Jarori G K, Iyer S B, Kasturi S R, Kenkare U W
Tata Institute of Fundamental Research, Bombay, India.
Eur J Biochem. 1990 Feb 22;188(1):9-14. doi: 10.1111/j.1432-1033.1990.tb15364.x.
Inhibition of bovine brain hexokinase by its product, glucose 6-phosphate, is considered to be a major regulatory step in controlling the glycolytic flux in the brain. Investigations on the molecular basis of this regulation, i.e. allosteric or product inhibition, have led to various proposals. Here, we attempt to resolve this issue by ascertaining the location of the binding sites for glucose and glucose 6-phosphate on the enzyme with respect to a divalent-cation-binding site characterized previously [Jarori, G. K., Kasturi, S. R. & Kenkare, U. W. (1981) Arch. Biochem. Biophys. 211, 258-268]. The paramagnetic effect of enzyme-bound Mn(II) on the spin-lattice relaxation rates (T-1(1] of ligand nuclei (1H and 31P) in E.Mn(II).Glc and E.Mn(II).Glc6P complexes have been measured. The paramagnetic effect of Mn(II) on the proton relaxation rates of C1-H alpha, C1-H beta and C2-H beta of glucose in the E.Mn(II).Glc complex was measured at 270 MHz and 500 MHz. The temperature dependence of these rates was also studied in the range of 5-30 degrees C at 500 MHz. The ligand nuclear relaxation rates in E.Mn(II).Glc are field-dependent and the Arrhenius plot yields an activation energy (delta E) of 16.7-20.9 kJ/mol. Similar measurements have also been carried out on C1-H alpha, C1-H beta and C6-31P at 270 MHz (1H) and 202.5 MHz (31P) for the E.Mn(II).Glc6P complex. The temperature dependence of 31P relaxation rates in this complex was measured in the range 5-30 degrees C, which yielded delta E = 9.2 kJ/mol. The electron-nuclear dipolar correlation time (tau c), determined from the field-dependent measurements of proton relaxation rates in the E.Mn(II).Glc complex, is 0.22-1.27 ns. The distances determined between Mn(II) and C1-H of glucose and glucose 6-phosphate are approximately 1.1 nm and approximately 0.8 nm, respectively. These data, considered together with our recent results [Mehta, A., Jarori, G. K. & Kenkare, U. W. (1988) J. Biol. Chem. 263, 15492-15498], suggest that glucose and glucose 6-phosphate may bind to very nearly the same region of the enzyme. The structure of the binary Glc6P.Mn(II) complex has also been determined. The phosphoryl group of the sugar phosphate forms a first co-ordination complex with the cation. However, on the enzyme, the phosphoryl group is located at a distance of approximately 0.5-0.6 nm from the cation.
其产物6-磷酸葡萄糖对牛脑己糖激酶的抑制作用被认为是控制大脑糖酵解通量的一个主要调节步骤。对这种调节的分子基础,即变构抑制或产物抑制的研究,已经提出了各种观点。在这里,我们试图通过确定葡萄糖和6-磷酸葡萄糖在酶上相对于先前表征的二价阳离子结合位点的结合位点位置来解决这个问题[贾罗里,G.K.,卡斯图里,S.R.和肯卡雷,U.W.(1981年)《生物化学与生物物理学报》211卷,258 - 268页]。已经测量了E.Mn(II).Glc和E.Mn(II).Glc6P复合物中酶结合的Mn(II)对配体核(1H和31P)的自旋 - 晶格弛豫率(T - 1(1))的顺磁效应。在270 MHz和500 MHz下测量了Mn(II)对E.Mn(II).Glc复合物中葡萄糖的C1 - Hα、C1 - Hβ和C2 - Hβ质子弛豫率的顺磁效应。还在500 MHz下研究了5 - 30摄氏度范围内这些速率的温度依赖性。E.Mn(II).Glc中的配体核弛豫率与场有关,阿累尼乌斯图给出的活化能(ΔE)为16.7 - 20.9 kJ/mol。对于E.Mn(II).Glc6P复合物,也在270 MHz(1H)和202.5 MHz(31P)下对C1 - Hα、C1 - Hβ和C6 - 31P进行了类似测量。在5 - 30摄氏度范围内测量了该复合物中31P弛豫率的温度依赖性,得到ΔE = 9.2 kJ/mol。从E.Mn(II).Glc复合物中质子弛豫率的场依赖性测量确定的电子 - 核偶极相关时间(τc)为0.22 - 1.27 ns。确定的Mn(II)与葡萄糖和6 - 磷酸葡萄糖的C1 - H之间的距离分别约为1.1 nm和约0.8 nm。这些数据与我们最近的结果[梅塔,A.,贾罗里,G.K.和肯卡雷,U.W.(1988年)《生物化学杂志》263卷,15492 - 15498页]一起表明,葡萄糖和6 - 磷酸葡萄糖可能结合在酶的非常接近的同一区域。还确定了二元Glc6P.Mn(II)复合物的结构。糖磷酸的磷酰基与阳离子形成第一个配位复合物。然而,在酶上,磷酰基位于距阳离子约0.5 - 0.6 nm的距离处。