Brittain T, Greenwood C
Biochem J. 1982 Jan 1;201(1):153-9. doi: 10.1042/bj2010153.
The CO complex of sulphaemoglobin was found to be photolytically dissociable at pH 6.0 and pH 8.5. The recombination kinetics of the CO complex after flash photolysis show two phases, which differ in rate by approximately 20-fold. At both pH 6.0 and pH 8.5 the two phases show an identical linear dependence on CO concentration, with associated second-order rate constants of 6.0 x 10(3) M-1 . s-1 and 1.2 x 10(5) M-1 . s-1 respectively. The percentage contribution of each of the two phases to the total absorbance change is independent of the CO concentration employed, but is a function of the protein concentration used. The percentage of the faster phase increases with protein dilution. These results taken together with computer simulation suggest the existence of appreciable amounts of monomeric species in solution at both pH 6.0 and pH 8.5 at low concentration of liganded protein. Estimates of the dissociation constants for the dimer in equilibrium monomer equilibrium yield values of 8 microM and 3.5 microM at pH 6.0 and pH 8.5 respectively. Stopped-flow delayed-flash-photolysis studies show that the liganded dimer decays to the liganded monomer with a half-life of approx. 0.5 s. Constant-illumination experiments allow an estimation of the half-life for the combination of deoxy monomers to deoxy dimers of 22 s. A model explaining the range of CO recombination kinetics seen for sulphaemoglobin does not require the existence of a photolytically produced high-activity form, even at high pH, in contrast with the case for normal haemoglobin.
人们发现,硫血红蛋白的一氧化碳复合物在pH 6.0和pH 8.5时可通过光解作用解离。闪光光解后一氧化碳复合物的重组动力学呈现两个阶段,其速率相差约20倍。在pH 6.0和pH 8.5时,这两个阶段对一氧化碳浓度均呈现相同的线性依赖关系,相关的二级速率常数分别为6.0×10³ M⁻¹·s⁻¹和1.2×10⁵ M⁻¹·s⁻¹。两个阶段对总吸光度变化的贡献百分比与所用一氧化碳浓度无关,但却是所用蛋白质浓度的函数。较快阶段的百分比随蛋白质稀释而增加。这些结果与计算机模拟结果共同表明,在pH 6.0和pH 8.5时,低浓度配体化蛋白质溶液中存在相当数量的单体物种。二聚体在单体平衡中的解离常数估计值在pH 6.0和pH 8.5时分别为8 μM和3.5 μM。停流延迟闪光光解研究表明,配体化二聚体衰变为配体化单体的半衰期约为0.5秒。恒光实验可以估计脱氧单体结合形成脱氧二聚体的半衰期为22秒。与正常血红蛋白的情况不同,解释硫血红蛋白一氧化碳重组动力学范围的模型并不需要存在光解产生的高活性形式,即使在高pH条件下也是如此。