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家族 9 纤维素结合模块的融合提高了嗜热梭菌纤维二糖磷酸化酶在不溶性纤维素上的催化潜力。

Fusion of a family 9 cellulose-binding module improves catalytic potential of Clostridium thermocellum cellodextrin phosphorylase on insoluble cellulose.

机构信息

Biological Systems Engineering Department, Virginia Tech, Blacksburg, VA 24061, USA.

出版信息

Appl Microbiol Biotechnol. 2011 Nov;92(3):551-60. doi: 10.1007/s00253-011-3346-8. Epub 2011 Jun 1.

Abstract

Clostridium thermocellum cellodextrin phosphorylase (CtCDP), a single-module protein without an apparent carbohydrate-binding module, has reported activities on soluble cellodextrin with a degree of polymerization (DP) from two to five. In this study, CtCDP was first discovered to have weak activities on weakly water-soluble celloheptaose and insoluble regenerated amorphous cellulose (RAC). To enhance its activity on solid cellulosic materials, four cellulose binding modules, e.g., CBM3 (type A) from C. thermocellum CbhA, CBM4-2 (type B) from Rhodothermus marinus Xyn10A, CBM6 (type B) from Cellvibrio mixtus Cel5B, and CBM9-2 (type C) from Thermotoga maritima Xyn10A, were fused to the C terminus of CtCDP. Fusion of any selected CBM with CtCDP did not influence its kinetic parameters on cellobiose but affected the binding and catalytic properties on celloheptaose and RAC differently. Among them, addition of CBM9 to CtCDP resulted in a 2.7-fold increase of catalytic efficiency for degrading celloheptaose. CtCDP-CBM9 exhibited enhanced specific activities over 20% on the short-chain RAC (DP = 14) and more than 50% on the long-chain RAC (DP = 164). The chimeric protein CtCDP-CBM9 would be the first step to construct a cellulose phosphorylase for in vitro hydrogen production from cellulose by synthetic pathway biotransformation (SyPaB).

摘要

热纤梭菌纤维二糖磷酸化酶(CtCDP)是一种不含明显碳水化合物结合模块的单模块蛋白,已报道其对聚合度(DP)为 2 至 5 的可溶性纤维二糖具有活性。在这项研究中,首次发现 CtCDP 对低水溶性纤维七糖和不溶性再生无定形纤维素(RAC)具有较弱的活性。为了提高其对固体纤维素材料的活性,将四个纤维素结合模块,例如来自热纤梭菌 CbhA 的 CBM3(A型)、来自海洋红球菌 Xyn10A 的 CBM4-2(B 型)、来自混合纤维弧菌 Cel5B 的 CBM6(B 型)和来自海栖热袍菌 Xyn10A 的 CBM9-2(C 型),融合到 CtCDP 的 C 末端。任何选定的 CBM 与 CtCDP 的融合都不会影响其对纤维二糖的动力学参数,但会对纤维七糖和 RAC 的结合和催化特性产生不同的影响。其中,CBM9 的添加使 CtCDP 降解纤维七糖的催化效率提高了 2.7 倍。CtCDP-CBM9 在短链 RAC(DP = 14)上的比活性提高了 20%以上,在长链 RAC(DP = 164)上的比活性提高了 50%以上。该嵌合蛋白 CtCDP-CBM9 将是通过合成途径生物转化(SyPaB)构建用于体外从纤维素生产氢气的纤维素磷酸化酶的第一步。

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