Helguera G., Beauge L.
Division de Biofisica, Instituto de Investigacion Medica "Mercedes y Martin Ferreyra," Casilla de Correo 389, 5000 Cordoba, Argentina.
Plant Physiol. 1997 Aug;114(4):1397-1403. doi: 10.1104/pp.114.4.1397.
ATP-ADP exchange was estimated in the presence of plasma membrane H+-ATPase of oat (Avena sativa) roots partially purified with Triton X-100 by measuring [14C]ATP formation from [14C]ADP. Most studies were done at 0[deg]C. At pH 6.0 the exchange showed: (a) Mg2+ requirement with a biphasic response giving maximal activity at 152 [mu]M and (b) insensitivity to ionic strength, [Na+], and [K+]. ATP and ADP dependence were analyzed with a model in which nucleotide-enzyme interactions are at rapid-random equilibrium, whereas E1ATP [left right arrow] E1P-ADP transitions occur in steady state. The results indicated competition between ADP and ATP for the catalytic site, whereas ATP interaction with the ADP site was extremely weak. At 0[deg]C the exchange showed a 3-fold pH increase, from pH 5.5 to 9.0. At an alkaline pH the reaction was not affected by sodium azide and carbonyl cyanide p-trifluometoxyphenyl-hydrazone, had a biphasic response to Mg2+ (maximal at 513 [mu]m), and was insensitive to ionic strength. At 20[deg]C ATP-ADP exchange was pH insensitive. At both temperatures ATP hydrolysis displayed a bell-shaped response, with a maximum around pH 6.0 to 6.5. Because no adenylate kinase activity was detected under any condition, these results demonstrate the existence of an ATP-ADP exchange reaction catalyzed by the plant H+-ATPase.
通过测量由[14C]ADP生成[14C]ATP的量,在经Triton X-100部分纯化的燕麦( Avena sativa )根细胞质膜H + -ATP酶存在的情况下,对ATP-ADP交换进行了估算。大多数研究是在0℃下进行的。在pH 6.0时,交换表现出:(a)对Mg2+有需求,呈双相响应,在152 μM时活性最大;(b)对离子强度、[Na+]和[K+]不敏感。用一个模型分析了ATP和ADP的依赖性,在该模型中核苷酸-酶相互作用处于快速随机平衡,而E1ATP⇌E1P-ADP转变处于稳态。结果表明ADP和ATP在催化位点存在竞争,而ATP与ADP位点的相互作用极弱。在0℃时,交换的pH值从5.5增加到9.0,增加了3倍。在碱性pH值下,反应不受叠氮化钠和羰基氰化物对三氟甲氧基苯腙的影响,对Mg2+呈双相响应(在513 μm时最大),且对离子强度不敏感。在20℃时,ATP-ADP交换对pH不敏感。在这两个温度下,ATP水解均呈钟形响应,在pH 6.0至6.5左右达到最大值。由于在任何条件下均未检测到腺苷酸激酶活性,这些结果证明了植物H + -ATP酶催化的ATP-ADP交换反应的存在。