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J Dissing

Publications and source records attributed to J Dissing.

7 recordsLinked to original sources

Human red cell acid phosphatase (ACP1): the primary structure of the two pairs of isozymes encoded by the ACP1*A and ACP1*C alleles.

The Af, As, Cf and Cs isozymes encoded by the human red cell acid phosphatase ACP1*A and ACP1*C alleles, respectively, have been sequenced. All four isozymes consist of a single non-glycosylated peptide chain (157 residues), acetylated at the amino-terminal alanine residue. Each f isozyme differs from the corresponding s isozyme over the sequence segment 40-73, while the remaining four-fifth of the molecules are identical. These findings are consistent with results for the Bf and Bs isozymes encoded by the common ACP1*B allele and confirm that the presence of a specific f or s segment is a common property to ACP1 isozymes. This supports our hypothesis that f and s isozymes are generated by alternative splicing of exons in the primary RNA transcript. Cf and Cs are identical in sequence with Bf and Bs, respectively. Thus, the ACP1*B and ACP1*C alleles encode exactly the same pair of isozymes, the only difference at the protein level being the ratio of f and s isozyme. Af and As differ from the Bf and Bs isozymes by a single substitution at residue 105; Arg and Gln, respectively. These observations explain the electrophoretic identity of the B and C isozyme pairs and the higher P(i) of the A isozyme pair.

Acid Phosphatase

Human red cell acid phosphatase (ACP1). The amino acid sequence of the two isozymes Bf and Bs encoded by the ACP1*B allele.

The pair of isozymes, Bf and Bs, encoded by the human red cell acid phosphatase ACP1*B allele has been sequenced. Similar but not identical primary structures were observed. Both isozymes consist of a single peptide chain of 157 amino acid residues, which is acetylated at the amino-terminal alanine residue. The Bf and Bs isozymes are not glycosylated, and the calculated molecular masses are 17,932 and 17,867 Da, respectively. They are identical except for the sequence segment 40-73, which is peculiar to the respective isozyme. This is consistent with our hypothesis that the two isozymes are generated as the result of alternative splicing of the primary RNA transcript. The finding of a signature sequence offers the basis for the characteristic differences in catalytic and molecular properties of the Bf and Bs isozymes. A high degree of homology was found between the Bs isozyme and the 18-kDa cytosolic acid phosphatase from bovine liver. No homology was observed with other sequenced proteins, and this establishes these low molecular weight acid phosphatases as products of a distinct gene family.

Acid Phosphatase

Human red cell acid phosphatase: purification and properties of the A, B and C isozymes.

Human red cell acid phosphatase isozymes encoded by three alleles (ACP1*A, ACPI*B and ACP1*C), each of which generates two isozymes, (f) and (s), were purified to homogeneity. The molecular mass of the six isozymes (Af, As, Bf, Bs, Cf and Cs) was estimated to be 17-18 kDa, the mass of the f isozymes probably being slightly higher than that of the s isozymes. It was indicated that the isozymes react with p-nitrophenyl phosphate in the mono anionic state, and that a group with a pKa value of about 6, which may be histidine, is of importance for the catalytic function of the s isozymes. Significant differences between the f and s isozymes were observed with respect to specific activity. Km (p-nitrophenyl phosphate), Ki (p-aminobenzylphosphonic acid), amino acid composition, stability in the presence of urea, thermal stability, retention time in size-exclusion chromatography of the native isozymes and migration in sodium dodecyl sulphate polyacrylamide gel electrophoresis, In contrast, identical or similar properties were observed for the three genetically different f isozymes, and the same was the case for the three s isozymes. It is suggested that the f and s isozymes serve different functions in the cell.

Acid Phosphatase

Phosphonic and arsonic acids as inhibitors of human red cell acid phosphatase and their use in affinity chromatography.

1. In order to obtain an effective ligand for affinity chromatography of the low molecular weight acid phosphatase (orthophosphoric-monoester phosphohydrolase (acid optimum), EC 3.1.3.2) from human red cells nine phosphonic and two arsonic acid substrate analogues were investigated as potential inhibitors. The two forms of acid phosphatase type B (b1 and b2) were isolated and partially purified using conventional methods and the inhibitory action of the substrate analogs investigated. 2. Four of the phosphonic acids were relatively effective competitive inhibitors. It appears that certain structural and electronic requirements have to be fulfilled by the phosphonic acids in order to exhibit significant affinity for the enzyme. A high affinity appears to require the presence of a bulky, hydrophobic moiety which has to be separated from the phosphorus atom by the distance of one atom. 3. p-Aminobenzylphosphonic acid exerted the highest affinity for acid phosphatase with a pH optimum at 6.5. Ki values of 4 . 10(-4) and 6 . 10(-4) M were found for the b1 and b2 forms, respectively. 4. Coupling of p-aminobenzylphosphonic acid to Agarose yielded an effective and specific affinity medium. By means of affinity chromatography using this medium, acid phosphatase was purified 500-fold in a single step.

Acid Phosphatase

Human red cell acid phosphatase: quantitative evidence of a silent gene PO, and a Danish population study.

In a forensic case of disputed paternity an apparent mother/child incompatibility with respect to red cell acid phosphatase was found, the mother appearing as type A and the child as type B. Determination of electrophoretic type and of acid phosphatase activity in 8 of the family members strongly suggested the presence of a silent gene PO in 4 of the individuals. The phosphatase levels in the four heterozygotes were about half the values expected from normal values determined in 100 healthy adults representing the different phenotypes. The distribution of red cell acid phosphatase types in 3,735 unrelated Danish adults and in 1,109 mother/child pairs is reported; gene frequencies Pa = 0.369, Pb = 0.566 and Pc = 0.065. The PO gene frequency was roughly estimated as 0.001. Results are reported on the application of the red cell acid phosphatase system to 300 2-men cases of disputed paternity.

Acid Phosphatase

Association between the C3F gene and atherosclerotic vascular diseases.

The C3 phenotype distribution was studied in a group of patients suffering from atherosclerotic vascular diseases. A statistically significant association was found between the presence of the C3F gene and the occurrence of atherosclerosis. A relative risk incidence of the disease of 1.87 was found for the C3F-positive individuals as compared to the C3F-negative ones.

Adult

C3 polymorphism in relation to age.

The C3 phenotype distribution was investigated in different age-groups among 2,078 voluntary blood donors between the ages of 20 and 65 years, in a group of unrelated babies and in a group of old healthy persons. A continuous increase in the C3F gene frequency with age was found among the blood donors varying from 0.1780 in the youngest age group (babies: 0.1585) to 0.2516 at the age of 50-55 years followed by a continuous decrease to a level of 0.1700 among the eldest donors (01718 among the old persons). In the age group 45-49 years the C3 distribution differed significantly from that in the adjoining age-groups (C3F = 0.1619). It is believed that the variations are brought about by selection of the blood donor population and a balanced polymorphism for the C3 system, possibly due to differences in the biological efficiency of the C3 variants in the complement sequence.

Adult