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首页> 外文期刊>FEMS Microbiology Letters >Cell-free protein synthesis and substrate specificity of full-length endoglucanase CelJ (Cel9D-Cel44A), the largest multi-enzyme subunit of the Clostridium thermocellum cellulosome
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Cell-free protein synthesis and substrate specificity of full-length endoglucanase CelJ (Cel9D-Cel44A), the largest multi-enzyme subunit of the Clostridium thermocellum cellulosome

机译:全长内切葡聚糖酶CelJ(Cel9D-Cel44A)的无细胞蛋白合成和底物特异性,Clos9dium-Cel44A最大的多酶亚基

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Endoglucanase CelJ (Cel9D-Cel44A) is the largest multi-enzyme subunit of the Clostridium thermocellum cellulosome and is composed of glycoside hydrolase (GH) families 9 and 44 (GH9 and GH44) and carbohydrate-binding module (CBM) families 30 and 44 (CBM30 and CBM44). The study of CelJ has been hampered by the inability to isolate full-length CelJ from recombinant Escherichia coli cells. Here, full-length CelJ and its N- and C-terminal segments, CBM30-GH9 (Cel9D) and GH44-CBM44 (Cel44A), were synthesized using a wheat germ cell-free protein synthesis system and then were purified to homogeneity. Analysis of the substrate specificities of CelJ and its derivatives demonstrated that the fusion of Cel9D and Cel44A results in threefold synergy for the degradation of xyloglucan, one of the major structural polysaccharides of plant cell walls. Because CelJ displayed broad substrate specificity including significant carboxymethylcellulase (CMCase) and xylanase activities in addition to high xyloglucanase activity, CelJ may play an important role in the degradation of plant cell walls, which are composed of highly heterogeneous polysaccharides. Furthermore, because Cel9D, but not Cel44A, acts as a semi-processive endoglucanase, the different modes of action between Cel9D and Cel44A may be responsible for the observed synergistic effect on the activity of CelJ (Cel9D-Cel44A).
机译:内切葡聚糖酶CelJ(Cel9D-Cel44A)是热纤梭菌纤维素酶体的最大多酶亚基,由糖苷水解酶(GH)家族9和44(GH9和GH44)以及碳水化合物结合模块(CBM)家族30和44( CBM30和CBM44)。 CelJ的研究因无法从重组大肠杆菌细胞分离全长CelJ而受到阻碍。在此,使用无小麦生殖细胞的蛋白质合成系统合成了全长CelJ及其N和C末端片段CBM30-GH9(Cel9D)和GH44-CBM44(Cel44A),然后纯化至同质。对CelJ及其衍生物的底物特异性的分析表明,Cel9D和Cel44A的融合导致木葡聚糖(植物细胞壁的主要结构多糖之一)的降解具有三重协同作用。由于CelJ显示出广泛的底物特异性,除了具有高木葡聚糖酶活性外,还包括重要的羧甲基纤维素酶(CMCase)和木聚糖酶活性,因此CelJ可能在由高度异质多糖组成的植物细胞壁降解中发挥重要作用。此外,由于Cel9D而不是Cel44A充当半加工性内切葡聚糖酶,因此Cel9D和Cel44A之间的不同作用方式可能是所观察到的对CelJ(Cel9D-Cel44A)活性的协同作用。

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