Molina F García, Muñoz J L, Varón R, López J N Rodríguez, Cánovas F García, Tudela J
GENZ: Grupo de Investigación de Enzimología, Departamento de Bioquímica y Biología Molecular-A, Facultad de Biología, Universidad de Murcia, E-30100 Espinardo, Murcia, Spain.
Int J Biochem Cell Biol. 2007;39(1):238-52. doi: 10.1016/j.biocel.2006.08.007. Epub 2006 Aug 30.
Tyrosinase shows a lag period in its action on monophenols (l-tyrosine). We propose an approximate analytical solution for the lag period, which fulfils the dependences with regard to initial enzyme concentration, and initial monophenol concentration. Furthermore, from a study of the dependences of the lag period on these variables, we can determine experimentally the o-diphenol concentration in the steady state. The Michaelis constant of the o-diphenol in the presence of the monophenol can be determined from the relationship between the o-diphenol concentration in the steady state and the initial monophenol concentration, taking into consideration the experimentally calculated Michaelis constant for the monophenol substrate. Although this Michaelis constant is much lower than the Michaelis constant for diphenol in the absence of monophenol, the binding site is the same. A kinetic analysis of the action mechanism of tyrosinase explains this difference in the values of the Michaelis constants.
酪氨酸酶对单酚(L-酪氨酸)的作用存在一个延迟期。我们提出了一个关于延迟期的近似解析解,它满足了与初始酶浓度和初始单酚浓度相关的依赖关系。此外,通过研究延迟期对这些变量的依赖关系,我们可以通过实验确定稳态下邻二酚的浓度。在存在单酚的情况下,邻二酚的米氏常数可以根据稳态下邻二酚浓度与初始单酚浓度之间的关系来确定,同时考虑到实验计算得到的单酚底物的米氏常数。尽管这个米氏常数比不存在单酚时二酚的米氏常数低得多,但结合位点是相同的。对酪氨酸酶作用机制的动力学分析解释了米氏常数数值上的这种差异。