (R form) and that of the current quaternary T-form complex lies in the active site domain. A zinc binding site distinct from the three binding sites established earlier was identified within each monomer. Helix H4 (residues 123-127) was found to be better defined than in previously studied ligated Fru-1,6-Pase structures. Interactions between monomers in the active site domain were found involving H4 residues from one monomer and residues Tyr-258 and Arg-243 from the adjacent monomer. Cooperativity between AMP and Fru-2,6-P2 in signal transmission probably involves the following features: an AMP site, the adjacent B3 strand (residues 113-118), the metal site, the immediate active site, the short helix H4 (residues 123-127), and Tyr-258 and Arg-243 from the adjacent monomer within the upper (or lower) dimer. The closest distance between the immediate active site and that on the adjacent monomer is only 5 A. Thus, the involvement of H4 in signal transmission adds another important pathway to the scheme of the allosteric mechanism of Fru-1,6-Pase.

Adenosine Monophosphate↗

Toward a mechanism for the allosteric transition of pig kidney fructose-1,6-bisphosphatase.

We examine structural aspects of the allosteric transition of pig kidney fructose-1,6-bisphosphatase (Fru-1,6-Pase) by analyzing the X-ray structures of the R and T form enzymes. The results show a hierarchical structural change during the R to T transition. Upon binding of AMP, a cascade of structural changes occurs starting from the AMP site: expansion of the AMP site, local conformational changes of helices H1 and H2, independent rotations and translation of helices H1, H2 and H3 (and loops connecting them), reorganization of the AMP domain as a whole and its 1.9 degrees rotation relative to the fructose-1,6-bisphosphate domain, and conformational changes at the C1-C2 and C1-C4 interfaces leading to the quaternary conformational change of a 17 degrees rotation between dimers. The AMP inhibition results from the relative movement between the AMP and FBP domains which distorts the active site during the transition by shifting the metal binding sites to unfavourable positions. Communication that ensures cooperativity during R to T transition relies on changes in positions of helices H1, H2 and H3, loops 127-131, 168-170 and 187-192, and on N-terminal residues. All of these features are close to the C1-C4 and symmetry equivalent C2-C3 interfaces and the relatively small C1-C3 interface of the T form. These secondary structures form the framework along which structural changes due to AMP binding can propagate to other parts of the monomers as well as across monomer interfaces. Future dynamics studies may be useful to analyze initiation, propagation and completion of the quaternary conformational change of Fru-1,6-Pase upon AMP binding. Also, site directed mutagenesis experiments are expected to provide more detailed descriptions of the importance of each of the residues that has been identified here in the proposed mechanisms.

Adenosine Monophosphate↗

The crystal structure of allosteric chorismate mutase at 2.2-A resolution.

The crystal structure of an allosteric chorismate mutase, the Thr-226-->Ile mutant, from yeast Saccharomyces cerevisiae has been determined to 2.2-A resolution by using the multiple isomorphous replacement method. Solvent-flattening and electron-density modification were applied for phase improvement. The current crystallographic R factor is 0.196. The final model includes 504 of the 512 residues and 97 water molecules. In addition, two tryptophan molecules were identified in the interface between monomers. The overall structure is completely different from the reported structure of chorismate mutase from Bacillus subtilis. This structure showed 71% helices with essentially no beta-sheet structures.

Allosteric Regulation↗

The crystallization and preliminary X-ray analysis of allosteric chorismate mutase.

An allosteric chorismate mutase, the Thr226-->Ile mutant, from the yeast Saccharomyces cerevisiae has been crystallized in space group P6(1)(P6(5)) using the hanging drop vapour diffusion method at room temperature. The cell dimensions are a = b = 95.8 A, c = 157.9 A, alpha = beta = 90 degrees, gamma = 120 degrees. It contains a dimer in the crystallographic asymmetric unit. The crystal diffracts to 2.2 A resolution. A native data set has been collected to 82% completeness at this resolution.

Allosteric Regulation↗

The monofunctional chorismate mutase from Bacillus subtilis. Structure determination of chorismate mutase and its complexes with a transition state analog and prephenate, and implications for the mechanism of the enzymatic reaction.

Structures have been determined for chorismate mutase from Bacillus subtilis and of complexes of this enzyme with product and an endo-oxabicyclic transition state analog using multiple isomorphous replacement plus partial structure phase combination and non-crystallographic averaging. In addition to 522 water molecules, the model includes 1380 of the 1524 amino acid residues of the four trimers (each containing 3 x 127 amino acid residues) in the asymmetric unit. Refinement to 1.9 A resolution yields 0.194 for R and r.m.s. deviations from ideal values of 0.014 A for bond lengths and 2.92 degrees for bond angles. The trimer resembles a beta-barrel structure in which a core beta-sheet is surrounded by helices. The structures of the two complexes locate the active sites which are at the interfaces of adjacent pairs of monomers in the trimer. These structures have been refined at 2.2 A to a crystallographic R value of 0.18 and show r.m.s. deviations from ideal values of 0.013 A for bond lengths and 2.84 degrees or 3.05 degrees for bond angles, respectively. The final models have 1398 amino acid residues, nine prephenate molecules and 503 water molecules in the product complex, and 1403 amino acid residues, 12 inhibitor molecules and 530 water molecules in the transition state complex. The active sites of all three of these structures are very similar and provide a structural basis for the biochemical studies that indicate a pericyclic mechanism for conversion of chorismate to prephenate. The absence of reactive catalytic residues on the enzyme, the selective binding of the single reactive conformation of chorismate, the stabilization of the polar transition state, and the possible role of the C-terminal region in "capping" the active site are factors which relate these structures to the million-fold rate enhancement of this reaction.

Amino Acid Sequence↗

Crystallization and preliminary crystallographic analysis of a DNA (cytosine-5)-methyltransferase from Haemophilus aegyptius bound covalently to DNA.

A DNA (cytosine)-5-methyltransferase from Haemophilus aegyptius (M.Hae III), which catalyzes methyl transfer from S-adenosyl-L-methionine to DNA, has been crystallized as a covalent complex with a suicide oligonucleotide substrate. Crystals of the co-complex were grown by vapor diffusion with hanging droplets, using polyethylene glycol 3500 as the precipitant. The crystals belong to the orthorhombic space group P2(1)2(1)2(1); the unit cell parameters are a = 57.6 A, b = 108.0 A, c = 155.8 A with two protein-DNA complexes in the asymmetric unit. Complete sets of native and derivative data have been collected to 2.7 A using a laboratory source.

Base Sequence↗

Crystal structures of the monofunctional chorismate mutase from Bacillus subtilis and its complex with a transition state analog.

We have solved the structure of a chorismate mutase (chorismate pyruvatemutase, EC 5.4.99.5), the 1.9-A crystal structure of the monofunctional enzyme from Bacillus subtilis. The structure determination process was an unusual one, involving 12 monomers of the enzyme in the asymmetric unit. This structure was solved by the multiple isomorphous replacement method with partial structure phase combination and molecular averaging. The final model, which includes 1380 residues and 522 water molecules in an asymmetric unit, has been refined at 1.9 A and the current crystallographic R value is 0.201. The B. subtilis chorismate mutase is a homotrimer, with beta-sheets from each monomer packing to form the core of a pseudo-alpha beta-barrel with helices on the outside of the trimer. In addition, the active sites have been located by using data from a complex with an endo-oxabicyclic inhibitor that mimics the transition state of the reaction. The structure of this complex has been refined to 2.2 A with a current R value of 0.182 for a model that includes 1388 residues, 12 inhibitor molecules, and 530 water molecules in the asymmetric unit. In each trimer, three equivalent active sites are located at the interfaces of two adjacent subunits.

Amino Acid Sequence↗

X-ray crystallographic determination of the structure of bovine lens leucine aminopeptidase complexed with amastatin: formulation of a catalytic mechanism featuring a gem-diolate transition state.

The structure of the complex of bovine lens leucine aminopeptidase (blLAP) with the slow-, tight-binding inhibitor amastatin has been determined by X-ray crystallography. X-ray diffraction data were collected at -150 degrees C from a single blLAP-amastatin crystal which under the data collection conditions was of the space group P6(3)22 with unit cell parameters a = 130.3 A and c = 121.9 A. The structure of the blLAP-amastatin complex was determined by molecular replacement, using the structure of native blLAP as the starting model. Refinement of the blLAP-amastatin model plus 132 water molecules against data from 10.0- to 2.4-A resolution resulted in a final structure with a crystallographic residual of 0.198. The binding mode of amastatin is similar to that of bestatin, the structure of whose complex with blLAP has previously been determined. Of particular note, the N-terminus-to-C-terminus orientation of the two bound inhibitors is the same. The two N-terminal residues of amastatin and bestatin occupy the same binding sites, which are most likely S1 and S'1. The slow binding of amastatin and bestatin may be partially attributable to a binding mechanism in which the two active site metals are sequentially coordinated by the P1 amino and hydroxyl groups of these inhibitors. A catalytic mechanism for blLAP is proposed based on the binding modes of amastatin and bestatin and plausible binding modes of a dipeptide substrate and its putative gem-diolate transition state which were modeled into the active site of blLAP after the binding mode of amastatin. The proposed catalytic mechanism invokes roles for the catalytic metals in binding and activating the substrate and in stabilizing the transition state. The mechanism also includes roles for Asp-255 as a general base, Arg-336 as an additional electrophilic substrate activator and transition state stabilizer, and Lys-262 as a proton shuttle.

Amino Acid Sequence↗

Differentiation and identification of the two catalytic metal binding sites in bovine lens leucine aminopeptidase by x-ray crystallography.

The tightly binding and readily exchanging metal binding sites in the active site of bovine lens leucine aminopeptidase (blLAP; EC 3.4.11.1) have been differentiated and identified by x-ray crystallography. In native blLAP,Zn2+ occupies both binding sites. In solution, site 1 readily exchanges Zn2+ for other divalent cations, including Mg2+. The Zn2+ in site 2 is unavailable for metal exchange under conditions which allow exchange at site 1. The Zn2+/Mg2+ metal hybrid of blLAP (Mg-blLAP) was prepared in solution and crystallized. X-ray diffraction data to 2.9-A resolution were collected at -150 degrees C from single crystals of Mg-blLAP and native blLAP. Comparisons of omit maps calculated from the Mg-blLAP data with analogous maps calculated from the native blLAP data show electron density in one of the metal binding sites in Mg-blLAP which is much weaker than the electron density in the other binding site. Since there are fewer electrons associated with Mg2+ than with Zn2+, the difference in electron density between the two metal binding sites is consistent with occupancy of the weaker electron density site by Mg2+ and identifies this metal binding site as site 1, defined as the readily exchanging site. The present identification of the metal binding sites reverses the previous presumptive assignment of the metal binding sites which was based on the structure of native blLAP [Burley, S. K., David, P. R., Sweet, R. M., Taylor, A. & Lipscomb, W. N. (1992) J. Mol. Biol. 224, 113-140]. According to the residue-numbering convention of native blLAP, the new assignment of the metal binding sites identifies the readily exchanging site 1 with Zn-488, which is within interaction distance of one side-chain carboxylate oxygen from each of Asp-255, Asp-332, and Glu-334 and the main-chain carbonyl oxygen of Asp-332. The more tightly binding site 2 is identified with Zn-489, which is within interaction distance of one side-chain carboxylate oxygen from each of Asp-255, Asp-273, and Glu-334 and the side-chain amine nitrogen of Lys-250.

Amino Acid Sequence↗

Re-refinement of the X-ray crystal structure of bovine lens leucine aminopeptidase complexed with bestatin.

Bestatin, (2S,3R)-3-amino-2-hydroxy-4-phenylbutanoyl-L-leucine, has been incorrectly modelled in the previously reported structure of the complex between bovine lens leucine aminopeptidase (blLAP) and bestatin. In the previously reported structure, the C2 of bestatin was modelled and refined in the R configuration instead of the correct S configuration. The structure of the blLAP-bestatin complex has been re-refined after remodelling bestatin in its correct stereochemistry.

Animals↗

Allosteric transition of fructose-1,6-bisphosphatase.

Structural changes during the R-to-T transition of fructose-1,6-bisphosphatase (EC 3.1.3.11) form a hierarchy, in which structural changes at one level are supported by those at the other levels. The quaternary conformational changes involve a 17 degrees rotation between the upper and lower dimers, and a 3.4 degrees rotation between monomers in a dimer. Within monomers, the FBP domain, which remains rigid during the R-to-T transition, rotates 2.3 degrees relative to the AMP domain, which undergoes significant structural reorientations. The most important of these reorientations are the newly identified partially ordered loop residues 55-61 in the T state and reorientations of helices H1, H2, and H3. Supporting these structural changes are numerous readjustments of hydrogen bonding and van der Waals interactions throughout the entire tetrameric protein. Propagation of structural changes during the R-to-T transition relies primarily on helices H1, H2, H3, and loop 50-72. The change that begins at the AMP site causes reorientation of H1, H2, and H3 and changes of interactions across the C1-C4 (C2-C3) interface. These changes may propagate down H1, H2, H3, and loop 50-72 to affect interactions across the C1-C2 (C3-C4) and C1-C3 (C2-C4) interfaces. AMP inhibition is most probably caused by reduced metal binding affinity due to structural changes of metal ligands (Glu97, Asp118, and Asp121) in the active site. The eight-stranded beta-sheet, particularly the beta-strand B3, which connects Lys112 and Tyr113 of the AMP site with Asp118 and Asp121 of the metal site, may be responsible for communication between the AMP and active sites. Additional structural changes that support such communication include reorientation of the FBP domain and H1, H2, and H3 relative to the eight-stranded beta-sheet, and new conformations of loop 54-72 in the T state as AMP binds.

Adenosine Monophosphate↗

Crystallographic studies of the catalytic mechanism of the neutral form of fructose-1,6-bisphosphatase.

The crystal structures of fructose-1,6-bisphosphatase (EC 3.1.3.11) complexed with substrate alone or with substrate analogues in the presence of divalent metal ions have been determined. The substrate analogues, 2,5-anhydro-D-glucitol-1,6-bisphosphate (AhG-1,6-P2) and 2,5-anhydro-D-mannitol-1,6-bisphosphate (AhM-1,6-P2), differ from the alpha and beta anomers of fructose-1,6-bisphosphate (Fru-1,6-P2), respectively, in that the OH on C2 is replaced by a hydrogen atom. Structures have been refined at resolutions of 2.5 to 3.0 A to R factors of 0.172 to 0.195 with root-mean-square deviations of 0.012-0.018 A and 2.7-3.8 degrees from the ideal geometries of bond lengths and bond angles, respectively. In addition, the complex of substrate with the enzyme has been determined in the absence of metal. The electron density at 2.5-A resolution does not distinguish between alpha and beta anomers, which differ for the most part only in the position of the 1-phosphate group and the orientation of the C2-hydroxyl group. The positions of the 6-phosphate and the sugar ring of the substrate analogues are almost identical to those of the respective anomer of the substrate. In the presence of metal ions the positions of the 1-phosphate groups of both alpha and beta analogues differ significantly (0.8-1.0 A) from those of anomers of the substrate in the metal-free complex. Two metal ions (Mn2+ or Zn2+) are located at the enzyme active site of complexes of the alpha analogue AhG-1,6-P2. Metal site 1 is coordinated by the carboxylate groups of Glu-97, Asp-118, and Glu-280 and the 1-phosphate group of substrate analogue, while the metal site 2 is coordinated by the carboxylate groups of Glu-97, Asp-118, the 1-phosphate group of substrate analogue, and the carbonyl oxygen of Leu-120. Both metal sites have a distorted tetrahedral geometry. However, only one metal ion (Mg2+ or Mn2+) is found very near the metal site 1 in the enzyme's active site in complexes of the beta analogue AhM-1,6-P2 or for Mg2+ in the complex of the alpha analogue AhG-1,6-P2. This single metal ion is coordinated by the carboxylate groups of Glu-97, Asp-118, Asp-121, and Glu-280 and the 1-phosphate group of substrate analogue in a distorted square pyramidal geometry.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Structural similarities between fructose-1,6-bisphosphatase and inositol monophosphatase.

Fructose-1,6-bisphosphatase and inositol monophosphatase are found to share a similar secondary structure topology even though their sequences have very limited homology. Both enzymes have a layered alpha beta alpha beta alpha type structure and similar tertiary structures. All but one of the metal binding residues are conserved between these two enzymes and homologous proteins. The exception is Glu-280 in fructose-1,6-bisphosphatase to Asp-220 in inositol monophosphatase.

Amino Acid Sequence↗

Crystal structure of CTP-ligated T state aspartate transcarbamoylase at 2.5 A resolution: implications for ATCase mutants and the mechanism of negative cooperativity.

The X-ray crystal structure of CTP-ligated T state aspartate transcarbamoylase has been refined to an R factor of 0.182 at 2.5 A resolution using the computer program X-PLOR. The structure contains 81 sites for solvent and has rms deviations from ideality in bond lengths and bond angles of 0.018 A and 3.722 degrees, respectively. The cytosine base of CTP interacts with the main chain carbonyl oxygens of rTyr-89 and rIle-12, the main chain NH of rIle-12, and the amino group of rLys-60. The ribose hydroxyls form polar contacts with the amino group of rLys-60, a carboxylate oxygen of rAsp-19, and the main chain carbonyl oxygen of rVal-9. The phosphate oxygens of CTP interact with the amino group of rLys-94, the hydroxyl of rThr-82, and an imidazole nitrogen of rHis-20. Recent mutagenesis experiments evaluated in parallel with the structure reported here indicate that alterations in the hydrogen bonding environment of the side chain of rAsn-111 may be responsible for the homotropic behavior of the pAR5 mutant of ATCase. The location of the first seven residues of the regulatory chain has been identified for the first time in a refined ATCase crystal structure, and the proximity of this portion of the regulatory chain to the allosteric site suggests a potential role for these residues in nucleotide binding to the enzyme. Finally, a series of amino acid side chain rearrangements leading from the R1 CTP allosteric to the R6 CTP allosteric site has been identified which may constitute the molecular mechanism of distinct CTP binding sites on ATCase.

Allosteric Site↗

A molecular mechanism for pyrimidine and purine nucleotide control of aspartate transcarbamoylase.

CTP (ATP) binding to the T or R state causes reorientation of several key residues and results in a decrease (increase) in the size of the nucleotide binding site and a related decrease (increase) in the extension of the outer parts of the dimer of the regulatory chains, R1 and R6. As a result, CTP pinches the regulatory dimers together by 0.3 A in the R state; ATP pushes the regulatory dimers apart by 0.3 A in the T state. These changes influence key residues in the R1-C1 interface of the R state and the R1-C1 and R1-C4 interfaces of the T state, such that the separation of catalytic trimers (c3 ... c3) is decreased by 0.5 A by CTP in the R state and increased by 0.4 A by ATP in the T state. (Smaller effects on c3 ... c3 are observed when CTP binds to the sterically crowded T state or when ATP binds to the elongated R state). These changes reorient key residues in the active site (e.g., catalytic chain residue Arg-229, a residue involved in aspartate binding). This pattern for action of CTP and ATP in perturbing the regulatory dimer, and consequently both the structure and flexibility in critical parts of the T state or R state, is called the nucleotide perturbation mechanism.

Adenosine Triphosphate↗