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Cloning and nucleotide sequence of a mouse erythrocyte beta-spectrin cDNA.

A rabbit monospecific antibody for mouse beta-spectrin was used to screen a mouse anemic spleen cDNA expression library. A mouse beta-spectrin cDNA clone was isolated and identified by its ability to make mouse beta-spectrin-like antigens in Escherichia coli. This clone was used to probe total RNA from various mouse tissues. Anemic spleen RNA showed two strongly hybridizing RNA species of approximately 6 and 8 kb. Two very faintly hybridizing bands of about 6 kb and 10 kb could also be seen in total mouse brain RNA. All of these bands could be detected after hybridization under both stringent and nonstringent conditions. This suggests that erythroid beta-spectrin may also be expressed in the brain. No bands could be detected in kidney, liver, or spleen RNA. Southern blot analysis of mouse genomic DNA showed a single hybridizing band after digestion with several restriction endonucleases even under nonstringent conditions. Nucleotide sequencing of the cDNA insert revealed almost complete identity between the N-terminus of the deduced amino acid sequence of the cDNA clone and the C-terminal 15 amino acids of a peptide derived from the beta-8 repeat unit of human erythrocyte beta-spectrin. The deduced amino acid sequence contained most of the conserved amino acids characteristic of the 106 amino acid repeat unit first found in human alpha-spectrin and thus provides the first evidence for a complete 106 amino acid repeat unit structure in beta-spectrin.

Animals↗

Effects of hyperthermia on spectrin expression patterns of murine lymphocytes.

In this study the influence of whole-body hyperthermia on the distribution of spectrin in murine lymphocytes isolated from various lymphoid tissues is examined. Lymphocytes normally vary in terms of the pattern of spectrin distribution within the cell. In certain populations of lymphocytes, spectrin is distributed into a dense submembranous aggregate that can be easily identified by immunofluorescence microscopy. In these lymphocytes, little or no spectrin is seen at the plasma membrane region in the rest of the cell. Other lymphocytes have no such cytoplasmic aggregates, and the protein is seen at the region of the plasma membrane. Following whole-body hyperthermia (40.5 degrees C for 90 min) there is a 100% increase in cells exhibiting polar spectrin aggregates in the spleen, while lymphocytes from the thymus show no alteration in the number of cells showing such aggregates. The increase in the percentage of splenic cells that express aggregated spectrin is a result of increases occurring in both T- and B-cell subsets. This increase gradually returns to control levels by 48 h post-heating. During recovery to control levels this phenomenon is resistant to additional changes when a second heat treatment is applied. The effects described above are not observed when the experiments are performed in vitro; therefore, it is likely that the in vivo heat-induced alteration in the splenic lymphocyte population reflects the physiological response of lymphocytes to stimuli during a natural fever. The role that spectrin may play in the modulation of lymphocyte membrane properties is discussed.

Animals↗

Rat antibodies to spectrin, the principal inner component of erythrocyte membrane. Immunochemical studies after SDS-gel electrophoresis.

In previous studies it was observed that red blood cell membranes (RBC-M) induce in rats the formation of antibodies against RBC-M components extracted with detergents. The same reaction was observed by employing sera from rats treated with RBC-M extract prepared with a low ionic strength saline solution and containing especially spectrin. This and the lack of significant changes in the hematologic picture suggested that the antibodies were directed against an inner RBC-M component, namely spectrin. In the present research we tried to verify if the spectrin would be involved in the immune reaction. For this, gel filtered serum fraction containing IgG from rats treated with entire RBC membranes or with spectrin extract, in adjuvant, has been employed in immune reactions against RBC membrane components separated by means of SDS-PAGE. Immunoblotting and two-dimensional electroimmunodiffusion techniques have been used. With both the techniques the IgG fractions from sera of rats treated with RBC-M and of rats treated with RBC-M extract reacted with two bands of spectrin, especially with band 1. A very mild reaction appeared employing IgG of rats treated with only adjuvant. The results demonstrate the immunogenicity and antigenicity of homologous spectrin; they are supported by results of other Authors which demonstrated the presence of natural antibodies against spectrin. It is suggested that the precipitating antibodies represent an enhancement of a natural, normally operating immune reaction against inner RBC-M components. At present its rôle remains to be defined.

Animals↗

Platelets contain proteins immunologically related to red cell spectrin and protein 4.1.

Human platelets were tested for the presence of proteins immunologically cross-reactive with red cell spectrin and protein 4.1. As assessed by indirect immunofluorescence microscopy, platelets were specifically reactive with affinity-purified rabbit antisera against red cell spectrin and protein 4.1. The immunoreactive platelet constituents were further analyzed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, followed by electrophoretic transfer to nitrocellulose paper and immunoperoxidase staining. We found that whole platelets, membranes, and cytoskeletal preparations isolated by Triton X-100 extraction contain small amounts of proteins reacting with anti-spectrin or anti-protein 4.1 antiserum. The immunoreactive spectrin-like platelet protein has an apparent molecular weight of 240,000 and comigrates with the alpha-subunit of red cell spectrin. The major immunoreactive protein 4.1-like constituent has an apparent molecular weight of 78,000, which is slightly less than that of red cell protein 4.1. We conclude that platelets contain a spectrin-like protein which, by analogy with red cell spectrin, may have a role in membrane-cytoskeletal attachment. The properties and function of the platelet protein 4.1-like constituent are not yet known.

Blood Platelets↗

Brain ankyrin. A membrane-associated protein with binding sites for spectrin, tubulin, and the cytoplasmic domain of the erythrocyte anion channel.

Brain ankyrin was purified from pig brain membranes in milligram quantities by a procedure involving affinity chromatography on erythrocyte spectrinagarose. Brain ankyrin included two polypeptides of Mr = 210,000 and 220,000 that were nearly identical by peptide mapping and were monomers in solution. Brain ankyrin and erythrocyte ankyrin are closely related proteins with the following properties in common: 1) shared antigenic sites, 2) high-affinity binding to the spectrin beta subunit at the midregion of spectrin tetramers, 3) a binding site for the cytoplasmic domain of the erythrocyte anion channel, 4) a binding site for tubulin, 5) a similar domain structure with a protease-resistant domain of Mr = 72,000 that contains the spectrin-binding activity and domains of Mr = 95,000 (brain ankyrin) or 90,000 (erythrocyte ankyrin) that contain binding sites for both tubulin and the anion channel. Brain ankyrin is present at about 100 pmol/mg of membrane protein in demyelinated membranes based on radioimmunoassay with antibody raised against brain ankyrin and affinity purified on brain ankyrin-agarose. Brain spectrin tetramers are present at 30 pmol/mg of membrane protein. Brain ankyrin thus is present in sufficient amounts to attach spectrin to membranes. Brain ankyrin also may attach microtubules to membranes independently of spectrin and has the potential to interconnect microtubules and spectrin-associated actin filaments.

Animals↗

Metabolic dependence of protein arrangement in human erythrocyte membranes. I. Analysis of spectrin-rich complexes in ATP-depleted red cells.

The discocyte-echinocyte transformation and the decrease in deformability associated with red cell ATP depletion have been attributed to changes in the physical properties of spectrin and actin, membrane proteins located at the membrane-cytosol interface. We investigated the spontaneous formation of spectrin-rich complexes in human erythrocyte membranes, employing two-dimensional SDS-polyacrylamide gel electrophoresis. Membranes of red cells depleted in ATP under aerobic conditions exhibited (1) an increase in components 4.5 and 8 and globin subunits, (2) a spontaneous formation of heterodimers of spectrin 1 + 2 and spectrin 2 + component 4.9, and (3) a large molecular weight (greater than 10(6) daltons) protein complex with a high spectrin to band 3 ratio. These complexes were dissociated with dithiothreitol and were prevented by anaerobic incubation or the maintenance of red cell ATP and GSH levels with glucose, adenine, and inosine. The complexes 1 + 2 and 2 + 4.9 were also seen in acetylphenylhydrazine-treated, glucose-6-phosphate dehydrogenase-deficient fresh erythrocytes that showed marked GSH depletion but preserved greater than 70% of the original ATP level. However, membranes of these cells did not contain the greater 10(6) dalton aggregate with a high spectrin to band 3 ratio. We concluded that the formation of the latter complex results from rearrangement of spectrin and other polypeptides in membranes of ATP-depleted red cells. Under aerobic conditions, the rearranged proteins undergo spontaneous intermolecular crosslinkings through disulfide couplings.

Adenosine Triphosphate↗

Characterization of the binding of calmodulin to non-erythroid spectrin.

Both brain and erythrocyte spectrin bound calmodulin in a calcium-dependent manner when immobilized on a polyvinylidene difluoride (PVDF) membrane, though the affinity of the non-erythroid spectrin was much greater than that of the erythroid isoform. The interaction was characterized further using equilibrium partition. In the presence of calcium, the partition behavior of calmodulin was affected by both spectrins, though brain spectrin caused a much larger change in partition. However, in both cases it was evident that the observed partition behavior of calmodulin was due to complex formation with spectrin. Analysis of the equilibrium partition data indicated the presence of a high-affinity site characterized by a dissociation constant of about 0.3 microM and probably one or more much weaker sites (> 0.3 mM). The presence of at least two distinct binding sites was substantiated by the observation that truncated recombinant spectrin fusion proteins comprising either the middle part or the C-terminal of non-erythroid alpha-spectrin bound calmodulin.

Animals↗

A highly conserved region of human erythrocyte ankyrin contains the capacity to bind spectrin.

Ankyrin has a spectrin-binding region within a central 62-kDa chymotryptic peptide. We examined the spectrin binding ability of a series of smaller ankyrin fragments and recombinant peptides within the 62-kDa domain using a ligand blot assay. The smallest proteolytic fragment that bound was a 12-kDa tryptic peptide starting at amino acid 1068. Peptides containing this region expressed as glutathione S-transferase fusion products also bound spectrin and suggested that residues 1101-1192 were important. In contrast, a fusion protein containing residues 826-898 did not bind spectrin, a surprising finding since this region is known to influence binding affinity. Proteins that bound spectrin on ligand blots also competed for binding in solution, but did so with one-tenth the affinity of the native peptide. Comparing the 62-kDa domains of erythrocyte and brain ankyrins (species that bind spectrin but with 10-fold differences in affinity), the NH2-terminal regions are 0-40% identical, while the regions (1136-1160) common to all binding peptides are 80-90% identical. We hypothesize that the highly conserved region contains an important spectrin-binding site, while the poorly conserved region controls the binding affinity. We speculate that this unique NH2-terminal region is what gives different members of the ankyrin family their signature set of affinities, and accordingly their distinctive cellular localization.

Amino Acid Sequence↗

Interaction of bovine erythrocyte spectrin with aminophospholipid liposomes.

Interaction of bovine erythrocyte spectrin with aminophospholipid (phosphatidylethanolamine, phosphatidylserine and their mixture) vesicles was studied by means of intrinsic fluorescence quenching and fluorescence polarization of 1,6-diphenyl-1,3,5-hexatriene. Similarly as human and pig erythrocyte spectrin, bovine red blood cell spectrin interacts with vesicles prepared from these phospholipids. In model membranes, spectrin induced an increase of order parameter while in natural, red blood cell membranes spectrin binding was rather connected with a decrease in this parameter. The interaction of spectrin with the PE/PS vesicles was not affected by high concentrations of urea. These vesicles also did not protect spectrin from being denatured by urea.

Animals↗

Actin in erythrocyte ghosts and its association with spectrin. Evidence for a nonfilamentous form of these two molecules in situ.

Actin was isolated from erythrocyte ghosts. It is identical to muscle actin in its molecular weight, net charge, ability to polymerize into filaments with the double helical morphology, and its decoration with heavy meromyosin (HMM). when erythrocyte ghosts are incubated in 0.1 mM EDTA, actin and spectrin are solubilized. Spectrin has a larger molecular weight than muscle myosin. When salt is added to the EDTA extract, a branching filamentous polymer is formed. However, when muscle actin and the EDTA extract are mixed together in the presence of salt, the viscosity achieved is less than the viscosity of the solution if spectrin is omitted. Thus, spectrin seems to inhibit the polymerization of actin. If the actin is already polymerized, the addition of spectrin increases the viscosity of the solution, presumably by cross-linking the actin filaments. The addition of HMM of trypsin to erythrocyte ghosts results in filament formation in situ. These agents apparently act by detaching erythrocyte actin from spectrin, thereby allowing the polmerization of one or both proteins to occur. Since filaments are not present in untreated erythrocyte ghosts, we conclude that erythrocyte actin and spectrin associate to form an anastomosing network beneath the erythrocyte membrane. This network presumably functions in restricting the lateral movement of membrane-penetrating particles.

Actins↗

Irreversible deformation of the spectrin-actin lattice in irreversibly sickled cells.

Irreversibly sickled cells (ISC's) are circulating erythrocytes in patients with sickle cell disease that retain a sickled shape even when oxygenated. Evidence points to a membrane defect that prevents the return of these cells to the normal biconcave shape. The erythrocyte membrane protein spectrin is believed to help control erythrocyte shape and deformability. Recent studies suggest that normally spectrin and an erythrocyte actin form a self-supporting, fibrillar, lattice-like network on the cytoplasmic membrane surface. When normal erythrocyte ghosts are extracted with Triton X-100 all the integral membrane proteins and most of the membrane lipids are removed, leaving a ghost-shaped residue composed principally of spectrin and actin. We concentrated ISC's from patients with sickle cell anemia and compared the morphology and protein composition of ghosts and Triton-extracted ghost residues prepared from these ISC's with similar preparations of reversibly sickable cells and normal cells. (a) Many ISC's formed ISC-shaped ghosts. (b) All ISC-shaped ghosts formed ISC-shaped Triton residues. (c) Spectrin, erythrocyte actin (Band 5), an unidentified Band 3 component, and Band 4.1 were the major protein components of the Triton residues. All membrane-associated sickle hemoglobin was removed by the Triton treatment. (d) No ISC-shaped ghosts or ISC-shaped Triton residues were formed when deoxygenated, sickled RSC's were lysed or Triton-extracted. ISC-shaped ghosts and Triton residues were never formed from normal cells. These observations suggest that a defect of the "spectrin-actin lattice" may be the primary abnormality of the ISC membrane. Since ISC's are rigid cells, the data support the postulate that spectrin is a major determinant of membrane deformability. Finally, they provide direct evidence that spectrin is important in determining erythrocyte shape.

Actins↗

The spectrin-based skeleton at the postsynaptic membrane of the neuromuscular junction.

Membrane skeletons, in particular the spectrin-based skeleton, are thought to participate in the organization of specialized membrane domains by restricting integral proteins to specific membrane sites. In the neuromuscular junction, discrete isoforms of spectrin and ankyrin, the peripheral protein that links spectrin to the membrane, colocalize with voltage-dependent sodium channels and N-CAM at the troughs of the postsynaptic membrane folds. Moreover, beta-spectrin, N-CAM, and sodium channels become clustered at the endplate during a period of time coincident with postsynaptic fold formation and synapse maturation. These observations suggest a role of the spectrin skeleton in directing and maintaining postsynaptic accumulations of sodium channels and N-CAM. In addition, the coexistence of spectrin and dystrophin at the troughs of the junctional folds raises the question of their respective functions in this membrane domain, where both cytoskeletal proteins have the potential to associate with sodium channels via ankyrin and syntrophin, respectively. Possible scenarios are discussed here with respect to accumulating evidence from studies of assembly of similar membrane domains in neurons.

Animals↗

Two populations of beta-spectrin in rat skeletal muscle.

We use immunoblotting, immunoprecipitation, and centrifugation in sucrose density gradients to show that the product of the erythrocyte beta-spectrin gene in rat skeletal muscle (muscle beta-spectrin) is present in two states, one associated with fodrin, and another that is not associated with any identifiable spectrin or fodrin subunit. Immunofluorescence studies indicate that a significant amount of beta-spectrin without alpha-fodrin is present in the myoplasm of some muscle fibers, and, more strikingly, at distinct regions of the sarcolemma. These results suggest that alpha-fodrin and muscle beta-spectrin associate in muscle in situ, but that some muscle beta-spectrin without a paired alpha-subunit forms distinct domains at the sarcolemma.

Animals↗

Association of spectrin with a subcompartment of the endoplasmic reticulum in honeybee photoreceptor cells.

The endoplasmic reticulum (ER) in honeybee photoreceptors is organized into structurally distinct subregions. The most prominent of these, the submicrovillar network of ER cisternae, is tightly associated with actin filaments. Electron microscopic techniques have demonstrated that the ER-associated actin filaments are regularly spaced at 60-80 nm and cross-bridged by filamentous structures. A polyclonal antibody against Drosophila alpha-spectrin has been used to examine the distribution of spectrin in the photoreceptors. On Western blots of bee retina, the antibody identifies a 260-kDa protein that exhibits biochemical and immunological properties characteristic of alpha-spectrin. Immunofluorescence microscopy has shown that alpha-spectrin codistributes with the submicrovillar ER but not with other ER subdomains. After cytochalasin-B-induced depolymerization of the ER-associated F-actin system, alpha-spectrin remains colocalized with the ER, indicating that alpha-spectrin is bound to the ER membrane. The F-actin/spectrin system associated with the submicrovillar ER may stabilize the shape of this ER subcompartment and may play a role in maintaining functional ER subregions.

Actin Cytoskeleton↗

Genetic studies of spectrin: new life for a ghost protein.

Spectrin, together with actin and a number of other accessory proteins, forms a submembrane cytoskeletal network in the human erythrocyte ghost. Through an elegant combination of structural, biochemical, and genetic studies, spectrin was shown to be an important determinant of erythrocyte shape and membrane stability. Genetic studies of a novel nonerythroid spectrin (beta H) in Drosophila and Caenorhabditis elegans now reveal that spectrin can influence the shape and stability of whole organisms. Nonerythroid spectrins are proposed to have roles in cell adhesion, establishment of cell polarity, and attachment of other cytoskeletal structures to the plasma membrane. The phenotypes of the beta H spectrin mutations provide an exciting biological context in which to evaluate these roles and perhaps to uncover new ones.

Animals↗

Fluorescence studies of spectrin and its subunits.

To better understand the solution structure of spectrin, the environment of its tryptophan residues have been examined by fluorescence spectroscopy. The spectra and the extent of quenching by several quenching agents have been determined for intact spectrin and its alpha and beta subunits. The arsenal of quenchers used in the study represented both hydrophilic and hydrophobic species including anionic, cationic and neutral compounds. Effects on spectrin fluorescence of ethanol and ionic strength, which extend and/or rigidify spectrin, and of glycerol, which is commonly used in electron microscopy of the protein, have also been assessed in the presence and absence of quenchers. Most of the tryptophans of spectrin are either internally quenched or are sequestered, hindering the approach of hydrophilic quenching agents. Both the spectral shape and the extent of quenching by acrylamide indicate that some tryptophans of the beta subunit are slightly more exposed in the isolated chain than in the dimer. Similar effects on spectra and on quenching of the intact dimer and of the isolated beta chain are seen when the ionic strength is reduced. Ethanol and glycerol reduce spectrin tryptophan accessibility to 2-p-toluidinyl napthalene-6-sulfonic acid (TNS). It therefore appears that low ionic strength, alpha-beta association and neutral solute (or lowered dielectric constant) all induce a similar, but modest conformational change in the domain structure. The extent of TNS binding is not increased by lowering the ionic strength, suggesting that the expansion and/or stiffening of the molecule in low electrolyte solution does not involve exposure of significant numbers of hydrophobic sites.

Ethanol↗

Spectrin involvement in a 40 degrees C structural transition of the red blood cell membrane.

Proteins involved in a structural transition detected in red blood cell membranes at 40 degrees C by spin labeling methods have been investigated. Antibodies specific for spectrin, band 3, and protein 4.1 have been used as specific probes to modify membrane thermotropic properties. Spectrin seems to be involved in a 40 degrees C transition detected in ghosts by both a stearic acid spin label (16-doxyl stearic) and a sulfhydryl-specific maleimide analogue spin label. Circular dichroism and maleimide spin labeling studies of purified spectrin show a slow unfolding of the protein structure starting at 25-30 degrees C and a massive transition with an onset temperature of 48 and 40 degrees C, respectively. This thermotropic behavior of spectrin could be the process that modifies membrane physicochemical properties above 40 degrees C that are detected by the stearic acid spin label. The transition detected by the stearic acid spin label was modified both by antispectrin antibodies and anti-4.1 protein antibodies, but not by antibodies specific for the cytoplasmic domain of band 3. These results suggest an involvement of protein 4.1 in regulating spectrin unfolding at the membrane level. A selective inhibition of the transition detected by the maleimide spin label has been obtained with a monoclonal antispectrin antibody at 1:1 molar ratio. The involvement in this transition of a localized spectrin domain(s) containing few exposed sulfhydryl groups is proposed.

Antibodies↗

Heterogeneity of spectrin distribution among avian muscle fiber types.

Muscle spectrin has been examined in avian fast, slow, and mixed muscles using the techniques of immunofluorescence microscopy and immunoautoradiography. By immunofluorescence, fibers of the fast-twitch pectoralis major (PM) are seen to contain alpha-spectrin antigen primarily at the sarcolemma, while in the slow-tonic anterior latissimus dorsi (ALD), alpha-spectrin antigen is found in high concentrations throughout the sarcoplasm as well as being present in association with the sarcolemma. In mixed (fast- and slow-twitch) muscles of the leg, two populations of fibers can be distinguished: those which resemble the fibers of the PM and another group which displays interior staining similar to the fibers of the ALD. Histochemical staining for actomyosin ATPase reveals that the fibers of mixed muscles which contain the most spectrin antigen correspond to the slow-twitch fibers. Supportive data were obtained using sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) followed by immunoautoradiography. In slow muscle, an approximate threefold increase in alpha-spectrin concentration relative to other proteins is evident. These results suggest that the distribution of alpha-spectrin may be modified by the physiological state of the myofiber.

Animals↗