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首页> 外文期刊>Applied and Environmental Microbiology >Exploration of New Geometries in Cellulosome-Like Chimeras
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Exploration of New Geometries in Cellulosome-Like Chimeras

机译:探索类纤维素嵌合体的新几何形状。

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摘要

In this study, novel cellulosome chimeras exhibiting atypical geometries and binding modes, wherein the targeting and proximity functions were directly incorporated as integral parts of the enzyme components, were designed. Two pivotal cellulosomal enzymes (family 48 and 9 cellulases) were thus appended with an efficient cellulose-binding module (CBM) and an optional cohesin and/or dockerin. Compared to the parental enzymes, the chimeric cellulases exhibited improved activity on crystalline cellulose as opposed to their reduced activity on amorphous cellulose. Nevertheless, the various complexes assembled using these engineered enzymes were somewhat less active on crystalline cellulose than the conventional designer cellulosomes containing the parental enzymes. The diminished activity appeared to reflect the number of protein-protein interactions within a given complex, which presumably impeded the mobility of their catalytic modules. The presence of numerous CBMs in a given complex, however, also reduced their performance. Furthermore, a “covalent cellulosome” that combines in a single polypeptide chain a CBM, together with family 48 and family 9 catalytic modules, also exhibited reduced activity. This study also revealed that the cohesin-dockerin interaction may be reversible under specific conditions. Taken together, the data demonstrate that cellulosome components can be used to generate higher-order functional composites and suggest that enzyme mobility is a critical parameter for cellulosome efficiency.
机译:在这项研究中,设计了新型纤维素体嵌合体,表现出非典型的几何形状和结合模式,其中靶向和邻近功能直接作为酶成分的组成部分被并入。因此,将两种关键的纤维素酶(48和9个纤维素酶家族)附加了有效的纤维素结合模块(CBM)和可选的黏着蛋白和/或泊坞蛋白酶。与亲本酶相比,嵌合纤维素酶对结晶纤维素表现出改善的活性,而不是对无定形纤维素表现出降低的活性。然而,使用这些工程化酶组装的各种复合物对结晶纤维素的活性要比含有亲本酶的常规设计纤维素团少。活性降低似乎反映了给定复合物中蛋白质-蛋白质相互作用的数量,这可能阻碍了其催化模块的迁移。但是,给定复合物中存在大量CBM,也会降低其性能。此外,将CBM与48族和9族催化模块结合在一条多肽链中的“共价纤维素体”也表现出降低的活性。这项研究还表明,在特定条件下,cohesin-dockerin相互作用可能是可逆的。两者合计,数据表明纤维素体组分可用于生成更高阶的功能复合材料,并建议酶迁移率是纤维素体效率的关键参数。

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