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Escherichia coli Fails to Efficiently Maintain the Activity of an Important Flavin Monooxygenase in Recombinant Overexpression

机译:大肠杆菌未能有效地维持重组黄素过表达的重要黄素单加氧酶的活性

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摘要

This paper describes the measurement and analysis of in vivo activity and stability of cyclohexanone monooxygenase from Acinetobacter sp. NCIMB 9871 (CHMO), a model Baeyer–Villiger monooxygenase, in the recombinant host Escherichia coli. This enzyme was often described as poorly stable in vitro, and has recently been found to deactivate rapidly in the absence of its essential cofactors and antioxidants. Its stability in vivo was scarcely studied, so far. Under conditions common for the overexpression of CHMO we investigated the ability of the host to support these properties using metabolomics. Our results showed that E. coli failed to provide the intracellular levels of cofactors required to functionally stabilize the enzyme, although the biocatalyst was produced in high concentration, and was invariably detected after protein synthesis had stopped. We thus infer that biotechnological applications of CHMO with this host relied on a residual activity of approximately 5-10%. Other microorganisms might offer a more efficient solution for recombinant production of CHMO and related enzymes.
机译:本文介绍了不动杆菌属环己酮单加氧酶的体内活性和稳定性的测定和分析。 NCIMB 9871(CHMO),Baeyer-Villiger单加氧酶模型,在重组宿主大肠杆菌中。该酶通常被描述为在体外稳定性较差,最近发现在缺少必需的辅因子和抗氧化剂的情况下,该酶会迅速失活。到目前为止,几乎没有研究其在体内的稳定性。在过表达CHMO的常见条件下,我们使用代谢组学研究了宿主支持这些特性的能力。我们的结果表明,尽管生物催化剂产生的浓度很高,但大肠杆菌未能提供功能上稳定酶所需的细胞内辅助因子,以稳定酶的功能,并且在蛋白质合成停止后总是检测到。因此,我们推断该宿主的CHMO生物技术应用依赖于约5-10%的残留活性。其他微生物可能会为重组生产CHMO和相关酶提供更有效的解决方案。

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