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里氏木霉纤维二糖水解酶I作用于微晶纤维素Iβ的计算模拟:酶-底物复合物

Computational simulations of the Trichoderma reesei cellobiohydrolase I acting on microcrystalline cellulose Ibeta: the enzyme-substrate complex.

作者信息

Zhong Linghao, Matthews James F, Hansen Peter I, Crowley Michael F, Cleary Joseph M, Walker Ross C, Nimlos Mark R, Brooks Charles L, Adney William S, Himmel Michael E, Brady John W

机构信息

Department of Food Science, Cornell University, Ithaca, NY 14853, United States.

出版信息

Carbohydr Res. 2009 Oct 12;344(15):1984-92. doi: 10.1016/j.carres.2009.07.005. Epub 2009 Jul 18.

Abstract

Cellobiohydrolases are the dominant components of the commercially relevant Trichoderma reesei cellulase system. Although natural cellulases can totally hydrolyze crystalline cellulose to soluble sugars, the current enzyme loadings and long digestion times required render these enzymes less than cost effective for biomass conversion processes. It is clear that cellobiohydrolases must be improved via protein engineering to reduce processing costs. To better understand cellobiohydrolase function, new simulations have been conducted using charmm of cellobiohydrolase I (CBH I) from T.reesei interacting with a model segment (cellodextrin) of a cellulose microfibril in which one chain from the substrate has been placed into the active site tunnel mimicking the hypothesized configuration prior to final substrate docking (i.e., the +1 and +2 sites are unoccupied), which is also the structure following a catalytic bond scission. No tendency was found for the protein to dissociate from or translate along the substrate surface during this initial simulation, nor to align with the direction of the cellulose chains. However, a tendency for the decrystallized cellodextrin to partially re-anneal into the cellulose surface hints that the arbitrary starting configuration selected was not ideal.

摘要

纤维二糖水解酶是商业上重要的里氏木霉纤维素酶系统的主要成分。尽管天然纤维素酶能够将结晶纤维素完全水解为可溶性糖,但目前所需的酶负载量和较长的消化时间使得这些酶在生物质转化过程中成本效益不高。显然,必须通过蛋白质工程来改进纤维二糖水解酶以降低加工成本。为了更好地理解纤维二糖水解酶的功能,已经使用charmm对来自里氏木霉的纤维二糖水解酶I(CBH I)与纤维素微纤丝的模型片段(纤维糊精)相互作用进行了新的模拟,其中底物的一条链已被放入活性位点通道,模拟最终底物对接之前的假设构型(即 +1和 +2位点未被占据),这也是催化键断裂后的结构。在这个初始模拟过程中,未发现蛋白质有从底物表面解离或沿底物表面平移的趋势,也没有发现其与纤维素链的方向对齐。然而,脱结晶的纤维糊精有部分重新退火回到纤维素表面的趋势,这表明所选择的任意起始构型并不理想。

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