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[Analysis of erythrocytic spectrin in thalassemia and in Lepore hemoglobinosis].

Total proteins and red cell membrane spectrin were determined in normal subjects, patients with hyperhaemolytic and anhaemolytic thalassaemia, and Hb Lepore from a single family. Electrophoresis on acrylamide gels was performed after solubilisation of the material in SDS using the whole membrane and spectrin. Amino acid composition was also determined after hot acid hydrolysis. Resin chromatography was employed to recognise acid, neutral and basic aminoo acids, glucosamine, and galactosamine. It was found that the significant changes in spectrin amino acid composition observed in thalassaemic subjects with peripheral hyperhaemolysis were not apparent in anhaemolytic patients, nor in the heterozygote, clinically asymptomatic carriers of Hb Lepore. These changes are certainly of importance on account of the structural alterations noted in the spectrin of the subjects concerned.

Amino Acids↗

Different sequences of expression of band 3, spectrin, and ankyrin during normal erythropoiesis and erythroleukemia.

Expression of the erythrocyte anion exchanger band 3, and ankyrin and spectrin, two cytoskeletal proteins of the red blood cell membrane, was studied by immunofluorescence using: 1) smears of human bone marrow from healthy donors and from a patient with erythroleukemia, 2) human red blood cell precursors grown in cell culture, and 3) murine erythroleukemia cells grown in cell culture. Double immunostaining with antibodies to band 3 in combination with spectrin or ankyrin revealed that these proteins become expressed synchronously during normal human erythropoiesis. In contrast, both murine erythroleukemia cells (induced by fibronectin and dimethyl sulfoxide to differentiate in vitro) and erythroblasts from a patient suffering from erythroleukemia displayed distinct asynchronicity in expression of these proteins, ie, ankyrin and spectrin were synthesized first, followed by band 3 at a later stage of erythroid development. After the onset of band 3 expression in human erythroleukemia cells, an increase of membrane-associated fluorescence was detectable for both ankyrin and spectrin, supporting the general view that band 3 promotes assembly of the membrane cytoskeleton. These findings indicate that the current concept of a sequential expression of spectrin/ankyrin and band 3 is valid only for erythroleukemia cells or transformed erythropoietic cell lines but does not occur in normal erythropoiesis, during which these proteins become expressed simultaneously.

Animals↗

Interaction of erythrocyte spectrin with some nonbilayer phospholipids.

Bovine erythrocyte spectrin was found to interact with lysophosphatidylcholine and lysophospatidylserine what was detected by small changes of the intrinsic fluorescence of spectrin. Lysophosphatidylethanolamine in contrast to its diacyl, natural counterpart did not affect the intrinsic fluorescence of spectrin at all. Dioleoylphosphatidylethanolamine induced distinct changes in the intrinsic fluorescence from these induced by natural phosphatidylethanolamine suspensions. Our data may indicate an importance of the presence of both fatty acyl chains in phosphatidylethanolamine molecule and perhaps, its bilayer structure for the interaction of this phospholipid aggregates with spectrin.

Animals↗

Mild elliptocytosis associated with the alpha 34 Arg-->Trp mutation in spectrin Genova (alpha I/74).

We report a new mutation responsible for nonhemolytic hereditary elliptocytosis (HE). The proband displayed an impaired spectrin self-association and an increase of the alpha I 74-kD fragment (alpha I/74 abnormality). The responsible mutation occurred in exon 2 of spectrin alpha-gene: alpha 34 Arg-->Trp (CGG-->TGG), defining spectrin Genova. In Trans to allele alpha Genova, the proband disclosed allele alpha LELY, a common low-expression allele of spectrin alpha-gene. It was recognized through particular peptide maps as well as characteristic mutations in exon 40 and intron 45, respectively. The father, who carried allele alpha Genova, but not allele alpha LELY, had a milder presentation. The sensitization of allele alpha Genova by allele alpha LELY was noticeable in the proband as compared with his father. Nevertheless, it was not as sharp as that observed with many other alpha I/74 HE alleles. Therefore, each alpha I/74 HE allele has a distinct intrinsic severity.

Alleles↗

Complete nucleotide sequence of the murine erythroid beta-spectrin cDNA and tissue-specific expression in normal and jaundiced mice.

Spectrin, a heterodimer of alpha and beta subunits, is an essential component of the red blood cell membrane skeleton. The jaundiced (ja/ja) mutation causes a severe hemolytic anemia in mice and is mapped to the erythroid beta-spectrin locus (Spnb-1) on chromosome 12. As a prerequisite for determining the molecular defect of the jaundiced mutation, we have cloned and sequenced the complete murine reticulocyte cDNA for normal Spnb-1. Two unique transcripts that differ in the placement of polyA tails are represented in the clones isolated. Amino acid sequence comparison between erythroid and murine brain spectrin (Spnb-2, chromosome 11) shows 67% identity throughout repeats 16 and 17 and complete divergence in domain III, which is associated with the alpha/beta subunit dimerization and phosphorylation. We examined the tissue distribution of normal and mutant erythroid beta-spectrin transcripts using domain-specific probes. Transcripts are detected in normal spleen tissue and reticulocytes (8 and 9.6 kb), brain tissue (10 and 11 kb), skeletal muscle tissue, and cardiac muscle tissue (11, 10.3, 7.2, and 4.0 kb). Extensive variability in mRNA processing is shown with region-specific probes. Steady state levels of the mutant transcripts are reduced when hybridized with a probe to repeats 2 through 6 with the exception of the 7.2-kb transcript that is unique to heart and skeletal muscle tissues, and is present at normal and elevated levels, respectively, in ja/ja mice. These results provide evidence for more diverse tissue-specific products of the Spnb-1 gene than were previously suspected.

Amino Acid Sequence↗

Elliptopoikilocytosis associated with the alpha 469 His-->Pro mutation in spectrin Barcelona (alpha I/50-46b).

We present two Spanish children with hereditary elliptopoikilocytosis. The mother displayed a symptomless elliptocytosis. Spectrin maps showed the alpha I/50-46b abnormality in the mother and in the children. The change was more conspicuous in the children than in the mother. The father carried the alpha V/41 allele, which is a common allele endowed with low expression. The alpha V/41 allele was also present in the children accounting for the much more severe expression of the alpha I/50-46b variant. The responsible mutation yielding the latter appeared to be the alpha 469 His-->Pro substitution (CAT-->CCT), which is a novel abnormality. The corresponding spectrin was designated spectrin Barcelona. As is often the case in hereditary elliptocytosis or poikilocytosis related to alpha-spectrin variants, the change involved a helix 3; namely, helix 3 of repeating segment alpha 5.

Alleles↗

Dependence of the permanent deformation of red blood cell membranes on spectrin dimer-tetramer equilibrium: implication for permanent membrane deformation of irreversibly sickled cells.

Red blood cells (RBCs) in sickle cell anemia, transformed into a sickled shape by prolonged deoxygenation, or normal RBCs deformed by a prolonged micropipette aspiration become permanently stabilized in their abnormal shape. This semisolid plastic behavior is thought to involve an irreversible reorganization of the membrane skeleton, but the exact nature of this skeletal rearrangement is not known. In this study, we first asked whether the irreversible deformation is associated with a permanent stretching of the skeletal network, and then whether it is due to a rearrangement of skeletal components involving a disruption of pre-existing protein associations and the subsequent reassociation of new protein contacts. Having found no ultrastructural evidence of stretching of the skeletal lattice in membranes derived from permanently deformed RBCs, we addressed the possibility of reorganization of the proteins of the membrane skeleton. We examined the temperature dependence of irreversible cell deformation to see if it correlated with the known temperature dependence of spectrin tetramers to dimer dissociation and reassociation. Testing the shape irreversibility of both deoxygenated reversibly sickled cells and Nucleopore-aspirated normal cells, we found that both types of cells became permanently deformed when the prolonged incubation of applied force or deoxygenation was performed at 37 degrees C, the temperature at which spectrin tetramers were free to dissociate and reassociate. In contrast, both types of cells were able to regain their original discocytic shape if the prolonged incubation was performed at the lower temperature: at less than 13 degrees C instead of 37 degrees C. Furthermore, normal RBCs were incubated with inosine and pyruvate to elevate intracellular 2,3-diphosphoglycerate, the polyanion shown to destabilize spectrin-actin-protein 4.1 association. This did not result in a promotion of irreversible deformation of these cells. We conclude that the irreversible cell deformation observed at physiologic temperature is associated with a skeletal rearrangement through dissociation of spectrin tetramers to dimers and a subsequent reassociation of dimers to tetramers in the new (deformed) configuration. These findings may explain a permanent stabilization of irreversibly sickled cells in their abnormal shape in vivo.

Anemia, Sickle Cell↗

A splice site mutation of alpha-spectrin gene causing skipping of exon 18 in hereditary elliptocytosis.

Spectrin Oran (alpha II/21) has been reported previously as a variant of the alpha II domain. Its expression level is low (10% of total spectrin) in heterozygotes denoting a major disadvantage of the mutated alpha-chain dimer or tetramer with respect to their normal counterparts. Spectrin Oran is associated with symptomatic elliptocytosis in the homozygous state. A 1-minute digestion time allowed to perceive a fast trypsin cleavage (not existing normally) after Arg 890 (helix 3 of repeating segment alpha 9). The responsible change was the lack of amino acids 822 to 862 (helix 2 of repeating segment alpha 8). Such a situation fits with the phasing of spectrin according to which mutated helix 2 and distorted helix 3 are adjacent to one another. The internal position of the structural change accounts for the slight self-association defect. The ultimate genetic lesion was a G to A substitution (intronic position-1) in the acceptor splice site of intron 17 resulting in skipping of exon 18. The substitution also created an acceptor splice site 1 base downstream, but the latter was used at a low grade.

Alleles↗

SMA-1 spectrin has essential roles in epithelial cell sheet morphogenesis in C. elegans.

During Caenorhabditis elegans development, the embryo acquires its vermiform shape due to changes in the shape of epithelial cells, a process that requires an apically localized actin cytoskeleton. We show that SMA-1, an ortholog of beta(H)-spectrin required for normal morphogenesis, localizes to the apical membrane of epithelial cells when these cells are rapidly elongating. In spc-1 alpha-spectrin mutants, SMA-1 localizes to the apical membrane but its organization is altered, consistent with the hypothesis these proteins act together to form an apically localized spectrin-based membrane skeleton (SBMS). SMA-1 is required to maintain the association between actin and the apical membrane; sma-1 mutant embryos fail to elongate because actin, which provides the driving force for cell shape change, dissociates from the apical membrane skeleton during morphogenesis. Analysis of sma-1 expression constructs and mutant strains indicates SMA-1 maintains the association between actin and the apical membrane via interactions at its N-terminus and this activity is independent of alpha-spectrin. SMA-1 also preserves dynamic changes in the organization of the apical membrane skeleton. Taken together, our results show the SMA-1 SBMS plays a dynamic role in converting changes in actin organization into changes in epithelial cell shape during C. elegans embryogenesis.

Animals↗

The localization of spectrin on the inner surface of human red blood cell membranes by ferritin-conjugated antibodies.

Spectrin, a major protein constituent of mammalian red blood cell membrane preparations, has been localized on the inner surface of human red blood cell membranes by techniques that utilized specific ferritin-conjugated antibodies and fixation of membranes shortly after hemolysis so as to allow penetration of the ferritin-antibody labels. The labeling of spectrin was shown to be specific by the following criteria. (a) Nonhomologous ferritin-conjugated antibodies did not specifically bind to either membrane surface. (b) Blocking the membrane-bound spectrin with excess unconjugated antispectrin antibodies prevented ferritin-antibody labeling. (c) Removal of spectrin by treating the membrane preparation with a low ionic strength buffer containing ethylenediaminetetraacetate and beta-mercaptoethanol prevented labeling by specific ferritin-conjugated antibodies.

Animals↗

Distribution of HSP70, protein kinase C, and spectrin is altered in lymphocytes during a fever-like hyperthermia exposure.

Many B and T lymphocytes display a significant heterogeneity with respect to the subcellular distribution of the cytoskeletal protein spectrin and protein kinase C (PKC), both of which often can be found in a large cytoplasmic aggregate in these cell types. In addition to spectrin and PKC, we recently have reported that HSP70 is also a component of this lymphocyte aggregate. Moreover, these three proteins can undergo dynamic and reversible changes in their localization causing "assembly" of the aggregate in response to various conditions associated with lymphocyte activation, indicating that this naturally occurring aggregate structure is sensitive to activation status. We show here that the same changes in HSP70/spectrin/PKC localization induced by PKC activation also can be caused, in vitro and in vivo, by a mild hyperthermia exposure, as occurs during a natural fever (39.5-40 degrees C, 2-12 hr). This mild heat exposure also triggers the activation of PKC, a major heat shock response, and lymphocyte proliferation. The increase in PKC activity, HSP70-spectrin-PKC aggregate formation, and heat shock protein expression resulting from exposure to fever-like hyperthermia are all inhibited by calphostin C, a specific inhibitor of PKC. These data demonstrate that changes observed during lymphocyte activation could be induced by a mild hyperthermia exposure occurring during a normal febrile episode.

Animals↗

Complexes containing actin and spectrin from erythrocyte and brain.

A complex of proteins with properties similar to those of erythrocyte spectrin-band 4.1-actin complex has been identified in a preparation derived from bovine brain. The complex has an apparent sedimentation coefficient of about 26S, and contains brain spectrin (also called fodrin) and actin as major components. The actin in the complex is in the oligomeric form, which nucleates assembly of actin filaments that grow from the "barbed" end. The complex cross-links actin filaments, resulting in an increase in low-shear viscosity. Whether the complex contains a protein analogous to erythrocyte band 4.1 is not known. However, it can be demonstrated that brain spectrin has the capability to interact with band 4.1 in a way which increases its ability to cross-link actin filaments.

Actins↗

Dissection of the human erythrocyte spectrin molecule using monoclonal antibodies.

One IgM and three IgG monoclonal antibodies specific to band 1 of human erythrocyte spectrin have been characterised. The antigenic sites of the IgG antibodies have been identified and mapped by radioimmune labelling of tryptic fragments of spectrin fractionated by SDS slab gel electrophoresis and blotted onto nitrocellulose filters. The binding site of one of these antibodies has also been directly visualised in the electron microscope after low-angle shadowing of the antibody-spectrin dimer complex, and lies at that end of the dimer which is responsible for tetramer formation.

Animals↗

The present status of erythrocyte spectrin structure: the 106-residue repetitive structure is a basic feature of an entire class of proteins.

Spectrin, the major component of the erythroid membrane skeleton, is a long, asymmetrical rodlike protein that interacts with several other proteins to form a two-dimensional membrane skeleton. Progress in several laboratories over the past few years including substantial partial peptide and nucleotide sequence determination has greatly enhanced our knowledge of the structural properties of this large molecule (heterodimer = 465,000 daltons). The alpha and beta subunits are homologous with approximately 30% identity. They are aligned in an antiparallel side-to-side orientation with the amino- and carboxy-termini near opposite physical ends of the molecule. The predominant structural feature elucidated from sequencing this large molecule is the nearly universal occurrence in both subunits of a single type of repetitive structure. The periodicity of this homologous structure is exactly 106 amino acid residues. As many as 36 homologous, but nonidentical, repeats exist and comprise more than 90% of the mass of the heterodimer. Each of these repetitive units is folded into a triple-stranded structure that is highly helical. Peptide maps, antibody crossreactivity, peptide sequence analysis, and more recently nucleic acid sequences have defined several major properties of the erythroid molecule and related proteins in other tissues. Tissue-specific spectrins have the same 106-residue repetitive structure and show sequence homology to erythroid spectrin.

Amino Acid Sequence↗

Spectrin oligomers: a structural feature of the erythrocyte cytoskeleton.

Spectrin reversibly self-associates to high molecular weight oligomers through a concentration-driven process characterized by association constants of about 10(5) mol(-1). This association if prominent under physiological conditions of pH, ionic strength, and temperature. It is disrupted by urea, but not Triton X-100. The process of spectrin association appears mathematically to resemble that for tropomyosin, although the mechanism is probably different. Spectrin association is weak compared to other prominent protein-protein associations in the red cell membrane skeleton. The linkage of these weak and strong associations suggests a process whereby the membrane skeleton spontaneously assembles. Such affinity-modulated assembly involving weak associations is likely to abe the focus of numerous membrane.

Detergents↗

Roles of physical interactions in determining protein-folding mechanisms: molecular simulation of protein G and alpha spectrin SH3.

Protein-folding mechanisms of two small globular proteins, IgG binding domain of protein G and alpha spectrin SH3 domain are investigated via Brownian dynamics simulations with a model made of coarse-grained physical energy functions responsible for sequence-specific interactions and weak Gō-like energies. The folding pathways of alpha spectrin SH3 are known to be mainly controlled by the native topology, while protein G folding is anticipated to be more sensitive to the sequence-specific effects than native topology. We found in the folding of protein G that the C terminal beta hairpin is formed earlier and is rigid, once ordered, in the presence of an intact C terminal turn. The alpha helix is found to exhibit repeated partial formations/deformations during folding and to be stabilized via the tertiary contact with preformed beta sheets. This predicted scenario is fully consistent with experimental phi value data. Moreover, we found that the folding route is critically affected when the hydrophobic interaction is excluded from physical energy terms, suggesting that the hydrophobicity critically contributes to the folding propensity of protein G. For the folding of alpha spectrin SH3, we found that the distal beta hairpin and diverging turn are parts formed early, fully in harmony with previous results of simple Gō-like and experimental analysis, supporting that the folding route of SH3 domain is robust and coded by the native topology. The hybrid method provides useful tools for analyzing roles of physical interactions in determining folding mechanisms.

Bacterial Proteins↗

The association of the C-terminal region of beta I sigma II spectrin to brain membranes is mediated by a PH domain, does not require membrane proteins, and coincides with a inositol-1,4,5 triphosphate binding site.

The beta spectrin genes each produce two alternate transcripts the longer of which has a approximately 210 amino acid C-terminal extension including a pleckstrin homology (PH) domain and also an uncharacterized membrane binding site. GST constructs including the entire or the N-terminal segment of the beta I sigma II spectrin PH domain bind to crude and extracted brain membranes, to protein free brain lipid and to vesicles containing phosphatidylinositol-4,5-bisphosphate. This PH domain also binds radiolabelled inositol-1,4,5-trisphosphate (IP3) and preincubation with IP3 inhibits binding to extracted brain membranes. We conclude that membrane binding of the beta I sigma II spectrin C-terminal region is by means of a direct interaction between the N-terminal region of the PH domain and membrane lipids and does not require membrane protein. The PH domain of the beta-adrenergic receptor kinase showed different binding properties in every assay employed, showing that different PH domains may have different membrane binding specificity.

Animals↗

Proteins reacting with anti-spectrin antibodies are present in Chlamydomonas cells.

It was found either in Western-blot analysis or in indirect immunofluorescence microscopy that cells of the alga Chlamydomonas reinhardhi contain polypeptides cross-reacting with antibodies directed against red blood cell spectrin. The protein could also be detected by immunoprecipitation with anti-spectrin antibodies. C. reinhardtii cells contain distinct polypeptide chains reacting with antibodies directed against either alpha- or beta-spectrin subunits. This protein was extracted from the cells with low ionic strength solution but was not with nonionic detergent.

Animals↗