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Biomedical subjects

P D Issitt

Publications and source records attributed to P D Issitt.

At least 37 records · Page 2Linked to original sources

Hemolytic disease of the newborn caused by anti-Rh32 and demonstration that RN encodes rhi (Ce,Rh7).

A family is described in which the mother made anti-Rh32 as a result of pregnancy; her second liveborn child had hemolytic disease of the newborn and required an exchange transfusion. In investigating the family, it was found that the father's RN gene did not make rhi and that his second Rh gene made normal amounts of c and e but a reduced amount of f. In the two children of the couple, who inherited a normal r or Ro from their mother, the paternally derived RN encoded an amount of rhi that could be detected in direct typing tests. In the father, lack of production of rhi by RN may have represented a suppressive effect of the ce(f) gene in trans to RN or the presence of an unlinked suppressor of Rh that might also have been responsible for the reduced production of f by his r or Ro gene. The two children in this family are the first persons in whom RN has been shown to make rhi.

Erythroblastosis, Fetal↗

An auto-anti-M causing hemolysis in vitro.

A 64-year-old white man, who had never received a transfusion, was found to have anti-M in his serum. The antibody agglutinated all M+ red cells in room-temperature tests. When the ionic strength of the test milieu was reduced by use of an additive solution and the tests were incubated at 37 degrees C, the antibody hemolyzed M + N- but not M+N+ red cells. All M+ red cells reacted in indirect antiglobulin tests using polyspecific antiglobulin reagents when such tests followed an initial incubation at room temperature. When red cells and the patient's serum were warmed to 37 degrees C before being mixed, no antibody activity was demonstrable. The antibody was adsorbed to exhaustion onto M+N- and M+N+ red cells (including the patient's own), and its activity was destroyed by dithiothreitol. There was no evidence of in vivo red cell destruction by the autoantibody. No previously reported example of anti-M has been shown to activate complement in conventional in vitro tests. This example was extraordinary in that it caused sufficient complement activation to present as an in vitro hemolysin.

Antibody Specificity↗

Studies on the structures of the Tm, Sj, M1, Can, Sext and Hu blood group antigens.

The Glycophorins (GPs = sialoglycoproteins) in erythrocyte membranes from various Black individuals, some of which exhibit the M1, Can, Sj, Tm, Sext and/or Hu antigens, and several Caucasian donors, including pooled fetal red cells, were studied. Using agglutination inhibition assays with GP fractions, GP fragments and chemically modified GPs as well as trypsin treatment of intact red cells, the antigens defined by anti-M1, anti-M+M1, anti-Can and anti-Tm sera were found to be located on the N-terminal tryptic peptide (T2, residues 1-31) of the major GP (GP A = MN sialoglycoprotein). Evidence was obtained that the N-terminal amino-acid residue, NeuNAc and/or (a) different sugar residue(s) are involved in the antigens. Amino-acid sequence and composition analyses excluded an amino-acid exchange within the N-terminal region (residues 1-31) of GP A. Carbohydrate analyses revealed the attachment of GlcNAc residues (up to about five, dependent on the strength of the above-mentioned antigens) to O-glycosidically linked oligosaccharides within the N-terminal portion (residues 1-31) of GP A. As judged from the carbohydrate compositions of peptides, the alteration of the O-glycosidic oligosaccharides is associated with a slight increase of the Gal and Fuc contents and a slight decrease of the NeuNAc level. Analyses of small, secondary cyanogen bromide and V8 proteinase peptides from the N-terminal region of GP A from Blacks, Caucasians and Caucasian fetal cells suggest that the variable attachment of small quantities of GlcNAc (about 0.03 to about 0.2 residues per peptide molecule) accounts, at least in part, for the polymorphisms detected by anti-Can and the original anti-Tm (serum Sheerin). Remarkably, the GlcNAc-containing O-glycosidic oligosaccharides occur only in small quantities, or not all at, within the positions 32-61 of GP A and the glycosylated domains of GP B and GP C.(ABSTRACT TRUNCATED AT 400 WORDS)

Acetylglucosamine↗

Temporary suppression of Kidd system antigen expression accompanied by transient production of anti-Jk3.

This report describes an 85-year-old woman of Russian Jewish extraction whose red cell Kidd system phenotype changed during the 2 years in which her blood was studied. Certainly once, and perhaps twice, the patient's phenotype changed from Jk(a+b-) to Jk(a-b-). On both occasions, it reverted to Jk(a+b-). During the first episode of loss of Jka, she formed anti-Jk3. Although this antibody was weak, it was capable of in vivo destruction of Jk(a+b-) and Jk(a-b+) red cells. A lack of details about the patient's clinical condition precludes speculation as to the cause of suppression of Jka expression. The phenomenon appeared to affect only the Kidd blood group system. This case should alert others that antigen loss can occur in the Kidd system as it has been shown to occur in, at least, the Rh, Kell, and Ge systems.

Aged↗

High frequency antigens of human erythrocyte membrane sialoglycoproteins, III. Studies on the EnaFR, Wrb and Wra antigens.

The nature of the common erythrocyte antigens EnaFR and Wrb, that are both absent from En(a-) cells, and the rare Wra receptor, apparently encoded by an allele of Wrb, was investigated. Various modification, fractionation or cleavage products of erythrocyte membranes were used in hemagglutination inhibition assays. The EnaFR and Wrb antigens were shown to represent labile structures within the residues approx. 62-72 of the major (MN) sialoglycoprotein that require lipids, at least for complete expression of antigenic activity. During the course of these experiments, the arrangement of the MN glycoprotein's peptide chain with respect to the lipid bi-layer was also studied, using various proteinases. Furthermore, the MN glycoprotein was found to aggregate with the major membrane protein (band 3) in the presence of Triton X-100. The Wra antigen was shown to exhibit properties that differ considerably from those of the Wrb receptor. Analyses on the MN glycoprotein, isolated from the red cells of the only known Wra homozygote and two WraWrb individuals, did not reveal any amino-acid exchange within the residues 40-96 of the molecule. Therefore, the Wr locus that determines the presence or absence of the Wrb antigen on the MN glycoprotein might influence the post-translational modification of amino-acid residues, the structure of tightly bound lipids or the aggregation of the MN glycoprotein with a different protein such as band 3.

Blood Group Antigens↗