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Functional Dissection of a Multimodular Polypeptide of the Pikromycin Polyketide Synthase into Monomodules by Using a Matched Pair of Heterologous Docking Domains

机译:利用配对的异源对接域功能性解剖pikromycin polyketide合酶多模块多肽为单模块

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摘要

Working together or apart : Separating multimodular PKS enzymes into their respective monomodules by replacing the natural intraprotein linkers (illustrated in red in the figure) with a matched docking domain pair from a heterologous PKS system, leads to only small losses in overall in vivo polyketide product and increased efficiency at utilizing polyketide pathway intermediates to prime the biosynthetic process. The pikromyin polyketide synthase (PKS) in Streptomyces venezulae is comprised of a loading module and six extension modules, which generate the corresponding 14-membered macrolactone product. PikAI is a multimodular component of this PKS and houses both the loading domain and the first two extension modules, joined by short intraprotein linkers. We have shown that PikAI can be separated into two proteins at either of these linkers, only when matched pairs of docking domains (DDs) from a heterologous modular phoslactomycin PKS are used in place of the intraprotein linker. In both cases the yields of pikromycin produced by the S. venezuelae mutant were 50 % of that of a S. venezuelae strain expressing the native trimodular PikAI. This observation provides the first demonstration that such separations do not dramatically impact the efficiency of the entire in vivo biosynthetic process. Expression of module 2 as a monomodular protein fused to a heterologous N-terminal docking domain was also observed to give almost a tenfold improvement in the in vivo generation of pikromycin from a synthetic diketide intermediate. These results demonstrate the utility of DDs to manipulate biosynthetic processes catalyzed by modular PKSs and the quest to generate novel polyketide products.
机译:一起工作或分开工作:通过用来自异源PKS系统的匹配的对接结构域对替换天然的蛋白内连接子(图中红色表示),将多模块PKS酶分离为它们各自的单模块,这只会导致整个体内聚酮化合物的损失很小并提高了利用聚酮化合物途径中间体引发生物合成过程的效率。委内链霉菌中的吡咯丁酮聚酮化合物合酶(PKS)由一个加载模块和六个扩展模块组成,它们生成相应的14元大分子内酯产物。 PikAI是此PKS的多模块组件,既包含加载域,又包含前两个扩展模块,并通过短蛋白内接头连接。我们已经证明,只有在使用来自异源模块化磷脂酰肌氨酸激酶PKS的配对对接结构域(DDs)代替蛋白内接头的情况下,PikAI才能在这些接头的任何一个处分离为两种蛋白质。在这两种情况下,委内瑞拉葡萄球菌突变体产生的吡咯霉素的产量是表达天然三模块PikAI的委内瑞拉葡萄球菌菌株的产量的50%。该观察结果首次证明,这种分离不会显着影响整个体内生物合成过程的效率。还观察到模块2作为与异源N-末端对接结构域融合的单模块蛋白的表达在体内从合成的二酮化合物中间体产生吡咯霉素中产生了几乎十倍的改善。这些结果证明了DDs操纵由模块化PKS催化的生物合成过程的实用性,以及对生成新型聚酮化合物产品的追求。

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