...
首页> 外文期刊>Analytical and bioanalytical chemistry >Kinetic substrate quantification by fitting the enzyme reaction curve to the integrated Michaelis-Menten equation
【24h】

Kinetic substrate quantification by fitting the enzyme reaction curve to the integrated Michaelis-Menten equation

机译:通过将酶反应曲线拟合至集成的Michaelis-Menten方程来进行动力学底物定量

获取原文
获取原文并翻译 | 示例

摘要

The reliability of kinetic substrate quantification by nonlinear fitting of the enzyme reaction curve to the integrated Michaelis-Menten equation was investigated by both simulation and preliminary experimentation. For simulation, product absorptivity ε was 3.00 mmol~(-1)L cm~(-1) and K_m was 0.10 mmolL~(-1), and uniform absorbance error σ was randomly inserted into the error-free reaction curve of product absorbance A_i versus reaction time t_i calculated according to the integrated Michaelis-Menten equation ln[Am/(Am - Ai)] + Ai/(ε * Km) = (Vm/Km) * ti. The experimental reaction curve of arylesterase acting on phenyl acetate was monitored by phenol absorbance at 270 nm. Maximal product absorbance A_m was predicted by nonlinear fitting of the reaction curve to Eq. (1) with K_m as constant. There were unique A_m for best fitting of both the simulated and experimental reaction curves.Neither the error in reaction origin nor the variation of enzyme activity changed the background-corrected value of A_m. But the range of data under analysis, the background absorbance, and absorbance error σ had an effect. By simulation, A_m from 0.150 to 3.600 was predicted with reliability and linear response to substrate concentration when there was 80% consumption of substrate at σ of 0.001. Restriction of absorbance to 0.700 enabled A_m up to 1.800 to be predicted at σ of 0.001. Detection limit reached A_m of 0.090 at σ of 0.001. By experimentation, the reproducibility was 4.6% at substrate concentration twice the K_m, and A_m linearly responded to phenyl acetate with consistent absorptivity for phenol, and upper limit about twice the maximum of experimental absorbance. These results supported the reliability of this new kinetic method for enzymatic analysis with enhanced upper limit and precision.
机译:通过模拟和初步实验研究了通过将酶反应曲线非线性拟合为集成的Michaelis-Menten方程进行动力学底物定量的可靠性。为了进行模拟,产物吸收率ε为3.00 mmol〜(-1)L cm〜(-1),K_m为0.10 mmolL〜(-1),均匀吸光度误差σ随机插入产物吸光度的无误差反应曲线中。 A_i与反应时间t_i的关系是根据综合的Michaelis-Menten方程ln [Am /(Am-Ai)] + Ai /(ε* Km)=(Vm / Km)* ti计算的。通过苯酚在270nm处的吸光度监测芳基酯酶作用于乙酸苯酯的实验反应曲线。通过反应曲线与方程式的非线性拟合来预测最大产物吸光度A_m。 (1)以K_m为常数。模拟和实验反应曲线都有最佳拟合的唯一A_m,无论是反应原点的误差还是酶活度的变化都不会改变A_m的背景校正值。但是分析的数据范围,背景吸光度和吸光度误差σ都有影响。通过仿真,当在0.001的σ处有80%的底物消耗时,可以可靠地预测A_m从0.150到3.600,并且对底物浓度具有线性响应。将吸光度限制为0.700可使A_m达到1800,而σ为0.001。检出限在0.001为σ时达到0.090的A_m。通过实验,在底物浓度为K_m两倍的情况下,重现性为4.6%,A_m对乙酸苯酯线性响应,对苯酚的吸收率始终如一,上限约为实验吸光度最大值的两倍。这些结果以更高的上限和精度支持了这种新的动力学方法用于酶分析的可靠性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号