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人血清白蛋白对鸡卵清溶菌酶催化 4-甲基伞形酮-β-D-N,N′-N″-三乙酰壳三糖苷水解反应动力学的影响。

Effect of human serum albumin on the kinetics of 4-methylumbelliferyl-β-D-N-N'-N″ Triacetylchitotrioside hydrolysis catalyzed by hen egg white lysozyme.

机构信息

Universidad de Santiago de Chile.

出版信息

Protein J. 2011 Aug;30(6):367-73. doi: 10.1007/s10930-011-9339-8.

DOI:10.1007/s10930-011-9339-8
PMID:21748378
Abstract

The effect of human serum albumin (HSA) addition on the rate of hydrolysis of the synthetic substrate 4-methylumbelliferyl-β-D-N-N'-N″ triacetylchitotrioside ((NAG)(3)-MUF) catalyzed by hen egg white lysozyme has been measured in aqueous solution (citrate buffer 50 mM pH = 5.2 at 37 °C). The presence of HSA leads to a decrease in the rate of the process. The reaction follows a Michaelis-Menten mechanism under all the conditions employed. The catalytic rate constant decreases tenfold when the albumin concentration increases, while the Michaelis constant remains almost constant in the albumin concentration range employed. Ultracentrifugation experiments indicate that the main origin of the observed variation in the kinetic behavior is related to the existence of an HSA-lysozyme interaction. Interestingly, the dependence of the catalytic rate constant with albumin concentration parallels the decrease of the free enzyme concentration. We interpret these results in terms of the presence in the system of two enzyme populations; namely, the HSA associated enzyme which does not react and the free enzyme reacting as in the absence of albumin. Other factors such as association of the substrate to albumin or macromolecular crowding effects due to the presence of albumin are discarded. Theoretical modeling of the structure of the HSA-lysozyme complex shows that the Glu35 and Asp52 residues located in the active site of lysozyme are oriented toward the HSA surface. This conformation will inactivate lysozyme molecules bound to HSA.

摘要

在水溶液中(柠檬酸盐缓冲液 50 mM,pH = 5.2,37°C),测量了人血清白蛋白(HSA)添加对鸡卵清溶菌酶催化合成底物 4-甲基伞形酮-β-D-N-N′-N″三乙酰壳三糖苷((NAG)(3)-MUF)水解速率的影响。HSA 的存在会导致该过程的速率降低。在所有采用的条件下,反应遵循米氏-门捷列夫机制。当白蛋白浓度增加时,催化速率常数降低十倍,而米氏常数在采用的白蛋白浓度范围内几乎保持不变。超速离心实验表明,观察到的动力学行为变化的主要原因与 HSA-溶菌酶相互作用的存在有关。有趣的是,催化速率常数随白蛋白浓度的依赖性与游离酶浓度的降低平行。我们根据系统中存在两种酶群体来解释这些结果;即,不反应的与 HSA 结合的酶和像没有白蛋白存在时一样反应的游离酶。排除了诸如底物与白蛋白的结合或由于白蛋白存在而导致的大分子拥挤效应等其他因素。HSA-溶菌酶复合物结构的理论建模表明,位于溶菌酶活性部位的Glu35 和 Asp52 残基朝向 HSA 表面。这种构象将使与 HSA 结合的溶菌酶分子失活。

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