Yang S J, Ko S J, Tsai Y R, Jiang S S, Kuo S Y, Hung S H, Pan R L
Institute of Radiation Biology, College of Nuclear Science, National Tsing Hua University, Hsin Chu 30043, Taiwan, Republic of China.
Biochem J. 1998 Apr 15;331 ( Pt 2)(Pt 2):395-402. doi: 10.1042/bj3310395.
Vacuolar H+-pyrophosphatase (H+-PPase) from etiolated hypocotyls of mung bean (Vigna radiata L.) is a homodimer with a molecular mass of 145 kDa. The vacuolar H+-PPase was subjected to high hydrostatic pressure to investigate its structure and function. The inhibition of H+-PPase activity by high hydrostatic pressure has a pressure-, time- and protein-concentration-dependent manner. The Vmax value of vacuolar H+-PPase was dramatically decreased by pressurization from 293.9 to 70.2 micromol of PPi (pyrophosphate) consumed/h per mg of protein, while the Km value decreased from 0.35 to 0.08 mM, implying that the pressure treatment increased the affinity of PPi to vacuolar H+-PPase but decreased its hydrolysis. The physiological substrate and its analogues enhance high pressure inhibition of vacuolar H+-PPase. The HPLC profile reveals high pressure treatment of H+-PPase provokes the subunit dissociation from an active into inactive form. High hydrostatic pressure also induces the conformational change of vacuolar H+-PPase as determined by spectroscopic techniques. Our results indicate the importance of protein-protein interaction for this novel proton-translocating enzyme. Working models are proposed to interpret the pressure inactivation of vacuolar H+-PPase. We also suggest that association of identical subunits of vacuolar H+-PPase is not random but proceeds in a specific manner.
来自绿豆(Vigna radiata L.)黄化胚轴的液泡H⁺ - 焦磷酸酶(H⁺ - PPase)是一种分子量为145 kDa的同型二聚体。对液泡H⁺ - PPase施加高静水压以研究其结构和功能。高静水压对H⁺ - PPase活性的抑制具有压力、时间和蛋白质浓度依赖性。液泡H⁺ - PPase的Vmax值在加压后从每毫克蛋白质每小时消耗293.9微摩尔焦磷酸(PPi)急剧降至70.2微摩尔,而Km值从0.35毫摩尔降至0.08毫摩尔,这意味着压力处理增加了PPi对液泡H⁺ - PPase的亲和力,但降低了其水解能力。生理底物及其类似物增强了高静水压对液泡H⁺ - PPase的抑制作用。高效液相色谱(HPLC)图谱显示,对H⁺ - PPase进行高压处理会促使亚基从活性形式解离为非活性形式。通过光谱技术测定,高静水压还会诱导液泡H⁺ - PPase的构象变化。我们的结果表明蛋白质 - 蛋白质相互作用对于这种新型质子转运酶的重要性。提出了工作模型来解释液泡H⁺ - PPase的压力失活。我们还表明,液泡H⁺ - PPase相同亚基的缔合不是随机的,而是以特定方式进行的。