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通过结构模拟和蛋白质工程将内切壳聚糖酶转化为外切壳聚糖酶。

Structural simulation and protein engineering to convert an endo-chitosanase to an exo-chitosanase.

作者信息

Yao Yueh-Yun, Shrestha Keshab Lal, Wu Yue-Jin, Tasi Huei-Ju, Chen Chun-Chen, Yang Jinn-Moon, Ando Akikazu, Cheng Chih-Yu, Li Yaw-Kuen

机构信息

Department of Applied Chemistry, National Chiao Tung University, 1001 Ta-Hseh Road, Hsinchu, Taiwan.

出版信息

Protein Eng Des Sel. 2008 Sep;21(9):561-6. doi: 10.1093/protein/gzn033. Epub 2008 Jun 6.

DOI:10.1093/protein/gzn033
PMID:18540010
Abstract

To obtain an enzyme for the production of chito-disaccharides (GlcN(2)) by converting endo-chitosanase to exo-chitosanase, we chose an endo-chitosanase from Bacillus circulans MH-K1 (Csn) as the candidate for protein engineering. Using molecular modeling, two peptides with five amino acids (PCLGG) and six amino acids (SRTCKP) were designed and inserted after the positions of D(115) and T(222) of Csn, respectively. The inserted fragments are expected to form loops that might protrude from opposite walls of the substrate-binding cleft, thus forming a 'roof' over the catalytic site that might alter the product specificity. The chimeric chitosanase (Chim-Csn) and wild-type chitosanase (WT-Csn) were both over-expressed in Escherichia coli and purified nearly to homogeneity. The products formed from chitosan were analyzed by ESI-MS (electrospray ionization-mass spectrometry). A mixture of GlcN(2), GlcN(3) and GlcN(4) was obtained with WT-Csn, whereas Chim-Csn formed, with a smaller catalytic rate (3% of WT-Csn activity), GlcN(2) as the dominant product. Measurements of viscosity showed that, with similar amounts of enzyme activity, Chim-Csn catalyzed the hydrolysis of chitosan with a smaller rate of viscosity decrease than WT-Csn. The results indicate that, on inserting two surface loops, the endo-type chitosanase was converted into an exo-type chitosanase, which to our knowledge is the first chitosanase that releases GlcN(2) from chitosan as the dominant product.

摘要

为了通过将内切壳聚糖酶转化为外切壳聚糖酶来获得用于生产壳二糖(GlcN(2))的酶,我们选择了来自环状芽孢杆菌MH-K1的内切壳聚糖酶(Csn)作为蛋白质工程的候选对象。利用分子建模,分别设计了两个含五个氨基酸(PCLGG)和六个氨基酸(SRTCKP)的肽段,并分别插入到Csn的D(115)和T(222)位置之后。预期插入的片段会形成环,这些环可能从底物结合裂隙的相对壁突出,从而在催化位点上方形成一个“屋顶”,这可能会改变产物特异性。嵌合壳聚糖酶(Chim-Csn)和野生型壳聚糖酶(WT-Csn)都在大肠杆菌中过表达并纯化至几乎均一。用电喷雾电离质谱(ESI-MS)分析壳聚糖形成的产物。WT-Csn得到了GlcN(2)、GlcN(3)和GlcN(4)的混合物,而Chim-Csn以较低的催化速率(WT-Csn活性的3%)形成了以GlcN(2)为主的产物。粘度测量表明,在酶活性相似的情况下,Chim-Csn催化壳聚糖水解时粘度降低的速率比WT-Csn小。结果表明,通过插入两个表面环,内切型壳聚糖酶被转化为外切型壳聚糖酶,据我们所知,这是第一种以GlcN(2)作为主要产物从壳聚糖中释放出来的壳聚糖酶。

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