The amino acid sequence and the subunit structure of bovine brain S-100 protein (PAP I-b).
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Biomedical subjects
Publications and source records attributed to T Isobe.
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Analysis of bovine brain extract by disc electrophoresis on a 20% polyacrylamide gel indicated the existence of three extremely acidic proteins. These proteins were isolated by column chromatography on DEAE-Sephadex A-50 and Sephadex G-75. The isolated proteins (PAP I-a, PAP I-b and PAP II) were homogeneous in various methods including 7.5% and 20% gel electrophoresis or gel chromatography, and share, in the extract, 85% of the total of the acidic proteins that migrate with the bromophenol blue marker in 7.5% gels. Their physicochemical properties, including molecular weight, ultraviolet absorption spectra or amino acid composition were similar, especially those between PAP I-a and PAP I-b where a part of primary structure appeared to be common in their tryptic peptide maps. These two proteins were identified to be the nervous system specific protein S 100 by immunochemical and electrophoresis methods as well as by amino acid analysis, and the other protein PAP II was revealed to be a calcium-binding protein. The existence and properties of the isolated proteins are discussed with relation to the heterogeneity problem of S 100 protein.
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Cleavage of precursor proteins occurs during assembly of numerous viruses. Seven bacteriophage T4 head-related proteins areknown to be cleaved during morphogenesis. Sequences surrounding the cleavage sites in T4 head precursors P23 and IPIII are reported here. We previously determined the sequences of precursor and processed forms of IPII and IPI. Cleavage occurs at a glutamyl-alanyl bond in each protein. By comparison of sequences around five cleaved and four uncleaved Glu-Ala bonds in head precursors, it appears that cleavage is limited to the Thr or Ala, and X2 to hydrophilic residues. The results suggest the viral-induced assembly protease recognizes and cleaves an extended primary structure in the structurally dissimilar precursors.
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IgA heavy chain disease (alpha chain disease) was detected in a 46 year old South American (Colombian) of mixed Spanish and Indian (Mestizo) descent. The clinical course was characterized by severe malabsorption, initially thought to be a variant of tropical sprue. Jejunal mucosal biopsy revealed marked villous atrophy with heavy infiltration of the lamina propria by a single monotonous cell type which, by light microscopy, had the appearance of either a large, abnormal plasma cell or a small histiocyte. Electron microscopy of the biopsy specimen demonstrated the presence of abnormal plasma cells, lymphatic distention and abnormalities of surface epithelial cells. At autopsy a 6 by 3 cm mass was found in the right para-aortic area along with many firm 2 cm mesenteric and para-aortic lymph nodes. Histologic examination revealed the presence of a monotonous cell type similar to that found in the jejunal mucosal biopsy specimen.
An internal molecular deletion occurring in a human lambda type immunoglobulin light (L)-chain (Sm lambda) has been defined by sequence analysis. The Sm protein was isolated from the urine of a patient with a plasma cell dyscrasia involving the synthesis of an IgG molecule with both deleted gamma and lambda subunits. The Sm lambda polypeptide chain has an approximate molecular weight of 15,000 and contains 135 amino-acid residues. The constant (C) region is fully intact, comprising 105 residues, whereas the variable region (V) has only 30 residues. The V-region segment represents residues 1 through 30 of normal lambda chains and possesses considerable homology (87%) to lambda chains of subgroup II. Since lambdaII proteins normally contain 216 amino-acid residues, the defect represents an intramolecular deletion of 81 residues, which is entirely confined to the carboxyterminal three-quarters segment of the V-region, with a resumption of normal synthesis at a glutaminyl residue at position 110, the initiation point of the C-region. Carbohydrate is attached to an Asx residue at position 25, in the first hypervariable region, associated with the sequence triplet Asx-Ser-Ser, which is postulated to be a common recognition site for glycosylation of immunoglobulins. The carbohydrate moiety is a complex oligosaccharide with a branched chain structure containing sialic acid, fucose, mannose, N-acetylglucosamine, and galactose. These structural studies and other findings suggest that restricted areas in the DNA of immunoglobulin genes, such as the hinge regions of heavy (H) and light (L) chains and the hypervariable regions, are particularly susceptible to breakage and reunion. We postulate that the genetic defect of protein Sm could have originated from a somatic mutational event in the plasmacyte precursor during or after the integration of the V and C genes. These studies provide additional support for the hypothesis and two distinct structural genes encode a single immunoglobulin polypeptide chain.