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ATP对稳态下Na⁺/K⁺-ATP酶活性与磷酸化酶水平之比的意外影响。

An unexpected effect of ATP on the ratio between activity and phosphoenzyme level of Na+/K(+)-ATPase in steady state.

作者信息

Schwarzbaum P J, Kaufman S B, Rossi R C, Garrahan P J

机构信息

Instituto de Química y Fisicoquímica Biológicas, Facultad de Farmacia y Bioquímica, Buenos Aires, Argentina.

出版信息

Biochim Biophys Acta. 1995 Jan 26;1233(1):33-40. doi: 10.1016/0005-2736(94)00229-i.

Abstract

According to the Albers-Post model the hydrolysis of ATP catalyzed by the Na+/K(+)-ATPase requires the sequential formation of at least two conformers of a phosphoenzyme (E1P and E2P), followed by the K(+)-stimulated hydrolysis of E2P. In this paper we show that this model is a particular case of a more general class of models in all of which the ratio between ATPase activity (v) and total phosphoenzyme level (EP) in steady state is determined solely by the rate constants of interconversion between phosphoconformers and of dephosphorylation. Since these are thought to be unaffected by ATP, the substrate curves for ATPase activity and EP should be identical in shape so that the ratio v/EP ought to be independent of the concentration of ATP. We tested this prediction by parallel measurements of v and EP as a function of [ATP] in the absence or presence of non-limiting concentrations of K+, Rb+ or NH+4. In the absence of K+ or its congeners, both curves followed Michaelis-Menten kinetics, with almost identical Km values (0.16 microM) so that v/EP remained independent of [ATP]. In the presence of either K+, Rb+ or NH+4, v and EP increased with [ATP] along the sum of two Michaelis-Menten equations. The biphasic response of v is well known but, to the best of our knowledge, our results are the first demonstration that the response of EP to [ATP] is also biphasic. Under these conditions, the ratio v/EP increased with [ATP] from 19.8 to 40.1 s-1 along a hyperbola that was half-maximal at 9.5 microM. To preserve the validity of the current model it seems necessary to assume that ATP acts on the E1P <--> E2P transition and/or on the rate of hydrolysis of E2P. The latter possibility was ruled out. We also found that to fit the Albers-Post model to our data, the rate constant for K+ deocclussion from E2 has to be about 10-times higher than that reported from measurements of partial reactions. The results indicate that the Albers-Post model quantitatively predicts the experimental behavior of the Na(+)-ATPase activity but is unable to do this for the Na+/K(+)-ATPase activity, unless additional and yet unproved hypothesis are included.

摘要

根据阿尔伯斯 - 波斯特模型,由钠钾ATP酶催化的ATP水解需要依次形成至少两种磷酸化酶构象(E1P和E2P),随后是钾离子刺激的E2P水解。在本文中,我们表明该模型是一类更通用模型中的一个特殊情况,在所有这些模型中,稳态下ATP酶活性(v)与总磷酸化酶水平(EP)之间的比率仅由磷酸化构象之间的相互转化速率常数和去磷酸化速率常数决定。由于这些被认为不受ATP影响,ATP酶活性和EP的底物曲线在形状上应该相同,因此v/EP比率应该与ATP浓度无关。我们通过在不存在或存在非限制浓度的钾离子、铷离子或铵离子的情况下,平行测量v和EP作为[ATP]的函数来检验这一预测。在不存在钾离子或其同系物的情况下,两条曲线均遵循米氏动力学,Km值几乎相同(0.16微摩尔),因此v/EP仍然与[ATP]无关。在存在钾离子、铷离子或铵离子的情况下,v和EP随着[ATP]沿着两个米氏方程之和增加。v的双相响应是众所周知的,但据我们所知,我们的结果首次证明了EP对[ATP]的响应也是双相的。在这些条件下,v/EP比率随着[ATP]从19.8增加到40.1秒-1,沿着一条双曲线,在9.5微摩尔时达到半最大值。为了保持当前模型的有效性,似乎有必要假设ATP作用于E1P <--> E2P转变和/或E2P的水解速率。后一种可能性被排除。我们还发现,为了使阿尔伯斯 - 波斯特模型符合我们的数据,钾离子从E2解封闭的速率常数必须比部分反应测量报告的速率常数高约10倍。结果表明,阿尔伯斯 - 波斯特模型定量预测了钠ATP酶活性的实验行为,但对于钠钾ATP酶活性则无法做到这一点,除非包含额外的且未经证实的假设。

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