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Biomedical subjects

M Petersheim

Publications and source records attributed to M Petersheim.

At least 19 recordsLinked to original sources

The hololipoprotein complex of beta(2)-glycoprotein I and dicaproyl phosphatidylserine.

The ability of beta(2)-glycoprotein I (formerly referred to as apolipoprotein H) to act as an autoantigen for antibodies from patients with antiphospholipid syndrome is dependent upon its binding in vivo to anionic phospholipid surfaces or to surfaces in vitro which mimic their surface characteristics. The ability of the autoepitope(s) of beta(2)-glycoprotein I to be exposed by binding a short-chain (6-carbon), anionic phospholipid has not been explored. Here, we describe our studies of the hololipoprotein generated by reacting beta(2)-glycoprotein I with dicaproyl phosphatidylserine. The formation of the complex is accompanied by inhibition of beta(2)-glycoprotein I binding to phospholipid-coated polystyrene surfaces, with 50% reduction in binding occurring at about 10 mM. At concentrations >10 mM, dicaproyl phosphatidylserine also displaces beta(2)-glycoprotein I bound to anionic phospholipid surfaces. Physicochemical studies suggest that at DCPS concentrations >6 mM, the solutions are colloidal and that beta(2)-glycoprotein I forms a supramolecular complex with organized phospholipid structures. Using a standard human autoimmune anti-beta(2)-glycoprotein I plasma, as well as a series of six additional sera from patients with antiphospholipid syndrome, the complex did not generate a detectable epitope. We conclude that lipid binding, per se, is not sufficient for the presentation of the epitope(s) of beta(2)-glycoprotein I or its recognition by autoantibodies from patients with antiphospholipid syndrome.

Antiphospholipid Syndrome↗

Modification of beta 2glycoprotein I by glutardialdehyde. Conformational changes and aggregation accompany exposure of the cryptic autoepitope.

Autoantibodies from patients with antiphospholipid syndrome (APS) recognize an epitope on beta 2glycoprotein I (beta 2 GPI) only when native beta 2 GPI is adsorbed on surfaces composed of anionic phospholipids or oxidized polystyrene. beta 2 GPI was modified with the crosslinking agent, glutardialdehyde (GDA), which induced exposure of the anti-beta 2 GPI epitope at GDA:beta 2 GPI mol ratios in the range of 500-2000. A second crosslinking agent, dimethyl-suberimidate (DMS), did not expose the epitope, which may be a consequence of its having less tendency than GDA to form intermolecular links. SDS-PAGE experiments demonstrate that GDA does promote extensive intermolecular crosslinking of beta 2 GPI, and DMS does not. Formaldehyde also reacts with the lysine residues of beta 2 GPI, but does not expose the epitope. The circular dichroism spectra of native and modified beta 2 GPI confirm that GDA induces changes in conformation that are qualitatively different from those caused by formaldehyde. These data provide evidence that binding of lysine residues is not a sufficient condition for exposure of the autoepitope, and also support the likelihood that anti-beta 2 GPI antibodies bind only to aggregates of the protein. Thus, by synthesizing an active holoantigen of beta 2 GPI, conditions were defined that are necessary for binding of human autoantibodies.

Autoantibodies↗

Inhibition of beta 2glycoprotein I binding to anionic phospholipids: a strategy for the development of antiphospholipid syndrome-specific drugs.

The binding of beta 2glycoprotein I (beta 2GPI) to anionic phospholipids (PL) leads to the presentation of one or more epitopes recognized by autoantibodies from patients with antiphospholipid syndrome (APS). The inhibition of beta 2GPI binding to PL mixtures coated on polystyrene microtiter wells (MTW) and to large, multilamellar PL vesicles (LMV) was examined. Inhibitors included phosphorylated monosaccharide metabolites, myo-inositol monophosphate (IMP), hexaphosphate (IHP) and hexasulfate (IHS), pyrophosphate (PPi), methyl bisphosphonate (MBP) and phenyl phosphonate, and a series of carboxylic and aromatic sulfonic acids. Inhibitors were incubated with beta 2GPI at 37 degrees C for 2 hr either with dimyristoylphosphatidic acid, 80%/dimyristoylphosphatidyl choline, 20% (DMPA/DMPC) coated on MTW or in a suspension of LMV. Phospholipid-bound beta 2GPI to PA/PC on MTW was detected using an immunoassay based on rabbit anti-beta 2GPI; free beta 2GPI (not bound to LMV) was detected by fluorescence spectroscopy. Inhibition was studied over the range 0.01-9.0 mumoles/10(-4)L (0.1-90 mM). Inhibition at maximum concentration in the MTW system ranged from 0.1% (for ADP) to > 94% (for IHP). IHP also provided the greatest inhibition in the LMV system (76%) and was also effective in displacing beta 2GPI already bound to PL surfaces (approximately 50% displaced at 0.25 mM). These data suggest that a strategy for development of therapeutic agents for APS may be based on the use of small cyclic, organic oligoanions such as inositol derivatives to act as ligands for lysine residues at the PL binding site of beta 2GPI.

Animals↗

A stable, multi-subunit complex of beta2glycoprotein I.

Beta2glycoprotein I (beta2GPI) is a 54-kDa plasma protein which is recognized as an autoantigen for antibodies from patients with antiphospholipid syndrome (APS). SDS-PAGE (under reducing conditions) of beta2GPI from three sources indicates that the 54-kDa beta2GPI band is accompanied by a band corresponding to an 8-kDa protein. In the absence of detergent and reducing agents (native PAGE), beta2GPI demonstrated a large complex (molecular mass approximately 320 kDa) which is dissociable by boiling in 6-8 M urea, yielding several lower molecular mass bands, one of which corresponds to the 8-kDa protein observed in SDS-PAGE. Sera from five healthy adults demonstrated native beta2GPI migration equivalent to the commercially purified protein. Atomic force microscopy (AFM) images of native beta2GPI show aggregrates of particles each having a diameter of 30-35 nm. This is consistent with a globular unit the size of which would be substantially larger than that expected for a 54-kDa protein. These experiments suggest that the 54-kDa beta2GPI monomer subunits exist as a multimeric complex with the 8-kDa protein.

Adult↗

Delta-opiate DPDPE in magnetically oriented phospholipid micelles: binding and arrangement of aromatic pharmacophores.

D-Penicillamine(2,5)-enkephalin (DPDPE) is a potent opioid peptide that exhibits a high selectivity for the delta-opiate receptors. This zwitterionic peptide has been shown, by pulsed-field gradient 1H NMR diffusion studies, to have significant affinity for a zwitterionic phospholipid bilayer. The bilayer lipid is in the form of micelles composed of dihexanoylphosphatidylcholine (DHPC) and dimyristoylphosphatidylcholine (DMPC) mixtures, where the DMPC forms the bilayer structure. At high lipid concentration (25% w/w) these micelles orient in the magnetic field of an NMR spectrometer. The resulting 1H-13C dipolar couplings and chemical shift changes in the natural abundance 13C resonances for the Tyr and Phe aromatic rings were used to characterize the orientations in the bilayer micelles of these two key pharmacophores.

Biophysical Phenomena↗

An NMR study of pyridine associated with DMPC liposomes and magnetically ordered DMPC-surfactant mixed micelles.

With molecular dynamics simulations of phospholipid membranes becoming a reality, there is a growing need for experiments that provide the molecular details necessary to test these computational results. Pyridine is used here to explore the interaction of planar aromatic groups with the water-lipid interface of membranes. It is shown by magic angle spinning 13C nuclear magnetic resonance (NMR) to bind between the glycerol and choline groups of dimyristoylphosphatidylcholine (DMPC) liposomes. The axial pattern for the 31P NMR spectrum of DMPC liposomes is preserved even with more than half of the interfacial sites occupied, indicating that pyridine does not disrupt the lamellar phase of this lipid. 2H NMR experiments of liposomes in deuterium oxide demonstrate that pyridine might promote greater penetration of water into restricted regions in the interface. Magnetically oriented DMPC/surfactant micelles were investigated as a means for improving resolution and sensitivity in NMR studies of species bound to bilayers. The quadrupolar splittings in the 2H NMR spectra of d5-pyridine in DMPC liposomes and magnetically oriented DMPC/Trixon X-100 micelles indicate a common bound state for the two bilayer systems. The well resolved quadrupolar splittings of d5-pyridine in oriented micelles were used to establish the tilt of the pyridine ring relative to the bilayer plane.

Calorimetry, Differential Scanning↗

Conformational studies of N-Tyr-MIF-1 in aqueous solution by 1H nuclear magnetic resonance spectroscopy.

N-Tyr-MIF-1 (Tyr-Pro-Leu-Gly-NH2) is an endogenous brain peptide with multiple effects on animal behavior. However, there have been no studies on the conformation of this tetrapeptide. In this report, we studied the conformation of N-Tyr-MIF-1 in aqueous solution by conventional one-dimensional and two-dimensional (COSY and NOESY) 1H nuclear magnetic resonance spectroscopy at 300 MHz. A complete set of assignments for the resolved resonances and approximate assignments for the overlapping resonances were made. The results demonstrate that N-Tyr-MIF-1 is in slow exchange between two conformers, most likely determined by the cis and trans states of the proline residue. The minor conformation represents 30 +/- 3% of the population over the temperature range from 3 degrees to 73 degrees. In the major conformation, the tyrosine aromatic ring appears to be close enough to interact directly with the proline pyrrolidine ring, as indicated by a strong temperature dependence of the proline C beta H, C delta H and C delta H' chemical shifts. In contrast, this interaction of the tyrosine and proline rings is not present in the minor conformation.

Amino Acid Sequence↗

Lanthanide(III)-phosphatidic acid complexes: binding site heterogeneity and phase separation.

The luminescent lanthanides are potentially useful probes of cation-induced events involving phospholipid membranes. In this work, the spectroscopic properties of Tb3+, Ce3+ and Eu3+ are shown to be complementary in defining three forms of complex with phosphatidic acid vesicles. Ce3+, in particular, is useful for studying dilute cation-lipid complexes because it has strong excitation bands in the near ultraviolet. In addition to providing a means for detecting chemically distinct forms of lanthanide-lipid complexes, the luminescence can be used to monitor cation-induced lateral segregation. Ce3+ to Tb3+ energy transfer was observed at lanthanide levels as low as 1:1000 Ln3+/phosphatidic acid, indicating clustering or phase separation. Initial clustering occurs on a subsecond timescale, followed by a much slower aggregation continuing for several minutes to hours. Addition of a chelator results in slow release of the lanthanides. In the case of the dioleoylphosphatidic acid complexes, release is bimodal and indicative of cation entrapment; dimyristoylphosphatidic acid complexes exhibit this behavior only at high temperatures. These observations are consistent with the relative tendencies of these two lipids to form the HII phase. This work sets the foundation for experiments designed to determine the size of nucleation sites for cation-induced events such as intramembrane inverted micelle formation and membrane fusion.

Cerium↗

Tb3+ and Ca2+ binding to phosphatidylcholine. A study comparing data from optical, NMR, and infrared spectroscopies.

The paramagnetic and luminescent lanthanides are unique probes of cation-phospholipid interactions. Their spectroscopic properties provide the means to characterize and monitor complexes formed with lipids in ways not possible with biochemically more interesting cations, such as Ca2+. In this work, Tb3+-phosphatidylcholine complexes are described using the luminescence properties of Tb3+, the effect of its paramagnetism on the 31P NMR and 13C NMR spectra of the lipid, and changes in the infrared spectrum of the lipid induced by the cation. There are two Tb3+-phosphatidylcholine complexes with very different coordination environments, as evidenced by changes in the optical excitation spectrum of the lanthanide. The NMR experiments indicate that the two complexes differ in the number of phosphate groups directly coordinating Tb3+. Tb3+ binding induces changes in the phosphodiester infrared bands that are most consistent with bidentate chelation of Tb3+ by each phosphate, whereas Ca2+-induced changes are more consistent with monodentate coordination. The significance of this discrepancy is discussed.

Calcium↗

On the coordination of La3+ by phosphatidylserine.

In a recent study by Bentz, J., D. Alford, J. Cohen, and N. Düzgünes (1988. Biophys. J. 53:593-607), La3+ was found to be more effective than Ca2+ in causing nonleaky fusion of phosphatidylserine vesicles. It was proposed that this difference in fusion efficiency may be due, in part, to a difference in coordination of the two cations. That is, Ca2+ was presumed to bind to the lipid phosphate, whereas La3+ was proposed to be coordinated by the serine carboxylate and amine. 31P and 13C NMR results presented here demonstrate that the lanthanides, Tb3+ and La3+, are coordinated by the phosphodiester and carboxylate moieties of phosphatidylserine. Tb3+-Phosphatidylserine optical experiments suggest that the serine amine does not coordinate the lanthanide below pH 10, at least not while the membrane has a net negative surface charge. Although these observations disagree with the structural details proposed by Bentz et al. (1988), they are not in conflict with their general fusion mechanism. The work presented here also demonstrates that La3+ affects the inner surface phosphodiesters differently than those on the outer surface of phosphatidylserine vesicles. The vesicles studied are of an intermediate size, having diameters on the order of 150-200 nm. The cation appears to have a more immediate effect on the packing of the crowded headgroups on the inner surface. Higher levels of bound La3+ on the outer surface may be required to induce the same changes in headgroup conformation.

Calcium↗

An ionotropic phase transition in phosphatidylcholine: cation and anion cooperativity.

Evidence is presented for cooperative interaction between cations and anions specifically bound to dimyristoylphosphatidylcholine (DMPC). The cooperativity is with regard to an ion-induced (ionotropic) phase transition for the lipid and is signalled by a change in the luminescence from bound Tb3+. The intrinsic binding of Tb3+ to DMPC was determined from equilibrium dialysis experiments, using conventional methods to correct for electrostatic contributions. Preliminary results demonstrate great potential for infrared spectroscopy as a means to relate these Tb3+ luminescence studies to experiments involving less tractable cations. This work provides insight into the role of bound ions in modifying lateral phase behavior in phospholipid membranes.

Cations↗

Lysosome response and cytoskeleton alteration in cell cultures exposed to airborne lead.

The results indicate that the delay in acridine orange loss by lysosomes exposed to UV can serve as a sensitive probe to the lead content of the cell milieu and the induced responses. This lysosome stabilization is in agreement with the reported decreased release of lysosome enzymes by lead in rat cerebral tissue. The lead induced lysosome stabilization reported here is undoubtedly pathologic in view of the cytoskeleton alteration that usually accompanied the introduction of lead in the cell media either from laboratory sources or natural conditions.

Air Pollutants↗

Thermodynamic studies of RNA stability.

Enthalpies and entropies of helix stabilization due to addition of 3' terminal unpaired nucleotides to a CCGG or GGCC core double helix are derived from UV melting studies. The results suggest stacking provides a significant fraction of the free energy of a terminal base pair. The effects of temperature, aggregation, and ionic strength on the determination of thermodynamic parameters are considered. Helix propagation parameters are revised and extended based on recent additions to the data set.

Base Composition↗

Base-stacking and base-pairing contributions to helix stability: thermodynamics of double-helix formation with CCGG, CCGGp, CCGGAp, ACCGGp, CCGGUp, and ACCGGUp.

The thermodynamics of double-helix formation in 1 M NaCl have been measured spectrophotometrically for CCGG, CCGGp, CCGGAp, ACCGGp, CCGGUp, and ACCGGUp. The results indicate additional double-helical stability is conferred by the terminal unpaired bases. The 3' A stabilizes the double helix more than the 5' A or the 3' U. The increased stability is due to a more favorable enthalpy change for double-helix formation. Comparison of the thermodynamics for CCGG, ACCGGp, CCGGUp, and ACCGGUp indicates stacking interactions are somewhat more important than pairing interactions in determining the stability of the terminal AU base pairs in ACCGGUp.

Base Composition↗

Nuclear overhauser studies of CCGGAp, ACCGGp, and ACCGGUp.

Nuclear Overhauser effect (NOE) measurements are reported for the nonexchangeable base and ribose 1' proton resonances of CCGGAp, ACCGGp, and ACCGGUp. The results permit assignment of these resonances to particular nucleotides in the sequences. The NOE data rule out conformations containing syn glycosidic linkages and conformations in which the purine 8 and pyrimidine 6 protons are closer to the 3' nearest-neighbor ribose 1' proton than to the 5' nearest-neighbor ribose 1' proton.

Base Sequence↗

Proton magnetic resonance melting studies of CCGGp, CCGGAp, ACCGGp, CCGGUp, and ACCGGUp.

Proton magnetic resonance melting curves are reported for the base and ribose 1' nonexchangeable protons of CCGGp, CCGGAp, ACCGGp, CCGGUp, and ACCGGUp. In general, the double helices melt in a cooperative two-state transition. For CCGGp, CCGGAp, CCGGUp, and ACCGGUp, the 3' ribose exhibits conformational flexibility at lower temperatures than the other ribose residues. For ACCGGp, the 5'-C ribose is the first to exhibit flexibility. The conformations of the 3' terminal bases in CCGGAp and CCGGUp change cooperatively with the double- to single-strand transition, whereas the 5' A of ACCGGp appears to have more conformational freedom.

Base Sequence↗