Crystal structures and low-affinity complex formation of halogenase CtcP and FAD reductase CtcQ from the chlortetracycline biosynthetic pathway.

IF 3.8 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Caixia Hou, Sylvie Garneau-Tsodikova, Oleg V Tsodikov
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引用次数: 0

Abstract

Enzymatic halogenation in natural products has been intensely investigated due to its potential utility as a tool to improve pharmacological and pharmaceutical properties of drug leads. Chlortetracycline (CTC), the first tetracycline (TC) antibiotic discovered nearly eight decades ago, contains a chlorine group. This chlorine is installed enzymatically by the flavin adenine dinucleotide (FAD)-dependent halogenase CtcP. CtcP and the FAD reductase CtcQ, which is also encoded in the CTC biosynthetic gene cluster, function as a two-component system. Structural information on CtcP and CtcQ has been lacking. In this study, we determined crystal structures of CtcP from Kitasatospora aureofaciens in a complex with polyethylene glycol and sulfate ions and in a complex with FAD, and a crystal structure of CtcQ in a complex with FAD and NAD. The structures of CtcP revealed a close similarity of this enzyme to the phenolic halogenase PltM, despite a large difference in the sizes of their respective substrates, presumably TC and phloroglucinol. The CtcP structure showed a conserved dimeric organization also found in PltM crystals. We showed that dimerization of CtcP is allosterically influenced by a distant C-terminal helical hairpin. A closed substrate-binding cavity of CtcP suggested that conformational changes were required to allow a substrate, likely not TC, to bind CtcP. We demonstrated that CtcP and CtcQ weakly bound each other. The dimeric structures of CtcP and CtcQ prompted us to propose approximate models of a 2:2/CtcP:CtcQ complex, where FAD(H2) would shuttle between the two enzymes for chlorination and reduction.

氯四环素生物合成途径中卤素酶CtcP和FAD还原酶CtcQ的晶体结构和低亲和力复合物的形成。
天然产物中的酶卤化反应由于其作为改善药物先导物的药理学和药学性质的工具的潜在效用而受到了广泛的研究。近80年前发现的第一个四环素类抗生素——氯霉素(CTC)含有一个氯基团。这种氯由fad依赖的卤化酶CtcP以酶的方式安装。CtcP和同样编码在CTC生物合成基因簇中的FAD还原酶CtcQ是一个双组分系统。关于CtcP和CtcQ的结构信息一直缺乏。在本研究中,我们测定了Kitasatospora aurefaciens的CtcP在与PEG和硫酸盐离子配合物和与FAD配合物中的晶体结构,以及CtcQ在与FAD和NAD配合物中的晶体结构。CtcP的结构显示该酶与酚类卤化酶PltM非常相似,尽管它们各自的底物(可能是TC和间苯三酚)的大小存在很大差异。CtcP结构显示了PltM晶体中同样存在的保守二聚体结构。我们发现CtcP的二聚化受到远端c端螺旋发夹的变构影响。CtcP的封闭底物结合腔表明,需要改变构象才能使底物(可能不是TC)结合CtcP。我们证明了CtcP和CtcQ是弱绑定的。CtcP和CtcQ的二聚体结构促使我们提出了一个2:2/CtcP:CtcQ复合物的近似模型,其中FAD(H2)会在两种酶之间穿梭进行氯化和还原。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Bioscience Reports
Bioscience Reports 生物-细胞生物学
CiteScore
8.50
自引率
0.00%
发文量
380
审稿时长
6-12 weeks
期刊介绍: Bioscience Reports provides a home for sound scientific research in all areas of cell biology and molecular life sciences. Since 2012, Bioscience Reports has been fully Open Access and publishes all papers under the liberal CC BY licence, giving the life science community quality research to share and discuss.Content before 2012 is subscription-only, and is accessible via archive purchase. Articles are assessed on soundness, providing a home for valid findings and data. We welcome papers that span disciplines (e.g. chemistry, medicine), including papers describing: -new methodologies -tools and reagents to probe biological questions -mechanistic details -disease mechanisms -metabolic processes and their regulation -structure and function -bioenergetics
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