Cornelius F
Institute of Biophysics, University of Aarhus, Denmark.
Biochim Biophys Acta. 1992 Jul 27;1108(2):190-200. doi: 10.1016/0005-2736(92)90025-h.
In liposomes with reconstituted shark Na+/K(+)-ATPase the effect of cytoplasmic K+ was investigated in the absence of extracellular alkali ions. During such conditions the Na+/K(+)-ATPase is engaged in the so called uncoupled Na+ efflux mode in which cytoplasmic Na+ activates and binds to the enzyme and becomes translocated without countertransport of K+ as in the physiological Na+/K+ exchange mode. In this uncoupled flux mode only low-affinity inhibition by K+cyt is found to be present. The inhibition pattern is consistent with a model in which cytoplasmic K+ exhibit mixed inhibition of Na+ activation, probably by binding at the three cytoplasmic loading sites on E1ATP (E1A). With determined intrinsic binding constants for cytoplasmic Na+ to this form of KS1, KS2, KS3 = 40 mM, 2 mM, 2 mM the inhibition pattern can be simulated assuming three K+cyt sites with equal affinity for Ki = 40 mM, similar to KS1 for the first Na+cyt site. The discrimination between cytoplasmic Na+ and K+ is therefore enhanced by allosteric interaction initiated from the cis-side due to binding of the first Na+, as opposed to K+, which induces the positive cooperatively in the successive Na+ bindings. pH is found to influence the pattern of K+cyt inhibition: A lowering of the pH potentiates the K+cyt inhibition, whereas at increased pH the inhibition is decreased and transformed into a pure competitive competition.
在重构有鲨鱼钠钾ATP酶的脂质体中,研究了在没有细胞外碱金属离子的情况下细胞质钾离子的作用。在这种条件下,钠钾ATP酶处于所谓的非偶联钠外流模式,其中细胞质中的钠离子激活并结合到酶上,然后发生转运,而不像在生理钠钾交换模式中那样伴随着钾离子的反向转运。在这种非偶联通量模式中,仅发现存在细胞质钾离子的低亲和力抑制作用。这种抑制模式与一个模型一致,在该模型中,细胞质钾离子可能通过结合在E1ATP(E1A)的三个细胞质加载位点上,对钠离子激活表现出混合抑制作用。对于细胞质钠离子与这种形式的KS1、KS2、KS3的内在结合常数已确定为40 mM、2 mM、2 mM,假设三个细胞质钾离子位点对Ki = 40 mM具有相同的亲和力,类似于第一个细胞质钠离子位点的KS1,就可以模拟这种抑制模式。因此,由于第一个钠离子(而不是钾离子)的结合从顺式侧引发变构相互作用,从而增强了对细胞质钠离子和钾离子的区分,这与钾离子不同,钠离子的结合会在后续的钠离子结合中诱导正协同作用。发现pH会影响细胞质钾离子抑制的模式:降低pH会增强细胞质钾离子的抑制作用,而在pH升高时,抑制作用会减弱并转变为纯粹的竞争性抑制。