Fokina K V, Dainyak M B, Nagradova N K, Muronetz V I
A. N. Belozersky Institute of Physico-Chemical Biology, Moscow State University, Russia.
Arch Biochem Biophys. 1997 Sep 15;345(2):185-92. doi: 10.1006/abbi.1997.0222.
The ability of D-glyceraldehyde-3-phosphate dehydrogenase (GAPDH) catalyzing the reaction of 1,3-diphosphoglycerate synthesis in human erythrocytes to form complexes with enzymes which use this metabolite as substrate (3-phosphoglycerate kinase (3-PGK) or 2,3-diphosphoglycerate mutase (2,3-DPGM)) was studied. It was found that highly active 2,3-DPGM can be extracted from human erythrocyte hemolysates in a complex with GAPDH adsorbed on Sepharose-bound anti-GAPDH antibodies at pH 6.5, the molar ratio being one 2,3-GPGM subunit per subunit of GAPDH. No complexation was, however, detected at pH 8.0. The opposite was true for the interaction between GAPDH and 3-PGK, which could be observed at pH 8.0. In experiments carried out at pH 7.4, both GAPDH x 2,3-DPGM and GAPGH x 3-PGK complexes were detected. The Kd values of the complexes determined with purified enzyme preparations were in the range 2.40-2.48 microM for both the GAPDH x 2,3-DPGM and GAPGH x 3-PGK enzyme pairs, when titrations of GAPDH covalently bound to CNBr-activated Sepharose were performed by the soluble 2,3-DPGM or 3-PGK. If, however, GAPDH adsorbed on the specific antibodies covalently bound to Sepharose was used in the titration experiments, the Kd for the GAPDH x 2,3-DPGM complex was found to be 0.54 microM, and the Kd for the GAPDH x 3-PGK complex was 0.49 microM. The concentration of 2,3-diphosphoglycerate determined after 1 h of incubation of erythrocytes in the presence of glucose was found to increase 1.5-fold if the incubation was carried out at pH 6.5, but did not change upon incubation at pH 8.0. On the other hand, the concentration of 3-phosphoglycerate after incubation at pH 8.0 was twice as large as that found after incubation at pH 6.5. The results are interpreted on the hypothesis that specific protein-protein interactions between GAPDH and 2,3-DPGM or between GAPDH and 3-PGK may play a role in determining the fate of 1,3-diphosphoglycerate produced in the GAPDH-catalyzed reaction.
研究了人红细胞中3-磷酸甘油醛脱氢酶(GAPDH)催化1,3-二磷酸甘油酸合成反应并与以该代谢物为底物的酶(3-磷酸甘油酸激酶(3-PGK)或2,3-二磷酸甘油酸变位酶(2,3-DPGM))形成复合物的能力。发现高活性的2,3-DPGM可以在pH 6.5条件下从人红细胞溶血产物中以与吸附在琼脂糖结合的抗GAPDH抗体上的GAPDH形成的复合物形式提取出来,摩尔比为每一个GAPDH亚基对应一个2,3-GPGM亚基。然而,在pH 8.0时未检测到复合物形成。GAPDH与3-PGK之间的相互作用情况则相反,在pH 8.0时可以观察到二者相互作用。在pH 7.4进行的实验中,检测到了GAPDH×2,3-DPGM和GAPGH×3-PGK两种复合物。当用可溶性的2,3-DPGM或3-PGK对共价结合在溴化氰活化琼脂糖上的GAPDH进行滴定时,对于GAPDH×2,3-DPGM和GAPGH×3-PGK这两种酶对,所测定的复合物解离常数(Kd)值在2.40 - 2.48微摩尔范围内。然而,如果在滴定实验中使用吸附在共价结合于琼脂糖的特异性抗体上的GAPDH,发现GAPDH×2,3-DPGM复合物的Kd为0.54微摩尔,GAPDH×3-PGK复合物的Kd为0.49微摩尔。发现在葡萄糖存在下将红细胞孵育1小时后测定的2,3-二磷酸甘油酸浓度,如果在pH 6.5下孵育会增加1.5倍,但在pH 8.0下孵育则无变化。另一方面,在pH 8.0下孵育后的3-磷酸甘油酸浓度是在pH 6.5下孵育后浓度的两倍。这些结果基于以下假设进行解释:GAPDH与2,3-DPGM之间或GAPDH与3-PGK之间的特异性蛋白质-蛋白质相互作用可能在决定GAPDH催化反应中产生的1,