PubMed HealthSearch

Biomedical subjects

A J Slotboom

Publications and source records attributed to A J Slotboom.

At least 19 recordsLinked to original sources

Proton-nuclear-magnetic-resonance/pH-titration studies of the histidines of pancreatic phospholipase A2.

The study by means of 1H nuclear magnetic resonance (NMR) of the histidines of phospholipase A2 isolated from porcine, bovine and equine pancreas is reported. Assignment of the histidine resonances was achieved by comparison of different enzymes and the use of paramagnetic probes. pH titration curves for various histidyl resonances were obtained and compared in the presence and absence of calcium. Calcium is shown to lower the pKa of the active site histidine. The NMR results are compared with the known X-ray three-dimensional structure for the bovine enzyme.

Amino Acid Sequence

Regulation of phospholipase A2 activity by the lipid-water interface: a monolayer approach.

Interfacial regulation of phospholipase A2 activity on lecithin monolayers was investigated by using radioactively labeled enzyme. Labeling of the protein with 125I did not produce a change of the enzyme and protein properties as compared to the 3H fully amidinated phospholipase A2. The induction time observed during pre-steady-state kinetics reflects the rate-limiting step of the penetration of the enzyme in the interface. This penetration is reversible. However, in the surface pressure range where the enzyme is able to hydrolyze the lecithin films, the desorption of the protein from the film is slow as compared to the adsorption. Below a surface pressure of 10 dyn/cm nonspecific adsorption occurs. Using lecithins with fatty acids of different chain lengths, we have shown that the kinetics of the penetration process is governed by the packing density of the substrate molecules independent of the surface pressure. However, the steady-state surface concentration of the enzyme increases with the fatty acyl chain length of the lecithin, indicating that hydrophobic interaction occurs between phospholipase A2 and the lipid molecules at the interface. From the lecithins used pancreatic phospholipase A2 preferentially splits substrate molecules with nine carbon atoms in the acyl chain.

Adsorption

Amino acid substitutions of the NH2-terminal Ala1 of porcine pancreatic phospholipase A2: a monolayer study.

Previously it has been shown that the binding of porcine pancreatic phospholipase A2 to lipid-water interfaces is governed by the pK of the alpha-NH3+ group of the N-terminal alanine. Chemically modified phospholipases A2 in which the N-terminal Ala has been replaced by D-Ala or in which the polypeptide chain has been elongated with DL-Ala no longer display activity toward micellar substrate. The activity of DL-Ala-1-, [D-Ala1]-, and [Gly1]phospholipases A2 on substrate monolayers, which allow a continuous change in the packing density of the lipid molecule, was investigated. At pH 6 [Gly1]phospholipase A2 behaves like the native enzyme on lecithin monolayers. DL-Ala1- and [D-Ala1]phospholipases A2, although they are active in this system, showed a weaker lipid penetration capacity at this pH. Studies on the pH and Ca2+ ion dependency of the pre-steady-state kinetics and of the activity of these radiolabeled proteins showed that [D-Ala1]phospholipase A2 does not possess a second low-affinity site for Ca2+ ions in contrast to the native phospholipase A2. This second low-affinity Ca2+ binding site, which is also absent in [Gly1]phospholipase A2, is induced in the latter enzyme by the presence of lipid-water interfaces.

Alanine

Immunological studies on pancreatic phospholipase A2. Antigenic characterization of the NH2-terminal region.

Rabbit antisera elicited against pure pig, horse, ox, and sheep pancreatic phospholipase A2 revealed considerable immunological differences when tested by double immunodiffusion and microcomplement fixation assays. Snake venom phospholipases did not show any detectable cross-reactions with the pancreatic enzymes. Microcomplement fixation also clearly demonstrated conformational differences between porcine phospholipase A2 and its zymogen. NH2 terminally modified analogs of porcine phospholipase A2 could be clearly distinguished using the same assay. Moreover, strong evidence was obtained that Ala1-Arg6 is a part of an antigenic determinant. Radioimmune assay, using monovalent phospholipase-specific Fab fragments revealed a maximum number of three antigenic sites of phospholipase that can simultaneously be occupied by antibody. The Fab fragments were separated into three fractions, using three immunoadsorbent columns in series. These Fab fractions showed different inhibitory properties toward micellar binding of phospholipase A2. They also exhibited different protective effects against active center modification.

Animals

Regulation of phospholipase A2 activity by different lipid-water interfaces.

The activity of pancreatic phospholipase A2 (EC 3.1.1.4) is controlled not only by the architecture of the catalytic site, but is also strongly dependent on the penetrating power of the interface recognition site and the packing density of the lipid-water interface. The influence of the latter two factors on the interface activity has been investigated using chemically modified phospholipases A2 in which the NH2-terminal L-Ala8 has been replaced by DL-[3-13C]Ala, or in which the polypeptide chain has been elongated with DL-[3-13C]Ala. The [DL-(3-13C)Ala8]phospholipase A2 could be resolved into the pure diastereoisomers, [D-(3-13C)Ala8]phospholipase A2 and [L-(3-13C)Ala8]phospholipase A2 by elution on Sephadex G-100 in the presence of a micellar lipid-water interface, as well as by conventional ion exchange chromatography on carboxymethylcellulose. Similar procedures did not effect, however, a separation of DL-[3-13C]Ala7-phospholipase A2 into their respective diasteroisomers, indicating the strategic role of the NH2-terminal L-Ala8 residue in the interaction process between the enzyme and lipid-water interfaces. Kinetic experiments using various micellar short chain lecithins revealed the apparent absence of an interface recognition site in [D-(3-13C)Ala8]- and DL-[3-13C]Ala7-phospholipase A2, while these proteins still possess considerable enzymatic activity toward monomeric substrates. In contrast, however, kinetic experiments using monomolecular surface films, allowing a continuous change in surface density of the substrate molecules, revealed that [D-(3-13C)Ala8]- and DL-[3-13C]Ala7-phospholipase A2 at low surface pressure possess about 60 and 30% of the interface activity of native phospholipase A2, respectively. These results therefore suggest that the modified phospholipases A2 do possess an interface recognition site although less powerful as compared to that of the native enzyme, enabling the estimation of the surface density of micellar short chain lecithins.

Binding Sites

Specificity of the phosphatidylcholine exchange protein from bovine liver.

The phosphatidylcholine exchange protein from bovine liver stimulates the specific transfer of phosphatidylcholine (PC) from rat liver microsomes to mitochondria or phospholipid vesicles (Wirtz, K.W.A., Kamp, H.H., and van Deenen, L.L.M. (1972), Biochim. Biophys. Acta 274, 606). In the present study, it has been established which components of the PC molecule are essential to the specific interaction with the protein. Radiochemically labeled analogues of PC have been synthesized with modifications in the polar and apolar moiety, and their transfer was measured between donor and acceptor vesicles. Relative to 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphorylcholine (egg yolk PC), transfer is inhibited or abolished when (a) the distance between phosphorus and nitrogen is decreased or increased and (b) a methyl group on the quaternary nitrogen is removed or substituted by an ethyl or propyl group. Transfer is much less affected when (a) the ester bonds are replaced by ether or carbon-carbon bonds, (b) the PC molecule contains two saturated fatty acids, and (c) the D stereoisomer is used. It is concluded that the protein has a binding site which interacts specifically with the phosphorylcholine head group and which cannot accommodate substantial configurational changes. Interaction with the apolar moiety of PC is less specific. However, lyso-PC is not transferred, suggesting that two hydrocarbon chains are required to stabilize the exchange protein-phospholipid complex. Interaction of [14C]PC-labeled exchange protein with vesicles of different phospholipid compositon has been analyzed by measuring the release of [14C]PC into these vesicles. Vesicles of egg PC or dimethylphosphatidylethanolamine function as acceptors, in contrast to vesicles of sphingomyelin or phosphatidylethanolamine.

Animals

Studies on the role of methionine in porcine pancreatic phospholipase A2.

The unique methionine-15 residue located at the N-terminal site of iso- or beta-phospholipase A2 from porcine pancrease has been specifically carboxymethylated with iodoacetic acid. The modification results in a complete inactivation of the enzymatic activity toward micellar and monomeric substrates. Spectroscopic measurements reveled that the carboxymethylated protein still binds Ca2+ and monomeric substrates with comparable affinities as the native enzyeme. The active site histidine-54 residue in the modified enzyme shows a reactivity toward the active site-directed irreversible inhibitor p-bromophenacylbromide which is identical to that of the native enzyme. The alkylated protein, however, has lost its ability to bind to lipid-water interfaces. Although circular dichroic spectra of the carboxymethylated enzyme display some changes in the tertiary structure as compared with the native enzyme, the alpha-helix content remains rather constant. It is concluded that carboxymethylation of methionine-15 destroys the interface recognition site but has only limited influence on the active site of the molecule. Therefore, it seems that methionine-15 is not involved in the catalytic events but that this residue is part of the interface recognition site which embraces the N-terminal hydrophobic part of the enzyme: Ala-Leu-Trp-Gln-Phe-Arg-Ser-Met.

Animals

Phospholipase A2 complexes with gadolinium (III) and interaction of the enzyme-metal ion complex with monomeric and micellar alkylphosphorylcholines. Water proton nuclear magnetic relaxation studies.

Gadolinium (III) binds competitively with calcium(II) to porcine pancreatic phospholipase A2 (EC 3.1.1.4) and its zymogen. The enzyme-Gd3+ complex exhibits 4% of the hydrolytic activity of the corresponding Ca2+ complex toward a dispersion of dioctanoyllecithin. Dissociation constants for the Gd3+ complex of enzyme and proenzyme were evaluated from water proton relaxation rate (PRR) titrations. At pH 5.8, the dissociation constants for the Gd3+ complexes of enzyme and zymogen are 0.50 and 0.18 mM, respectively. Dissociation constants for the complexes of enzyme with Ca2+, Eu3+, and Tb3+ were evaluated in PRR titrations by competition of these cations with Gd3+ binding. PRR enhancement factors for the Gd3+ complexes of enzyme and proenzyme are 16.4 and 5.8, respectively, at 22 degrees C and 24.3 MHz. Binding of a homologous series of n-alkylphosphorylcholines to the enzyme-Gd3+ complex was investigated through the influence of monomeric and micellar forms of these amphiphiles on the PRR enhancement factor for the enzyme-bound Gd3+. Separate monomer and micelle binding regions were observed in titrations using n-alkylphosphorylcholines with critical micelle concentrations ranging from 15 muM to 13 mM. In every case, the enhancement factors for the enzyme-Gd3+ complexes were significantly greater than that for the tenary complex, enzyme-Gd3+ -monomer. Morever, a synergism was observed in the binding of Gd3+ and micelles to the enzyme. The magnitudes of the PRR enhancement factors for the enzyme-Gd3+ complexes with micelles of n-alkylphosphorylcholines indicate that the bound Gd3+ is freely accessible to the bulk solvent. These results suggest a model for the enzyme-micelle complex in which the active site is spatially removed from the enzyme-micelle interface.

Animals

Nuclear magnetic resonance studies of the aggregation of dihexanoyllecithin and of diheptanolyllecithin in aqueous solutions.

Aggregation of 1,2-dihexanoyl-sn-glycero-3-phosphocholine (dihexanoyllecithin) and 1,2-diheptanoyl-sn-glycero-3-phosphocholine (diheptanoyllecithin) in aqueous solutions has been investigated by 1H nuclear magnetic resonance spectroscopy. The chemical shifts and line widths of the NMR signals of the lecithins are dependent on the total concentration of lecithin above the critical micelle concentration. Signals for both lecithins in the aggregated state exhibit line widths which are appreciably smaller than the dipolar line width calculated using the overall rotational correlation time of the micelle. Signals of the alpha-methylene protons of the carboxylic acid side chains of dihexanoyllecithin and diheptanoyllecithin undergo the greatest change in chemical shift on aggregation. A single averaged spectrum of the alpha-methylene protons is observed in lecithin solutions of concentrations ranging from one to four times the critical micelle concentration demonstrating that individual lecithin molecules are in rapid exchange, with respect to a frequency of 18 Hz, between the monomeric and the aggregated states. Plots of the chemical shift of the alpha-methylene protons versus concentration of lecithin approximate a micelle formation curve. At about five times the critical micelle concentration for both dihexanoyllecithin and diheptanoyllecithin the alpha-methylene pattern indicates that there are at least two magnetic environments for lecithin molecules in the aggregated state. Furthermore, individual lecithin molecules are in slow exchange between the two environments which are distinguished by a chemical shift difference of about 2 Hz.

Binding Sites

Application of enantiomeric 2-sn-phosphatidylcholines in interfacial enzyme kinetics of lipolysis.

Two enantiomeric 2-sn-phosphatidylcholines containing hexanoyl and dodecanoyl acyl chains have been synthesized, enabling the study of the action of phospholipase A2 (EC 3.1.1.4) at lipid-water interfaces characterized by identical physico-chemical properties. Monolayer kinetics and bulk kinetics in the presence of Triton X-100 micelles were studied but the interpretation of the results is impeded by the fact that interfacial saturation conditions cannot be reached. In contrast, the use of the substrate analog n-tetradecylphosphorylcholine allows the determination of the interfacial kinetic parameters kcat and K*m. Dodecanoic acid is released from the most susceptible isomer about 13 times more rapidly than hexanoic acid from the stereoisomer in spite of the higher K*m of the former. The results are discussed in terms of the particular active site architecture and the possible influence of the "quality of the interface" on the kinetic parameters.

Binding Sites