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Complexity of the Ruminococcus flavefaciens FD-1 cellulosome reflects an expansion of family-related protein-protein interactions

机译:喇菇的复杂性Flavefaciens FD-1纤维素体反映了与家庭相关蛋白质 - 蛋白质相互作用的扩展

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Protein-protein interactions play a vital role in cellular processes as exemplified by assembly of the intricate multi-enzyme cellulosome complex. Cellulosomes are assembled by selective high-affinity binding of enzyme-borne dockerin modules to repeated cohesin modules of structural proteins termed scaffoldins. Recent sequencing of the fiber-degrading Ruminococcus flavefaciens FD-1 genome revealed a particularly elaborate cellulosome system. In total, 223 dockerin-bearing ORFs potentially involved in cellulosome assembly and a variety of multi-modular scaffoldins were identified, and the dockerins were classified into six major groups. Here, extensive screening employing three complementary medium- to high-throughput platforms was used to characterize the different cohesin-dockerin specificities. The platforms included (i) cellulose-coated microarray assay, (ii) enzyme-linked immunosorbent assay (ELISA) and (iii) in-vivo co-expression and screening in Escherichia coli. The data revealed a collection of unique cohesin-dockerin interactions and support the functional relevance of dockerin classification into groups. In contrast to observations reported previously, a dual-binding mode is involved in cellulosome cell-surface attachment, whereas single-binding interactions operate for cellulosome integration of enzymes. This sui generis cellulosome model enhances our understanding of the mechanisms governing the remarkable ability of R. flavefaciens to degrade carbohydrates in the bovine rumen and provides a basis for constructing efficient nano-machines applied to biological processes.
机译:蛋白质 - 蛋白质相互作用在细胞过程中发挥着至关重要的作用,如复杂的多酶纤维素组络合物组装所示。通过选择性高亲和力结合组装纤维素组装酶 - 传播的Dockerin模块,以重复的结构蛋白质被称为支架蛋白质的结构蛋白质。最近的纤维降解钻头晕Flavefaciens FD-1基因组的测序显示出特别精细的纤维素体系。鉴定总共223个携带纤维素组件和各种多模块化纤奶苷的携带型锻造蛋白,并且将Dockerins分为六个主要组。这里,采用三种互补介质至高通量平台的广泛筛选用于表征不同的休蛋白豚鼠特异性。该平台包括(i)纤维素涂覆的微阵列测定,(II)酶联免疫吸附测定(ELISA)和(III)在大肠杆菌中的体内共同表达和筛选。数据显示了独特的幼耳素相互作用的集合,并支持Dockerin分类对组的功能相关性。与先前报道的观察结果相比,双重结合模式参与纤维素细胞表面附着,而单结合相互作用是用于纤维素组的酶的整合。该隋一般纤维素组模型提高了我们对治疗牛瘤瘤中碳水化合物的显着能力的机制的理解,并为构建应用于生物过程的有效纳米机的基础提供了基础。

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