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Cellulase-Xylanase Synergy in Designer Cellulosomes for Enhanced Degradation of a Complex Cellulosic Substrate

机译:纤维素酶-木聚糖酶协同作用在设计师纤维素中增强了复杂纤维素基质的降解

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摘要

Designer cellulosomes are precision-engineered multienzyme complexes in which the molecular architecture and enzyme content are exquisitely controlled. This system was used to examine enzyme cooperation for improved synergy among Thermobifida fusca glycoside hydrolases. Two T. fusca cellulases, Cel48A exoglucanase and Cel5A endoglucanase, and two T. fusca xylanases, endoxylanases Xyn10B and Xyn11A, were selected as enzymatic components of a mixed cellulase/xylanase-containing designer cellulosome. The resultant mixed multienzyme complex was fabricated on a single scaffoldin subunit bearing all four enzymes. Conversion of T. fusca enzymes to the cellulosomal mode followed by their subsequent incorporation into a tetravalent cellulosome led to assemblies with enhanced activity (~2.4-fold) on wheat straw as a complex cellulosic substrate. The enhanced synergy was caused by the proximity of the enzymes on the complex compared to the free-enzyme systems. The hydrolytic properties of the tetravalent designer cellulosome were compared with the combined action of two separate divalent cellulase- and xylanase-containing cellulosomes. Significantly, the tetravalent designer cellulosome system exhibited an ~2-fold enhancement in enzymatic activity compared to the activity of the mixture of two distinct divalent scaffoldin-borne enzymes. These results provide additional evidence that close proximity between cellulases and xylanases is key to the observed concerted degradation of the complex cellulosic substrate in which the integrated enzymes complement each other by promoting access to the relevant polysaccharide components of the substrate. The data demonstrate that cooperation among xylanases and cellulases can be augmented by their integration into a single designer cellulosome.
机译:设计的纤维素体是精密工程化的多酶复合物,其中分子的结构和酶的含量得到精确控制。该系统用于检查酶联合作用,以改善深热双歧杆菌糖苷水解酶之间的协同作用。选择了两个T.fusca纤维素酶Cel48A外切葡聚糖酶和Cel5A内切葡聚糖酶,以及两个T.fusca木聚糖酶内切木聚糖酶Xyn10B和Xyn11A作为混合纤维素酶/含木聚糖酶的设计纤维素酶体的酶促成分。在带有所有四种酶的单个支架蛋白亚基上制备得到的混合多酶复合物。 T.fusca酶转换为纤维素酶模式,随后将其掺入四价纤维素酶体中,从而使组装在小麦秸秆上的活性增强(约2.4倍),成为复杂的纤维素底物。与自由酶系统相比,协同作用增强是由于复合物上酶的接近。将四价设计纤维素的水解特性与两种单独的含二价纤维素酶和木聚糖酶的纤维素的组合作用进行了比较。显着地,与两种不同的二价支架蛋白携带的酶的混合物的活性相比,四价设计者的纤维素体系统在酶促活性方面表现出约2倍的增强。这些结果提供了另外的证据,即纤维素酶和木聚糖酶之间的紧密接近是观察到的复杂纤维素底物协同降解的关键,在所述复合底物中,整合的酶通过促进接近底物的相关多糖成分而相互补充。数据表明木聚糖酶和纤维素酶之间的合作可以通过将它们整合到单个设计的纤维素体中而得到增强。

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