Multifunctional Enzyme, Bisphosphoglyceromutase/2,3‐Bisphosphoglycerate Phosphatase/Phosphoglyceromutase, from Human Erythrocytes
Open Access
- 1 July 1976
- journal article
- research article
- Published by Wiley in European Journal of Biochemistry
- Vol. 66 (3) , 515-522
- https://doi.org/10.1111/j.1432-1033.1976.tb10577.x
Abstract
Bisphosphoglyceromutase and 2,3‐bisphosphoglycerate phosphatase activities responsible for 2,3‐bisphosphoglycerate metabolism in human red cells are displayed by the same enzyme protein which has phosphoglyceromutase activity [Sasaki, R., et al. (1975) Eur. J. Biochem. 50, 581–593]. This enzyme was subjected to chemical modification by trinitrobenzenesulfonate. The three enzyme activities were inactivated by trinitrobenzenesulfonate at the same rate. The sulfhydryl content of the enzyme was unchanged during trinitrophenylation, indicating that derivatization was through the amino group. Trinitrophenylation of about one amino group per mole of the enzyme resulted in complete loss of the three activities. Both 2,3‐bisphosphoglycerate and 1,3‐bisphosphoglycerate inhibited trinitrophenylation and effectively protected the enzyme from inactivation. Although monophosphoglycerates did not show any protective effect at concentrations which should be adequate based upon their kinetic constants, they were protective at higher concentrations. Inactivation by trinitrophenylation was an apparent first‐order reaction. The dissociation constant of the enzyme 2,3‐bisphosphoglycerate complex was determined by analyzing the first‐order reaction on the assumption that the protective effect of 2,3‐bisphosphoglycerate was due to competition with trinitrobenzenesulfonate. The dissociation constant was in good agreement with kinetic constants of 2,3‐bisphosphoglycerate in the enzyme reactions, which indicated that 2,3‐bisphosphoglycerate did indeed exert its protective effect through competition with trinitrobenzenesulfonate for an amino group of the enzyme. The protective effect of monophosphoglycerates could be rationalized with kinetic evidence that 2‐phosphoglycerate at high concentrations interacts with the 2,3‐bisphosphoglycerate binding site. These results indicate that the enzyme exhibits the three enzyme activities at a common active site at which one amino group essential for binding of bisphosphoglycerates is located. Based on the multifunctional properties of this enzyme, a possible mechanism was discussed for regulation of 2,3‐bisphosphoglycerate metabolism in human red.This publication has 26 references indexed in Scilit:
- Subunit Structure and Multifunctional Properties of Yeast PhosphoglyceromutaseEuropean Journal of Biochemistry, 1976
- Purification of Bisphosphoglyceromutase, 2, 3-Bisphosphoglycerate Phosphatase and Phosphoglyceromutase from Human Erythrocytes. Three Enzyme Activities in One ProteinEuropean Journal of Biochemistry, 1975
- Interaction of Haemoglobin with IonsEuropean Journal of Biochemistry, 1973
- Identification of the sites of modification of bovine liver glutamate dehydrogenase reacted with trinitrobenzenesulfonateBiochemistry, 1971
- Half-of-the-sites reactivity and conformational states of cytidine triphosphate synthetaseBiochemistry, 1971
- Studies on a role of the 2,3-diphosphoglycerate phosphatase activity in the yeast phosphoglycerate mutase reactionBiochimica et Biophysica Acta (BBA) - Enzymology, 1971
- Erythrocyte metabolism and function: Hexokinase inhibition by 2,3-diphosphoglycerate and interaction with ATP and Mg2+Biochimica et Biophysica Acta (BBA) - General Subjects, 1969
- Regulation of AMP deaminase by 2,3-diphosphoglyceric acid: a possible mechanism for the control of adenine nucleotide metabolism in human erythrocytesBiochimica et Biophysica Acta (BBA) - Enzymology, 1968
- The effect of organic phosphates from the human erythrocyte on the allosteric properties of hemoglobinBiochemical and Biophysical Research Communications, 1967
- Die Synthese der isomeren Glycerinsäure‐phosphorsäuren („Phosphoglycerinsäure”︁)Berichte der deutschen chemischen Gesellschaft (A and B Series), 1935