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Biomedical subjects

M J Tanner

Publications and source records attributed to M J Tanner.

At least 145 records · Page 8Linked to original sources

Ionic-strength-dependent changes in the structure of the major protein of the human erythrocyte membrane.

The effect of ionic strength on the proteolysis by trypsin of the major membrane-penetrating protein (polypeptide 3) in the erythrocyte membrane was studied. Both the intracellular and extracellular regions of the protein are susceptible to trypsin proteolysis under hypo-osmotic conditions, whereas under iso-osmotic conditions the extracellular region of the protein is resistant to trypsin, and the intracellular region yields only two cleavage products with trypsin. Studies of the fragments obtained from polypeptide 3 by trypsin digestion under iso-osmotic conditions of 'ghosts' radioiodinated with lactoperoxidase confirmed our earlier conclusions that the polypeptide chain of polypeptide 3 traverses the membrane twice. Ionic-strength-dependent changes were also observed in the incorporation of iodine by lactoperoxidase into the individual extracellular tyrosine sites of the protein. These results show that polypeptide 3 undergoes ionic-strength-dependent changes in structure.

Autoradiography↗

Inherited sialoglycoprotein deficiencies in human erythrocytes of type En[a-].

We have investigated the membranes of erythrocytes from a family in which there is a genetic defect [previously described as the En[a-] condition[ resulting in the loss of the major erythrocyte sialoglycoprotein [PAS-i]. The results show that two different types of sialoglycoprotein deficiency can be distinguished within this family. We suggest that the En[a-] group of variants is more appropriately described as a class of sialoglycoprotein deficient erythrocytes. Using a new technique it is shown that the blood group M antigen of normal erythrocytes is found only on the erythrocyte sialoglycoprotein while in this family the M antigen is found on membrane components other than the sialoglycoprotein. Our results suggest that the amino acid sequence of the sialoglycoprotein is important in defining the difference between the blood group M and N antigens in normal erythrocytes.

Aminosalicylic Acid↗

Abnormal carbohydrate composition of the major penetrating membrane protein of En(a-) human erythrocytes.

The major penetrating membrane glycoprotein (band 3) was isolated from En(a-) and normal human erythrocytes. The two proteins differed only in carbohydrate composition. Band 3 from En(a-) erythrocytes contained greater amounts of galactose and N-acetyl-glucosamine. The loss of the sialoglycoprotein sialotetrasaccharides in the En(a-) cell is not compensated by the appearance of these units in band 3 of En(a-) erythrocytes.

Acetylglucosamine↗

Reducible components in the proteins of human erythrocyte membrane.

In contrast to a previous report, no collagen or elastin-type cross-linked derived from lysine-aldehydes were detected in human erythrocyte membranes. The major reducible components of erythrocyte membranes were shown to be hexosyllysines. From their structure it is clear that these components cannot act as cross-links between the protein subunits of the membrane. The components were also shown to be present in varying proportions in human serum albumin and haemoglobin. Whether the hexose attachments have any physiological significance or are artefacts of the analytical procedure has not yet been demonstrated. One other major reducible component was present but, although unidentified, this compound was shown to be unrelated to any of the known lysine-aldehyde-derived cross-links of collagen and elastin. A minor acidic component was identified as glucosylvaline derived from the N-terminus of the beta chain of haemoglobin A1c and not a lysine-aldehyde precursor of the collagen cross-links.

Blood Proteins↗

A method for the direct demonstration of the lectin-binding components of the human erythrocyte membrane.

1. A method which allows the characterization of lectin-binding components is described. This method should be useful in defining the nature and heterogeneity of these components in cell membranes. 2. The method, which we have used on erythrocyte "ghosts", involves the fixation of "ghost" components after sodium dodecyl sulphate/polyacrylamide-gel electrophoresis and incubation with purified 125I-labelled lectins. 3. Each of the four lectins used shows an individual pattern of reactivity towards "ghosts" components. Band 3, the major membrane-penetrating glycoprotein, is bound by the lectins from Ricinus communis and Phaseolus vulgaris (phytohaemagglutinin) and by concanavalin A. The major erythrocyte sialoglycoprotein is bound by the lectins from R. communis, P. vulgaris and Maclura aurantiaca. 4. Three of the lectins displays binding for other membrane components, some of which are not demonstratable by conventional protein- and carbohydrate-staining techniques.

Binding Sites, Antibody↗

The membrane change in En(a-) human erythrocytes. Absence of the major erythrocyte sialoglycoprotein.

We investigated the membrane of En(a-) human erythrocytes as part of a study of the structure and biochemical function of the surface glycoproteins of the mammalian cell. 2. En(a-) erythrocytes were selected because they have more extensive changes at the cell surface than any other known erythrocyte variant. 3. Our results show that in En(a-) erythrocytes: (a) the major membrane sialoglycoprotein is lacking; (b) the other major membrane-penetrating glycoprotein (band 3) has an altered electrophoretic mobility. 4. The apparent clinical normality of En(a-) cells suggests that the change in band 3 may compensate for the loss of the membrane sialoglycoproteins. It is clear that a viable erythrocyte can exist despite the absence of one of its major surface components.

Binding Sites, Antibody↗

Separation of ABH, I, Ss antigenic activity from the MN-active sialoglycoprotein of the human erythrocyte membrane.

The erythrocyte sialoglycoprotein was purified from cells with complementary ABO(H), MN and Ss phenotypes. Serological examination of the sialoglycoprotein preparations demonstrated that this molecule does not carry the ABO(H), I or Ss antigens. The results also suggest that Ss activity may be associated with a minor erythorcyte glycoprotein. The characteristics of the ABO(H) and I antigens are consistent with earlier suggestions that these antigens are carried on complex glycolipids.

ABO Blood-Group System↗

The organization of the major protein of the human erythrocyte membrane.

The enzyme lactoperoxidase was used to catalyse the radioiodination of membrane proteins in intact human erythrocytes and in erythrocyte ;ghosts'. Two major proteins of the erythrocyte membrane were isolated after iodination of these two preparations, and the peptide ;maps' of each protein so labelled were compared. Peptides from both proteins are labelled in the intact cell. In addition, further mobile peptides derived from one of the proteins are labelled only in the ;ghost' preparation. Various sealed ;ghost' preparations were also iodinated, lactoperoxidase being present only at either the cytoplasmic or extra-cellular surface of the membrane. The peptide ;maps' of protein E (the major membrane protein) labelled in each case were compared. Two discrete sets of labelled peptides were consistently found. One group is obtained when lactoperoxidase is present at the extra-cellular surface and the other group is found when the enzyme is accessible only to the cytoplasmic surface of the membrane. The results support the assumption that the organization of protein E in the membrane of the intact erythrocyte is unaltered on making erythrocyte ;ghosts'. They also confirm previous suggestions that both the sialoglycoprotein and protein E extend through the human erythrocyte membrane.

Autoradiography↗

The distribution of blood-group antigens on butanol extraction of human erythrocyte 'ghosts'.

The distribution of protein and blood-group-antigen activity obtained after butanol extraction of erythrocyte ;ghosts' under various conditions is described. Butanol extraction under low-ionic strength conditions results in the recovery of membrane protein in high yield in the aqueous phase. Blood-group-A activity is found in both the aqueous and butanol phases, whereas blood-group-P activity is confined to the butanol phase and blood-group-I and blood-group-MN activity are restricted to the aqueous phase. Much lower yields of protein are obtained in the aqueous phase when high-ionic-strength conditions are used. An appreciable amount of material is precipitated at the interface. Under these conditions blood-group-P activity is found only in the butanol phase, blood group-A activity in the butanol phase and interface material and only blood-group-MN activity in the aqueous phase. In contrast with previous reports no correlation could be demonstrated between the secretor status of the donors and the presence of blood-group-A activity in the aqueous phase after butanol extraction under any of the extraction conditions used. By using butanol extraction under high-ionic-strength conditions it is possible to isolate the blood-group-MN-active sialoglycoprotein in high yield from erythrocyte ;ghosts' by a simple procedure.

ABO Blood-Group System↗

A set of surface proteins common to the circulating human platelet and lymphocyte.

The surface proteins of the circulating human platelet and lymphocyte were labelled by using the lactoperoxidase iodination method. Polyacrylamide-gel electrophoresis showed that four corresponding labelled proteins are found on the surface of each cell type. The most intensely labelled protein contains little or no carbohydrate, but the remaining labelled proteins are all glycoproteins. The major labelled band from each cell was isolated and comparative peptide ;maps' showed that the two proteins are closely similar. The surface proteins of the lymphocyte and platelet are distinct from those on the erythrocyte, the remaining major type of circulating cell.

Blood Platelets↗

Separation and some properties of the major proteins of the human erythrocyte membrane.

A fractionation procedure is described which allows the isolation of three major human erythrocyte membrane proteins. Their isolation involves three sequential extraction procedures followed by gel filtration in 1% sodium dodecyl sulphate and preparative gel electrophoresis. All three proteins can be isolated from a single preparation. One of the proteins is the erythrocyte sialoglycoprotein, for which no C- or N-terminal residues were found. The other two proteins, which have not previously been isolated, have subunit molecular weights of 74000 and 93000 and contain 9 and 7% carbohydrate respectively. These glycoproteins have blocked N-terminal residues and show similarities in their chemical properties. Preparations derived from blood-group O erythrocytes contain no N-acetylgalactosamine, but similar preparations from blood-group A erythrocytes do contain this sugar. These three proteins cannot easily be solubilized by gentle aqueous procedures and represent about half of the erythrocyte ;ghost' protein. They carry a large proportion of the cell-surface carbohydrate.

Amino Acids↗

The isolation and functional identification of a protein from the human erythrocyte 'ghost'.

A protein, initially identified as a band on polyacrylamide-gel electrophoresis of erythrocyte ;ghosts', was isolated by selective extraction of ;ghosts' with EDTA solutions. The molecular weight of the polypeptide chain was estimated as 33000 and it represents approx. 5% of the membrane protein. The N-terminal sequence of the protein was established. Comparison with known protein sequences suggested that the protein might be the erythrocyte d-glyceraldehyde 3-phosphate dehydrogenase. This identification was confirmed by direct enzyme assay. It is suggested that this enzyme, which is strongly retained by erythrocyte ;ghosts' on haemolysis of erythrocytes, is unlikely to be an integral part of the structure of the erythrocyte membrane.

Acrylamides↗