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Unequal synthesis and differential degradation of alpha and beta spectrin during murine erythroid differentiation.

Murine erythroleukemia (MEL) cells represent a valuable system to study the biogenesis of the cytoskeleton during erythroid differentiation. When attached to fibronectin-coated dishes MEL cells induce, upon addition of DMSO, a 7-d differentiation process during which they enucleate and reach the reticulocyte stage (Patel, V. P., and H. F. Lodish. 1987. J. Cell Biol. 105:3105-3118); they accumulate band 3, spectrin, and ankyrin in amounts equivalent to those found in mature red blood cells. To follow the biosynthesis of spectrin during differentiation, membranes and cytoskeletal proteins of cells metabolically labeled with [35S]methionine were solubilized by SDS and alpha and beta spectrins were recovered by specific immunoadsorption. In both uninduced and 3-d induced cells, the relative synthesis of alpha/beta spectrin is approximately 1:3. In uninduced MEL cells newly synthesized alpha and beta spectrins are degraded with a similar half-life of approximately 10 h. In contrast, in 3-d differentiated MEL cells newly made beta spectrin is much more unstable than alpha spectrin; the half-lives of alpha and beta spectrin chains are approximately 22 and 8 h, respectively. Thus, accumulation of equal amounts of alpha and beta spectrin is caused by unequal synthesis and unequal degradation. As judged by Northern blot analyses, the level of actin mRNA is relatively constant throughout the 7-d differentiation period. alpha and beta spectrin mRNAs are barely detectable in uninduced cells, increase during the first 4 d of induction, and remain constant thereafter. In contrast, band 3 mRNA is first detectable on day 4 of differentiation. Thus, most of the spectrin that accumulates in enucleating reticulocytes is synthesized during the last few days of erythropoiesis, concomitant with the onset of band 3 synthesis. To determine whether this was occurring in normal mouse erythropoiesis, we analyzed the rate of appearance of labeled membrane proteins in mature erythrocytes after a single injection of [35S]methionine. Our results show that most of the spectrin and band 3 in mature erythrocytes is synthesized during the last days of bone marrow erythropoiesis, and that, in the marrow, band 3 and protein 4.1 are synthesized at a somewhat later stage of development than are alpha and beta spectrin, ankyrin, and actin.

Animals↗

Spectrin rearrangement early in erythrocyte ghost endocytosis.

The endocytic vacuoles induced in white ghosts were found to be depleted of spectrin and therefore it was proposed that they arose from spectrin-free areas in the erythrocyte membrane. To follow changes in spectrin distribution during endocytosis, affinity-purified rabbit antispectrin antibodies were produced. Quantitative techniques were developed for the use of a highly specific 125I-F(ab')2 antispectrin, and these showed that before the appearance of vacuoles, as assessed by phase microscopy, there was a reproducible decrease in immunoreactive spectrin. To determine whether this spectrin decrease represented a local or diffuse spectrin loss or a spectrin rearrangement, morphologic studies were undertaken using transmission electron microscopy on samples treated with rabbit antispectrin and ferritin-conjugated goat anti-rabbit immunoglobulin. These studies showed that endocytosis was preceded by the creation of extensive spectrin-free areas separated by discrete spectrin-containing zones. Pretreatment of ghosts with alkaline phosphatase blocked all forms of endocytosis and prevented the creation of spectrin-free areas. Therefore, it is proposed that under the impetus of endocytosis inducers, phosphorylated spectrin is redistributed so that spectrin-free zones are created, and that endocytic vacuoles form and fuse in spectrin-free areas.

Adenosine Triphosphate↗

A large erythroid spectrin beta-chain variant.

A large variant of erythrocyte beta-spectrin was found in a child presenting with hereditary elliptocytosis and anaemia. This polypeptide was phosphorylated, cross-reacted with normal beta-spectrin in immunoblotting and formed a dimer with alpha-spectrin that co-purified with normal alpha beta dimer. The molecular weight was estimated to be 330 kD by SDS gel electrophoresis, which is 84 kD (35%) larger than the normal beta-chain. This variant has been tentatively named spectrin Detroit (beta Detroit). Tryptic digests demonstrated a coexisting alpha-spectrin variant Sp alpha I/65 in the propositus, his father and a paternal uncle. Anaemia and elliptocytosis was associated with Sp alpha I/65 rather than beta Detroit, since other family members with beta Detroit in whom alpha-spectrin was normal had no morphological or clinical abnormalities. Family members were identified who had normal alpha-spectrin but were heterozygotic for the large beta-spectrin. Their erythrocyte membranes were more rigid and fragile than normal. The fragility is probably a consequence of both weaker dimer association and spectrin deficiency. Variant spectrin dimers (alpha beta Detroit) had a reduced self-association constants. Binding to ankyrin was normal. Instability of beta Detroit during erythropoiesis is suggested by the fact that it comprises only 25% of the beta-spectrin in beta Detroit heterozygote erythrocytes, and total spectrin was reduced by 20%. Although beta Detroit has some functional defects, this 84 kDa insert in erythrocyte spectrin is compatible with nearly normal function.

Centrifugation, Density Gradient↗

Unique alpha-spectrin mutant in a kindred with common hereditary elliptocytosis.

We report here a unique variant of alpha spectrin in a kindred with hereditary elliptocytosis. This novel red blood cell-membrane protein migrated to a position between the normal alpha- and beta-spectrin subunits in SDS polyacrylamide gel electrophoresis. It was identified as an alpha spectrin by its binding to anti-alpha spectrin antibodies, by the absence of a phosphorylation site, and by the normal 1:1 stoichiometry between total alpha- and beta-spectrin molecules. The quantity of the alpha-spectrin mutant, expressed as a percentage of the total alpha spectrin, varied from 9.9-45.2% among six affected individuals. Two-dimensional electrophoretic analysis of spectrin tryptic digests was qualitatively normal but showed a decreased quantity of a normal alpha IV fragment. The variable quantity of alpha-spectrin mutant among family members correlated directly with the increased percentage of spectrin dimers in cold low ionic strength spectrin extracts (r = 0.92) and inversely with red blood cell ghost mechanical stability (r = -0.98). The data suggest that this new alpha-spectrin mutant is responsible for decreased spectrin dimer-dimer association and for red cell instability in affected individuals.

Electrophoresis, Polyacrylamide Gel↗

Spectrin ubiquitination and oxidative stress: potential roles in blood and neurological disorders.

This review covers the observations that erythrocyte spectrin has a E2 ubiquitin conjugating enzymatic activity that allows it to transfer ubiquitin to a target site in the alpha-spectrin repeats 20/21. The position of this ubiquitination site suggests that ubiquitination may regulate alpha beta spectrin heterodimer nucleation, spectrin-4.1-actin ternary complex formation, and adducin stimulated spectrin-actin attachment in the mature erythrocyte. In sickle cells, which contain altered redox status (high GSSG/GSH ratio), ubiquitin attachment to the E2 and target sites in alpha-spectrin is greatly diminished. We propose that this attenuated ubiquitination of spectrin may be due to glutathiolation of the E2 active site cysteine leading to diminished ubiquitin-spectrin adduct and conjugate formation. Furthermore we propose that lack of ubiquitin-spectrin complex formation leads to dysregulation of the membrane skeleton in mature SS erythrocytes and may diminish spectrin turnover in SS erythropoietic cells via the ubiquitin proteasome machinery. In hippocampal neurons, spectrin is the major ubiquitinated protein and a component of the cytoplasmic ubiquitinated inclusions observed in Alzheimer's and Parkinson's diseases. The two primary neuronal spectrin isoforms: alpha SpI Sigma*/beta SpI Sigma 2 and alpha SpII Sigma 1/beta SpII Sigma 1 are both ubiquitinated. Future work will resolve whether neuronal spectrins also contain E2-ubiquitin conjugating activity and the molecular basis for formation of ubiquitinated inclusions in neurological disorders.

Amino Acid Sequence↗

Comprehensive analysis of all triple helical repeats in beta-spectrins reveals patterns of selective evolutionary conservation.

The spectrin superfamily (spectrin, alpha-actinin, utrophin and dystrophin) has in common a triple helical repeating unit of ~106 amino acid residues. In spectrin, alpha and beta chains contain multiple copies of this repeat. beta-spectrin chains contain the majority of binding activities in spectrin and are essential for animal life. Canonical beta-spectrins have 17 repeats; beta-heavy spectrins have 30. Here, the repeats of five human beta-spectrins, plus beta-spectrins from several other vertebrates and invertebrates, have been analysed. Repeats 1, 2, 14 and 17 in canonical beta are highly conserved between invertebrates and vertebrates, and repeat 8 in some isoforms. This is consistent with conservation of critical functions, since repeats 1, 2 and 17 bind alpha-spectrin. Repeats 1 of beta-spectrins are not always detected by SMART or Pfam tools. A profile hidden Markov model of beta-spectrin repeat 1 detects alpha-actinins, but not utrophin or dystrophin. Novel examples of repeat 1 were detected in the spectraplakins MACF1, BPAG1 and plectin close to the actin-binding domain. Ankyrin binds to the C-terminal portion of repeat 14; the high conservation of this entire repeat may point to additional, undiscovered ligand-binding activities. This analysis indicates that the basic triple helical repeat pattern was adapted early in the evolution of the spectrin superfamily to encompass essential binding activities, which characterise individual repeats in proteins extant today.

Amino Acid Sequence↗

Molecular basis of spectrin and ankyrin deficiencies in severe hereditary spherocytosis: evidence implicating a primary defect of ankyrin.

While varying degrees of spectrin deficiency have been found in the majority of patients with hereditary spherocytosis (HS), a combined severe deficiency of both spectrin and the spectrin-binding protein, ankyrin, has been reported only in two patients with severe HS. To elucidate the molecular basis of these protein deficiencies, we have studied the synthesis, assembly, and the mRNA levels of spectrin and ankyrin in peripheral blood reticulocytes in one of the previously reported probands. Pulse-labeling studies showed that in HS reticulocytes, the synthesis of alpha-spectrin was comparable with control reticulocytes while that of beta-spectrin was increased about fourfold, presumably reflecting increased erythropoietic drive. On the HS reticulocyte membrane, the amount of newly assembled spectrin was reduced to about half of the control values, presumably reflecting a decrease in the synthesis of the spectrin binding protein, ankyrin: the ankyrin synthesis was nearly absent in the cytosol and the amounts of membrane-associated ankyrin were reduced to about half of the normal values. The changes in the amounts of spectrin and ankyrin mRNAs quantitated by slot blot and Northern blot analyses were comparable with changes in the synthesis of these proteins: The alpha spectrin mRNA was within a control range and the beta-spectrin mRNA was slightly increased, while the amounts of ankyrin mRNA were reduced to about 50% of control values. We conclude that the primary defect underlying the combined spectrin and ankyrin deficiency is a deficiency of ankyrin mRNA leading to a reduced synthesis of ankyrin which, in turn, underlies the decreased assembly of spectrin on the membrane.

Adult↗

Presence of erythroid and nonerythroid spectrin transcripts in human lens and cerebellum.

Spectrin is a major protein of the red cell membrane, and is composed of alpha- and beta-subunits. While spectrin was initially thought to be specific for erythrocytes, similar, but nonidentical peptides have recently been identified in other tissues, including lens, suggesting the existence of a spectrin gene family. To study the nature of spectrin-like peptides in the lens, we examined the transcription of erythroid and nonerythroid spectrin in human lens and cerebellum by direct hybridization with known human alpha- and beta-spectrin cDNA (erythroid probes), as well as with a human alpha-fodrin cDNA (nonerythroid probe). Northern blots of poly(A)+ RNA from erythroid, as well as several nonerythroid cells, and the total RNA from lens, showed that the beta-spectrin cDNA probe hybridized to two distinct bands of 8.6 and 7.4 kb mRNA in human lens, and was present in abundance. The erythroid beta-spectrin 11 kb mRNA transcript was also found in the human cerebellum. The beta-spectrin transcripts from these nonerythroid tissues were found to have different sizes compared to the major erythroid 7.8 kb beta-spectrin mRNA. Human lens contained a 7.5 kb transcript of the erythroid alpha-spectrin subunit. In addition, the human lens was found to have a 7.2 kb alpha-fodrin transcript; while the cerebellum had an 8.5 kb alpha-fodrin mRNA, the same size as that found in other nonerythroid tissues. The abundance of erythroid and nonerythroid spectrin transcripts in lens was significantly greater than in any other tissues examined. These data show that the human lens has abundant erythroid alpha- and beta-spectrin transcripts, as well as a unique alpha-fodrin transcript.(ABSTRACT TRUNCATED AT 250 WORDS)

Blotting, Northern↗

Hereditary poikilocytic anemia associated with the co-inheritance of two alpha spectrin abnormalities.

This report describes a black family in which two distinct structural defects of alpha spectrin were inherited singly and in combination. The propositus, who has a poikilocytic hemolytic anemia that shares many of the features of hereditary pyropoikilocytosis (HPP) or homozygous elliptocytosis, is a compound heterozygote for both the spectrin alpha 1/65 and spectrin alpha 1/50a defects as demonstrated by electrophoretic analysis of spectrin tryptic fragments. The spectrin alpha 1/65 defect alone was found in his mother and sibling, while the spectrin alpha 1/50a defect was present in the father and another sibling. The red cell spectrin content was normal in all family members. The functional consequences of inheritance of these two spectrin defects were compared with those found in an unrelated patient with classic HPP who had the alpha 1/50a spectrin defect and was spectrin deficient as well. Prolonged incubation at 37 degrees C resulted in striking budding, fragmentation, and sphering of classic HPP red cells but only minimal changes in propositus cells. The percentage of spectrin dimers was increased tenfold in classic HPP, sevenfold in the propositus, and threefold in other family members. Mechanical stability of erythrocyte ghosts, measured by ektacytometry, was reduced severely in both classic HPP and in the propositus, but only moderately in other family members. Thus, co-inheritance of two alpha spectrin defects can result in a poikilocytic hemolytic anemia milder than that usually found in HPP. The greater clinical severity of HPP may be a consequence of the presence of spectrin deficiency, a finding absent in the propositus.

Adult↗

Quantification of spectrin-containing erythroid precursor cells in normal and perturbed erythropoiesis.

The presence of spectrin in erythroid cells of female BALB/c mice has been detected by specific antisera to spectrin, using an immunofluorescent sandwich technique. Spectrin-containing cells are more numerous in bone marrow (18.9%) than in spleen (3.7%). In marrow, spectrin-containing cells exceed benzidine positive cells by about 6.2% whereas in spleen, numbers are almost equivalent. This suggests that normal proerythroblasts and perhaps more primitive erythroid cells contain spectrin, which is consistent with cytological characteristics of some spectrin-positive cells. Proerythroblast cells from spleens of Rauscher virus induced erythroleukemic mice contain spectrin although markers for hemoglobin synthesis are absent. Changes in CFUE number are closely correlated with those of spectrin-positive erythroid cells when erythropoiesis is perturbed. In red cell transfused, erythropoietically suppressed mice undergoing hemopoietic regeneration the administration of erythropoietin results in appearance of CFUE and spectrin-positive cells within 24-72 h. Due to different methods of assaying for CFUE and presence of spectrin, numerical data cannot be compared quantitatively because of uncertainty in the level of detection. Although it is not possible to demonstrate the presence or absence of spectrin in CFUE, changes in spectrin-containing cells and CFUE are closely correlated in time. Spectrin provides a convenient marker for both normal and leukemic nucleated erythroid cells and particular provides a functional marker for proerythroblasts which have previously been identified only by morphology.

Animals↗

Comparison of the phosphorylation of human erythrocyte spectrin in the intact red cell and in various cell-free systems.

Knowledge of the position and characteristics of the four spectrin phosphorylation sites (Harris, H. W., Jr., and Lux, S. E. (1980) J. Biol. Chem. 255, 11512-11520) was used to study the kinetics of spectrin phosphorylation in the intact red cell. Incubation of intact erythrocytes in the presence of [32P]orthophoshate produced a simultaneous increase in the specific activities of all the spectrin phosphorylation sites. The dephosphorylation of spectrin followed an identical pattern. Spectrin phosphate turnover in intact red cells was then quantitatively compared to isotope labeling patterns produced by phosphorylation of spectrin in various cell-free systems ("in vitro phosphorylation"). 33P-Labeled spectrin dimer, prepared by preincubation of red cells in [33P]orthophosphate, was phosphorylated by a spectrin kinase preparation (Hosey, M. M., and Tao, M. (1977) Biochim. Biophys. Acta 482, 348-357) and [gamma-32P]ATP. Under conditions where no dephosphorylation occurred as judged by loss of 33P label, 0.46 +/- 0.1 mol of 32P-labeled phosphate was incorporated/mol of spectrin dimer. The exogenous 32P label was located in a position and ratio identical with that of the endogenous 33P lebel. Similar results were obtained when the membrane-bound spectrin present in ghosts was phosphorylated using the procedure of Birchmeier and Singer (1977) J. Cell Biol. 73, 647-659). These data indicate that within the intact red cell all of the spectrin phosphates possess an identical rate of isotope exchange and approximately 90% of the spectrin phosphorylation sites are occupied. The remaining 10% may be phosphorylated in vitro by soluble or membrane-bound spectrin kinase in a pattern that is identical with that of the intact erythrocyte.

Adenosine Triphosphate↗

Cell type-specific association between two types of spectrin and two types of intermediate filaments.

We have demonstrated a differential association between two types of spectrin, from erythrocytes and brain, with two types of intermediate filaments, vimentin filaments and neurofilaments. Electron microscopy showed that erythrocyte spectrin promoted the binding of vimentin filaments to red cell inside-out vesicles via lateral associations with the filaments. In vitro binding studies showed that the association of spectrin with vimentin filaments was apparently saturable, increased with temperature, and could be prevented by heat denaturation of the spectrin. Comparisons were made between erythrocyte and brain spectrin binding to both vimentin filaments and neurofilaments. We found that vimentin filaments bound more erythrocyte spectrin than brain spectrin, while neurofilaments bound more brain spectrin than erythrocyte spectrin. Our results show that both erythroid and nonerythroid spectrins are capable of binding to intermediate filaments and that such associations may be characterized by differential affinities of the various types of spectrin with the several classes of intermediate filaments present in cells. Our results also suggest a role for both erythroid and nonerythroid spectrins in mediating the association of intermediate filaments with plasma membranes or other cytoskeletal elements.

Animals↗

Mechanisms of cytoskeletal regulation: functional and antigenic diversity in human erythrocyte and brain beta spectrin.

A study of human erythrocyte and brain spectrin with particular emphasis on the beta subunits revealed a structural homology but functional dissimilarity between these two molecules. Six monoclonal antibodies raised to human erythrocyte beta spectrin identify three of the four proteolytically defined domains of erythrocyte beta spectrin. Five of these monoclonal antibodies cross-react with human brain spectrin. None of a previously identified set of alpha erythrocyte spectrin monoclonal antibodies [Yurchenco et al: J Biol Chem 257:9102, 1982] reacted with brain spectrin. A domain map generated by limited tryptic digestion shows that brain spectrin is composed of proteolytically resistant domains analogous to erythrocyte spectrin, but the brain protein is more basic. The binding of brain spectrin to erythrocyte ankyrin, both in solution and on erythrocyte IOVs, yielded an association constant approximately 100 time weaker than for erythrocyte spectrin. The binding of azido-calmodulin under native conditions was specific for the erythrocyte beta subunit but was not calcium dependent. In contrast, azido-calmodulin bound only to the alpha subunit of brain spectrin in a calcium-dependent manner. The similarity of structure but modified functional characteristics of the brain and erythrocyte beta spectrins suggest that these proteins serve different cellular roles.

Amino Acids↗

Prenatal diagnosis of hereditary elliptocytosis with molecular defect of spectrin.

Hereditary elliptocytosis (HE) is, in the heterozygous state, a common mild congenital hemolytic disease. In contrast, homozygous elliptocytosis is a severe transfusion-dependent hemolytic anemia. The major determinant of red cell membrane shape and stability is a two-dimensional proteinaceous meshwork named membrane skeleton. Spectrin, the most important protein of the membrane skeleton, is basically a heterodimer composed of alpha and beta chains. Within the membrane, spectrin dimers self-associate to form tetramers. In type I HE spectrin dimer self-association is defective and an excess of spectrin dimer is present in the patient's red cell membranes. The defective self-association is often correlated with an abnormality of the spectrin alpha chain which is depicted by limited tryptic digest of spectrin. In a family previously studied by us (Dhermy et al., 1984), the search for a spectrin defect in the red cells of the fetus of the pregnant mother was indicated for the following reasons: the diagnosis of heterozygous type I HE with the same spectrin variant had been made in the mother as well as in the father. Moreover, homozygous HE had been recognized in one of the children born two years previously with a persistent and severe transfusion dependent hemolytic anemia. Preliminary studies of normal fetal erythrocytes at twenty weeks gestation have shown that fetal and adult spectrin molecules are identical. The results obtained in the fetus at risk allowed us to diagnose type I HE (though elliptocytes were not present in the blood) for the following reasons: (i) erythrocyte deformability was decreased (ii) spectrin self-association was defective with an excess of dimer species in the membrane (iii) limited tryptic digest of spectrin showed the same abnormal pattern as seen in the heterozygous mother, with a decrease in the 80,000-dalton peptide and a concomitant increase in the 74,000-dalton peptide. The heterozygous state, strongly suspected on the tryptic digest pattern of fetal spectrin, was confirmed when the mother gave birth to a baby who did not have hemolytic anemia during the first 18 months of life.

Elliptocytosis, Hereditary↗

Possible identity of a membrane-bound with a soluble cyclic AMP-independent erythrocyte protein kinase that phosphorylates spectrin.

A soluble casein kinase isolated and purified to homogeneity from the human erythrocyte cytosol by phosphocellulose and Sephadex G-200 chromatographies is indistinguishable from the membrane-bound casein (spectrin) kinase according to physical and site-specificity criteria. The soluble enzyme shows an Mr of about 30000 by gel filtration and comigrates with the purified membrane spectrin kinase as a single polypeptide of 32000 Da on sodium dodecyl sulfate polyacrylamide gels. The soluble kinase phosphorylates spectrin in situ in spectrin kinase-depleted ghosts and catalyzes the in vitro phosphorylation of partially dephosphorylated spectrin with saturation kinetics identical to those displayed by the membrane spectrin kinase. When component 2 of spectrin that had been phosphorylated with [gamma-32P]ATP by either the soluble or the membrane kinases was subjected to limited proteolysis, the same 21500 Da papain-generated phosphopeptide was found to have been produced by the two enzymes. The same 21500 Da phosphopeptide was identified after papain digestion of spectrin isolated from intact cells that had been incubated with 32Pi. However, this particular peptide was not labeled in spectrin that had been phosphorylated in vitro by the catalytic subunit of cyclic AMP-dependent protein kinase. Identical phosphopeptide patterns were obtained by gel filtration and two-dimensional peptide maps of trypsin-cleaved component 2 of spectrin that had been labeled in situ, in intact ghosts or in spectrin kinase-depleted ghosts supplemented with the soluble kinase. These findings indicate a possible identity of the soluble with the membrane-bound casein (spectrin) kinase.

Binding Sites↗

Spectrin localizations in the chicken bursa of Fabricius at different stages of development.

Before and after hatching, light microscopic and ultrastructural observations of spectrin were performed immunohistochemically in the chicken bursa of Fabricius. Before hatching, the frequency of spectrin-positive cells was very low. Among the spectrin-positive cells spectrin was mostly detected in patchy or diffuse form in the cytoplasm and rarely seen at surface membranes. Although cortical lymphocytes were spectrin-negative, numerous medullary lymphocytes were spectrin-positive after hatching. In the medullary spectrin-positive cells, staining intensity was uniform. Spectrins showed ultrastructural heterogeneity after hatching. Although a new type of spectrin localization associated with surface membranes was observed, this type of spectrin localization was not prominent. The increased number of spectrin-positive cells, uniform staining intensity and the localization of spectrin associated with surface membranes seem to coincide with B cell differentiation.

Animals↗

Functional characterization of spectrin-actin-binding domains in 4.1 family of proteins.

Protein 4.1R is the prototypical member of a protein family that includes 4.1G, 4.1B, and 4.1N. 4.1R plays a crucial role in maintaining membrane mechanical integrity by binding cooperatively to spectrin and actin through its spectrin-actin-binding (SAB) domain. While the binary interaction between 4.1R and spectrin has been well characterized, the actin binding site in 4.1R remains unidentified. Moreover, little is known about the interaction of 4.1R homologues with spectrin and actin. In the present study, we showed that the 8 aa motif (LKKNFMES) within the 10 kDa spectrin-actin-binding domain of 4.1R plays a critical role in binding of 4.1R to actin. Recombinant 4.1R SAB domain peptides with mutations in this motif showed a marked decrease in their ability to form ternary complexes with spectrin and actin. Binary protein-protein interaction studies revealed that this decrease resulted from the inability of mutant SAB peptides to bind to actin filaments while affinity for spectrin was unchanged. We also documented that the 14 C-terminal residues of the 21 amino acid cassette encoded by exon 16 in conjunction with residues 27-43 encoded by exon 17 constituted a fully functional minimal spectrin-binding motif. Finally, we showed that 4.1N SAB domain was unable to form a ternary complex with spectrin and actin, while 4.1G and 4.1B SAB domains were able to form such a complex but less efficiently than 4.1R SAB. This was due to a decrease in the ability of 4.1G and 4.1B SAB domain to interact with actin but not with spectrin. These data enabled us to propose a model for the 4.1R-spectrin-actin ternary complex which may serve as a general paradigm for regulation of spectrin-based cytoskeleton interaction in various cell types.

Actins↗

Brain and muscle express a unique alternative transcript of alphaII spectrin.

Alternative splicing of pre-mRNA transcripts of alpha and beta spectrin has emerged as an important generator of diversity in this gene family, yet the functional consequences and extent of this diversity remains unknown. We have cloned and characterized full-length alphaII spectrin cDNA from human fetal brain (GenBank and ). On the basis of the predicted amino acid sequence, 11 amino acid substitutions, presumably representing polymorphisms, have been identified that distinguish this alphaII spectrin from human lung fibroblast alphaII spectrin. In addition, human fetal brain spectrin displays a novel five amino acid insertion in repeat 15 that arises from alternative mRNA splicing and that distinguishes this spectrin from lung fibroblast alphaII++ spectrin. This discovery, together with two previously identified regions of alternative mRNA splicing in alphaII spectrin suggest that as many as eight different splice forms of the mature protein might exist if all combinations (at inserts 1, 2, and 3) of alternative mRNA splicing are utilized. To assess this possibility, the tissue distribution of alternative exon usage was investigated by semiquantitative PCR with intron-jumping primer sets. Tissues examined were from mouse and included heart, kidney, lung, liver, thymus, spleen, brain, ovary, testis, and skeletal muscle, as well as mouse embryonic tissue. Transcripts both with and without insert 1, representing a 60 bp insertion within alphaII spectrin repeat 10, were identified in all tissues. In contrast, transcripts with insert 2, the novel 15 bp insertion reported here, were only expressed in brain, heart, skeletal muscle, and embryonic tissue. In all tissues examined only transcripts positive for insert 3, an 18 bp insertion in repeat 21, were amplified, even under conditions in which a 30% level of insert 3 negative transcript could be easily detected in artificially prepared control samples. All combinations of insert 1 and insert 2 were identified together in individual transcripts, verifying at least four distinct isoforms of alphaII spectrin. These have been named alphaIISigma1 through alphaIISigma4, in accord with current spectrin naming conventions. Dynamic molecular modeling of the 15th repeat unit incorporating insert 2 predicts that the spliced sequence forms a loop between helices A and B, and suggests that this insert might constitute a novel protein interaction site. The presence of this sequence in alphaIISigma3 and alphaIISigma4 spectrin suggests a specialized and heretofore unanticipated function for the 15th repeat of this molecule.

Amino Acid Sequence↗