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S R Goodman

Publications and source records attributed to S R Goodman.

At least 91 records · Page 5Linked to original sources

Human erythrocyte membrane proteins of zone 4.5 exist as families of related proteins.

An analysis of the polypeptide composition of zone 4.5 of human erythrocyte membranes has been done by immunoautoradiographic and two-dimensional peptide mapping techniques. Results of these studies demonstrated that the Coomassie blue profile was constant, with 14 well-resolved bands present. Zone 4.5 polypeptides existed as at least four families of two or more components with closely related polypeptide backbones. The families could be distinguished on the basis of their extraction characteristics, immunological cross-reactivity, and two-dimensional peptide maps. One family was related to protein 4.1, one family was related to band 3, and two families were independent and not similar to other larger membrane proteins. The data show that all of the visualized bands in zone 4.5 do not have the same protein composition and that several closely related forms of some polypeptides are present.

Blood Proteins↗

Identification and location of brain protein 4.1.

Protein 4.1 is a membrane skeletal protein that converts the low-affinity interaction between spectrin and actin into a high-affinity ternary complex of spectrin, protein 4.1, and actin that is essential to the structural stability of the erythrocyte. Pig brain was shown to contain an 87-kilodalton immunoreactive analog of protein 4.1 that has partial sequence homology with pig erythrocyte protein 4.1 and the same location as spectrin in the cortical cytoplasm of neuronal and glial cell types of the cerebellum.

Actins↗

Brain spectrin: a review.

Red blood cell spectrin, along with actin and several other proteins, forms a skeletal meshwork on the cytoplasmic surface of the erythrocyte plasma membrane. This structure is thought to maintain red blood cell shape, membrane structural stability, and cellular elasticity, as well as controlling the lateral mobility of integral membrane proteins and the transbilayer movement of phospholipids. It is now clearly established that spectrin-related molecules are ubiquitous structural elements subjacent to the plasma membrane of mammalian and avian nonerythroid cells. In this review, we present the current knowledge concerning brain spectrin. Brain spectrin is an approximately 11S, approximately 1,000,000 molecular weight (alpha beta)2 tetramer containing subunits of 240,000 (alpha) and 235,000 (beta) molecular weight. It is present in the cortical cytoplasm of all neuronal cell bodies and processes, and to a lesser extent in glial cells. Its involvement in the actin-membrane interaction, as well as other proposed functions in the nervous system is discussed.

Actins↗

A structural model of human erythrocyte band 2.1: alignment of chemical and functional domains.

Protein 2.1 is a 210-kilodalton protein that connects erythrocyte spectrin to the NH2-terminal cytoplasmic domain of band 3 and thereby functions as the essential linkage between the membrane skeleton and the bilayer. We cleaved this protein into specific chemical domains by limited digestion with trypsin and alpha-chymotrypsin at 0 degrees C. Intermediate-sized peptides were separated by two-dimensional isoelectric focusing/NaDodSO4/polyacrylamide gel electrophoresis and characterized by high resolution peptide mapping. We have established a provisional structural model of protein 2.1 by comparing the peptide maps of these chemical domains to maps obtained from larger overlapping chymotryptic fragments as well as fragments obtained from 2-nitro-5-thiocyanobenzoic acid cleavage. In addition to providing a provisional structural map of protein 2.1, we have identified two functional domains of protein 2.1, an 83-kilodalton tryptic peptide (T-83) which binds band 3 and a 65-kilodalton tryptic peptide (T-65) which binds spectrin. We have therefore localized the functional domains along our linear map of protein 2.1.

Anion Exchange Protein 1, Erythrocyte↗

Protein 4.1: its association with the human erythrocyte membrane.

125I-labeled protein 4.1a and 4.1b have equal ability to reassociate with inside-out erythrocyte vesicles that were depleted of protein 4.1 in addition to other peripheral membrane proteins. The reassociation of 125I-labeled protein 4.1 to protein 4.1-depleted vesicles at 4 degrees C is salt dependent, pH dependent, and saturable with a Kd of 42-50 nM and an extrapolated maximal binding capacity of 120-140 micrograms of protein 4.1 bound per mg of vesicle protein or 60-70 micrograms of protein 4.1 bound per mg of ghost protein, correlating with the protein 4.1 content in the erythrocyte membrane (6-7% of the total membrane protein). Selective proteolytic cleavage of these vesicles with papain (5 micrograms/ml at 4 degrees C) eliminates greater than 60% of the high-affinity binding sites; therefore, we conclude that the interaction of protein 4.1 with the cytoplasmic membrane surface is through a specific high-affinity protein-protein association.

Blood Proteins↗

Normal content of brain spectrin-like protein in sph/sph mice.

In the erythrocytes of WBB6F1-sph/sph mice spectrin constitutes only approximately 1% of the total sph/sph membrane protein compared to approximately 23% in WBB6F1-+/+ controls. No increase in proteolytic degradation of spectrin in sph/sph erythrocyte membranes could be detected with antibodies directed against mouse erythrocyte spectrin or mouse brain spectrin-like protein. As attachment of normal spectrin to the erythrocyte membrane of these animals appeared to be normal, and as spectrin is not detected when whole sph/sph erythrocytes are solubilized in SDS for SDS PAGE, the deficient erythrocyte spectrin was probably due to diminished production. Brain spectrin-like protein, a nonerythroid spectrin analogue, is antigenically, morphologically and functionally related to erythrocyte spectrin, but appears by peptide mapping analysis to be a distinct gene product. It was found by protein- and antibody-staining of brain membranes to be present in normal concentrations in sph/sph animals. Indirect immunofluorescence of mouse brain tissue with anti-brain spectrin-like protein IgG or anti-erythrocyte spectrin IgG indicated that the distribution of brain spectrin-like protein was normal in sph/sph brain. Therefore the mutation causing diminished production of sph/sph erythrocyte spectrin does not affect the expression of this nonerythroid spectrin analogue.

Animals↗

A spectrin-like protein from mouse brain membranes: phosphorylation of the 235,000-dalton subunit.

A mouse brain spectrin-like protein, which was an immunoreactive analogue of erythrocyte spectrin, has been isolated from demyelinated membranes. This spectrin analogue was a 10.5 S, 972,000 molecular weight (Mr) (alpha beta)2 tetramer containing subunits of 240,000 (alpha) and 235,000 (beta) Mr. We demonstrated that in vivo only the 235,000 Mr beta subunit of the mouse brain spectrin-like protein was phosphorylated, which was an analogous situation to mouse erythrocyte spectrin in which only the 220,000 Mr beta subunit was phosphorylated. Incubation of isolated membrane fractions with [gamma-32P]ATP +/- adenosine 3',5'-cyclic monophosphate (cAMP) indicated that mouse brain spectrin-like protein, mouse erythrocyte spectrin, and human erythrocyte spectrin's beta subunits were all phosphorylated in vitro by membrane-associated cAMP-independent protein kinases.

Animals↗

Localization of spectrin in mammalian brain.

Spectrin is a major skeletal component of the erythrocyte membrane and is essential in controlling cell shape and structural stability. The brain has also been found to be rich in an immunoreactive and structural analogue of spectrin. In the present study, spectrin was localized in the mouse brain by indirect immunofluorescence using an antibody to erythrocyte spectrin that cross-reacts specifically with the alpha and beta subunits of brain spectrin. Spectrin antigens were concentrated in neuronal perikarya and cell processes. Synaptic structures and axons were observed to have little detectable spectrin antigen by immunofluorescence methodology. The cell bodies of glia had a less intense immunoreactivity in contrast to neurons, and glial processes and myelin were unstained. Cell nuclei of neural cells were not fluorescent. These results show that (a) spectrin is found in all regions of mammalian brain and its intensity corresponds to neural cell density, (b) different neural cell types contain variable spectrin content, and (c) within a single neural cell, the regional disposition of spectrin varies.

Animals↗

A spectrin-like protein from mouse brain membranes: immunological and structural correlations with erythrocyte spectrin.

Membrane-associated mouse brain spectrin is a 972,000 Mr, 10.5S, (alpha beta)2 tetramer containing two approximately 240,000 Mr subunits and two approximately 235,000 Mr subunits. Two-dimensional [125I]tryptic peptide mapping indicates that these subunits share only limited and equivalent overlap with the alpha- and beta-subunits of red blood cell (RBC) spectrin. Both the 220,000 Mr beta-subunit of RBC spectrin and the 235,000 Mr beta-subunit of brain spectrin are phosphorylated in the intact mouse. In vitro analysis suggests that both are phosphorylated by a cAMP-independent protein kinase. Antibodies against pure native mouse red blood cell spectrin cross-react with brain spectrin, and antibodies against pure brain spectrin cross-react with both the alpha- and beta-subunits of mouse RBC spectrin. Both antibodies have been utilized to localize brain spectrin within distinct cellular entities of the mouse cerebellum. Granule cell neurons of the internal granule layer and Purkinje cell neurons demonstrated intense fluorescence of the cortical cytoplasm immediately adjacent to the plasma membrane and unstained nuclei, when either RBC or brain spectrin antibodies were utilized for staining. The molecular layer of the cerebellum stained only lightly, and oligodendrocytes and astrocytes appeared to have little fluorescence. Therefore, while brain is a tissue rich in nonerythroid spectrin, the concentration of these immunoreactive analogues is quite variable within distinct cellular entities of the cerebellum.

Animals↗

Senescent cell antigen is immunologically related to band 3.

IgG autoantibodies in human serum selectively bind to a glycopeptide antigen that appears on senescent and damaged cells in situ. We identified the membrane protein from which the senescent cell antigen is derived by using a phagocytosis-inhibition assay and immunoautoradiographic gel staining and electroblotting techniques. Results of the phagocytosis-inhibition assay revealed that only the purified transmembrane glycoprotein designated "band 3" and senescent cell antigen inhibited the phagocytosis of erythrocytes induced by IgG eluted from senescent erythrocytes. Purified spectrin, syndein, band 4.1, actin, glycophorin A, and intact or desialylated sialoglycoprotein periodic acid/Schiff (PAS) staining bands 1-4 containing glycophorins A, B, and C did not inhibit phagocytosis. Specific antibodies against the senescent cell antigen and erythrocyte band 3 were used to identify the membrane protein from which the senescent cell antigen is derived. Band 3-related polypeptides (MrS approximately equal to 60,000, 42,000, and 18-26,000) were identified in erythrocyte ghosts prepared in the presence of diisopropyl fluorophosphate, phenylmethylsulfonyl fluoride, and EDTA by immunoautoradiography with antiband 3. Antibodies to senescent cell antigen reacted with band 3 and the same lower Mr band 3-related polypeptides. Thus, the senescent cell antigen is immunologically related to band 3.

Anion Exchange Protein 1, Erythrocyte↗

The spectrin membrane skeleton of normal and abnormal human erythrocytes: a review.

The erythrocyte membrane skeleton composed of spectrin, actin, and several other proteins is essential for the maintenance of the erythrocyte shape, reversible deformability, and membrane structural integrity in addition to controlling the lateral mobility of integral membrane proteins. In this review, we shall give an historical development of the current model of the erythrocyte membrane skeleton. We will then describe how the experimental technology developed to study the normal membrane skeleton has paved the way for the recent identification of alterations of skeletal protein interactions in hereditary spherocytosis, hereditary elliptocytosis, and hereditary pyropoikilocytosis. We will conclude with a discussion of some of the more exciting and promising directions for future research that are currently being initiated in this vanguard field of cell biology.

Actins↗

Species-dependent variations in erythrocyte membrane skeletal proteins.

Two mammalian species (porcine and murine) have erythrocytes that are being widely used to study membrane protein synthesis and red cell aging. Erythrocytes of these species however, are significantly smaller than those of the human. Before results obtained from study of these red cells can be applied to human cells, the membrane skeleton of these species must be investigated to determine if the skeletal elements are equivalent. Both pig and mouse bands 4.1b were of lower molecular weight than human 4.1b, and the a/b ratio was lower. In each species, 4.1a and b were sequence-related phosphoproteins, and yielded substantially different one-dimensional peptide maps. Band 3 of pig and mouse erythrocytes had a higher molecular weight than human band 3 and also had differing one-dimensional peptide maps after limited proteolytic cleavage with three different enzymes. In each species, free band 3 and band 3 bound to the membrane skeleton had identical peptide maps. Other major membrane skeletal components (spectrin, actin, and bands 2.1 and 4.2) seem to be very similar in molecular weight in various species. These results demonstrate that the molecular weights and relative proportions of the membrane skeletal elements are species dependent.

Animals↗

Erythrocyte membrane skeletal protein bands 4.1 a and b are sequence-related phosphoproteins.

Bands 4.1 a and b are proteins of 80,000 and 78,000 molecular weight, which are both present at approximately 100,000 copies per erythrocyte ghost. Both proteins are components of the erythrocyte membrane skeleton. Bands 4.1 a and b are labeled when intact erythrocytes are incubated with [32P]orthophosphoric acid, and, therefore, are phosphoproteins. One-dimensional partial proteolytic mapping analysis of 32P-labeled bands 4.1 a and 4.1 b and two-dimensional peptide mapping analysis of 125I-labeled bands 4.1 a and 4.1 b clearly demonstrated that the two proteins are sequence-related phosphoproteins. Band 4.1 purified by standard techniques (Tyler, J. M., Hargreaves, W. R., and Branton, D. (1979) Proc. Natl. Acad. Sci. U. S. A. 76, 5192-5196) contains bands 4.1 a and 4.1 b. Bands 4.1 a and 4.1 b bind to spectrin heterodimers in solution. We conclude that the erythrocyte skeletal proteins bands 4.1 a and 4.1 b are sequence-related phosphoproteins, both capable of binding spectrin.

Electrophoresis, Disc↗

Identification of the molecular defect in the erythrocyte membrane skeleton of some kindreds with hereditary spherocytosis.

We have localized the molecular alteration in the membrane skeleton of two of four kindreds with hereditary spherocytosis (HS) to an alteration in the spectrin-protein-4.1 interaction due to a defective spectrin molecule. The defective spectrin-protein-4.1 interaction in these kindreds (referred to as type I HS) leads to a weakened spectrin-protein-4.1-actin ternary complex, which in turn may lead to the friable membrane skeleton and suggested membrane instability related to this disorder. Type I HS spectrin binds approximately 63% as much protein-4.1 as normal spectrin (with equal affinity). This defect does not correlate with splenic function or erythrocyte age in the circulation. However, the approximately 37% reduction in binding of protein-4.1 to HS spectrin approaches the theoretical value of 50% expected in this autosomal dominant disorder. All other type I membrane skeletal interactions (spectrin-syndein, spectrin heterodimer-heterodimer, syndein-band-3) were found to be normal. It would appear therefore that the defective HS spectrin-protein-4.1 interaction in type I hereditary spherocytosis may be the primary molecular defect rather than a secondary phenomena.

Actins↗