Kitada M, Horikoshi K
Riken Institute, Saitama, Japan.
J Bacteriol. 1992 Sep;174(18):5936-40. doi: 10.1128/jb.174.18.5936-5940.1992.
The effects of imposed proton motive force on the kinetic properties of the alkalophilic Bacillus sp. strain N-6 Na+/H+ antiport system have been studied by looking at the effect of delta psi (membrane potential, interior negative) and/or delta pH (proton gradient, interior alkaline) on Na+ efflux or H+ influx in right-side-out membrane vesicles. Imposed delta psi increased the Na+ efflux rate (V) linearly, and the slope of V versus delta psi was higher at pH 9 than at pH 8. Kinetic experiments indicated that the delta psi caused a pronounced increase in the Vmax for Na+ efflux, whereas the Km values for Na+ were unaffected by the delta psi. As the internal H+ concentration increased, the Na+ efflux reaction was inhibited. This inhibition resulted in an increase in the apparent Km of the Na+ efflux reaction. These results have also been observed in delta pH-driven Na+ efflux experiments. When Na(+)-loaded membrane vesicles were energized by means of a valinomycin-induced inside-negative K+ diffusion potential, the generated acidic-interior pH gradients could be detected by changes in 9-aminoacridine fluorescence. The results of H+ influx experiments showed a good coincidence with those of Na+ efflux. H+ influx was enhanced by an increase of delta psi or internal Na+ concentration and inhibited by high internal H+ concentration. These results are consistent with our previous contentions that the Na+/H+ antiport system of this strain operates electrogenically and plays a central role in pH homeostasis at the alkaline pH range.
通过观察膜电位(Δψ,膜内为负)和/或质子梯度(ΔpH,膜内为碱性)对右侧出膜囊泡中Na⁺外流或H⁺内流的影响,研究了施加的质子动力对嗜碱芽孢杆菌N - 6菌株Na⁺/H⁺反向转运系统动力学特性的影响。施加的Δψ使Na⁺外流速率(V)呈线性增加,且在pH 9时V与Δψ的斜率高于pH 8时。动力学实验表明,Δψ导致Na⁺外流的Vmax显著增加,而Na⁺的Km值不受Δψ影响。随着内部H⁺浓度增加,Na⁺外流反应受到抑制。这种抑制导致Na⁺外流反应的表观Km增加。在ΔpH驱动的Na⁺外流实验中也观察到了这些结果。当用缬氨霉素诱导的膜内负K⁺扩散电位使负载Na⁺的膜囊泡获得能量时,可通过9 - 氨基吖啶荧光变化检测到产生的酸性内部pH梯度。H⁺内流实验结果与Na⁺外流实验结果吻合良好。H⁺内流因Δψ增加或内部Na⁺浓度增加而增强,并因高内部H⁺浓度而受到抑制。这些结果与我们之前的观点一致,即该菌株的Na⁺/H⁺反向转运系统以电生方式运行,并在碱性pH范围内的pH稳态中起核心作用。