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Evolution of the spectrin repeat.

We now know that the evolution of multidomain proteins has frequently involved genetic duplication events. These, however, are sometimes difficult to trace because of low sequence similarity between duplicated segments. Spectrin, the major component of the membrane skeleton that provides elasticity to the cell, contains tandemly repeated sequences of 106 amino acid residues. The same repeats are also present in alpha-actinin, dystrophin and utrophin. Sequence alignments and phylogenetic trees of these domains allow us to interpret the evolutionary relationship between these proteins, concluding that spectrin evolved from alpha-actinin by an elongation process that included two duplications of a block of seven repeats. This analysis shows how a modular protein unit can be used in the evolution of large cytoskeletal structures.

Amino Acid Sequence↗

Is there any connection between heat inactivation of spectrin-dependent ATPase and loss of smooth biconcave shape of red cells?

Spectrin-dependent ATPase activity was measured in membranes from native human erythrocytes and erythrocytes heated for 20 min at different temperatures. This activity was found to decline when the erythrocytes were heated at 48 degrees C and higher. The break in ATPase activity corresponds to morphological changes in erythrocytes found by Crome and Mollison [Brit. J. Haematol. (1964) 10, 137]. The role of spectrin-dependent ATPase in erythrocyte shape maintenance is discussed.

Adenosine Triphosphatases↗

Specific molybdenum binding to spectrin subunits.

Molybdenum in the form of its pentavalent complex binds primarily to spectrin when incubated with erythrocytes. Only the band 1 subunit is involved in this interaction thus indicating some structural differences between spectrin subunits.

Binding Sites↗

Gamma actin, spectrin, and intermediate filament proteins colocalize with vinculin at costameres, myofibril-to-sarcolemma attachment sites.

Localization of vinculin at the sarcolemma of striated muscle fibers defines an orthogonal lattice. The costameres of the lattice are the riblike bands of vinculin that run perpendicular to the long axis of the fiber, repeat in register with I bands of the subjacent myofibrils, and seem to couple the myofibril to the sarcolemma [Pardo et al 1982, 1983a]. The colocalization studies presented in this paper show that gamma actin, spectrin, and intermediate filament antigens are additional components of this lattice of costameres. In addition, the results show that gamma actin and spectrin are also components of the internal network of collars, first visualized with antibody to desmin [Granger and Lazarides, 1978], that connects the myofibrils to each other at the level of the Z line.

Actins↗

Spectrin, fodrin, and TW260/240: a family of related proteins lining the plasma membrane.

Recently, molecules highly related to erythrocyte spectrin have been identified in nonerythroid cells. Here we summarize our current understanding of these molecules and suggest a model for their organization. Significant differences exist between this family of proteins isolated from mammalian cells and avian cells, and this may explain the variability in antibody preparations as well as differences in peptide maps of these subunits which have been reported. We have prepared antibodies specific for the variant subunits of the spectrinlike proteins fodrin, spectrin, and TW260/240 and analyzed the distribution of these variant subunits in different chicken cell types as well as their developmental distribution in the intestine. The results suggest that fodrin is the general member of this family of proteins and can even coexist with other spectrinlike proteins in the same cells.

Animals↗

Coelomocyte spectrin.

We have investigated the presence and localization of an alpha-spectrinlike protein and its potential role in the morphological transformation of sea urchin coelomocytes. In immunofluorescence images there is a diffuse fluorescence throughout the petaloid cytoplasm, indicating a random distribution of the spectrinlike protein prior to the transformation. As these cells from filopodia, there is a coincident appearance of a spectrinlike protein, as seen in fluorescent images, at the site of filopodial initiation. As the filopodia continue to form and lengthen, the spectrin localization parallels their development. There is a single polypeptide observed on sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) gels of whole coelomocyte lysates that cross-reacts with the anti-alpha-spectrin immunogen and comigrates with it at 240 kilodaltons.

Animals↗

Identity of p36K phosphorylated upon Rous sarcoma virus transformation with a protein purified from brush borders; calcium-dependent binding to non-erythroid spectrin and F-actin.

Membrane vesicles derived from the apical side of procine intestinal epithelial cells retain, after demembranation in the presence of calcium, two major proteins (I, II) which are released by the addition of calcium chelators. We have purified and characterized these two calcium-binding proteins. Protein I has a mol. wt. of 85 000 and contains two copies of a 36-K subunit and an additional 10-K subunit. It binds in a calcium-dependent manner to F-actin as well as to non-erythroid spectrin. Immunofluorescence microscopy reveals protein I-related antigens in the terminal web of the intestinal cell and in a submembraneous cortical layer in various tissue culture cells. Biochemical and immunological results document that the 36-K subunit of protein I is identical with the cellular p36K recognized as a major substrate for tyrosine phosphorylation by the sarc gene kinase in Rous sarcoma virus-transformed cells. The biochemical properties of protein I agree with its location seen in immunofluorescence microscopy and cell fractionation and suggest that the actin-spectrin network in the cortical layer may be affected by virus transformation.

Actins↗

Cross-linkings between spectrin and band 3 in human erythroycte membranes.

A specific structural association between spectrin component 1 and band 3 in human erythrocyte membrane has been demonstrated by covalent cross-linkings, specific labeling, and the technique of two-dimensional gel electrophoresis. A complex of 330,000 daltons, representing 1 + 3, was produced in mildly oxidized membranes at physiologic pH and isotonic conditions but not at hypotonic conditions ( less than 10 mM KCl or NaCl). The yield of this complex decreased dramatically as the monovalent cation concentration decreased from 90 mM to 30 mM. The presence of Mg++ or Ca++ (2 mM) at low ionic strength promoted 1 + 3 cross-linking in an amount similar to that produced at isotonic conditions. The specific segment of band 3 involved in the cross-linking was also investigated by means of chymotrypsin digestion of band 3 in the intact red cells. The results showed the cross-links between spectrin component 1 and the 55,000-dalton fragment of band 3 at physiologic pH and isotonic conditions. This is consistent with the idea that band 3 is anchored on or contacted with the submembrane meshwork at the cytoplasmic membrane surface.

Electrophoresis, Polyacrylamide Gel↗

Spectrin-4.1-actin complex of the human erythrocyte: molecular basis of its ability to bind cytochalasins with high-affinity and to accelerate actin polymerization in vitro.

The spectrin-4.1-actin complex isolated from the cytoskeleton of human erythrocyte was found to be similar to muscle F-actin in several aspects: Both the complex and F-actin nucleate cytochalasin-sensitive actin polymerization; both bind dihydrocytochalasin B with similar binding contrasts; both can be depolymerized by DNase I with loss of cytochalasin binding activity. From these results, we conclude that the actin in the complex is in an oligomeric form. However, the presence of spectrin and band 4.1 in the complex not only stabilized the actin in the complex as evidenced by its resistance to depolymerization in low-ionic-strength conditions and to DNase I as compared with F-actin, but also altered the characteristics of the binding site(s) for cytochalasins believed to be located at the "barbed" (polymerizing) end of the oligomeric actin.

Actins↗

Identification of spectrin and calmodulin in rabbit spermiogenesis and spermatozoa.

Actin was localized in the four subacrosomal bulges (Camatini et al., Eur. J. Cell Biol. 45:276-281, 1987), which characterize the sperm head of rabbit spermatozoa (Phillips, J. Ultrastruct. Res. 38:591-604, 1972), and in the postacrosomal region (Welch and O'Rand, Dev. Biol. 109:411-417, 1985; Camatini et al., Eur. J. Cell Biol. 45:276-281, 1987). Specific antibodies and indirect immunogold labelling on testis Lowicryl K4M sections and spermatozoa cryosections were used to study the distribution of calmodulin and a spectrin-like protein. This protein was also present close to the shaping membranes of the head. The results presented suggest a membrane-cytoskeletal role of actin, spectrin, and calmodulin.

Animals↗

High-performance liquid chromatography analysis of spectrin oligomerization.

Gel filtration chromatography has been used to analyze the oligomerization of human erythrocyte spectrin. By applying an exponentially modified Gaussian function we have been able to resolve overlapping elution peaks. From these peaks it was possible to calculate the equilibrium composition of each spectrin concentration and thus also the dissociation constants describing the oligomeric process. The determined dissociation constants for tetramer formation (1.3 microM) and for hexamer formation (24 microM) agree well with other measurements.

Chromatography, Gel↗

Mediation of the physiological response of platelets by interactions of spectrin and protein 4.1 with the cytoskeleton.

Spectrin and protein 4.1 became associated with the Triton-insoluble cytoskeletons during platelet activation. Inhibition of platelet activation by a PGI2 analogue resulted in release of the proteins from the cytoskeletons. Changes in subcellular distributions of the proteins preceded changes in the state of platelet aggregation. These results suggest that interactions of spectrin and protein 4.1 with the cytoskeletons are involved in mediating the physiological response of the platelet.

Actins↗

Binding of PH domains of beta-adrenergic receptor kinase and beta-spectrin to WD40/beta-transducin repeat containing regions of the beta-subunit of trimeric G-proteins.

Pleckstrin homology (PH) domains are found in numerous proteins important in signal transduction and cytoskeletal function. Several PH domains are now known to contain a binding site for the beta gamma subunits of trimeric G-proteins (G beta gamma), a finding which naturally raises the question of where on the G beta gamma complex these PH domains bind. Here we demonstrate binding of the PH domains of beta-adrenergic receptor kinase and beta-spectrin to the G beta subunit and not the G gamma subunit in a nitrocellulose gel replica assay. Furthermore, the C-terminal tryptic fragment of G beta containing only 5 WD40/beta-transducin (WD40) repeats also binds these two PH domains. Finally, constructs containing only WD40 repeats of G beta were shown to bind to beta-ARK and beta-spectrin PH domains in solution. These findings suggest that WD40 repeats of G beta are ligands for PH domains and have interesting implications for other proteins containing WD40 sequences.

Amino Acid Sequence↗

A DNA-binding antitumor antibiotic binds to spectrin.

Aureolic acid group of antibiotics inhibit transcription by reversible binding to DNA in presence of divalent magnesium. We for the first time report binding of the one of such antitumor antibiotic, mithramycin (MTR), to the major protein component of erythrocyte cytoskeleton, spectrin. A reasonably high apparent dissociation constant was estimated to be 1.5 microM. The binding of mithramycin in the absence of any divalent cation to the large cytoskeletal protein led to quenching in the tryptophan fluorescence of the protein. Stern-Volmer quenching of the tryptophan residues by acrylamide revealed conformational change in the MTR-bound spectrin. This preliminary study might be useful in understanding other possible sites of actions after translocation.

Acrylamide↗

A novel brain-specific isoform of beta spectrin: isolation and its interaction with Munc13.

Munc13 is a component of the neurotransmitter release machinery which is specifically expressed in brain. Munc13 interacts with Doc2 and syntaxin which are also implicated in the neurotransmitter release process. Here we isolated another Munc13-interacting molecule from a rat brain cDNA library by use of the yeast two-hybrid system, identified it to be a novel type of beta spectrin, and named it beta SpIII sigma 1. beta SpIII sigma 1 was specifically expressed in brain, where it was enriched in the synaptic vesicle and plasma membrane fractions. Because spectrin has been shown to interact with the actin cytoskeleton which is involved in the exocytotic process, the present results suggest that the Munc13-beta SpIII sigma 1 interactions play a role in neurotransmitter release.

Amino Acid Sequence↗

An alpha-spectrin mutation responsible for hereditary elliptocytosis associated in cis with the alpha v/41 polymorphism.

The alpha 207 Leu-->Pro mutation in spectrin has recently been identified as a cause of alpha I/50-46a hereditary elliptocytosis (HE) or pyropoikilocytosis among Black people. We have found this mutation in a Moroccan family in both the heterozygous and homozygous states. The mutated alpha-spectrin allele carried, in cis, the alpha V/41 polymorphism, a common polymorphism altering the peptide maps and associated with a low-expression level. This is the first report of the cis combination of an HE mutation and the alpha V/41 polymorphism. Presumably, such a combination accounts for the very low expression of the abnormal allele in the heterozygous state.

Alleles↗

Pathologic and nonpathologic variants of the spectrin molecule in two black families with hereditary elliptocytosis.

Five patients with hereditary elliptocytosis (HE) from two unrelated black families were studied. The patients had prominent elliptocytosis and a decreased erythrocyte resistance to heat treatment. In one infant blood smears showed elliptocytosis and poikilocytosis; his erythrocytes fagmented at a lower temperature than those of his mother and sister, both having typical mild HE. Defective dimer-dimer association was present in all patients. Limited tryptic digestion of spectrin and subsequent analysis by one- and two-dimensional electrophoresis revealed a similar and reproducible decrease in the 80,000-dalton peptide (alpha I domain) and the concomitant appearance of a 46,000-dalton peptide. All the patients had the polymorphism of the spectrin alpha II domain commonly observed in black populations. In addition, modifications relative to the alpha III domain were detected; similar variants were found in one black control subject out of 136 and are likely related to a genetic polymorphism of the alpha III domain. No differences were observed between the peptide patterns in the infant with poikilocytosis and those of his HE sister and mother.

Adult↗

Ultrastructural localization of alpha-, beta- and gamma-sarcoglycan and their mutual relation, and their relation to dystrophin, beta-dystroglycan and beta-spectrin in normal skeletal myofiber.

Ultrastructural localization of alpha-, beta- and gamma-sarcoglycan and their mutual relation, and their relation to dystrophin, beta-dystroglycan and beta-spectrin were investigated in normal skeletal myofibers. Single-immunogold labeling electron microscopy showed that the signals of rabbit and sheep polyclonal antibodies against the synthetic peptide of the cytoplasmic domain of alpha-, beta or gamma-sarcoglycan were present along the inside surface of muscle plasma membrane and at the sarcoplasmic side of plasma membrane invaginations and vesicular structures in subsarcolemmal areas. These localizations were similar to that of dystrophin, beta-dystroglycan and beta-spectrin. Double-immunogold labeling disclosed the close association of alpha-, beta- and gamma-sarcoglycan each other and alpha-, beta-, gamma-sarcoglycan with dystrophin or beta-dystroglycan, and this was confirmed by statistical analysis. Monoclonal antibody against the extracellular domain of alpha-sarcoglycan was used with above-mentioned polyclonal anti-beta- and -gamma-sarcoglycan antibodies for triple-immunogold labeling, in which signals of alpha-sarcoglycan localized at the outer surface of muscle plasmalemma and those of beta- and gamma-sarcoglycans were present at the inside surface of plasma membrane. The triple immunolabeling showed an occasional closely associated presence of the three signals for alpha-, beta-and gamma-sarcoglycans, and a more frequent association for two signals out of alpha-, beta- and gamma-sarcoglycans. This study demonstrated that alpha-, beta- and gamma-sarcoglycan are closely located to one another and to dystrophin and beta-dystroglycan at the muscle plasma membrane.

Animals↗