Medve J, Ståhlberg J, Tjerneld F
Department of Biochemistry, University of Lund, Sweden.
Appl Biochem Biotechnol. 1997 Apr;66(1):39-56. doi: 10.1007/BF02788806.
Adsorption to microcrystalline cellulose (Avicel) of pure cellobiohydrolase I and II (CBH I and CBH II) from Trichoderma reesei has been studied. Adsorption isotherms of the enzymes were measured at 4 degrees C using CBH I and CBH II alone and in reconstituted equimolar mixtures. Several models (Langmuir, Freundlich, Temkin, Jovanovic) were tested to describe the experimental adsorption isotherms. The isotherms did not follow the basic (one site) Langmuir equation that has often been used to describe adsorption isotherms of cellulases; correlation coefficients (R2) were only 0.926 and 0.947, for CBH I and II, respectively. The experimental isotherms were best described by a model of Langmuir type with two adsorption sites and by a combined Langmuir-Freundlich model (analogous to the Hill equation); using these models the correlation coefficients were in most cases higher than 0.995. Apparent binding parameters derived from the two sites Langmuir model indicated stronger binding of CBH II compared to CBH I; the distribution coefficients were 20.7 and 3.7 L/g for the two enzymes, respectively. The binding capacity, on the other hand, was higher for CBH I, 1.0 mumol (67 mg) per gram Avicel, compared to 0.57 mumol/g (30 mg/g) for CBH II. The isotherms when analyzed with the combined Langmuir-Freundlich model indicated presence of unequal binding sites on cellulose and/or negative cooperatively in the binding of the enzyme molecules.
对里氏木霉的纯纤维二糖水解酶I和II(CBH I和CBH II)在微晶纤维素(微晶纤维素)上的吸附进行了研究。在4℃下,分别使用单独的CBH I和CBH II以及重构的等摩尔混合物测量了酶的吸附等温线。测试了几种模型(朗缪尔、弗伦德利希、特姆金、约万诺维奇)来描述实验吸附等温线。这些等温线并不遵循常用于描述纤维素酶吸附等温线的基本(单位点)朗缪尔方程;CBH I和II的相关系数(R2)分别仅为0.926和0.947。实验等温线最好用具有两个吸附位点的朗缪尔型模型和组合的朗缪尔 - 弗伦德利希模型(类似于希尔方程)来描述;使用这些模型,相关系数在大多数情况下高于0.995。从双位点朗缪尔模型得出的表观结合参数表明,与CBH I相比,CBH II的结合更强;两种酶的分配系数分别为20.7和3.7 L/g。另一方面,CBH I的结合容量更高,每克微晶纤维素为1.0 μmol(67 mg),而CBH II为0.57 μmol/g(30 mg/g)。用组合的朗缪尔 - 弗伦德利希模型分析等温线时表明,纤维素上存在不等的结合位点和/或酶分子结合中存在负协同作用。