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Biomedical subjects

W Gratzer

Publications and source records attributed to W Gratzer.

At least 19 recordsLinked to original sources

Elasticity of the red cell membrane and its relation to hemolytic disorders: an optical tweezers study.

We have used optical tweezers to study the elasticity of red cell membranes; force was applied to a bead attached to a permeabilized spherical ghost and the force-extension relation was obtained from the response of a second bead bound at a diametrically opposite position. Interruption of the skeletal network by dissociation of spectrin tetramers or extraction of the actin junctions engendered a fourfold reduction in stiffness at low applied force, but only a twofold change at larger extensions. Proteolytic scission of the ankyrin, which links the membrane skeleton to the integral membrane protein, band 3, induced a similar effect. The modified, unlike the native membranes, showed plastic relaxation under a prolonged stretch. Flaccid giant liposomes showed no measurable elasticity. Our observations indicate that the elastic character is at least as much a consequence of the attachment of spectrin as of a continuous membrane-bound network, and they offer a rationale for formation of elliptocytes in genetic conditions associated with membrane-skeletal perturbations. The theory of Parker and Winlove for elastic deformation of axisymmetric shells (accompanying paper) allows us to determine the function BH(2) for the spherical saponin-permeabilized ghost membranes (where B is the bending modulus and H the shear modulus); taking the literature value of 2 x 10(-19) Nm for B, H then emerges as 2 x 10(-6) Nm(-1). This is an order of magnitude higher than the value reported for intact cells from micropipette aspiration. Reasons for the difference are discussed.

Biophysical Phenomena↗

Identification of the haem-binding subunit of cytochrome b-245.

Cytochrome b-245 from neutrophil plasma membranes contains two types of subunit with apparent molecular masses from gel electrophoresis in the presence of SDS of 23 kDa and 76-92 kDa. Radiation-inactivation analysis revealed a single-exponential decay process for the visible absorption of the haem chromophore in the membrane, corresponding to a molecular mass of 21 +/- 5 kDa for the haem-containing polypeptide chain. Sedimentation equilibrium of the cytochrome solubilized by the detergent Triton N101 showed that the protein was polydisperse, with a molecular mass of approx. 350 kDa for the smallest detectable species. In another detergent, n-octyl beta-O-glucopyranoside (octyl glucoside), the molecular mass of the haem-containing particle was found to be 20-30 kDa. Thus the quaternary structure of the protein breaks down in this detergent. The haem group is inferred to be attached to the smaller subunit.

Binding Sites↗

Interactions of pig plasma gelsolin with G-actin.

Pig plasma gelsolin forms a ternary complex with monomeric actin in 0.1 mM CaCl2 and a binary complex in EGTA (less than 0.01 microM calcium), as shown by gel filtration and fluorescence changes when actin which had been treated with N-ethylmaleimide and 7-chloro-4-nitrobenzeno-2-oxa-1,3-diazole (NBD-actin) or with N-(1-pyrenyl)iodoacetamide (PI-actin) binds to gelsolin. The fluorescence enhancement per actin molecule bound is similar in the binary and ternary complexes, but the affinity of gelsolin for labelled actin is very much greater in the presence of calcium. Furthermore, the formation of ternary complex exhibits strong positive cooperativity.

Actins↗

Preparation of red-cell-membrane cytoskeletal constituents and characterisation of protein 4.1.

A new and rapid method is described for the preparation of protein 4.1, the protein which modulates the interaction between spectrin and actin in the membrane cytoskeleton of the red cell. The method is based on the dissociation of purified membrane cytoskeletons in concentrated Tris at neutral pH, followed by gel filtration in the same medium. This procedure also yields spectrin and actin, as well as the fourth cytoskeletal constituent, protein 4.9, in relatively pure form, and ankyrin. Protein 4.1 is monomeric under our conditions of solvent and protein concentration, with a relative molecular mass, as determined from sedimentation equilibrium, of about 78 000; its sedimentation coefficient and Stokes' radius are those of a globular, though somewhat asymmetric or flexible molecule. It forms a strong complex with F-actin and spectrin. Protein 4.9 is also recovered in active form, and will bind strongly to F-actin.

Actins↗

Phosphorylation and the binding of calcium and magnesium to skeletal myosin.

It has previously been shown that the binding of calcium and magnesium ions to the isolated metal-binding light chains, i.e. those dissociable by 5,5'-dithiobis(2-nitrobenzoate), of rabbit skeletal muscle myosin is moderated by phosphorylation and is accompanied by a sizeable conformational change. As judged by circular dichroism in the region of the aromatic Cotton effects, this conformational change occurs when calcium ions bind to the light chain in situ on the myosin head. Moreover the affinity for calcium is again changed by phosphorylation. The change in chymotryptic digestion patterns, in particular the protection of the head-rod junction in insoluble myosin, by divalent cations, has been used to obtain binding profiles. The results are consistent with the presence of a single class of independent sites, showing no cooperativity. The affinity of the site for both calcium and magnesium ions is enhanced by 1-2 orders of magnitude when the light chain in incorporated in the myosin heads. The effect of phosphorylation on the affinity persists in these circumstances, being marked for calcium and small for magnesium. On phosphorylation the calcium binding constant falls from 8 x 10(6) M-1 to 4 x 10(6) M-1 at physiological ionic strength, compared with 2.5 x 10(5) M-1 and 5 x 10(4) M-1 for the isolated light chains. The sensitivity of the proteolytic cleavage sites is affected by phosphorylation. Thus in the absence of calcium ions the yield of subfragment 1 at a low chymotrypsin concentration is substantially greater in dephosphorylated than phosphorylated myosin, whereas at saturating concentrations of calcium ions attack at the light meromyosin/heavy meromyosin junction is favoured by phosphorylation. These observations may signify a structural effect of phosphorylation on the prevailing interactions within the myosin filament in physiological solvent conditions.

Animals↗

Properties and structural role of the subunits of human spectrin.

The subunits of spectrin from human erythrocytes were separated by ion-exchange chromatography on hydroxyapatite in the presence of urea. When renatured from the urea solution they are found to be monomeric, although the smaller subunit (band 2) is prone to aggregation. In shape, solubility and secondary structure the subunits resemble the native spectrin dimer, indicating that subunit interaction is not essential for maintaining the native conformation. When the subunits are recombined, a dimer with the sedimentation coefficient of the native species is formed. This constitutes direct evidence that native spectrin is a heterodimer, rather than a mixture containing homologous and heterologous species. The interaction of the separated subunits with the chymotryptic fragment of the spectrin-binding protein (protein 2.1, or ankyrin) of the erythrocyte membrane was studied. Only the smaller subunit has the ability to bind, and thus presumably contains the site by which the cytoskeleton is attached to the plasma membrane. On the other hand, the formation of a complex with F-actin and protein 4.1 requires the presence of both subunits. A complex of these proteins with band 2 is formed, however, when traces of an additional, as yet unidentified, protein are present.

Adult↗

A conformational study of human spectrin.

Urea denaturation profiles of spectrin dimer, measured by circular dichroism in the regions of the peptide and aromatic Cotton effects, reflect the existence of several independently unfolding domains, as well as the presence of flexible, non-globular structure. As shown by sedimentation velocity and cross-linking experiments, dissociation of the two subunits largely precedes unfolding. The flexible, segmentally mobile structure reveals itself further in the appearance of sharp signals in the high-resolution proton magnetic resonance spectrum. These spectra reveal that some 20% of the chain is in the segmentally mobile form, regardless of ionic strength, and that its composition is highly hydrophobic, with few polar side chains. This suggests the possibility that this part of the molecule may penetrate into the lipid bilayer. Conformational stability of the spectrin dimer, as measured by circular dichroism, is substantially unaffected by the state of phosphorylation and by the ionic strength, even though the latter is known to affect the size or shape of the molecule.

Humans↗

Interaction of ADP with skeletal and cardiac myosin and their active fragments observed by proton release.

The technique of proton release measurement has been used to explore the binding of ADP to skeletal and cardiac myosins and their active fragments in a variety of conditions. It has proved possible to obtain binding profiles on intact myosin in the filamentous, undissolved form in physiological solvent conditions. Binding constants are given. At higher ionic strength (0.5 M potassium chloride) the binding profile of magnesium-ADP. is compatible with the presence of two types of site, differing from one another both in respect of affinity and the number of protons released per site. Studies with cardiac myosin reveal no such indications of heterogeneity, and are consistent with the presence of a single population of thermodynamically indistinguishable sites. In the absence of divalent cations, in solutions containing potassium ions and EDTA, ADP binds with absorption rather than liberation of protons. The pH profile of proton absorption at saturation can be fitted in terms of an ionising group with an unperturbed pK of 9.4, and at least one of lower pK(5.9). The dissociation constant (pH8 at 5 degrees C) is about 8 microM, and the affinity for uncomplexed ADP is thus only slightly weaker than that for magnesium-ADP

Adenosine Diphosphate↗

Optical spectroscopic study of the ADP-myosin interaction.

The binding of ADP to heavy meromyosin, and the separated subfragment 1 components S-1(A1) and S-1 (A2), has been observed by ultraviolet spectrophotometry. The results are compatible with the presence of spectroscopically equivalent and independent sites, one per head, at both 10 degrees C and 25 degrees C. We do not observe the heterogeneity of binding and of the spectroscopic response that has been reported. The binding has also been followed by other methods sensitive to the effect of ligand on the aromatic residues of the protein, viz. intrinsic fluorescence of heavy meromyosin and changes in the near-ultraviolet Cotton effects of myosin, and its active fragments. Within the limits of our experimental precision, the binding profiles, based on concentration of myosin heads, are the same for myosin as for subfragment 1. A perturbation in the circular dichroism is also generated by pyrophosphate, which competes with ADP. The spectra suggest that subsites for the purine ring and the diphosphate can be recognized. The sensitivity of binding profiles obtained by methods of the kind used here to cooperative or antagonistic interactions between the binding sites has been analysed. It is clear that sizeable effects of this nature could be concealed by the binding curves, even for high experimental precision.

Adenosine Diphosphate↗

Chemical cross-linking of myosin. Disposition of the globular heads.

The interaction of a series of bifunctional reagents with skeletal muscle myosin has been studied. In the di-imido ester series dimethylmalonimidate failed to generate any cross-linked species, whereas the adipic and higher analogues gave dimers of myosin heavy chains. Analysis of free amino groups after reaction with these reagents and with the reducible species dimethyldithiobis(propionimidate) showed that no more than two to three cross-links per molecule were introduced. By contrast, the bifunctional reducible acylating agent, dithiobis(succinimidylpropionate), reacted with annihilation of about 10% of the amino groups under mild conditions that precluded the formation of intermolecularly linked species. Digestion of the intramolecularly cross-linked myosin with papain, followed by analysis of the fragments by gel electrophoresis, revealed extensive cross-linking between the globular heads of the myosin molecules. The subfragment 1 dimers regenerated subfragment 1 on reduction, as shown by the electrophoretic mobility and amino acid analysis. The extent of cross-linking, and therefore presumably the average relative orientation or freedom of the two heads, was unaffected by the addition of ADP and calcium ions. The internally cross-linked myosin retains practically its full calcium-activated adenosine triphosphatase activity, but in contrast to native myosin is soluble even at very low ionic strength. Circular dichroism measurements show that the alpha helical conformation is undisturbed in cross-linked myosin, but the sedimentation coefficient is considerably higher than that of the native protein, possibly due to freezing of the heads in a "closed" configuration. The light chaiins are not cross-linked to the heavy chains, except under extreme conditions that leads to intermolecular cross-linking and inactivation. The presence of calcium ions protects dithiobisnitrobenzoate light chains against degradation by papain.

Amino Acids↗