Keillor J W, Jencks W P
Graduate Department of Biochemistry, Brandeis University, Waltham Massachusetts 02254-9110, USA.
Biochemistry. 1996 Feb 27;35(8):2750-3. doi: 10.1021/bi951370g.
The sodium-potassium adenosinetriphosphatase of sheep kidney, preincubated with sodium and magnesium (E.Nae), reacts with 0.01-2.00 mM ATP to form covalent phosphoenzyme (E-P). The first order rate constant for phosphorylation increases hyperbolically with ATP concentration with a maximum value of (4.6 +/- 0.9) x 10(2) s-1 and K0.5 = 75 +/- 25 microM (ph 7.4, 25 degrees C, 120 mM NaCl, and 3 mM MgCl2). If the phosphoryl-transfer step were rate-limiting, the approach to equilibrium to give 50% E-P in the presence of ADP would follow kobsd=Kf+Kr+9.2 x 10(2) s-1. However, the formation of phosphoenzyme from E.Na3 with 1.0 mM ATP plus 2.0 mM ADP proceeds to 50% completion with kobsd=(4.2 +/- 0.8) x 10(2) s-1. This result show that phosphoryl transfer from bound ATP to the enzyme is not the rate limiting step for phosphoenzyme formation from E.Na3. The result is consistent with a rate-limiting conformational change of the E.Na3.ATP intermediate that is followed by rapid phosphoryl transfer, with kcat > or = 3000 s-1.
预先用钠和镁进行孵育的绵羊肾钠钾三磷酸腺苷酶(E.Nae),与0.01 - 2.00 mM的ATP反应形成共价磷酸酶(E-P)。磷酸化的一级速率常数随ATP浓度呈双曲线增加,最大值为(4.6 ± 0.9) × 10² s⁻¹,K0.5 = 75 ± 25 μM(pH 7.4,25℃,120 mM NaCl和3 mM MgCl₂)。如果磷酰基转移步骤是限速步骤,那么在ADP存在下达到平衡以产生50% E-P的过程将遵循kobsd = Kf + Kr + 9.2 × 10² s⁻¹。然而,由E.Na₃与1.0 mM ATP加2.0 mM ADP形成磷酸酶的过程在kobsd = (4.2 ± 0.8) × 10² s⁻¹时达到50%完成。该结果表明,从结合的ATP向酶的磷酰基转移不是E.Na₃形成磷酸酶的限速步骤。该结果与E.Na₃.ATP中间体的限速构象变化一致,随后是快速的磷酰基转移,kcat ≥ 3000 s⁻¹。