Plant and Soil Biophysics Research Unit, Eastern Regional Research Center, Agricultural Research Service, Philadelphia, Pennsylvania 19118.
Plant Physiol. 1991 Aug;96(4):1114-7. doi: 10.1104/pp.96.4.1114.
The mechanism by which proton transport is coupled to ATP hydrolysis by vanadate-sensitive pumps is poorly understood. The effects of temperature on the activities of the vanadate-sensitive ATPase from maize (Zea mays) roots were assessed to provide insight into the coupling mechanism. The initial rate of proton transport had a bell-shaped dependence on temperature with an optimal range between 20 and 30 degrees C. However, the rate of vanadate-sensitive ATP hydrolysis increased as the temperature was raised from 4 to 43 degrees C. The differential sensitivity of proton transport to temperatures above 30 degrees C was also observed when the ATPase was reconstituted into dioleoylphosphatidylcholine vesicles. Inhibition of proton transport with temperatures above 30 degrees C was associated with higher rates of proton leakage from the membranes. In addition, proton transport was more inhibited than ATP hydrolysis at temperatures below 10 degrees C. Reduced rates of proton transport at lower temperatures were not associated with higher rate of proton conductivity across the membranes. Therefore, the preferential inhibition of proton transport at temperatures below 10 degrees C may reflect an effect of temperature on the coupling between proton transport and ATP hydrolysis within the vanadate-sensitive ATPase.
质子转运与钒酸盐敏感泵水解 ATP 的偶联机制尚未完全阐明。评估温度对玉米(Zea mays)根中钒酸盐敏感 ATP 酶活性的影响,有助于深入了解偶联机制。质子转运的初始速率与温度呈钟形关系,最佳范围在 20 至 30°C 之间。然而,从 4 至 43°C 升高温度会增加钒酸盐敏感 ATP 水解的速率。当 ATP 酶重新组装到二油酰基磷酸胆碱囊泡中时,也观察到质子转运对 30°C 以上温度的敏感性差异。在 30°C 以上的温度下抑制质子转运与膜内质子泄漏的更高速率有关。此外,在低于 10°C 的温度下,质子转运的抑制程度大于 ATP 水解。较低温度下质子转运速率降低与膜质子电导率的更高速率无关。因此,在 10°C 以下温度下质子转运的优先抑制可能反映了温度对钒酸盐敏感 ATP 酶中质子转运与 ATP 水解偶联的影响。