Schnell Santiago, Hanson Sonya M
Complex Systems Group, Indiana University School of Informatics, 1900 East Tenth Street, Bloomington, IN 47406, USA.
Biophys Chem. 2007 Feb;125(2-3):269-74. doi: 10.1016/j.bpc.2006.08.010. Epub 2006 Sep 6.
In the single-enzyme, single-substrate reaction with non-mechanism-based enzyme inactivation, the formation of the product and inactivation of the enzyme occur independently. For this reaction, we show that the steady-state hypothesis is applicable even when degradation of the enzyme occurs. An equation for the rate of product formation has been derived and it shows Michaelis-Menten kinetics with an apparent Michaelis-Menten constant K(M)(app)=K(M)+K(delta) where K(delta) is the enzyme inactivation constant. Use of a Lineweaver-Burk plot yields values for K(M)(app), which can be used to estimate K(delta) and, consequently, the degree of enzyme inactivation in a particular experiment. We employ this methodology to estimate the inactivation constant for the arsenate reductase catalyzed production of arsenite with appreciable enzyme inactivation.
在具有非基于机制的酶失活的单酶、单底物反应中,产物的形成和酶的失活是独立发生的。对于该反应,我们表明即使酶发生降解,稳态假设仍然适用。已经推导了产物形成速率的方程,它显示出米氏动力学,表观米氏常数K(M)(app)=K(M)+K(δ),其中K(δ)是酶失活常数。使用林-贝氏图可得到K(M)(app)的值,该值可用于估计K(δ),进而估计特定实验中酶的失活程度。我们采用这种方法来估计在有明显酶失活情况下砷酸还原酶催化亚砷酸盐生成的失活常数。